Struct secureblackbox::AuthenticodeSigner

Properties   Methods   Events   Config Settings   Errors  

The AuthenticodeSigner struct signs executable files (EXE) and dynamically linked libraries (DLL) using Microsoft Authenticode format.

Syntax

secureblackbox::AuthenticodeSigner

Remarks

Use this component to sign your binaries and optionally timestamp them.

Authenticode signing of executables is a must in the majority of modern Windows-based environments and infrastructures. A digital signature over the executable ensures that the executable comes from a trusted vendor, verified by the CA that issued the certificate.

While Microsoft provides a tool that facilitates creation of Authenticode signatures, in some cases that tool may be awkward or even impossible to use. In those cases the AuthenticodeSigner component can stand in for the job. Capable of signing executables on all supported platforms, using certificates residing on any kind of media (including remote ones, via PKI Proxy), AuthenticodeSigner can easily fit any build environments imaginable.

AuthenticodeSigner supports the latest security algorithms and standards, including SHA2, ECDSA, timestamping, and cross-signing certificates. AuthenticodeSigner signer = new AuthenticodeSigner(); signer.setHashAlgorithm("SHA256"); // Default hashing algorithm SHA256 // Select the file which contains the executable that will be signed signer.setInputFile("executable.exe"); // Select the file where the signed executable will be saved signer.setOutputFile("signedExecutable.exe"); // Specify the certificate that shall be used for signing the exectutable signer.setSigningCertificate(new Certificate("cert.pfx","password")); // Provide the address of the Time Stamping Authority (TSA) server to be used for timestamping the signature signer.setTimestampServer("http://..."); signer.sign(); // Sign

Object Lifetime

The new() method returns a mutable reference to a struct instance. The object itself is kept in the global list maintained by SecureBlackbox. Due to this, the AuthenticodeSigner struct cannot be disposed of automatically. Please, call the dispose(&mut self) method of AuthenticodeSigner when you have finished using the instance.

Property List


The following is the full list of the properties of the struct with short descriptions. Click on the links for further details.

blocked_cert_countThe number of records in the BlockedCert arrays.
blocked_cert_bytesReturns the raw certificate data in DER format.
blocked_cert_handleAllows to get or set a 'handle', a unique identifier of the underlying property object.
claimed_signing_timeThe signing time from the signer's computer.
external_crypto_async_document_idSpecifies an optional document ID for SignAsyncBegin() and SignAsyncEnd() calls.
external_crypto_custom_paramsCustom parameters to be passed to the signing service (uninterpreted).
external_crypto_dataAdditional data to be included in the async state and mirrored back by the requestor.
external_crypto_external_hash_calculationSpecifies whether the message hash is to be calculated at the external endpoint.
external_crypto_hash_algorithmSpecifies the request's signature hash algorithm.
external_crypto_key_idThe ID of the pre-shared key used for DC request authentication.
external_crypto_key_secretThe pre-shared key used for DC request authentication.
external_crypto_methodSpecifies the asynchronous signing method.
external_crypto_modeSpecifies the external cryptography mode.
external_crypto_public_key_algorithmProvide the public key algorithm here if the certificate is not available on the pre-signing stage.
fips_modeReserved.
hash_algorithmThe hash algorithm to be used for signing.
ignore_chain_validation_errorsMakes the struct tolerant to chain validation errors.
input_bytesUse this property to pass the input to struct in byte array form.
input_fileA path to the executable to be signed.
known_cert_countThe number of records in the KnownCert arrays.
known_cert_bytesReturns the raw certificate data in DER format.
known_cert_handleAllows to get or set a 'handle', a unique identifier of the underlying property object.
known_crl_countThe number of records in the KnownCRL arrays.
known_crl_bytesReturns the raw CRL data in DER format.
known_crl_handleAllows to get or set a 'handle', a unique identifier of the underlying property object.
known_ocsp_countThe number of records in the KnownOCSP arrays.
known_ocsp_bytesA buffer containing the raw OCSP response data.
known_ocsp_handleAllows to get or set a 'handle', a unique identifier of the underlying property object.
offline_modeSwitches the struct to offline mode.
output_bytesUse this property to read the output the struct object has produced.
output_fileThe file to save the signed executable to.
profileSpecifies a pre-defined profile to apply when creating the signature.
proxy_addressThe IP address of the proxy server.
proxy_authenticationThe authentication type used by the proxy server.
proxy_passwordThe password to authenticate to the proxy server.
proxy_portThe port on the proxy server to connect to.
proxy_typeThe type of the proxy server.
proxy_request_headersContains HTTP request headers for WebTunnel and HTTP proxy.
proxy_response_bodyContains the HTTP or HTTPS (WebTunnel) proxy response body.
proxy_response_headersContains response headers received from an HTTP or HTTPS (WebTunnel) proxy server.
proxy_use_ipv6Specifies whether IPv6 should be used when connecting through the proxy.
proxy_usernameSpecifies the username credential for proxy authentication.
remove_existing_signaturesSpecifies whether to remove any existing signatures before signing.
revocation_checkSpecifies the kind(s) of revocation check to perform for all chain certificates.
signature_descriptionSets human-readable signature description.
signature_indexThe index of the signature to timestamp or update.
signature_urlSets the URL to include in the signature.
signed_attribute_countThe number of records in the SignedAttribute arrays.
signed_attribute_oidThe object identifier of the attribute.
signed_attribute_valueThe value of the attribute.
signing_cert_bytesReturns the raw certificate data in DER format.
signing_cert_handleAllows to get or set a 'handle', a unique identifier of the underlying property object.
signing_chain_countThe number of records in the SigningChain arrays.
signing_chain_bytesReturns the raw certificate data in DER format.
signing_chain_handleAllows to get or set a 'handle', a unique identifier of the underlying property object.
socket_dns_modeSelects the DNS resolver to use: the struct's (secure) built-in one, or the one provided by the system.
socket_dns_portSpecifies the port number to be used for sending queries to the DNS server.
socket_dns_query_timeoutThe timeout (in milliseconds) for each DNS query.
socket_dns_serversThe addresses of DNS servers to use for address resolution, separated by commas or semicolons.
socket_dns_total_timeoutThe timeout (in milliseconds) for the whole resolution process.
socket_incoming_speed_limitThe maximum number of bytes to read from the socket, per second.
socket_local_addressThe local network interface to bind the socket to.
socket_local_portThe local port number to bind the socket to.
socket_outgoing_speed_limitThe maximum number of bytes to write to the socket, per second.
socket_timeoutThe maximum period of waiting, in milliseconds, after which the socket operation is considered unsuccessful.
socket_use_ipv6Enables or disables IP protocol version 6.
statement_typeSets the signature statement type.
timestamp_serverThe address of the timestamping server.
timestamp_typeSets the signature timestamp type.
tls_client_cert_countThe number of records in the TLSClientCert arrays.
tls_client_cert_bytesReturns the raw certificate data in DER format.
tls_client_cert_handleAllows to get or set a 'handle', a unique identifier of the underlying property object.
tls_server_cert_countThe number of records in the TLSServerCert arrays.
tls_server_cert_bytesReturns the raw certificate data in DER format.
tls_server_cert_fingerprintContains the fingerprint (a hash imprint) of this certificate.
tls_server_cert_handleAllows to get or set a 'handle', a unique identifier of the underlying property object.
tls_server_cert_issuerThe common name of the certificate issuer (CA), typically a company name.
tls_server_cert_issuer_rdnA list of Property=Value pairs that uniquely identify the certificate issuer.
tls_server_cert_key_algorithmSpecifies the public key algorithm of this certificate.
tls_server_cert_key_bitsReturns the length of the public key in bits.
tls_server_cert_key_usageIndicates the purposes of the key contained in the certificate, in the form of an OR'ed flag set.
tls_server_cert_self_signedIndicates whether the certificate is self-signed (root) or signed by an external CA.
tls_server_cert_serial_numberReturns the certificate's serial number.
tls_server_cert_sig_algorithmIndicates the algorithm that was used by the CA to sign this certificate.
tls_server_cert_subjectThe common name of the certificate holder, typically an individual's name, a URL, an e-mail address, or a company name.
tls_server_cert_subject_rdnA list of Property=Value pairs that uniquely identify the certificate holder (subject).
tls_server_cert_valid_fromThe time point at which the certificate becomes valid, in UTC.
tls_server_cert_valid_toThe time point at which the certificate expires, in UTC.
tls_auto_validate_certificatesSpecifies whether server-side TLS certificates should be validated automatically using internal validation rules.
tls_base_configurationSelects the base configuration for the TLS settings.
tls_ciphersuitesA list of ciphersuites separated with commas or semicolons.
tls_client_authEnables or disables certificate-based client authentication.
tls_extensionsProvides access to TLS extensions.
tls_force_resume_if_destination_changesWhether to force TLS session resumption when the destination address changes.
tls_groupsSpecifies a list of key exchange groups to attempt during the TLS key exchange.
tls_pre_shared_identityDefines the identity used when the PSK (Pre-Shared Key) key-exchange mechanism is negotiated.
tls_pre_shared_keyContains the pre-shared key for the PSK (Pre-Shared Key) key-exchange mechanism, encoded with base16.
tls_pre_shared_key_ciphersuiteDefines the ciphersuite used for PSK (Pre-Shared Key) negotiation.
tls_renegotiation_attack_prevention_modeSelects the renegotiation attack prevention mechanism.
tls_revocation_checkSpecifies the kind(s) of revocation check to perform.
tls_ssl_optionsVarious SSL (TLS) protocol options, set of cssloExpectShutdownMessage 0x001 Wait for the close-notify message when shutting down the connection cssloOpenSSLDTLSWorkaround 0x002 (DEPRECATED) Use a DTLS version workaround when talking to very old OpenSSL versions cssloDisableKexLengthAlignment 0x004 Do not align the client-side PMS by the RSA modulus size.
tls_modeSpecifies the TLS mode to use.
tls_use_extended_master_secretEnables the Extended Master Secret Extension, as defined in RFC 7627.
tls_use_session_resumptionEnables or disables the TLS session resumption capability.
tls_versionsThe SSL/TLS versions to enable by default.
trusted_cert_countThe number of records in the TrustedCert arrays.
trusted_cert_bytesReturns the raw certificate data in DER format.
trusted_cert_handleAllows to get or set a 'handle', a unique identifier of the underlying property object.
unsigned_attribute_countThe number of records in the UnsignedAttribute arrays.
unsigned_attribute_oidThe object identifier of the attribute.
unsigned_attribute_valueThe value of the attribute.
validation_logContains the complete log of the certificate validation routine.

Method List


The following is the full list of the methods of the struct with short descriptions. Click on the links for further details.

add_attributeAdds an attribute to the signature.
configSets or retrieves a configuration setting.
do_actionPerforms an additional action.
extract_async_dataExtracts user data from the DC signing service response.
resetResets the struct settings.
signCalculates and adds a signature to the executable.
sign_async_beginInitiates the asynchronous signing operation.
sign_async_endCompletes the asynchronous signing operation.
sign_externalSigns the document using an external signing facility.
timestampUse this method to add a timestamp to a new or to an existing signature.
updateUpdate an existing signature (or all the signatures) by adding or removing its (their) custom unsigned attributes.

Event List


The following is the full list of the events fired by the struct with short descriptions. Click on the links for further details.

on_chain_element_downloadFires when there is a need to download a chain element from an online source.
on_chain_element_neededFires when an element required to validate the chain was not located.
on_chain_validation_progressThis event is fired multiple times during chain validation to report various stages of the validation procedure.
on_errorInformation about errors during Authenticode signing.
on_external_signHandles remote or external signing initiated by the SignExternal method or other source.
on_notificationThis event notifies the application about an underlying control flow event.
on_startThis event is fired when the struct is about to start the signing process.
on_timestamp_requestFires when the struct is ready to request a timestamp from an external TSA.
on_tls_cert_neededFires when a remote TLS party requests a client certificate.
on_tls_cert_validateThis event is fired upon receipt of the TLS server's certificate, allowing the user to control its acceptance.
on_tls_establishedFires when a TLS handshake with Host successfully completes.
on_tls_handshakeFires when a new TLS handshake is initiated, before the handshake commences.
on_tls_shutdownReports the graceful closure of a TLS connection.

Config Settings


The following is a list of config settings for the struct with short descriptions. Click on the links for further details.

AttributeConflictResolutionSpecifies how to resolve updating conflicts.
BufferSizeSpecifies processing buffer size in bytes.
ChainCurrentCACertReturns the current CA certificate.
ChainCurrentCertReturns the certificate that is currently being validated.
ChainCurrentCRLReturns the current CRL.
ChainCurrentCRLSizeReturns the size of the current CRL.
ChainCurrentOCSPReturns the current OCSP response.
ChainCurrentOCSPSignerReturns the signer of the current OCSP object.
ChainInterimDetailsReturns the current interim validation details.
ChainInterimResultReturns the current interim validation result.
CheckValidityPeriodForTrustedWhether to check validity period for trusted certificates.
DislikeOpenEndedOCSPsTells the struct to discourage OCSP responses without an explicit NextUpdate parameter.
EvaluateSystemTrustEnables or disables usage of the platform's built-in trust validation facilities.
EvaluateSystemTrustForSelfSignedCertificatesEnables or disables usage of the platform's built-in trust validation facilities for self-signed certificates.
EvaluateSystemTrustForSSLEnables or disables usage of the platform's built-in trust validation facilities for SSL/TLS.
ForceCompleteChainValidationWhether to check the CA certificates when the signing certificate is invalid.
ForceCompleteChainValidationForTrustedWhether to continue with the full validation up to the root CA certificate for mid-level trust anchors.
GracePeriodSpecifies a grace period to apply during revocation information checks.
IgnoreChainLoopsWhether chain loops should be ignored.
IgnoreOCSPNoCheckExtensionWhether the OCSP NoCheck extension should be ignored.
IgnoreSystemTrustWhether trusted Windows Certificate Stores should be treated as trusted.
ImplicitlyTrustSelfSignedCertificatesWhether to trust self-signed certificates.
PromoteLongOCSPResponsesWhether long OCSP responses are requested.
PSSUsedWhether to use RSASSA-PSS algorithm.
TempPathPath for storing temporary files.
TempPathPath for storing temporary files.
TimestampConflictResolutionSpecifies how to resolve timestamping conflicts.
TimestampResponseA base16-encoded timestamp response received from a TSA.
TLSChainValidationDetailsContains the advanced details of the TLS server certificate validation.
TLSChainValidationResultContains the result of the TLS server certificate validation.
TLSClientAuthRequestedIndicates whether the TLS server requests client authentication.
TLSValidationLogContains the log of the TLS server certificate validation.
TolerateMinorChainIssuesWhether to tolerate minor chain issues.
TspAttemptCountSpecifies the number of timestamping request attempts.
TspHashAlgorithmSets a specific hash algorithm for use with the timestamping service.
TspReqPolicySets a request policy ID to include in the timestamping request.
UseEnvStoragesEnables or disables use of the environment storages.
UseMicrosoftCTLEnables or disables the automatic use of the Microsoft online certificate trust list.
UsePSSWhether to use RSASSA-PSS algorithm.
UseSystemCertificatesEnables or disables the use of the system certificates.
UseValidationCacheEnables or disable the use of the product-wide certificate chain validation cache.
UseValidatorSettingsForTLSValidationWhether to employ the primary chain validator setup for auxiliary TLS chain validations.
ASN1UseGlobalTagCacheControls whether ASN.1 module should use a global object cache.
AssignSystemSmartCardPinsSpecifies whether CSP-level PINs should be assigned to CNG keys.
CheckKeyIntegrityBeforeUseEnables or disable private key integrity check before use.
CookieCachingSpecifies whether a cookie cache should be used for HTTP(S) transports.
CookiesGets or sets local cookies for the struct.
DefDeriveKeyIterationsSpecifies the default key derivation algorithm iteration count.
DNSLocalSuffixThe suffix to assign for TLD names.
EnableClientSideSSLFFDHEEnables or disables finite field DHE key exchange support in TLS clients.
EnableSSHMLKEMEnables support for ML-KEM/hybrid key exchange algorithms in SSH client and server structs.
EnableTLSMLKEMEnables support for ML-KEM and hybrid groups in TLS client and server structs.
GlobalCookiesGets or sets global cookies for all the HTTP transports.
HardwareCryptoUsePolicyThe hardware crypto usage policy.
HttpUserAgentSpecifies the user agent name to be used by all HTTP clients.
HttpVersionThe HTTP version to use in any inner HTTP client structs created.
IgnoreExpiredMSCTLSigningCertWhether to tolerate the expired Windows Update signing certificate.
ListDelimiterThe delimiter character for multi-element lists.
LogDestinationSpecifies the debug log destination.
LogDetailsSpecifies the debug log details to dump.
LogFileSpecifies the debug log filename.
LogFiltersSpecifies the debug log filters.
LogFlushModeSpecifies the log flush mode.
LogLevelSpecifies the debug log level.
LogMaxEventCountSpecifies the maximum number of events to cache before further action is taken.
LogRotationModeSpecifies the log rotation mode.
MaxASN1BufferLengthSpecifies the maximal allowed length for ASN.1 primitive tag data.
MaxASN1TreeDepthSpecifies the maximal depth for processed ASN.1 trees.
OCSPHashAlgorithmSpecifies the hash algorithm to be used to identify certificates in OCSP requests.
OldClientSideRSAFallbackSpecifies whether the SSH client should use a SHA1 fallback.
PKICacheSpecifies which PKI elements (certificates, CRLs, OCSP responses) should be cached.
PKICachePathSpecifies the file system path where cached PKI data is stored.
ProductVersionReturns the version of the SecureBlackbox library.
ServerSSLDHKeyLengthSets the size of the TLS DHE key exchange group.
StaticDNSSpecifies whether static DNS rules should be used.
StaticIPAddress[domain]Gets or sets an IP address for the specified domain name.
StaticIPAddressesGets or sets all the static DNS rules.
TagAllows to store any custom data.
TLSSessionGroupSpecifies the group name of TLS sessions to be used for session resumption.
TLSSessionLifetimeSpecifies lifetime in seconds of the cached TLS session.
TLSSessionPurgeIntervalSpecifies how often the session cache should remove the expired TLS sessions.
UseCRLObjectCachingSpecifies whether reuse of loaded CRL objects is enabled.
UseInternalRandomSwitches between SecureBlackbox-own and platform PRNGs.
UseLegacyAdESValidationEnables legacy AdES validation mode.
UseOCSPResponseObjectCachingSpecifies whether reuse of loaded OCSP response objects is enabled.
UseOwnDNSResolverSpecifies whether the client structs should use own DNS resolver.
UseSharedSystemStoragesSpecifies whether the validation engine should use a global per-process copy of the system certificate stores.
UseSystemNativeSizeCalculationAn internal CryptoAPI access tweak.
UseSystemOAEPAndPSSEnforces or disables the use of system-driven RSA OAEP and PSS computations.
UseSystemRandomEnables or disables the use of the OS PRNG.
XMLRDNDescriptorName[OID]Defines an OID mapping to descriptor names for the certificate's IssuerRDN or SubjectRDN.
XMLRDNDescriptorPriority[OID]Specifies the priority of descriptor names associated with a specific OID.
XMLRDNDescriptorReverseOrderSpecifies whether to reverse the order of descriptors in RDN.
XMLRDNDescriptorSeparatorSpecifies the separator used between descriptors in RDN.

blocked_cert_count property (AuthenticodeSigner Struct)

The number of records in the BlockedCert arrays.

Syntax

fn blocked_cert_count(&self ) -> Result<i32, SecureBlackboxError> 
fn set_blocked_cert_count(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at blocked_cert_count - 1.

Data Type

i32

blocked_cert_bytes property (AuthenticodeSigner Struct)

Returns the raw certificate data in DER format.

Syntax

fn blocked_cert_bytes(&self , BlockedCertIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Returns the raw certificate data in DER format.

The BlockedCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the BlockedCertCount property.

This property is read-only.

Data Type

Vec

blocked_cert_handle property (AuthenticodeSigner Struct)

Allows to get or set a 'handle', a unique identifier of the underlying property object.

Syntax

fn blocked_cert_handle(&self , BlockedCertIndex : i32) -> Result<i64, SecureBlackboxError> 
fn set_blocked_cert_handle(&self, BlockedCertIndex : i32, value : i64) -> Option<SecureBlackboxError>

Default Value

0

Remarks

Allows to get or set a 'handle', a unique identifier of the underlying property object. Use this property to assign objects of the same type in a quicker manner, without copying them fieldwise.

When you pass a handle of one object to another, the source object is copied to the destination rather than assigned. It is safe to get rid of the original object after such operation. pdfSigner.setSigningCertHandle(certMgr.getCertHandle());

The BlockedCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the BlockedCertCount property.

Data Type

i64

claimed_signing_time property (AuthenticodeSigner Struct)

The signing time from the signer's computer.

Syntax

fn claimed_signing_time(&self ) -> Result<String, SecureBlackboxError> 
fn set_claimed_signing_time(&self, value : &str) -> Option<SecureBlackboxError> fn set_claimed_signing_time_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Use this property to provide the signature production time. The claimed time is not supported by a trusted source; it may be inaccurate, forfeited, or wrong, and as such is usually taken for informational purposes only by verifiers. Use timestamp servers to embed verifiable trusted timestamps. The time is in UTC.

Data Type

String

external_crypto_async_document_id property (AuthenticodeSigner Struct)

Specifies an optional document ID for SignAsyncBegin() and SignAsyncEnd() calls.

Syntax

fn external_crypto_async_document_id(&self ) -> Result<String, SecureBlackboxError> 
fn set_external_crypto_async_document_id(&self, value : &str) -> Option<SecureBlackboxError> fn set_external_crypto_async_document_id_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Specifies an optional document ID for SignAsyncBegin() and SignAsyncEnd() calls.

Use this property when working with multi-signature DCAuth requests and responses to uniquely identify documents signed within a larger batch. On the completion stage, this value helps the signing component identify the correct signature in the returned batch of responses.

If using batched requests, make sure to set this property to the same value on both the pre-signing (SignAsyncBegin) and completion (SignAsyncEnd) stages.

Data Type

String

external_crypto_custom_params property (AuthenticodeSigner Struct)

Custom parameters to be passed to the signing service (uninterpreted).

Syntax

fn external_crypto_custom_params(&self ) -> Result<String, SecureBlackboxError> 
fn set_external_crypto_custom_params(&self, value : &str) -> Option<SecureBlackboxError> fn set_external_crypto_custom_params_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Custom parameters to be passed to the signing service (uninterpreted).

Data Type

String

external_crypto_data property (AuthenticodeSigner Struct)

Additional data to be included in the async state and mirrored back by the requestor.

Syntax

fn external_crypto_data(&self ) -> Result<String, SecureBlackboxError> 
fn set_external_crypto_data(&self, value : &str) -> Option<SecureBlackboxError> fn set_external_crypto_data_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Additional data to be included in the async state and mirrored back by the requestor.

Data Type

String

external_crypto_external_hash_calculation property (AuthenticodeSigner Struct)

Specifies whether the message hash is to be calculated at the external endpoint.

Syntax

fn external_crypto_external_hash_calculation(&self ) -> Result<bool, SecureBlackboxError> 
fn set_external_crypto_external_hash_calculation(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

false

Remarks

Specifies whether the message hash is to be calculated at the external endpoint. Please note that this mode is not supported by the DCAuth struct.

If set to true, the struct will pass a few kilobytes of to-be-signed data from the document to the OnExternalSign event. This only applies when SignExternal() is called.

Data Type

bool

external_crypto_hash_algorithm property (AuthenticodeSigner Struct)

Specifies the request's signature hash algorithm.

Syntax

fn external_crypto_hash_algorithm(&self ) -> Result<String, SecureBlackboxError> 
fn set_external_crypto_hash_algorithm(&self, value : &str) -> Option<SecureBlackboxError> fn set_external_crypto_hash_algorithm_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

"SHA256"

Remarks

Specifies the request's signature hash algorithm.

SB_HASH_ALGORITHM_SHA1SHA1
SB_HASH_ALGORITHM_SHA224SHA224
SB_HASH_ALGORITHM_SHA256SHA256
SB_HASH_ALGORITHM_SHA384SHA384
SB_HASH_ALGORITHM_SHA512SHA512
SB_HASH_ALGORITHM_MD2MD2
SB_HASH_ALGORITHM_MD4MD4
SB_HASH_ALGORITHM_MD5MD5
SB_HASH_ALGORITHM_RIPEMD160RIPEMD160
SB_HASH_ALGORITHM_CRC32CRC32
SB_HASH_ALGORITHM_SSL3SSL3
SB_HASH_ALGORITHM_GOST_R3411_1994GOST1994
SB_HASH_ALGORITHM_WHIRLPOOLWHIRLPOOL
SB_HASH_ALGORITHM_POLY1305POLY1305
SB_HASH_ALGORITHM_SHA3_224SHA3_224
SB_HASH_ALGORITHM_SHA3_256SHA3_256
SB_HASH_ALGORITHM_SHA3_384SHA3_384
SB_HASH_ALGORITHM_SHA3_512SHA3_512
SB_HASH_ALGORITHM_BLAKE2S_128BLAKE2S_128
SB_HASH_ALGORITHM_BLAKE2S_160BLAKE2S_160
SB_HASH_ALGORITHM_BLAKE2S_224BLAKE2S_224
SB_HASH_ALGORITHM_BLAKE2S_256BLAKE2S_256
SB_HASH_ALGORITHM_BLAKE2B_160BLAKE2B_160
SB_HASH_ALGORITHM_BLAKE2B_256BLAKE2B_256
SB_HASH_ALGORITHM_BLAKE2B_384BLAKE2B_384
SB_HASH_ALGORITHM_BLAKE2B_512BLAKE2B_512
SB_HASH_ALGORITHM_SHAKE_128SHAKE_128
SB_HASH_ALGORITHM_SHAKE_256SHAKE_256
SB_HASH_ALGORITHM_SHAKE_128_LENSHAKE_128_LEN
SB_HASH_ALGORITHM_SHAKE_256_LENSHAKE_256_LEN

Data Type

String

external_crypto_key_id property (AuthenticodeSigner Struct)

The ID of the pre-shared key used for DC request authentication.

Syntax

fn external_crypto_key_id(&self ) -> Result<String, SecureBlackboxError> 
fn set_external_crypto_key_id(&self, value : &str) -> Option<SecureBlackboxError> fn set_external_crypto_key_id_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

The ID of the pre-shared key used for DC request authentication.

Asynchronous DCAuth-driven communication requires that parties authenticate each other with a secret pre-shared cryptographic key. This provides an extra protection layer for the protocol and diminishes the risk of the private key becoming abused by foreign parties. Use this property to provide the pre-shared key identifier, and use external_crypto_key_secret to pass the key itself.

The same KeyID/KeySecret pair should be used on the DCAuth side for the signing requests to be accepted.

Note: The KeyID/KeySecret scheme is very similar to the AuthKey scheme used in various Cloud service providers to authenticate users.

Example: signer.ExternalCrypto.KeyID = "MainSigningKey"; signer.ExternalCrypto.KeySecret = "abcdef0123456789";

Data Type

String

external_crypto_key_secret property (AuthenticodeSigner Struct)

The pre-shared key used for DC request authentication.

Syntax

fn external_crypto_key_secret(&self ) -> Result<String, SecureBlackboxError> 
fn set_external_crypto_key_secret(&self, value : &str) -> Option<SecureBlackboxError> fn set_external_crypto_key_secret_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

The pre-shared key used for DC request authentication. This key must be set and match the key used by the DCAuth counterpart for the scheme to work.

Read more about configuring authentication in the external_crypto_key_id topic.

Data Type

String

external_crypto_method property (AuthenticodeSigner Struct)

Specifies the asynchronous signing method.

Syntax

fn external_crypto_method(&self ) -> Result<i32, SecureBlackboxError> 
fn set_external_crypto_method(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // PKCS1
1 // PKCS7

Default Value

0

Remarks

Specifies the asynchronous signing method. This is typically defined by the DC server capabilities and setup.

Available options:

asmdPKCS10
asmdPKCS71

Data Type

i32

external_crypto_mode property (AuthenticodeSigner Struct)

Specifies the external cryptography mode.

Syntax

fn external_crypto_mode(&self ) -> Result<i32, SecureBlackboxError> 
fn set_external_crypto_mode(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // Default
1 // Disabled
2 // Generic
3 // DCAuth
4 // DCAuthJSON

Default Value

0

Remarks

Specifies the external cryptography mode.

Available options:

ecmDefaultThe default value (0)
ecmDisabledDo not use DC or external signing (1)
ecmGenericGeneric external signing with the OnExternalSign event (2)
ecmDCAuthDCAuth signing (3)
ecmDCAuthJSONDCAuth signing in JSON format (4)

Data Type

i32

external_crypto_public_key_algorithm property (AuthenticodeSigner Struct)

Provide the public key algorithm here if the certificate is not available on the pre-signing stage.

Syntax

fn external_crypto_public_key_algorithm(&self ) -> Result<String, SecureBlackboxError> 
fn set_external_crypto_public_key_algorithm(&self, value : &str) -> Option<SecureBlackboxError> fn set_external_crypto_public_key_algorithm_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Provide the public key algorithm here if the certificate is not available on the pre-signing stage.

SB_CERT_ALGORITHM_ID_RSA_ENCRYPTIONrsaEncryption
SB_CERT_ALGORITHM_MD2_RSA_ENCRYPTIONmd2withRSAEncryption
SB_CERT_ALGORITHM_MD5_RSA_ENCRYPTIONmd5withRSAEncryption
SB_CERT_ALGORITHM_SHA1_RSA_ENCRYPTIONsha1withRSAEncryption
SB_CERT_ALGORITHM_ID_DSAid-dsa
SB_CERT_ALGORITHM_ID_DSA_SHA1id-dsa-with-sha1
SB_CERT_ALGORITHM_DH_PUBLICdhpublicnumber
SB_CERT_ALGORITHM_SHA224_RSA_ENCRYPTIONsha224WithRSAEncryption
SB_CERT_ALGORITHM_SHA256_RSA_ENCRYPTIONsha256WithRSAEncryption
SB_CERT_ALGORITHM_SHA384_RSA_ENCRYPTIONsha384WithRSAEncryption
SB_CERT_ALGORITHM_SHA512_RSA_ENCRYPTIONsha512WithRSAEncryption
SB_CERT_ALGORITHM_ID_RSAPSSid-RSASSA-PSS
SB_CERT_ALGORITHM_ID_RSAOAEPid-RSAES-OAEP
SB_CERT_ALGORITHM_RSASIGNATURE_RIPEMD160ripemd160withRSA
SB_CERT_ALGORITHM_ID_ELGAMALelGamal
SB_CERT_ALGORITHM_SHA1_ECDSAecdsa-with-SHA1
SB_CERT_ALGORITHM_RECOMMENDED_ECDSAecdsa-recommended
SB_CERT_ALGORITHM_SHA224_ECDSAecdsa-with-SHA224
SB_CERT_ALGORITHM_SHA256_ECDSAecdsa-with-SHA256
SB_CERT_ALGORITHM_SHA384_ECDSAecdsa-with-SHA384
SB_CERT_ALGORITHM_SHA512_ECDSAecdsa-with-SHA512
SB_CERT_ALGORITHM_ECid-ecPublicKey
SB_CERT_ALGORITHM_SPECIFIED_ECDSAecdsa-specified
SB_CERT_ALGORITHM_GOST_R3410_1994id-GostR3410-94
SB_CERT_ALGORITHM_GOST_R3410_2001id-GostR3410-2001
SB_CERT_ALGORITHM_GOST_R3411_WITH_R3410_1994id-GostR3411-94-with-GostR3410-94
SB_CERT_ALGORITHM_GOST_R3411_WITH_R3410_2001id-GostR3411-94-with-GostR3410-2001
SB_CERT_ALGORITHM_SHA1_ECDSA_PLAINecdsa-plain-SHA1
SB_CERT_ALGORITHM_SHA224_ECDSA_PLAINecdsa-plain-SHA224
SB_CERT_ALGORITHM_SHA256_ECDSA_PLAINecdsa-plain-SHA256
SB_CERT_ALGORITHM_SHA384_ECDSA_PLAINecdsa-plain-SHA384
SB_CERT_ALGORITHM_SHA512_ECDSA_PLAINecdsa-plain-SHA512
SB_CERT_ALGORITHM_RIPEMD160_ECDSA_PLAINecdsa-plain-RIPEMD160
SB_CERT_ALGORITHM_WHIRLPOOL_RSA_ENCRYPTIONwhirlpoolWithRSAEncryption
SB_CERT_ALGORITHM_ID_DSA_SHA224id-dsa-with-sha224
SB_CERT_ALGORITHM_ID_DSA_SHA256id-dsa-with-sha256
SB_CERT_ALGORITHM_SHA3_224_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-sha3-224
SB_CERT_ALGORITHM_SHA3_256_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-sha3-256
SB_CERT_ALGORITHM_SHA3_384_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-sha3-384
SB_CERT_ALGORITHM_SHA3_512_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-sha3-512
SB_CERT_ALGORITHM_SHA3_224_ECDSAid-ecdsa-with-sha3-224
SB_CERT_ALGORITHM_SHA3_256_ECDSAid-ecdsa-with-sha3-256
SB_CERT_ALGORITHM_SHA3_384_ECDSAid-ecdsa-with-sha3-384
SB_CERT_ALGORITHM_SHA3_512_ECDSAid-ecdsa-with-sha3-512
SB_CERT_ALGORITHM_SHA3_224_ECDSA_PLAINid-ecdsa-plain-with-sha3-224
SB_CERT_ALGORITHM_SHA3_256_ECDSA_PLAINid-ecdsa-plain-with-sha3-256
SB_CERT_ALGORITHM_SHA3_384_ECDSA_PLAINid-ecdsa-plain-with-sha3-384
SB_CERT_ALGORITHM_SHA3_512_ECDSA_PLAINid-ecdsa-plain-with-sha3-512
SB_CERT_ALGORITHM_ID_DSA_SHA3_224id-dsa-with-sha3-224
SB_CERT_ALGORITHM_ID_DSA_SHA3_256id-dsa-with-sha3-256
SB_CERT_ALGORITHM_BLAKE2S_128_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2s128
SB_CERT_ALGORITHM_BLAKE2S_160_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2s160
SB_CERT_ALGORITHM_BLAKE2S_224_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2s224
SB_CERT_ALGORITHM_BLAKE2S_256_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2s256
SB_CERT_ALGORITHM_BLAKE2B_160_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2b160
SB_CERT_ALGORITHM_BLAKE2B_256_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2b256
SB_CERT_ALGORITHM_BLAKE2B_384_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2b384
SB_CERT_ALGORITHM_BLAKE2B_512_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2b512
SB_CERT_ALGORITHM_BLAKE2S_128_ECDSAid-ecdsa-with-blake2s128
SB_CERT_ALGORITHM_BLAKE2S_160_ECDSAid-ecdsa-with-blake2s160
SB_CERT_ALGORITHM_BLAKE2S_224_ECDSAid-ecdsa-with-blake2s224
SB_CERT_ALGORITHM_BLAKE2S_256_ECDSAid-ecdsa-with-blake2s256
SB_CERT_ALGORITHM_BLAKE2B_160_ECDSAid-ecdsa-with-blake2b160
SB_CERT_ALGORITHM_BLAKE2B_256_ECDSAid-ecdsa-with-blake2b256
SB_CERT_ALGORITHM_BLAKE2B_384_ECDSAid-ecdsa-with-blake2b384
SB_CERT_ALGORITHM_BLAKE2B_512_ECDSAid-ecdsa-with-blake2b512
SB_CERT_ALGORITHM_BLAKE2S_128_ECDSA_PLAINid-ecdsa-plain-with-blake2s128
SB_CERT_ALGORITHM_BLAKE2S_160_ECDSA_PLAINid-ecdsa-plain-with-blake2s160
SB_CERT_ALGORITHM_BLAKE2S_224_ECDSA_PLAINid-ecdsa-plain-with-blake2s224
SB_CERT_ALGORITHM_BLAKE2S_256_ECDSA_PLAINid-ecdsa-plain-with-blake2s256
SB_CERT_ALGORITHM_BLAKE2B_160_ECDSA_PLAINid-ecdsa-plain-with-blake2b160
SB_CERT_ALGORITHM_BLAKE2B_256_ECDSA_PLAINid-ecdsa-plain-with-blake2b256
SB_CERT_ALGORITHM_BLAKE2B_384_ECDSA_PLAINid-ecdsa-plain-with-blake2b384
SB_CERT_ALGORITHM_BLAKE2B_512_ECDSA_PLAINid-ecdsa-plain-with-blake2b512
SB_CERT_ALGORITHM_ID_DSA_BLAKE2S_224id-dsa-with-blake2s224
SB_CERT_ALGORITHM_ID_DSA_BLAKE2S_256id-dsa-with-blake2s256
SB_CERT_ALGORITHM_EDDSA_ED25519id-Ed25519
SB_CERT_ALGORITHM_EDDSA_ED448id-Ed448
SB_CERT_ALGORITHM_EDDSA_ED25519_PHid-Ed25519ph
SB_CERT_ALGORITHM_EDDSA_ED448_PHid-Ed448ph
SB_CERT_ALGORITHM_EDDSAid-EdDSA
SB_CERT_ALGORITHM_EDDSA_SIGNATUREid-EdDSA-sig
SB_CERT_ALGORITHM_MLDSA_44id-ml-dsa-44
SB_CERT_ALGORITHM_MLDSA_65id-ml-dsa-65
SB_CERT_ALGORITHM_MLDSA_87id-ml-dsa-87
SB_CERT_ALGORITHM_HASH_MLDSA_44_SHA512id-hash-ml-dsa-44-with-sha512
SB_CERT_ALGORITHM_HASH_MLDSA_65_SHA512id-hash-ml-dsa-65-with-sha512
SB_CERT_ALGORITHM_HASH_MLDSA_87_SHA512id-hash-ml-dsa-87-with-sha512
SB_CERT_ALGORITHM_MLKEM_512id-ml-kem-512
SB_CERT_ALGORITHM_MLKEM_768id-ml-kem-768
SB_CERT_ALGORITHM_MLKEM_1024id-ml-kem-1024

Data Type

String

fips_mode property (AuthenticodeSigner Struct)

Reserved.

Syntax

fn fips_mode(&self ) -> Result<bool, SecureBlackboxError> 
fn set_fips_mode(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

false

Remarks

This property is reserved for future use.

Data Type

bool

hash_algorithm property (AuthenticodeSigner Struct)

The hash algorithm to be used for signing.

Syntax

fn hash_algorithm(&self ) -> Result<String, SecureBlackboxError> 
fn set_hash_algorithm(&self, value : &str) -> Option<SecureBlackboxError> fn set_hash_algorithm_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

"SHA256"

Remarks

The following algorithms are supported: MD5, SHA1, SHA224, SHA256, SHA384, SHA512, SHA3_224, SHA3_256, SHA3_384, SHA3_512.

Data Type

String

ignore_chain_validation_errors property (AuthenticodeSigner Struct)

Makes the struct tolerant to chain validation errors.

Syntax

fn ignore_chain_validation_errors(&self ) -> Result<bool, SecureBlackboxError> 
fn set_ignore_chain_validation_errors(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

false

Remarks

If this property is set to True, any errors emerging during certificate chain validation will be ignored. This setting may be handy if the purpose of validation is the creation of an LTV signature, and the validation is performed in an environment that doesn't trust the signer's certificate chain.

Data Type

bool

input_bytes property (AuthenticodeSigner Struct)

Use this property to pass the input to struct in byte array form.

Syntax

fn input_bytes(&self ) -> Result<Vec<u8>, SecureBlackboxError> 
fn set_input_bytes(&self, value : Vec<u8>) -> Option<SecureBlackboxError> fn set_input_bytes_ref(&self, value : &[u8]) -> Option<SecureBlackboxError>

Remarks

Assign a byte array containing the data to be processed to this property.

Data Type

Vec

input_file property (AuthenticodeSigner Struct)

A path to the executable to be signed.

Syntax

fn input_file(&self ) -> Result<String, SecureBlackboxError> 
fn set_input_file(&self, value : &str) -> Option<SecureBlackboxError> fn set_input_file_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

A path to the file containing the executable to be signed. The input can alternatively be provided via input_stream.

Data Type

String

known_cert_count property (AuthenticodeSigner Struct)

The number of records in the KnownCert arrays.

Syntax

fn known_cert_count(&self ) -> Result<i32, SecureBlackboxError> 
fn set_known_cert_count(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at known_cert_count - 1.

Data Type

i32

known_cert_bytes property (AuthenticodeSigner Struct)

Returns the raw certificate data in DER format.

Syntax

fn known_cert_bytes(&self , KnownCertIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Returns the raw certificate data in DER format.

The KnownCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the KnownCertCount property.

This property is read-only.

Data Type

Vec

known_cert_handle property (AuthenticodeSigner Struct)

Allows to get or set a 'handle', a unique identifier of the underlying property object.

Syntax

fn known_cert_handle(&self , KnownCertIndex : i32) -> Result<i64, SecureBlackboxError> 
fn set_known_cert_handle(&self, KnownCertIndex : i32, value : i64) -> Option<SecureBlackboxError>

Default Value

0

Remarks

Allows to get or set a 'handle', a unique identifier of the underlying property object. Use this property to assign objects of the same type in a quicker manner, without copying them fieldwise.

When you pass a handle of one object to another, the source object is copied to the destination rather than assigned. It is safe to get rid of the original object after such operation. pdfSigner.setSigningCertHandle(certMgr.getCertHandle());

The KnownCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the KnownCertCount property.

Data Type

i64

known_crl_count property (AuthenticodeSigner Struct)

The number of records in the KnownCRL arrays.

Syntax

fn known_crl_count(&self ) -> Result<i32, SecureBlackboxError> 
fn set_known_crl_count(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at known_crl_count - 1.

Data Type

i32

known_crl_bytes property (AuthenticodeSigner Struct)

Returns the raw CRL data in DER format.

Syntax

fn known_crl_bytes(&self , KnownCRLIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Returns the raw CRL data in DER format.

The KnownCRLIndex parameter specifies the index of the item in the array. The size of the array is controlled by the KnownCRLCount property.

This property is read-only.

Data Type

Vec

known_crl_handle property (AuthenticodeSigner Struct)

Allows to get or set a 'handle', a unique identifier of the underlying property object.

Syntax

fn known_crl_handle(&self , KnownCRLIndex : i32) -> Result<i64, SecureBlackboxError> 
fn set_known_crl_handle(&self, KnownCRLIndex : i32, value : i64) -> Option<SecureBlackboxError>

Default Value

0

Remarks

Allows to get or set a 'handle', a unique identifier of the underlying property object. Use this property to assign objects of the same type in a quicker manner, without copying them fieldwise.

When you pass a handle of one object to another, the source object is copied to the destination rather than assigned. It is safe to get rid of the original object after such operation. pdfSigner.setSigningCertHandle(certMgr.getCertHandle());

The KnownCRLIndex parameter specifies the index of the item in the array. The size of the array is controlled by the KnownCRLCount property.

Data Type

i64

known_ocsp_count property (AuthenticodeSigner Struct)

The number of records in the KnownOCSP arrays.

Syntax

fn known_ocsp_count(&self ) -> Result<i32, SecureBlackboxError> 
fn set_known_ocsp_count(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at known_ocsp_count - 1.

Data Type

i32

known_ocsp_bytes property (AuthenticodeSigner Struct)

A buffer containing the raw OCSP response data.

Syntax

fn known_ocsp_bytes(&self , KnownOCSPIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

A buffer containing the raw OCSP response data.

The KnownOCSPIndex parameter specifies the index of the item in the array. The size of the array is controlled by the KnownOCSPCount property.

This property is read-only.

Data Type

Vec

known_ocsp_handle property (AuthenticodeSigner Struct)

Allows to get or set a 'handle', a unique identifier of the underlying property object.

Syntax

fn known_ocsp_handle(&self , KnownOCSPIndex : i32) -> Result<i64, SecureBlackboxError> 
fn set_known_ocsp_handle(&self, KnownOCSPIndex : i32, value : i64) -> Option<SecureBlackboxError>

Default Value

0

Remarks

Allows to get or set a 'handle', a unique identifier of the underlying property object. Use this property to assign objects of the same type in a quicker manner, without copying them fieldwise.

When you pass a handle of one object to another, the source object is copied to the destination rather than assigned. It is safe to get rid of the original object after such operation. pdfSigner.setSigningCertHandle(certMgr.getCertHandle());

The KnownOCSPIndex parameter specifies the index of the item in the array. The size of the array is controlled by the KnownOCSPCount property.

Data Type

i64

offline_mode property (AuthenticodeSigner Struct)

Switches the struct to offline mode.

Syntax

fn offline_mode(&self ) -> Result<bool, SecureBlackboxError> 
fn set_offline_mode(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

false

Remarks

When working in offline mode, the struct restricts itself from using any online revocation information sources, such as CRL or OCSP responders.

Offline mode may be useful if there is a need to verify the completeness of the validation information included within the signature or provided via known_certificates, known_crls, and other related properties.

Data Type

bool

output_bytes property (AuthenticodeSigner Struct)

Use this property to read the output the struct object has produced.

Syntax

fn output_bytes(&self ) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Read the contents of this property after the operation has completed to read the produced output. This property will only be set if the output_file and output_stream properties had not been assigned.

This property is read-only.

Data Type

Vec

output_file property (AuthenticodeSigner Struct)

The file to save the signed executable to.

Syntax

fn output_file(&self ) -> Result<String, SecureBlackboxError> 
fn set_output_file(&self, value : &str) -> Option<SecureBlackboxError> fn set_output_file_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

A path to the file where the struct should save the signed executable file. Use output_stream to save the signed file to a stream instead.

Data Type

String

profile property (AuthenticodeSigner Struct)

Specifies a pre-defined profile to apply when creating the signature.

Syntax

fn profile(&self ) -> Result<String, SecureBlackboxError> 
fn set_profile(&self, value : &str) -> Option<SecureBlackboxError> fn set_profile_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Advanced signatures come in many variants, which are often defined by parties that needs to process them or by local standards. SecureBlackbox profiles are sets of pre-defined configurations which correspond to particular signature variants. By specifying a profile, you are pre-configuring the component to make it produce the signature that matches the configuration corresponding to that profile.

Data Type

String

proxy_address property (AuthenticodeSigner Struct)

The IP address of the proxy server.

Syntax

fn proxy_address(&self ) -> Result<String, SecureBlackboxError> 
fn set_proxy_address(&self, value : &str) -> Option<SecureBlackboxError> fn set_proxy_address_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

The IP address of the proxy server.

Data Type

String

proxy_authentication property (AuthenticodeSigner Struct)

The authentication type used by the proxy server.

Syntax

fn proxy_authentication(&self ) -> Result<i32, SecureBlackboxError> 
fn set_proxy_authentication(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // NoAuthentication
1 // Basic
2 // Digest
3 // NTLM

Default Value

0

Remarks

The authentication type used by the proxy server.

patNoAuthentication0
patBasic1
patDigest2
patNTLM3

Data Type

i32

proxy_password property (AuthenticodeSigner Struct)

The password to authenticate to the proxy server.

Syntax

fn proxy_password(&self ) -> Result<String, SecureBlackboxError> 
fn set_proxy_password(&self, value : &str) -> Option<SecureBlackboxError> fn set_proxy_password_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

The password to authenticate to the proxy server.

Data Type

String

proxy_port property (AuthenticodeSigner Struct)

The port on the proxy server to connect to.

Syntax

fn proxy_port(&self ) -> Result<i32, SecureBlackboxError> 
fn set_proxy_port(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

The port on the proxy server to connect to.

Data Type

i32

proxy_type property (AuthenticodeSigner Struct)

The type of the proxy server.

Syntax

fn proxy_type(&self ) -> Result<i32, SecureBlackboxError> 
fn set_proxy_type(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // None
1 // Socks4
2 // Socks5
3 // WebTunnel
4 // HTTP

Default Value

0

Remarks

The type of the proxy server.

cptNone0
cptSocks41
cptSocks52
cptWebTunnel3
cptHTTP4

Data Type

i32

proxy_request_headers property (AuthenticodeSigner Struct)

Contains HTTP request headers for WebTunnel and HTTP proxy.

Syntax

fn proxy_request_headers(&self ) -> Result<String, SecureBlackboxError> 
fn set_proxy_request_headers(&self, value : &str) -> Option<SecureBlackboxError> fn set_proxy_request_headers_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Contains HTTP request headers for WebTunnel and HTTP proxy.

Data Type

String

proxy_response_body property (AuthenticodeSigner Struct)

Contains the HTTP or HTTPS (WebTunnel) proxy response body.

Syntax

fn proxy_response_body(&self ) -> Result<String, SecureBlackboxError> 
fn set_proxy_response_body(&self, value : &str) -> Option<SecureBlackboxError> fn set_proxy_response_body_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Contains the HTTP or HTTPS (WebTunnel) proxy response body.

Data Type

String

proxy_response_headers property (AuthenticodeSigner Struct)

Contains response headers received from an HTTP or HTTPS (WebTunnel) proxy server.

Syntax

fn proxy_response_headers(&self ) -> Result<String, SecureBlackboxError> 
fn set_proxy_response_headers(&self, value : &str) -> Option<SecureBlackboxError> fn set_proxy_response_headers_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Contains response headers received from an HTTP or HTTPS (WebTunnel) proxy server.

Data Type

String

proxy_use_ipv6 property (AuthenticodeSigner Struct)

Specifies whether IPv6 should be used when connecting through the proxy.

Syntax

fn proxy_use_ipv6(&self ) -> Result<bool, SecureBlackboxError> 
fn set_proxy_use_ipv6(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

false

Remarks

Specifies whether IPv6 should be used when connecting through the proxy.

Data Type

bool

proxy_username property (AuthenticodeSigner Struct)

Specifies the username credential for proxy authentication.

Syntax

fn proxy_username(&self ) -> Result<String, SecureBlackboxError> 
fn set_proxy_username(&self, value : &str) -> Option<SecureBlackboxError> fn set_proxy_username_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Specifies the username credential for proxy authentication.

Data Type

String

remove_existing_signatures property (AuthenticodeSigner Struct)

Specifies whether to remove any existing signatures before signing.

Syntax

fn remove_existing_signatures(&self ) -> Result<bool, SecureBlackboxError> 
fn set_remove_existing_signatures(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

false

Remarks

If this property is set to True, all the existing Authenticode signatures will be removed from the executable before adding the new one. If this property is False, the new signature will be added on top of the existing ones.

Data Type

bool

revocation_check property (AuthenticodeSigner Struct)

Specifies the kind(s) of revocation check to perform for all chain certificates.

Syntax

fn revocation_check(&self ) -> Result<i32, SecureBlackboxError> 
fn set_revocation_check(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // None
1 // Auto
2 // AllCRL
3 // AllOCSP
4 // AllCRLAndOCSP
5 // AnyCRL
6 // AnyOCSP
7 // AnyCRLOrOCSP
8 // AnyOCSPOrCRL

Default Value

1

Remarks

Revocation checking is necessary to ensure the integrity of the chain and obtain up-to-date certificate validity and trustworthiness information.

Certificate Revocation Lists (CRLs) and Online Certificate Status Protocol (OCSP) responses serve the same purpose of ensuring that the certificate had not been revoked by the Certificate Authority (CA) at the time of use. Depending on your circumstances and security policy requirements, you may want to use either one or both of the revocation information source types.

crcNone0No revocation checking.
crcAuto1Automatic mode selection. Currently this maps to crcAnyOCSPOrCRL, but it may change in the future.
crcAllCRL2All provided CRL endpoints will be checked, and all checks must succeed.
crcAllOCSP3All provided OCSP endpoints will be checked, and all checks must succeed.
crcAllCRLAndOCSP4All provided CRL and OCSP endpoints will be checked, and all checks must succeed.
crcAnyCRL5All provided CRL endpoints will be checked, and at least one check must succeed.
crcAnyOCSP6All provided OCSP endpoints will be checked, and at least one check must succeed.
crcAnyCRLOrOCSP7All provided CRL and OCSP endpoints will be checked, and at least one check must succeed. CRL endpoints are checked first.
crcAnyOCSPOrCRL8All provided CRL and OCSP endpoints will be checked, and at least one check must succeed. OCSP endpoints are checked first.

This setting controls the way the revocation checks are performed for every certificate in the chain. Typically certificates come with two types of revocation information sources: CRL (certificate revocation lists) and OCSP responders. CRLs are static objects periodically published by the CA at some online location. OCSP responders are active online services maintained by the CA that can provide up-to-date information on certificate statuses in near real time.

There are some conceptual differences between the two. CRLs are normally larger in size. Their use involves some latency because there is normally some delay between the time when a certificate was revoked and the time the subsequent CRL mentioning that is published. The benefits of CRL is that the same object can provide statuses for all certificates issued by a particular CA, and that the whole technology is much simpler than OCSP (and thus is supported by more CAs).

This setting lets you adjust the validation course by including or excluding certain types of revocation sources from the validation process. The crcAnyOCSPOrCRL setting (give preference to the faster OCSP route and only demand one source to succeed) is a good choice for most typical validation environments. The "crcAll*" modes are much stricter, and may be used in scenarios where bulletproof validity information is essential.

NOTE: If no CRL or OCSP endpoints are provided by the CA, the revocation check will be considered successful. This is because the CA chose not to supply revocation information for its certificates, meaning they are considered irrevocable.

NOTE: Within each of the above settings, if any retrieved CRL or OCSP response indicates that the certificate has been revoked, the revocation check fails.

Data Type

i32

signature_description property (AuthenticodeSigner Struct)

Sets human-readable signature description.

Syntax

fn signature_description(&self ) -> Result<String, SecureBlackboxError> 
fn set_signature_description(&self, value : &str) -> Option<SecureBlackboxError> fn set_signature_description_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Use this property to provide description for the new signature. This is optional.

Data Type

String

signature_index property (AuthenticodeSigner Struct)

The index of the signature to timestamp or update.

Syntax

fn signature_index(&self ) -> Result<i32, SecureBlackboxError> 
fn set_signature_index(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

-1

Remarks

Use this property to specify the index of the existing signature before timestamping or adding custom unsigned attributes. -1 means all the existing signatures.

Data Type

i32

signature_url property (AuthenticodeSigner Struct)

Sets the URL to include in the signature.

Syntax

fn signature_url(&self ) -> Result<String, SecureBlackboxError> 
fn set_signature_url(&self, value : &str) -> Option<SecureBlackboxError> fn set_signature_url_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Use this property to provide a custom URL with the signature. This is optional.

Data Type

String

signed_attribute_count property (AuthenticodeSigner Struct)

The number of records in the SignedAttribute arrays.

Syntax

fn signed_attribute_count(&self ) -> Result<i32, SecureBlackboxError> 
fn set_signed_attribute_count(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at signed_attribute_count - 1.

Data Type

i32

signed_attribute_oid property (AuthenticodeSigner Struct)

The object identifier of the attribute.

Syntax

fn signed_attribute_oid(&self , SignedAttributeIndex : i32) -> Result<String, SecureBlackboxError> 
fn set_signed_attribute_oid(&self, SignedAttributeIndex : i32, value : &str) -> Option<SecureBlackboxError> fn set_signed_attribute_oid_ref(&self, SignedAttributeIndex : i32, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

The object identifier of the attribute.

The SignedAttributeIndex parameter specifies the index of the item in the array. The size of the array is controlled by the SignedAttributeCount property.

Data Type

String

signed_attribute_value property (AuthenticodeSigner Struct)

The value of the attribute.

Syntax

fn signed_attribute_value(&self , SignedAttributeIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 
fn set_signed_attribute_value(&self, SignedAttributeIndex : i32, value : Vec<u8>) -> Option<SecureBlackboxError> fn set_signed_attribute_value_ref(&self, SignedAttributeIndex : i32, value : &[u8]) -> Option<SecureBlackboxError>

Remarks

The value of the attribute.

The SignedAttributeIndex parameter specifies the index of the item in the array. The size of the array is controlled by the SignedAttributeCount property.

Data Type

Vec

signing_cert_bytes property (AuthenticodeSigner Struct)

Returns the raw certificate data in DER format.

Syntax

fn signing_cert_bytes(&self ) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Returns the raw certificate data in DER format.

This property is read-only.

Data Type

Vec

signing_cert_handle property (AuthenticodeSigner Struct)

Allows to get or set a 'handle', a unique identifier of the underlying property object.

Syntax

fn signing_cert_handle(&self ) -> Result<i64, SecureBlackboxError> 
fn set_signing_cert_handle(&self, value : i64) -> Option<SecureBlackboxError>

Default Value

0

Remarks

Allows to get or set a 'handle', a unique identifier of the underlying property object. Use this property to assign objects of the same type in a quicker manner, without copying them fieldwise.

When you pass a handle of one object to another, the source object is copied to the destination rather than assigned. It is safe to get rid of the original object after such operation. pdfSigner.setSigningCertHandle(certMgr.getCertHandle());

Data Type

i64

signing_chain_count property (AuthenticodeSigner Struct)

The number of records in the SigningChain arrays.

Syntax

fn signing_chain_count(&self ) -> Result<i32, SecureBlackboxError> 
fn set_signing_chain_count(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at signing_chain_count - 1.

Data Type

i32

signing_chain_bytes property (AuthenticodeSigner Struct)

Returns the raw certificate data in DER format.

Syntax

fn signing_chain_bytes(&self , SigningChainIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Returns the raw certificate data in DER format.

The SigningChainIndex parameter specifies the index of the item in the array. The size of the array is controlled by the SigningChainCount property.

This property is read-only.

Data Type

Vec

signing_chain_handle property (AuthenticodeSigner Struct)

Allows to get or set a 'handle', a unique identifier of the underlying property object.

Syntax

fn signing_chain_handle(&self , SigningChainIndex : i32) -> Result<i64, SecureBlackboxError> 
fn set_signing_chain_handle(&self, SigningChainIndex : i32, value : i64) -> Option<SecureBlackboxError>

Default Value

0

Remarks

Allows to get or set a 'handle', a unique identifier of the underlying property object. Use this property to assign objects of the same type in a quicker manner, without copying them fieldwise.

When you pass a handle of one object to another, the source object is copied to the destination rather than assigned. It is safe to get rid of the original object after such operation. pdfSigner.setSigningCertHandle(certMgr.getCertHandle());

The SigningChainIndex parameter specifies the index of the item in the array. The size of the array is controlled by the SigningChainCount property.

Data Type

i64

socket_dns_mode property (AuthenticodeSigner Struct)

Selects the DNS resolver to use: the struct's (secure) built-in one, or the one provided by the system.

Syntax

fn socket_dns_mode(&self ) -> Result<i32, SecureBlackboxError> 
fn set_socket_dns_mode(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // Auto
1 // Platform
2 // Own
3 // OwnSecure

Default Value

0

Remarks

Selects the DNS resolver to use: the component's (secure) built-in one, or the one provided by the system.

dmAuto0
dmPlatform1
dmOwn2
dmOwnSecure3

Data Type

i32

socket_dns_port property (AuthenticodeSigner Struct)

Specifies the port number to be used for sending queries to the DNS server.

Syntax

fn socket_dns_port(&self ) -> Result<i32, SecureBlackboxError> 
fn set_socket_dns_port(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

Specifies the port number to be used for sending queries to the DNS server.

Data Type

i32

socket_dns_query_timeout property (AuthenticodeSigner Struct)

The timeout (in milliseconds) for each DNS query.

Syntax

fn socket_dns_query_timeout(&self ) -> Result<i32, SecureBlackboxError> 
fn set_socket_dns_query_timeout(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

The timeout (in milliseconds) for each DNS query. The value of 0 indicates an infinite timeout.

Data Type

i32

socket_dns_servers property (AuthenticodeSigner Struct)

The addresses of DNS servers to use for address resolution, separated by commas or semicolons.

Syntax

fn socket_dns_servers(&self ) -> Result<String, SecureBlackboxError> 
fn set_socket_dns_servers(&self, value : &str) -> Option<SecureBlackboxError> fn set_socket_dns_servers_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

The addresses of DNS servers to use for address resolution, separated by commas or semicolons.

Data Type

String

socket_dns_total_timeout property (AuthenticodeSigner Struct)

The timeout (in milliseconds) for the whole resolution process.

Syntax

fn socket_dns_total_timeout(&self ) -> Result<i32, SecureBlackboxError> 
fn set_socket_dns_total_timeout(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

The timeout (in milliseconds) for the whole resolution process. The value of 0 indicates an infinite timeout.

Data Type

i32

socket_incoming_speed_limit property (AuthenticodeSigner Struct)

The maximum number of bytes to read from the socket, per second.

Syntax

fn socket_incoming_speed_limit(&self ) -> Result<i32, SecureBlackboxError> 
fn set_socket_incoming_speed_limit(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

The maximum number of bytes to read from the socket, per second.

Data Type

i32

socket_local_address property (AuthenticodeSigner Struct)

The local network interface to bind the socket to.

Syntax

fn socket_local_address(&self ) -> Result<String, SecureBlackboxError> 
fn set_socket_local_address(&self, value : &str) -> Option<SecureBlackboxError> fn set_socket_local_address_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

The local network interface to bind the socket to.

Data Type

String

socket_local_port property (AuthenticodeSigner Struct)

The local port number to bind the socket to.

Syntax

fn socket_local_port(&self ) -> Result<i32, SecureBlackboxError> 
fn set_socket_local_port(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

The local port number to bind the socket to.

Data Type

i32

socket_outgoing_speed_limit property (AuthenticodeSigner Struct)

The maximum number of bytes to write to the socket, per second.

Syntax

fn socket_outgoing_speed_limit(&self ) -> Result<i32, SecureBlackboxError> 
fn set_socket_outgoing_speed_limit(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

The maximum number of bytes to write to the socket, per second.

Data Type

i32

socket_timeout property (AuthenticodeSigner Struct)

The maximum period of waiting, in milliseconds, after which the socket operation is considered unsuccessful.

Syntax

fn socket_timeout(&self ) -> Result<i32, SecureBlackboxError> 
fn set_socket_timeout(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

60000

Remarks

The maximum period of waiting, in milliseconds, after which the socket operation is considered unsuccessful.

If Timeout is set to 0, a socket operation will expire after the system-default timeout (2 hrs 8 min for TCP stack).

Data Type

i32

socket_use_ipv6 property (AuthenticodeSigner Struct)

Enables or disables IP protocol version 6.

Syntax

fn socket_use_ipv6(&self ) -> Result<bool, SecureBlackboxError> 
fn set_socket_use_ipv6(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

false

Remarks

Enables or disables IP protocol version 6.

Data Type

bool

statement_type property (AuthenticodeSigner Struct)

Sets the signature statement type.

Syntax

fn statement_type(&self ) -> Result<i32, SecureBlackboxError> 
fn set_statement_type(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // Unknown
1 // Individual
2 // Commercial

Default Value

1

Remarks

Use this property to specify the signature statement type.

acsUnknown0
acsIndividual1
acsCommercial2

Data Type

i32

timestamp_server property (AuthenticodeSigner Struct)

The address of the timestamping server.

Syntax

fn timestamp_server(&self ) -> Result<String, SecureBlackboxError> 
fn set_timestamp_server(&self, value : &str) -> Option<SecureBlackboxError> fn set_timestamp_server_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Use this property to provide the address of the Time Stamping Authority (TSA) server to be used for timestamping the signature.

SecureBlackbox supports RFC3161-compliant timestamping servers, available via HTTP or HTTPS.

If your timestamping service enforces credential-based user authentication (basic or digest), you can provide the credentials in the same URL:

http://user:password@timestamp.server.com/TsaService

For TSAs using certificate-based TLS authentication, provide the client certificate via the tls_client_chain property.

If this property is left empty, no timestamp will be added to the signature.

Starting from summer 2021 update (Vol. 2), the virtual timestamping service is supported, which allows you to intervene in the timestamping routine and provide your own handling for the TSA exchange. This may be handy if the service that you are requesting timestamps from uses a non-standard TSP protocol or requires special authentication option.

To employ the virtual service, assign an URI of the following format to this property:

virtual://localhost?hashonly=true&amp;includecerts=true&amp;reqpolicy=1.2.3.4.5&amp;halg=SHA256&amp;ignorenonce=true

Subscribe to on_notification event to get notified about the virtualized timestamping event. The EventID of the timestamping event is TimestampRequest. Inside the event handler, read the base16-encoded request from the EventParam parameter and forward it to the timestamping authority. Upon receiving the response, pass it back to the component, encoded in base16, via the TimestampResponse config property:

component.Config("TimestampResponse=308208ab...");

Note that all the exchange with your custom TSA should take place within the same invocation of the Notification event.

The hashonly parameter of the virtual URI tells the component to only return the timestamp message imprint via the EventParam parameter. If set to false, EventParam will contain the complete RFC3161 timestamping request.

The includecerts parameter specifies that the requestCertificates parameter of the timestamping request should be set to true.

The reqpolicy parameter lets you specify the request policy, and the halg parameter specifies the hash algorithm to use for timestamping.

The ignorenonce parameter allows you to switch off client nonce verification to enable compatibility with TSA services that do not support nonce mirroring.

All the parameters are optional.

Data Type

String

timestamp_type property (AuthenticodeSigner Struct)

Sets the signature timestamp type.

Syntax

fn timestamp_type(&self ) -> Result<i32, SecureBlackboxError> 
fn set_timestamp_type(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // Unknown
1 // Legacy
2 // Trusted

Default Value

2

Remarks

Use this property to specify the signature timestamp type. This can either be a "trusted" timestamp (a weird name applied by the Authenticode specification to a standard RFC 3161 timestamp), or a "legacy" timestamp (an older variant of the base64-encoded TSP protocol).

actUnknown0
actLegacy1
actTrusted2

Data Type

i32

tls_client_cert_count property (AuthenticodeSigner Struct)

The number of records in the TLSClientCert arrays.

Syntax

fn tls_client_cert_count(&self ) -> Result<i32, SecureBlackboxError> 
fn set_tls_client_cert_count(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at tls_client_cert_count - 1.

Data Type

i32

tls_client_cert_bytes property (AuthenticodeSigner Struct)

Returns the raw certificate data in DER format.

Syntax

fn tls_client_cert_bytes(&self , TLSClientCertIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Returns the raw certificate data in DER format.

The TLSClientCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSClientCertCount property.

This property is read-only.

Data Type

Vec

tls_client_cert_handle property (AuthenticodeSigner Struct)

Allows to get or set a 'handle', a unique identifier of the underlying property object.

Syntax

fn tls_client_cert_handle(&self , TLSClientCertIndex : i32) -> Result<i64, SecureBlackboxError> 
fn set_tls_client_cert_handle(&self, TLSClientCertIndex : i32, value : i64) -> Option<SecureBlackboxError>

Default Value

0

Remarks

Allows to get or set a 'handle', a unique identifier of the underlying property object. Use this property to assign objects of the same type in a quicker manner, without copying them fieldwise.

When you pass a handle of one object to another, the source object is copied to the destination rather than assigned. It is safe to get rid of the original object after such operation. pdfSigner.setSigningCertHandle(certMgr.getCertHandle());

The TLSClientCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSClientCertCount property.

Data Type

i64

tls_server_cert_count property (AuthenticodeSigner Struct)

The number of records in the TLSServerCert arrays.

Syntax

fn tls_server_cert_count(&self ) -> Result<i32, SecureBlackboxError> 

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at tls_server_cert_count - 1.

This property is read-only.

Data Type

i32

tls_server_cert_bytes property (AuthenticodeSigner Struct)

Returns the raw certificate data in DER format.

Syntax

fn tls_server_cert_bytes(&self , TLSServerCertIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Returns the raw certificate data in DER format.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

Vec

tls_server_cert_fingerprint property (AuthenticodeSigner Struct)

Contains the fingerprint (a hash imprint) of this certificate.

Syntax

fn tls_server_cert_fingerprint(&self , TLSServerCertIndex : i32) -> Result<String, SecureBlackboxError> 

Default Value

""

Remarks

Contains the fingerprint (a hash imprint) of this certificate.

While there is no formal standard defining what a fingerprint is, a SHA1 hash of the certificate's DER-encoded body is typically used.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

String

tls_server_cert_handle property (AuthenticodeSigner Struct)

Allows to get or set a 'handle', a unique identifier of the underlying property object.

Syntax

fn tls_server_cert_handle(&self , TLSServerCertIndex : i32) -> Result<i64, SecureBlackboxError> 

Default Value

0

Remarks

Allows to get or set a 'handle', a unique identifier of the underlying property object. Use this property to assign objects of the same type in a quicker manner, without copying them fieldwise.

When you pass a handle of one object to another, the source object is copied to the destination rather than assigned. It is safe to get rid of the original object after such operation. pdfSigner.setSigningCertHandle(certMgr.getCertHandle());

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

i64

tls_server_cert_issuer property (AuthenticodeSigner Struct)

The common name of the certificate issuer (CA), typically a company name.

Syntax

fn tls_server_cert_issuer(&self , TLSServerCertIndex : i32) -> Result<String, SecureBlackboxError> 

Default Value

""

Remarks

The common name of the certificate issuer (CA), typically a company name. This is part of a larger set of credentials available via tls_issuer_rdn.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

String

tls_server_cert_issuer_rdn property (AuthenticodeSigner Struct)

A list of Property=Value pairs that uniquely identify the certificate issuer.

Syntax

fn tls_server_cert_issuer_rdn(&self , TLSServerCertIndex : i32) -> Result<String, SecureBlackboxError> 

Default Value

""

Remarks

A list of Property=Value pairs that uniquely identify the certificate issuer.

Example: /C=US/O=Nationwide CA/CN=Web Certification Authority

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

String

tls_server_cert_key_algorithm property (AuthenticodeSigner Struct)

Specifies the public key algorithm of this certificate.

Syntax

fn tls_server_cert_key_algorithm(&self , TLSServerCertIndex : i32) -> Result<String, SecureBlackboxError> 

Default Value

"0"

Remarks

Specifies the public key algorithm of this certificate.

SB_CERT_ALGORITHM_ID_RSA_ENCRYPTIONrsaEncryption
SB_CERT_ALGORITHM_MD2_RSA_ENCRYPTIONmd2withRSAEncryption
SB_CERT_ALGORITHM_MD5_RSA_ENCRYPTIONmd5withRSAEncryption
SB_CERT_ALGORITHM_SHA1_RSA_ENCRYPTIONsha1withRSAEncryption
SB_CERT_ALGORITHM_ID_DSAid-dsa
SB_CERT_ALGORITHM_ID_DSA_SHA1id-dsa-with-sha1
SB_CERT_ALGORITHM_DH_PUBLICdhpublicnumber
SB_CERT_ALGORITHM_SHA224_RSA_ENCRYPTIONsha224WithRSAEncryption
SB_CERT_ALGORITHM_SHA256_RSA_ENCRYPTIONsha256WithRSAEncryption
SB_CERT_ALGORITHM_SHA384_RSA_ENCRYPTIONsha384WithRSAEncryption
SB_CERT_ALGORITHM_SHA512_RSA_ENCRYPTIONsha512WithRSAEncryption
SB_CERT_ALGORITHM_ID_RSAPSSid-RSASSA-PSS
SB_CERT_ALGORITHM_ID_RSAOAEPid-RSAES-OAEP
SB_CERT_ALGORITHM_RSASIGNATURE_RIPEMD160ripemd160withRSA
SB_CERT_ALGORITHM_ID_ELGAMALelGamal
SB_CERT_ALGORITHM_SHA1_ECDSAecdsa-with-SHA1
SB_CERT_ALGORITHM_RECOMMENDED_ECDSAecdsa-recommended
SB_CERT_ALGORITHM_SHA224_ECDSAecdsa-with-SHA224
SB_CERT_ALGORITHM_SHA256_ECDSAecdsa-with-SHA256
SB_CERT_ALGORITHM_SHA384_ECDSAecdsa-with-SHA384
SB_CERT_ALGORITHM_SHA512_ECDSAecdsa-with-SHA512
SB_CERT_ALGORITHM_ECid-ecPublicKey
SB_CERT_ALGORITHM_SPECIFIED_ECDSAecdsa-specified
SB_CERT_ALGORITHM_GOST_R3410_1994id-GostR3410-94
SB_CERT_ALGORITHM_GOST_R3410_2001id-GostR3410-2001
SB_CERT_ALGORITHM_GOST_R3411_WITH_R3410_1994id-GostR3411-94-with-GostR3410-94
SB_CERT_ALGORITHM_GOST_R3411_WITH_R3410_2001id-GostR3411-94-with-GostR3410-2001
SB_CERT_ALGORITHM_SHA1_ECDSA_PLAINecdsa-plain-SHA1
SB_CERT_ALGORITHM_SHA224_ECDSA_PLAINecdsa-plain-SHA224
SB_CERT_ALGORITHM_SHA256_ECDSA_PLAINecdsa-plain-SHA256
SB_CERT_ALGORITHM_SHA384_ECDSA_PLAINecdsa-plain-SHA384
SB_CERT_ALGORITHM_SHA512_ECDSA_PLAINecdsa-plain-SHA512
SB_CERT_ALGORITHM_RIPEMD160_ECDSA_PLAINecdsa-plain-RIPEMD160
SB_CERT_ALGORITHM_WHIRLPOOL_RSA_ENCRYPTIONwhirlpoolWithRSAEncryption
SB_CERT_ALGORITHM_ID_DSA_SHA224id-dsa-with-sha224
SB_CERT_ALGORITHM_ID_DSA_SHA256id-dsa-with-sha256
SB_CERT_ALGORITHM_SHA3_224_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-sha3-224
SB_CERT_ALGORITHM_SHA3_256_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-sha3-256
SB_CERT_ALGORITHM_SHA3_384_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-sha3-384
SB_CERT_ALGORITHM_SHA3_512_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-sha3-512
SB_CERT_ALGORITHM_SHA3_224_ECDSAid-ecdsa-with-sha3-224
SB_CERT_ALGORITHM_SHA3_256_ECDSAid-ecdsa-with-sha3-256
SB_CERT_ALGORITHM_SHA3_384_ECDSAid-ecdsa-with-sha3-384
SB_CERT_ALGORITHM_SHA3_512_ECDSAid-ecdsa-with-sha3-512
SB_CERT_ALGORITHM_SHA3_224_ECDSA_PLAINid-ecdsa-plain-with-sha3-224
SB_CERT_ALGORITHM_SHA3_256_ECDSA_PLAINid-ecdsa-plain-with-sha3-256
SB_CERT_ALGORITHM_SHA3_384_ECDSA_PLAINid-ecdsa-plain-with-sha3-384
SB_CERT_ALGORITHM_SHA3_512_ECDSA_PLAINid-ecdsa-plain-with-sha3-512
SB_CERT_ALGORITHM_ID_DSA_SHA3_224id-dsa-with-sha3-224
SB_CERT_ALGORITHM_ID_DSA_SHA3_256id-dsa-with-sha3-256
SB_CERT_ALGORITHM_BLAKE2S_128_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2s128
SB_CERT_ALGORITHM_BLAKE2S_160_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2s160
SB_CERT_ALGORITHM_BLAKE2S_224_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2s224
SB_CERT_ALGORITHM_BLAKE2S_256_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2s256
SB_CERT_ALGORITHM_BLAKE2B_160_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2b160
SB_CERT_ALGORITHM_BLAKE2B_256_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2b256
SB_CERT_ALGORITHM_BLAKE2B_384_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2b384
SB_CERT_ALGORITHM_BLAKE2B_512_RSA_ENCRYPTIONid-rsassa-pkcs1-v1_5-with-blake2b512
SB_CERT_ALGORITHM_BLAKE2S_128_ECDSAid-ecdsa-with-blake2s128
SB_CERT_ALGORITHM_BLAKE2S_160_ECDSAid-ecdsa-with-blake2s160
SB_CERT_ALGORITHM_BLAKE2S_224_ECDSAid-ecdsa-with-blake2s224
SB_CERT_ALGORITHM_BLAKE2S_256_ECDSAid-ecdsa-with-blake2s256
SB_CERT_ALGORITHM_BLAKE2B_160_ECDSAid-ecdsa-with-blake2b160
SB_CERT_ALGORITHM_BLAKE2B_256_ECDSAid-ecdsa-with-blake2b256
SB_CERT_ALGORITHM_BLAKE2B_384_ECDSAid-ecdsa-with-blake2b384
SB_CERT_ALGORITHM_BLAKE2B_512_ECDSAid-ecdsa-with-blake2b512
SB_CERT_ALGORITHM_BLAKE2S_128_ECDSA_PLAINid-ecdsa-plain-with-blake2s128
SB_CERT_ALGORITHM_BLAKE2S_160_ECDSA_PLAINid-ecdsa-plain-with-blake2s160
SB_CERT_ALGORITHM_BLAKE2S_224_ECDSA_PLAINid-ecdsa-plain-with-blake2s224
SB_CERT_ALGORITHM_BLAKE2S_256_ECDSA_PLAINid-ecdsa-plain-with-blake2s256
SB_CERT_ALGORITHM_BLAKE2B_160_ECDSA_PLAINid-ecdsa-plain-with-blake2b160
SB_CERT_ALGORITHM_BLAKE2B_256_ECDSA_PLAINid-ecdsa-plain-with-blake2b256
SB_CERT_ALGORITHM_BLAKE2B_384_ECDSA_PLAINid-ecdsa-plain-with-blake2b384
SB_CERT_ALGORITHM_BLAKE2B_512_ECDSA_PLAINid-ecdsa-plain-with-blake2b512
SB_CERT_ALGORITHM_ID_DSA_BLAKE2S_224id-dsa-with-blake2s224
SB_CERT_ALGORITHM_ID_DSA_BLAKE2S_256id-dsa-with-blake2s256
SB_CERT_ALGORITHM_EDDSA_ED25519id-Ed25519
SB_CERT_ALGORITHM_EDDSA_ED448id-Ed448
SB_CERT_ALGORITHM_EDDSA_ED25519_PHid-Ed25519ph
SB_CERT_ALGORITHM_EDDSA_ED448_PHid-Ed448ph
SB_CERT_ALGORITHM_EDDSAid-EdDSA
SB_CERT_ALGORITHM_EDDSA_SIGNATUREid-EdDSA-sig
SB_CERT_ALGORITHM_MLDSA_44id-ml-dsa-44
SB_CERT_ALGORITHM_MLDSA_65id-ml-dsa-65
SB_CERT_ALGORITHM_MLDSA_87id-ml-dsa-87
SB_CERT_ALGORITHM_HASH_MLDSA_44_SHA512id-hash-ml-dsa-44-with-sha512
SB_CERT_ALGORITHM_HASH_MLDSA_65_SHA512id-hash-ml-dsa-65-with-sha512
SB_CERT_ALGORITHM_HASH_MLDSA_87_SHA512id-hash-ml-dsa-87-with-sha512
SB_CERT_ALGORITHM_MLKEM_512id-ml-kem-512
SB_CERT_ALGORITHM_MLKEM_768id-ml-kem-768
SB_CERT_ALGORITHM_MLKEM_1024id-ml-kem-1024

Use the tls_key_bits, tls_curve, and tls_public_key_bytes properties to get more details about the key the certificate contains.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

String

tls_server_cert_key_bits property (AuthenticodeSigner Struct)

Returns the length of the public key in bits.

Syntax

fn tls_server_cert_key_bits(&self , TLSServerCertIndex : i32) -> Result<i32, SecureBlackboxError> 

Default Value

0

Remarks

Returns the length of the public key in bits.

This value indicates the length of the principal cryptographic parameter of the key, such as the length of the RSA modulus or ECDSA field. The key data returned by the tls_public_key_bytes or tls_private_key_bytes property would typically contain auxiliary values, and therefore be longer.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

i32

tls_server_cert_key_usage property (AuthenticodeSigner Struct)

Indicates the purposes of the key contained in the certificate, in the form of an OR'ed flag set.

Syntax

fn tls_server_cert_key_usage(&self , TLSServerCertIndex : i32) -> Result<i32, SecureBlackboxError> 

Default Value

0

Remarks

Indicates the purposes of the key contained in the certificate, in the form of an OR'ed flag set.

This value is a bit mask of the following values:

ckuUnknown0x00000Unknown key usage

ckuDigitalSignature0x00001Digital signature

ckuNonRepudiation0x00002Non-repudiation

ckuKeyEncipherment0x00004Key encipherment

ckuDataEncipherment0x00008Data encipherment

ckuKeyAgreement0x00010Key agreement

ckuKeyCertSign0x00020Certificate signing

ckuCRLSign0x00040Revocation signing

ckuEncipherOnly0x00080Encipher only

ckuDecipherOnly0x00100Decipher only

ckuServerAuthentication0x00200Server authentication

ckuClientAuthentication0x00400Client authentication

ckuCodeSigning0x00800Code signing

ckuEmailProtection0x01000Email protection

ckuTimeStamping0x02000Timestamping

ckuOCSPSigning0x04000OCSP signing

ckuSmartCardLogon0x08000Smartcard logon

ckuKeyPurposeClientAuth0x10000Kerberos - client authentication

ckuKeyPurposeKDC0x20000Kerberos - KDC

Set this property before generating the certificate to propagate the key usage flags to the new certificate.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

i32

tls_server_cert_self_signed property (AuthenticodeSigner Struct)

Indicates whether the certificate is self-signed (root) or signed by an external CA.

Syntax

fn tls_server_cert_self_signed(&self , TLSServerCertIndex : i32) -> Result<bool, SecureBlackboxError> 

Default Value

false

Remarks

Indicates whether the certificate is self-signed (root) or signed by an external CA.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

bool

tls_server_cert_serial_number property (AuthenticodeSigner Struct)

Returns the certificate's serial number.

Syntax

fn tls_server_cert_serial_number(&self , TLSServerCertIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Returns the certificate's serial number.

The serial number is a binary string that uniquely identifies a certificate among others issued by the same CA. According to the X.509 standard, the (issuer, serial number) pair should be globally unique to facilitate chain building.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

Vec

tls_server_cert_sig_algorithm property (AuthenticodeSigner Struct)

Indicates the algorithm that was used by the CA to sign this certificate.

Syntax

fn tls_server_cert_sig_algorithm(&self , TLSServerCertIndex : i32) -> Result<String, SecureBlackboxError> 

Default Value

""

Remarks

Indicates the algorithm that was used by the CA to sign this certificate.

A signature algorithm typically combines hash and public key algorithms together, such as sha256WithRSAEncryption or ecdsa-with-SHA256.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

String

tls_server_cert_subject property (AuthenticodeSigner Struct)

The common name of the certificate holder, typically an individual's name, a URL, an e-mail address, or a company name.

Syntax

fn tls_server_cert_subject(&self , TLSServerCertIndex : i32) -> Result<String, SecureBlackboxError> 

Default Value

""

Remarks

The common name of the certificate holder, typically an individual's name, a URL, an e-mail address, or a company name. This is part of a larger set of credentials available via tls_subject_rdn.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

String

tls_server_cert_subject_rdn property (AuthenticodeSigner Struct)

A list of Property=Value pairs that uniquely identify the certificate holder (subject).

Syntax

fn tls_server_cert_subject_rdn(&self , TLSServerCertIndex : i32) -> Result<String, SecureBlackboxError> 

Default Value

""

Remarks

A list of Property=Value pairs that uniquely identify the certificate holder (subject).

Depending on the purpose of the certificate and the policies of the CA that issued it, the values included in the subject record may differ drastically and contain business or personal names, web URLs, email addresses, and other data.

Example: /C=US/O=Oranges and Apples, Inc./OU=Accounts Receivable/1.2.3.4.5=Value with unknown OID/CN=Margaret Watkins.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

String

tls_server_cert_valid_from property (AuthenticodeSigner Struct)

The time point at which the certificate becomes valid, in UTC.

Syntax

fn tls_server_cert_valid_from(&self , TLSServerCertIndex : i32) -> Result<String, SecureBlackboxError> 

Default Value

""

Remarks

The time point at which the certificate becomes valid, in UTC.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

String

tls_server_cert_valid_to property (AuthenticodeSigner Struct)

The time point at which the certificate expires, in UTC.

Syntax

fn tls_server_cert_valid_to(&self , TLSServerCertIndex : i32) -> Result<String, SecureBlackboxError> 

Default Value

""

Remarks

The time point at which the certificate expires, in UTC.

The TLSServerCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TLSServerCertCount property.

This property is read-only.

Data Type

String

tls_auto_validate_certificates property (AuthenticodeSigner Struct)

Specifies whether server-side TLS certificates should be validated automatically using internal validation rules.

Syntax

fn tls_auto_validate_certificates(&self ) -> Result<bool, SecureBlackboxError> 
fn set_tls_auto_validate_certificates(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

true

Remarks

Specifies whether server-side TLS certificates should be validated automatically using internal validation rules.

Data Type

bool

tls_base_configuration property (AuthenticodeSigner Struct)

Selects the base configuration for the TLS settings.

Syntax

fn tls_base_configuration(&self ) -> Result<i32, SecureBlackboxError> 
fn set_tls_base_configuration(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // Default
1 // Compatible
2 // ComprehensiveInsecure
3 // HighlySecure

Default Value

0

Remarks

Selects the base configuration for the TLS settings. Several profiles are offered and tuned up for different purposes, such as high security or higher compatibility.

stpcDefault0
stpcCompatible1
stpcComprehensiveInsecure2
stpcHighlySecure3

Data Type

i32

tls_ciphersuites property (AuthenticodeSigner Struct)

A list of ciphersuites separated with commas or semicolons.

Syntax

fn tls_ciphersuites(&self ) -> Result<String, SecureBlackboxError> 
fn set_tls_ciphersuites(&self, value : &str) -> Option<SecureBlackboxError> fn set_tls_ciphersuites_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

A list of ciphersuites separated with commas or semicolons. Each ciphersuite in the list may be prefixed with a minus sign (-) to indicate that the ciphersuite should be disabled rather than enabled. Besides the specific ciphersuite modifiers, this property supports the all (and -all) aliases, allowing all ciphersuites to be blanketly enabled or disabled at once.

Note: the list of ciphersuites provided to this property alters the baseline list of ciphersuites as defined by tls_base_configuration. Remember to start your ciphersuite string with -all; if you need to only enable a specific fixed set of ciphersuites. The list of supported ciphersuites is provided below:

  • NULL_NULL_NULL
  • RSA_NULL_MD5
  • RSA_NULL_SHA
  • RSA_RC4_MD5
  • RSA_RC4_SHA
  • RSA_RC2_MD5
  • RSA_IDEA_MD5
  • RSA_IDEA_SHA
  • RSA_DES_MD5
  • RSA_DES_SHA
  • RSA_3DES_MD5
  • RSA_3DES_SHA
  • RSA_AES128_SHA
  • RSA_AES256_SHA
  • DH_DSS_DES_SHA
  • DH_DSS_3DES_SHA
  • DH_DSS_AES128_SHA
  • DH_DSS_AES256_SHA
  • DH_RSA_DES_SHA
  • DH_RSA_3DES_SHA
  • DH_RSA_AES128_SHA
  • DH_RSA_AES256_SHA
  • DHE_DSS_DES_SHA
  • DHE_DSS_3DES_SHA
  • DHE_DSS_AES128_SHA
  • DHE_DSS_AES256_SHA
  • DHE_RSA_DES_SHA
  • DHE_RSA_3DES_SHA
  • DHE_RSA_AES128_SHA
  • DHE_RSA_AES256_SHA
  • DH_ANON_RC4_MD5
  • DH_ANON_DES_SHA
  • DH_ANON_3DES_SHA
  • DH_ANON_AES128_SHA
  • DH_ANON_AES256_SHA
  • RSA_RC2_MD5_EXPORT
  • RSA_RC4_MD5_EXPORT
  • RSA_DES_SHA_EXPORT
  • DH_DSS_DES_SHA_EXPORT
  • DH_RSA_DES_SHA_EXPORT
  • DHE_DSS_DES_SHA_EXPORT
  • DHE_RSA_DES_SHA_EXPORT
  • DH_ANON_RC4_MD5_EXPORT
  • DH_ANON_DES_SHA_EXPORT
  • RSA_CAMELLIA128_SHA
  • DH_DSS_CAMELLIA128_SHA
  • DH_RSA_CAMELLIA128_SHA
  • DHE_DSS_CAMELLIA128_SHA
  • DHE_RSA_CAMELLIA128_SHA
  • DH_ANON_CAMELLIA128_SHA
  • RSA_CAMELLIA256_SHA
  • DH_DSS_CAMELLIA256_SHA
  • DH_RSA_CAMELLIA256_SHA
  • DHE_DSS_CAMELLIA256_SHA
  • DHE_RSA_CAMELLIA256_SHA
  • DH_ANON_CAMELLIA256_SHA
  • PSK_RC4_SHA
  • PSK_3DES_SHA
  • PSK_AES128_SHA
  • PSK_AES256_SHA
  • DHE_PSK_RC4_SHA
  • DHE_PSK_3DES_SHA
  • DHE_PSK_AES128_SHA
  • DHE_PSK_AES256_SHA
  • RSA_PSK_RC4_SHA
  • RSA_PSK_3DES_SHA
  • RSA_PSK_AES128_SHA
  • RSA_PSK_AES256_SHA
  • RSA_SEED_SHA
  • DH_DSS_SEED_SHA
  • DH_RSA_SEED_SHA
  • DHE_DSS_SEED_SHA
  • DHE_RSA_SEED_SHA
  • DH_ANON_SEED_SHA
  • SRP_SHA_3DES_SHA
  • SRP_SHA_RSA_3DES_SHA
  • SRP_SHA_DSS_3DES_SHA
  • SRP_SHA_AES128_SHA
  • SRP_SHA_RSA_AES128_SHA
  • SRP_SHA_DSS_AES128_SHA
  • SRP_SHA_AES256_SHA
  • SRP_SHA_RSA_AES256_SHA
  • SRP_SHA_DSS_AES256_SHA
  • ECDH_ECDSA_NULL_SHA
  • ECDH_ECDSA_RC4_SHA
  • ECDH_ECDSA_3DES_SHA
  • ECDH_ECDSA_AES128_SHA
  • ECDH_ECDSA_AES256_SHA
  • ECDHE_ECDSA_NULL_SHA
  • ECDHE_ECDSA_RC4_SHA
  • ECDHE_ECDSA_3DES_SHA
  • ECDHE_ECDSA_AES128_SHA
  • ECDHE_ECDSA_AES256_SHA
  • ECDH_RSA_NULL_SHA
  • ECDH_RSA_RC4_SHA
  • ECDH_RSA_3DES_SHA
  • ECDH_RSA_AES128_SHA
  • ECDH_RSA_AES256_SHA
  • ECDHE_RSA_NULL_SHA
  • ECDHE_RSA_RC4_SHA
  • ECDHE_RSA_3DES_SHA
  • ECDHE_RSA_AES128_SHA
  • ECDHE_RSA_AES256_SHA
  • ECDH_ANON_NULL_SHA
  • ECDH_ANON_RC4_SHA
  • ECDH_ANON_3DES_SHA
  • ECDH_ANON_AES128_SHA
  • ECDH_ANON_AES256_SHA
  • RSA_NULL_SHA256
  • RSA_AES128_SHA256
  • RSA_AES256_SHA256
  • DH_DSS_AES128_SHA256
  • DH_RSA_AES128_SHA256
  • DHE_DSS_AES128_SHA256
  • DHE_RSA_AES128_SHA256
  • DH_DSS_AES256_SHA256
  • DH_RSA_AES256_SHA256
  • DHE_DSS_AES256_SHA256
  • DHE_RSA_AES256_SHA256
  • DH_ANON_AES128_SHA256
  • DH_ANON_AES256_SHA256
  • RSA_AES128_GCM_SHA256
  • RSA_AES256_GCM_SHA384
  • DHE_RSA_AES128_GCM_SHA256
  • DHE_RSA_AES256_GCM_SHA384
  • DH_RSA_AES128_GCM_SHA256
  • DH_RSA_AES256_GCM_SHA384
  • DHE_DSS_AES128_GCM_SHA256
  • DHE_DSS_AES256_GCM_SHA384
  • DH_DSS_AES128_GCM_SHA256
  • DH_DSS_AES256_GCM_SHA384
  • DH_ANON_AES128_GCM_SHA256
  • DH_ANON_AES256_GCM_SHA384
  • ECDHE_ECDSA_AES128_SHA256
  • ECDHE_ECDSA_AES256_SHA384
  • ECDH_ECDSA_AES128_SHA256
  • ECDH_ECDSA_AES256_SHA384
  • ECDHE_RSA_AES128_SHA256
  • ECDHE_RSA_AES256_SHA384
  • ECDH_RSA_AES128_SHA256
  • ECDH_RSA_AES256_SHA384
  • ECDHE_ECDSA_AES128_GCM_SHA256
  • ECDHE_ECDSA_AES256_GCM_SHA384
  • ECDH_ECDSA_AES128_GCM_SHA256
  • ECDH_ECDSA_AES256_GCM_SHA384
  • ECDHE_RSA_AES128_GCM_SHA256
  • ECDHE_RSA_AES256_GCM_SHA384
  • ECDH_RSA_AES128_GCM_SHA256
  • ECDH_RSA_AES256_GCM_SHA384
  • PSK_AES128_GCM_SHA256
  • PSK_AES256_GCM_SHA384
  • DHE_PSK_AES128_GCM_SHA256
  • DHE_PSK_AES256_GCM_SHA384
  • RSA_PSK_AES128_GCM_SHA256
  • RSA_PSK_AES256_GCM_SHA384
  • PSK_AES128_SHA256
  • PSK_AES256_SHA384
  • PSK_NULL_SHA256
  • PSK_NULL_SHA384
  • DHE_PSK_AES128_SHA256
  • DHE_PSK_AES256_SHA384
  • DHE_PSK_NULL_SHA256
  • DHE_PSK_NULL_SHA384
  • RSA_PSK_AES128_SHA256
  • RSA_PSK_AES256_SHA384
  • RSA_PSK_NULL_SHA256
  • RSA_PSK_NULL_SHA384
  • RSA_CAMELLIA128_SHA256
  • DH_DSS_CAMELLIA128_SHA256
  • DH_RSA_CAMELLIA128_SHA256
  • DHE_DSS_CAMELLIA128_SHA256
  • DHE_RSA_CAMELLIA128_SHA256
  • DH_ANON_CAMELLIA128_SHA256
  • RSA_CAMELLIA256_SHA256
  • DH_DSS_CAMELLIA256_SHA256
  • DH_RSA_CAMELLIA256_SHA256
  • DHE_DSS_CAMELLIA256_SHA256
  • DHE_RSA_CAMELLIA256_SHA256
  • DH_ANON_CAMELLIA256_SHA256
  • ECDHE_ECDSA_CAMELLIA128_SHA256
  • ECDHE_ECDSA_CAMELLIA256_SHA384
  • ECDH_ECDSA_CAMELLIA128_SHA256
  • ECDH_ECDSA_CAMELLIA256_SHA384
  • ECDHE_RSA_CAMELLIA128_SHA256
  • ECDHE_RSA_CAMELLIA256_SHA384
  • ECDH_RSA_CAMELLIA128_SHA256
  • ECDH_RSA_CAMELLIA256_SHA384
  • RSA_CAMELLIA128_GCM_SHA256
  • RSA_CAMELLIA256_GCM_SHA384
  • DHE_RSA_CAMELLIA128_GCM_SHA256
  • DHE_RSA_CAMELLIA256_GCM_SHA384
  • DH_RSA_CAMELLIA128_GCM_SHA256
  • DH_RSA_CAMELLIA256_GCM_SHA384
  • DHE_DSS_CAMELLIA128_GCM_SHA256
  • DHE_DSS_CAMELLIA256_GCM_SHA384
  • DH_DSS_CAMELLIA128_GCM_SHA256
  • DH_DSS_CAMELLIA256_GCM_SHA384
  • DH_anon_CAMELLIA128_GCM_SHA256
  • DH_anon_CAMELLIA256_GCM_SHA384
  • ECDHE_ECDSA_CAMELLIA128_GCM_SHA256
  • ECDHE_ECDSA_CAMELLIA256_GCM_SHA384
  • ECDH_ECDSA_CAMELLIA128_GCM_SHA256
  • ECDH_ECDSA_CAMELLIA256_GCM_SHA384
  • ECDHE_RSA_CAMELLIA128_GCM_SHA256
  • ECDHE_RSA_CAMELLIA256_GCM_SHA384
  • ECDH_RSA_CAMELLIA128_GCM_SHA256
  • ECDH_RSA_CAMELLIA256_GCM_SHA384
  • PSK_CAMELLIA128_GCM_SHA256
  • PSK_CAMELLIA256_GCM_SHA384
  • DHE_PSK_CAMELLIA128_GCM_SHA256
  • DHE_PSK_CAMELLIA256_GCM_SHA384
  • RSA_PSK_CAMELLIA128_GCM_SHA256
  • RSA_PSK_CAMELLIA256_GCM_SHA384
  • PSK_CAMELLIA128_SHA256
  • PSK_CAMELLIA256_SHA384
  • DHE_PSK_CAMELLIA128_SHA256
  • DHE_PSK_CAMELLIA256_SHA384
  • RSA_PSK_CAMELLIA128_SHA256
  • RSA_PSK_CAMELLIA256_SHA384
  • ECDHE_PSK_CAMELLIA128_SHA256
  • ECDHE_PSK_CAMELLIA256_SHA384
  • ECDHE_PSK_RC4_SHA
  • ECDHE_PSK_3DES_SHA
  • ECDHE_PSK_AES128_SHA
  • ECDHE_PSK_AES256_SHA
  • ECDHE_PSK_AES128_SHA256
  • ECDHE_PSK_AES256_SHA384
  • ECDHE_PSK_NULL_SHA
  • ECDHE_PSK_NULL_SHA256
  • ECDHE_PSK_NULL_SHA384
  • ECDHE_RSA_CHACHA20_POLY1305_SHA256
  • ECDHE_ECDSA_CHACHA20_POLY1305_SHA256
  • DHE_RSA_CHACHA20_POLY1305_SHA256
  • PSK_CHACHA20_POLY1305_SHA256
  • ECDHE_PSK_CHACHA20_POLY1305_SHA256
  • DHE_PSK_CHACHA20_POLY1305_SHA256
  • RSA_PSK_CHACHA20_POLY1305_SHA256
  • AES128_GCM_SHA256
  • AES256_GCM_SHA384
  • CHACHA20_POLY1305_SHA256
  • AES128_CCM_SHA256
  • AES128_CCM8_SHA256

Data Type

String

tls_client_auth property (AuthenticodeSigner Struct)

Enables or disables certificate-based client authentication.

Syntax

fn tls_client_auth(&self ) -> Result<i32, SecureBlackboxError> 
fn set_tls_client_auth(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // NoAuth
1 // RequestCert
2 // RequireCert

Default Value

0

Remarks

Enables or disables certificate-based client authentication.

Set this property to true to tune up the client authentication type:

ccatNoAuth0
ccatRequestCert1
ccatRequireCert2

Data Type

i32

tls_extensions property (AuthenticodeSigner Struct)

Provides access to TLS extensions.

Syntax

fn tls_extensions(&self ) -> Result<String, SecureBlackboxError> 
fn set_tls_extensions(&self, value : &str) -> Option<SecureBlackboxError> fn set_tls_extensions_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Provides access to TLS extensions.

Data Type

String

tls_force_resume_if_destination_changes property (AuthenticodeSigner Struct)

Whether to force TLS session resumption when the destination address changes.

Syntax

fn tls_force_resume_if_destination_changes(&self ) -> Result<bool, SecureBlackboxError> 
fn set_tls_force_resume_if_destination_changes(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

false

Remarks

Whether to force TLS session resumption when the destination address changes.

Data Type

bool

tls_groups property (AuthenticodeSigner Struct)

Specifies a list of key exchange groups to attempt during the TLS key exchange.

Syntax

fn tls_groups(&self ) -> Result<String, SecureBlackboxError> 
fn set_tls_groups(&self, value : &str) -> Option<SecureBlackboxError> fn set_tls_groups_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Specifies a list of key exchange groups to attempt during the TLS key exchange.

Keep this setting at its default value (empty string) to stick with the default list of key exchange groups. You can tweak the list by using '+' and '-' modifiers that are immediately followed by a group name or the all placeholder:

// Ensure the two x25519-based groups are enabled and the finite field DHE2048 is disabled client.TLSSettings.Groups = "+x25519mlkem768;+x25519;-ffdhe2048"; // Only enable the hybrid X25519/ML-KEM768 group client.TLSSettings.Groups = "-all;+x25519mlkem768";

The list of groups supported by the component is provided below. All the names are case-insensitive:

Elliptic curve-based groups:

  • SECT163K1
  • SECT163R1
  • SECT163R2
  • SECT193R1
  • SECT193R2
  • SECT233K1
  • SECT233R1
  • SECT239K1
  • SECT283K1
  • SECT283R1
  • SECT409K1
  • SECT409R1
  • SECT571K1
  • SECT571R1
  • SECP160K1
  • SECP160R1
  • SECP160R2
  • SECP192K1
  • SECP192R1
  • SECP224K1
  • SECP224R1
  • SECP256K1
  • SECP256R1
  • SECP384R1
  • SECP521R1
  • BRAINPOOLP256R1
  • BRAINPOOLP384R1
  • BRAINPOOLP512R1
  • X25519
  • X448

Finite field-based groups:

  • FFDHE2048
  • FFDHE3072
  • FFDHE4096
  • FFDHE6144
  • FFDHE8192

Post-Quantum and Hybrid groups:

  • MLKEM512
  • MLKEM768
  • MLKEM1024
  • SECP256R1MLKEM768
  • X25519MLKEM768
  • SECP384R1MLKEM1024

Note: this property was called ECCurves in SecureBlackbox 2024 and older.

Data Type

String

tls_pre_shared_identity property (AuthenticodeSigner Struct)

Defines the identity used when the PSK (Pre-Shared Key) key-exchange mechanism is negotiated.

Syntax

fn tls_pre_shared_identity(&self ) -> Result<String, SecureBlackboxError> 
fn set_tls_pre_shared_identity(&self, value : &str) -> Option<SecureBlackboxError> fn set_tls_pre_shared_identity_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Defines the identity used when the PSK (Pre-Shared Key) key-exchange mechanism is negotiated.

Data Type

String

tls_pre_shared_key property (AuthenticodeSigner Struct)

Contains the pre-shared key for the PSK (Pre-Shared Key) key-exchange mechanism, encoded with base16.

Syntax

fn tls_pre_shared_key(&self ) -> Result<String, SecureBlackboxError> 
fn set_tls_pre_shared_key(&self, value : &str) -> Option<SecureBlackboxError> fn set_tls_pre_shared_key_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Contains the pre-shared key for the PSK (Pre-Shared Key) key-exchange mechanism, encoded with base16.

Data Type

String

tls_pre_shared_key_ciphersuite property (AuthenticodeSigner Struct)

Defines the ciphersuite used for PSK (Pre-Shared Key) negotiation.

Syntax

fn tls_pre_shared_key_ciphersuite(&self ) -> Result<String, SecureBlackboxError> 
fn set_tls_pre_shared_key_ciphersuite(&self, value : &str) -> Option<SecureBlackboxError> fn set_tls_pre_shared_key_ciphersuite_ref(&self, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

Defines the ciphersuite used for PSK (Pre-Shared Key) negotiation.

Data Type

String

tls_renegotiation_attack_prevention_mode property (AuthenticodeSigner Struct)

Selects the renegotiation attack prevention mechanism.

Syntax

fn tls_renegotiation_attack_prevention_mode(&self ) -> Result<i32, SecureBlackboxError> 
fn set_tls_renegotiation_attack_prevention_mode(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // Compatible
1 // Strict
2 // Auto

Default Value

2

Remarks

Selects the renegotiation attack prevention mechanism.

The following options are available:

crapmCompatible0TLS 1.0 and 1.1 compatibility mode (renegotiation indication extension is disabled).
crapmStrict1Renegotiation attack prevention is enabled and enforced.
crapmAuto2Automatically choose whether to enable or disable renegotiation attack prevention.

Data Type

i32

tls_revocation_check property (AuthenticodeSigner Struct)

Specifies the kind(s) of revocation check to perform.

Syntax

fn tls_revocation_check(&self ) -> Result<i32, SecureBlackboxError> 
fn set_tls_revocation_check(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // None
1 // Auto
2 // AllCRL
3 // AllOCSP
4 // AllCRLAndOCSP
5 // AnyCRL
6 // AnyOCSP
7 // AnyCRLOrOCSP
8 // AnyOCSPOrCRL

Default Value

1

Remarks

Specifies the kind(s) of revocation check to perform.

Revocation checking is necessary to ensure the integrity of the chain and obtain up-to-date certificate validity and trustworthiness information.

crcNone0No revocation checking.
crcAuto1Automatic mode selection. Currently this maps to crcAnyOCSPOrCRL, but it may change in the future.
crcAllCRL2All provided CRL endpoints will be checked, and all checks must succeed.
crcAllOCSP3All provided OCSP endpoints will be checked, and all checks must succeed.
crcAllCRLAndOCSP4All provided CRL and OCSP endpoints will be checked, and all checks must succeed.
crcAnyCRL5All provided CRL endpoints will be checked, and at least one check must succeed.
crcAnyOCSP6All provided OCSP endpoints will be checked, and at least one check must succeed.
crcAnyCRLOrOCSP7All provided CRL and OCSP endpoints will be checked, and at least one check must succeed. CRL endpoints are checked first.
crcAnyOCSPOrCRL8All provided CRL and OCSP endpoints will be checked, and at least one check must succeed. OCSP endpoints are checked first.

This setting controls the way the revocation checks are performed for every certificate in the chain. Typically certificates come with two types of revocation information sources: CRL (certificate revocation lists) and OCSP responders. CRLs are static objects periodically published by the CA at some online location. OCSP responders are active online services maintained by the CA that can provide up-to-date information on certificate statuses in near real time.

There are some conceptual differences between the two. CRLs are normally larger in size. Their use involves some latency because there is normally some delay between the time when a certificate was revoked and the time the subsequent CRL mentioning that is published. The benefits of CRL is that the same object can provide statuses for all certificates issued by a particular CA, and that the whole technology is much simpler than OCSP (and thus is supported by more CAs).

This setting lets you adjust the validation course by including or excluding certain types of revocation sources from the validation process. The crcAnyOCSPOrCRL setting (give preference to the faster OCSP route and only demand one source to succeed) is a good choice for most typical validation environments. The "crcAll*" modes are much stricter, and may be used in scenarios where bulletproof validity information is essential.

NOTE: If no CRL or OCSP endpoints are provided by the CA, the revocation check will be considered successful. This is because the CA chose not to supply revocation information for its certificates, meaning they are considered irrevocable.

NOTE: Within each of the above settings, if any retrieved CRL or OCSP response indicates that the certificate has been revoked, the revocation check fails.

Data Type

i32

tls_ssl_options property (AuthenticodeSigner Struct)

Various SSL (TLS) protocol options, set of cssloExpectShutdownMessage 0x001 Wait for the close-notify message when shutting down the connection cssloOpenSSLDTLSWorkaround 0x002 (DEPRECATED) Use a DTLS version workaround when talking to very old OpenSSL versions cssloDisableKexLengthAlignment 0x004 Do not align the client-side PMS by the RSA modulus size.

Syntax

fn tls_ssl_options(&self ) -> Result<i32, SecureBlackboxError> 
fn set_tls_ssl_options(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

16

Remarks

Various SSL (TLS) protocol options, set of

cssloExpectShutdownMessage0x001Wait for the close-notify message when shutting down the connection

cssloOpenSSLDTLSWorkaround0x002(DEPRECATED) Use a DTLS version workaround when talking to very old OpenSSL versions

cssloDisableKexLengthAlignment0x004Do not align the client-side PMS by the RSA modulus size. It is unlikely that you will ever need to adjust it.

cssloForceUseOfClientCertHashAlg0x008Enforce the use of the client certificate hash algorithm. It is unlikely that you will ever need to adjust it.

cssloAutoAddServerNameExtension0x010Automatically add the server name extension when known

cssloAcceptTrustedSRPPrimesOnly0x020Accept trusted SRP primes only

cssloDisableSignatureAlgorithmsExtension0x040Disable (do not send) the signature algorithms extension. It is unlikely that you will ever need to adjust it.

cssloIntolerateHigherProtocolVersions0x080(server option) Do not allow fallback from TLS versions higher than currently enabled

cssloStickToPrefCertHashAlg0x100Stick to preferred certificate hash algorithms

cssloNoImplicitTLS12Fallback0x200Disable implicit TLS 1.3 to 1.2 fallbacks

cssloUseHandshakeBatches0x400Send the handshake message as large batches rather than individually

Data Type

i32

tls_mode property (AuthenticodeSigner Struct)

Specifies the TLS mode to use.

Syntax

fn tls_mode(&self ) -> Result<i32, SecureBlackboxError> 
fn set_tls_mode(&self, value : i32) -> Option<SecureBlackboxError>

Possible Values

0   // Default
1 // NoTLS
2 // ExplicitTLS
3 // ImplicitTLS
4 // MixedTLS

Default Value

0

Remarks

Specifies the TLS mode to use.

smDefault0
smNoTLS1Do not use TLS
smExplicitTLS2Connect to the server without any encryption and then request an SSL session.
smImplicitTLS3Connect to the specified port, and establish the SSL session at once.
smMixedTLS4Connect to the specified port, and establish the SSL session at once, but allow plain data.

Data Type

i32

tls_use_extended_master_secret property (AuthenticodeSigner Struct)

Enables the Extended Master Secret Extension, as defined in RFC 7627.

Syntax

fn tls_use_extended_master_secret(&self ) -> Result<bool, SecureBlackboxError> 
fn set_tls_use_extended_master_secret(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

true

Remarks

Enables the Extended Master Secret Extension, as defined in RFC 7627.

Data Type

bool

tls_use_session_resumption property (AuthenticodeSigner Struct)

Enables or disables the TLS session resumption capability.

Syntax

fn tls_use_session_resumption(&self ) -> Result<bool, SecureBlackboxError> 
fn set_tls_use_session_resumption(&self, value : bool) -> Option<SecureBlackboxError>

Default Value

false

Remarks

Enables or disables the TLS session resumption capability.

Data Type

bool

tls_versions property (AuthenticodeSigner Struct)

The SSL/TLS versions to enable by default.

Syntax

fn tls_versions(&self ) -> Result<i32, SecureBlackboxError> 
fn set_tls_versions(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

48

Remarks

The SSL/TLS versions to enable by default.

csbSSL20x01SSL 2

csbSSL30x02SSL 3

csbTLS10x04TLS 1.0

csbTLS110x08TLS 1.1

csbTLS120x10TLS 1.2

csbTLS130x20TLS 1.3

Data Type

i32

trusted_cert_count property (AuthenticodeSigner Struct)

The number of records in the TrustedCert arrays.

Syntax

fn trusted_cert_count(&self ) -> Result<i32, SecureBlackboxError> 
fn set_trusted_cert_count(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at trusted_cert_count - 1.

Data Type

i32

trusted_cert_bytes property (AuthenticodeSigner Struct)

Returns the raw certificate data in DER format.

Syntax

fn trusted_cert_bytes(&self , TrustedCertIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 

Remarks

Returns the raw certificate data in DER format.

The TrustedCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TrustedCertCount property.

This property is read-only.

Data Type

Vec

trusted_cert_handle property (AuthenticodeSigner Struct)

Allows to get or set a 'handle', a unique identifier of the underlying property object.

Syntax

fn trusted_cert_handle(&self , TrustedCertIndex : i32) -> Result<i64, SecureBlackboxError> 
fn set_trusted_cert_handle(&self, TrustedCertIndex : i32, value : i64) -> Option<SecureBlackboxError>

Default Value

0

Remarks

Allows to get or set a 'handle', a unique identifier of the underlying property object. Use this property to assign objects of the same type in a quicker manner, without copying them fieldwise.

When you pass a handle of one object to another, the source object is copied to the destination rather than assigned. It is safe to get rid of the original object after such operation. pdfSigner.setSigningCertHandle(certMgr.getCertHandle());

The TrustedCertIndex parameter specifies the index of the item in the array. The size of the array is controlled by the TrustedCertCount property.

Data Type

i64

unsigned_attribute_count property (AuthenticodeSigner Struct)

The number of records in the UnsignedAttribute arrays.

Syntax

fn unsigned_attribute_count(&self ) -> Result<i32, SecureBlackboxError> 
fn set_unsigned_attribute_count(&self, value : i32) -> Option<SecureBlackboxError>

Default Value

0

Remarks

This property controls the size of the following arrays:

The array indices start at 0 and end at unsigned_attribute_count - 1.

Data Type

i32

unsigned_attribute_oid property (AuthenticodeSigner Struct)

The object identifier of the attribute.

Syntax

fn unsigned_attribute_oid(&self , UnsignedAttributeIndex : i32) -> Result<String, SecureBlackboxError> 
fn set_unsigned_attribute_oid(&self, UnsignedAttributeIndex : i32, value : &str) -> Option<SecureBlackboxError> fn set_unsigned_attribute_oid_ref(&self, UnsignedAttributeIndex : i32, value : &String) -> Option<SecureBlackboxError>

Default Value

""

Remarks

The object identifier of the attribute.

The UnsignedAttributeIndex parameter specifies the index of the item in the array. The size of the array is controlled by the UnsignedAttributeCount property.

Data Type

String

unsigned_attribute_value property (AuthenticodeSigner Struct)

The value of the attribute.

Syntax

fn unsigned_attribute_value(&self , UnsignedAttributeIndex : i32) -> Result<Vec<u8>, SecureBlackboxError> 
fn set_unsigned_attribute_value(&self, UnsignedAttributeIndex : i32, value : Vec<u8>) -> Option<SecureBlackboxError> fn set_unsigned_attribute_value_ref(&self, UnsignedAttributeIndex : i32, value : &[u8]) -> Option<SecureBlackboxError>

Remarks

The value of the attribute.

The UnsignedAttributeIndex parameter specifies the index of the item in the array. The size of the array is controlled by the UnsignedAttributeCount property.

Data Type

Vec

validation_log property (AuthenticodeSigner Struct)

Contains the complete log of the certificate validation routine.

Syntax

fn validation_log(&self ) -> Result<String, SecureBlackboxError> 

Default Value

""

Remarks

Use this property to access the chain validation log produced by the struct. The log can be very useful when investigating issues with chain validation, as it contains a step-by-step trace of the entire validation procedure.

This property is read-only.

Data Type

String

add_attribute method (AuthenticodeSigner Struct)

Adds an attribute to the signature.

Syntax

fn add_attribute(&self, oid : &str, value : &[u8], signed_attribute : bool) ->  Result<i32, SecureBlackboxError>

Remarks

Use this method to add a signed or unsigned attribute to the collection of attributes included in the new signature.

Note that CAdESSigner creates certain mandatory and/or widely used attributes automatically in accordance with requirements for a specific signing profile. For example, attributes such as SigningCertificateV2 or SigningTime are always added. Policy attributes are added if specified via the PolicyID or PolicyURI properties of the signature object.

Use the OID parameter to provide the object identifier of the attribute, in string form. For example, the OID for the SigningCertificateV2 attribute is 1.2.840.113549.1.9.16.2.47. The Value parameter should contain a well-formed, DER-encoded representation of the attribute value, in accordance with its specification.

config method (AuthenticodeSigner Struct)

Sets or retrieves a configuration setting.

Syntax

fn config(&self, configuration_string : &str) ->  Result<String, SecureBlackboxError>

Remarks

config is a generic method available in every struct. It is used to set and retrieve configuration settings for the struct.

These settings are similar in functionality to properties, but they are rarely used. In order to avoid "polluting" the property namespace of the struct, access to these internal properties is provided through the config method.

To set a configuration setting named PROPERTY, you must call Config("PROPERTY=VALUE"), where VALUE is the value of the setting expressed as a string. For boolean values, use the strings "True", "False", "0", "1", "Yes", or "No" (case does not matter).

To read (query) the value of a configuration setting, you must call Config("PROPERTY"). The value will be returned as a string.

do_action method (AuthenticodeSigner Struct)

Performs an additional action.

Syntax

fn do_action(&self, action_id : &str, action_params : &str) ->  Result<String, SecureBlackboxError>

Remarks

do_action is a generic method available in every struct. It is used to perform an additional action introduced after the product major release. The list of actions is not fixed, and may be flexibly extended over time.

The unique identifier (case insensitive) of the action is provided in the ActionID parameter.

ActionParams contains the value of a single parameter, or a list of multiple parameters for the action in the form of PARAM1=VALUE1;PARAM2=VALUE2;....

Common ActionIDs:

ActionParametersReturned valueDescription
ResetTrustedListCachenonenoneClears the cached list of trusted lists.
ResetCertificateCachenonenoneClears the cached certificates.
ResetCRLCachenonenoneClears the cached CRLs.
ResetOCSPResponseCachenonenoneClears the cached OCSP responses.

extract_async_data method (AuthenticodeSigner Struct)

Extracts user data from the DC signing service response.

Syntax

fn extract_async_data(&self, async_reply : &str) ->  Result<String, SecureBlackboxError>

Remarks

Call this method before finalizing the asynchronous signing process to extract the data passed to the ExternalCrypto.Data property on the pre-signing stage.

The Data parameter can be used to pass some state or document identifier along with the signing request from the pre-signing to the completion async stage.

reset method (AuthenticodeSigner Struct)

Resets the struct settings.

Syntax

fn reset(&self) -> Result<(), SecureBlackboxError>

Remarks

reset is a generic method available in every struct.

sign method (AuthenticodeSigner Struct)

Calculates and adds a signature to the executable.

Syntax

fn sign(&self) -> Result<(), SecureBlackboxError>

Remarks

Use this method to create a new Authenticode signature over the executable as per the configuration of the component.

sign_async_begin method (AuthenticodeSigner Struct)

Initiates the asynchronous signing operation.

Syntax

fn sign_async_begin(&self) ->  Result<String, SecureBlackboxError>

Remarks

When using the DC framework, call this method to initiate the asynchronous signing process. Upon completion, a pre-signed copy of the document will be saved in output_file (or output_stream). Keep the pre-signed copy somewhere local, and pass the returned string ('the request state') to the DC processor for handling.

Upon receiving the response state from the DC processor, assign the path to the pre-signed copy to input_file (or input_stream), and call sign_async_end to finalize the signing.

Note that depending on the signing method and DC configuration used, you may still need to provide the public part of the signing certificate via the signing_certificate property.

Use the ExternalCrypto.AsyncDocumentID property to supply a unique document ID to include in the request. This is helpful when creating batches of multiple async requests, as it allows you to pass the whole response batch to sign_async_end and expect it to recover the correct response from the batch automatically.

AsyncState is a message of the distributed cryptography (DC) protocol. The DC protocol is based on the exchange of async states between a DC client (an application that wants to sign a PDF, XML, or Office document) and a DC server (an application that controls access to the private key). An async state can carry one or more signing requests, comprised of document hashes, or one or more signatures produced over those hashes.

In a typical scenario you get a client-side async state from the sign_async_begin method. This state contains document hashes to be signed on the DC server side. You then send the async state to the DC server (often represented by the DCAuth struct), which processes it and produces a matching signature state. The async state produced by the server is then passed to the sign_async_end method.

sign_async_end method (AuthenticodeSigner Struct)

Completes the asynchronous signing operation.

Syntax

fn sign_async_end(&self, async_reply : &str) -> Result<(), SecureBlackboxError>

Remarks

When using the DC framework, call this method upon receiving the response state from the DC processor to complete the asynchronous signing process.

Before calling this method, assign the path to the pre-signed copy of the document obtained from the prior sign_async_begin call to input_file (or input_stream). The method will embed the signature into the pre-signed document, and save the complete signed document to output_file (or output_stream).

Note that depending on the signing method and DC configuration used, you may still need to provide the public part of the signing certificate via the signing_certificate property.

Use the ExternalCrypto.AsyncDocumentID parameter to pass a specific document ID if using batched AsyncReply. If used, it should match the value provided on the pre-signing (sign_async_begin) stage.

AsyncState is a message of the distributed cryptography (DC) protocol. The DC protocol is based on the exchange of async states between a DC client (an application that wants to sign a PDF, XML, or Office document) and a DC server (an application that controls access to the private key). An async state can carry one or more signing requests, comprised of document hashes, or one or more signatures produced over those hashes.

In a typical scenario you get a client-side async state from the sign_async_begin method. This state contains document hashes to be signed on the DC server side. You then send the async state to the DC server (often represented by the DCAuth struct), which processes it and produces a matching signature state. The async state produced by the server is then passed to the sign_async_end method.

sign_external method (AuthenticodeSigner Struct)

Signs the document using an external signing facility.

Syntax

fn sign_external(&self) -> Result<(), SecureBlackboxError>

Remarks

Use this method to create an Authenticode signature using an external signing facility for the cryptographic computations. SignExternal delegates the low-level signing operation to an external, remote, or custom signing engine. This method is useful if the signature has to be made by a device accessible through a custom or non-standard signing interface.

When all preparations are done and hash is computed, the struct fires on_external_sign event which allows to pass the hash value for signing.

timestamp method (AuthenticodeSigner Struct)

Use this method to add a timestamp to a new or to an existing signature.

Syntax

fn timestamp(&self) -> Result<(), SecureBlackboxError>

Remarks

Call this method to timestamp the signature(s). If only one of the existing signatures should be timestamped, specify its index using the signature_index property.

Use the timestamp_server property to provide the address of the TSA (Time Stamping Authority) server which should be used for timestamping. Use the timestamp_type property to specify the type of timestamp to create.

If a timestamp already exists, this will be handled according to the value of the TimestampConflictResolution config property.

update method (AuthenticodeSigner Struct)

Update an existing signature (or all the signatures) by adding or removing its (their) custom unsigned attributes.

Syntax

fn update(&self) -> Result<(), SecureBlackboxError>

Remarks

Call this method to add one or mode custom unsigned attributes to an existing signature (specify its index using the signature_index property) or to all the existing signatures (set signature_index to -1).

Use the unsigned_attributes property to provide new attributes to be added. If an unsigned attribute with the same OID already exists, this will be handled according to the value of the AttributeConflictResolution config property.

If the unsigned_attributes property is empty, all the existing unsigned attributes in the specified signature (or all the signatures) will be removed.

on_chain_element_download event (AuthenticodeSigner Struct)

Fires when there is a need to download a chain element from an online source.

Syntax

// AuthenticodeSignerChainElementDownloadEventArgs carries the AuthenticodeSigner ChainElementDownload event's parameters.
pub struct AuthenticodeSignerChainElementDownloadEventArgs {
  fn kind(&self) -> i32
  fn cert_rdn(&self) -> &String
  fn ca_cert_rdn(&self) -> &String
  fn location(&self) -> &String
  fn action(&self) -> i32
  fn set_action(&self, value : i32)
}

// AuthenticodeSignerChainElementDownloadEvent defines the signature of the AuthenticodeSigner ChainElementDownload event's handler function.
pub trait AuthenticodeSignerChainElementDownloadEvent {
  fn on_chain_element_download(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerChainElementDownloadEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_chain_element_download(&self) -> &'a dyn AuthenticodeSignerChainElementDownloadEvent;
  pub fn set_on_chain_element_download(&mut self, value : &'a dyn AuthenticodeSignerChainElementDownloadEvent);
  ...
}

Remarks

Subscribe to this event to be notified about validation element retrievals. Use the Action parameter to suppress the download if required.

veaAuto0Handle the action automatically (the default behaviour)

veaContinue1Accept the request implied by the event (accept the certificate, allow the object retrieval)

veaReject2Reject the request implied by the event (reject the certificate, disallow the object retrieval)

veaAcceptNow3Accept the validated certificate immediately

veaAbortNow4Abort the validation, reject the certificate

cekUnknown0Unknown or unsupported element type

cekCertificate1An X.509 certificate

cekCRL2A CRL

cekOCSP3An OCSP response

on_chain_element_needed event (AuthenticodeSigner Struct)

Fires when an element required to validate the chain was not located.

Syntax

// AuthenticodeSignerChainElementNeededEventArgs carries the AuthenticodeSigner ChainElementNeeded event's parameters.
pub struct AuthenticodeSignerChainElementNeededEventArgs {
  fn kind(&self) -> i32
  fn cert_rdn(&self) -> &String
  fn ca_cert_rdn(&self) -> &String
}

// AuthenticodeSignerChainElementNeededEvent defines the signature of the AuthenticodeSigner ChainElementNeeded event's handler function.
pub trait AuthenticodeSignerChainElementNeededEvent {
  fn on_chain_element_needed(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerChainElementNeededEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_chain_element_needed(&self) -> &'a dyn AuthenticodeSignerChainElementNeededEvent;
  pub fn set_on_chain_element_needed(&mut self, value : &'a dyn AuthenticodeSignerChainElementNeededEvent);
  ...
}

Remarks

Subscribe to this event to be notified about missing validation elements. Use the known_crls, known_certificates, and known_ocsps properties in the event handler to provide the missing piece.

cekUnknown0Unknown or unsupported element type

cekCertificate1An X.509 certificate

cekCRL2A CRL

cekOCSP3An OCSP response

on_chain_validation_progress event (AuthenticodeSigner Struct)

This event is fired multiple times during chain validation to report various stages of the validation procedure.

Syntax

// AuthenticodeSignerChainValidationProgressEventArgs carries the AuthenticodeSigner ChainValidationProgress event's parameters.
pub struct AuthenticodeSignerChainValidationProgressEventArgs {
  fn event_kind(&self) -> &String
  fn cert_rdn(&self) -> &String
  fn ca_cert_rdn(&self) -> &String
  fn action(&self) -> i32
  fn set_action(&self, value : i32)
}

// AuthenticodeSignerChainValidationProgressEvent defines the signature of the AuthenticodeSigner ChainValidationProgress event's handler function.
pub trait AuthenticodeSignerChainValidationProgressEvent {
  fn on_chain_validation_progress(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerChainValidationProgressEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_chain_validation_progress(&self) -> &'a dyn AuthenticodeSignerChainValidationProgressEvent;
  pub fn set_on_chain_validation_progress(&mut self, value : &'a dyn AuthenticodeSignerChainValidationProgressEvent);
  ...
}

Remarks

Subscribe to this event to be notified about chain validation progress. Use the Action parameter to alter the validation flow.

The EventKind parameter reports the nature of the event being reported. The CertRDN and CACertRDN parameters report the distinguished names of the certificates that are relevant for the event invocation (one or both can be empty, depending on EventKind). Use the Action parameter to adjust the validation flow.

veaAuto0Handle the action automatically (the default behaviour)

veaContinue1Accept the request implied by the event (accept the certificate, allow the object retrieval)

veaReject2Reject the request implied by the event (reject the certificate, disallow the object retrieval)

veaAcceptNow3Accept the validated certificate immediately

veaAbortNow4Abort the validation, reject the certificate

on_error event (AuthenticodeSigner Struct)

Information about errors during Authenticode signing.

Syntax

// AuthenticodeSignerErrorEventArgs carries the AuthenticodeSigner Error event's parameters.
pub struct AuthenticodeSignerErrorEventArgs {
  fn error_code(&self) -> i32
  fn description(&self) -> &String
}

// AuthenticodeSignerErrorEvent defines the signature of the AuthenticodeSigner Error event's handler function.
pub trait AuthenticodeSignerErrorEvent {
  fn on_error(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerErrorEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_error(&self) -> &'a dyn AuthenticodeSignerErrorEvent;
  pub fn set_on_error(&mut self, value : &'a dyn AuthenticodeSignerErrorEvent);
  ...
}

Remarks

This event is fired in case of exceptional conditions during binary processing.

ErrorCode contains an error code and Description contains a textual description of the error.

on_external_sign event (AuthenticodeSigner Struct)

Handles remote or external signing initiated by the SignExternal method or other source.

Syntax

// AuthenticodeSignerExternalSignEventArgs carries the AuthenticodeSigner ExternalSign event's parameters.
pub struct AuthenticodeSignerExternalSignEventArgs {
  fn operation_id(&self) -> &String
  fn hash_algorithm(&self) -> &String
  fn pars(&self) -> &String
  fn data(&self) -> &String
  fn signed_data(&self) -> &String
  fn set_signed_data(&self, value : &str)
  fn set_signed_data_ref(&self, value : &String)
}

// AuthenticodeSignerExternalSignEvent defines the signature of the AuthenticodeSigner ExternalSign event's handler function.
pub trait AuthenticodeSignerExternalSignEvent {
  fn on_external_sign(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerExternalSignEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_external_sign(&self) -> &'a dyn AuthenticodeSignerExternalSignEvent;
  pub fn set_on_external_sign(&mut self, value : &'a dyn AuthenticodeSignerExternalSignEvent);
  ...
}

Remarks

Assign a handler to this event if you need to delegate a low-level signing operation to an external, remote, or custom signing engine. Depending on the settings, the handler will receive a hashed or unhashed value to be signed.

The event handler must pass the value of Data to the signer, obtain the signature, and pass it back to the struct via the SignedData parameter.

OperationId provides a comment about the operation and its origin. It depends on the exact struct being used, and may be empty. HashAlgorithm specifies the hash algorithm being used for the operation, and Pars contains algorithm-dependent parameters.

The struct uses base16 (hex) encoding for the Data, SignedData, and Pars parameters. If your signing engine uses a different input and output encoding, you may need to decode and/or encode the data before and/or after the signing.

A sample MD5 hash encoded in base16: a0dee2a0382afbb09120ffa7ccd8a152 - lower case base16 A0DEE2A0382AFBB09120FFA7CCD8A152 - upper case base16

A sample event handler that uses the .NET RSACryptoServiceProvider class may look like the following: signer.OnExternalSign += (s, e) => { var cert = new X509Certificate2("cert.pfx", "", X509KeyStorageFlags.Exportable); var key = (RSACryptoServiceProvider)cert.PrivateKey; var dataToSign = e.Data.FromBase16String(); var signedData = key.SignHash(dataToSign, "2.16.840.1.101.3.4.2.1"); e.SignedData = signedData.ToBase16String(); };

on_notification event (AuthenticodeSigner Struct)

This event notifies the application about an underlying control flow event.

Syntax

// AuthenticodeSignerNotificationEventArgs carries the AuthenticodeSigner Notification event's parameters.
pub struct AuthenticodeSignerNotificationEventArgs {
  fn event_id(&self) -> &String
  fn event_param(&self) -> &String
}

// AuthenticodeSignerNotificationEvent defines the signature of the AuthenticodeSigner Notification event's handler function.
pub trait AuthenticodeSignerNotificationEvent {
  fn on_notification(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerNotificationEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_notification(&self) -> &'a dyn AuthenticodeSignerNotificationEvent;
  pub fn set_on_notification(&mut self, value : &'a dyn AuthenticodeSignerNotificationEvent);
  ...
}

Remarks

The struct fires this event to let the application know about some event, occurrence, or milestone in the struct. For example, it may fire to report completion of the document processing. The list of events being reported is not fixed, and may be flexibly extended over time.

The unique identifier of the event is provided in the EventID parameter. EventParam contains any parameters accompanying the occurrence. Depending on the type of the struct, the exact action it is performing, or the document being processed, one or both may be omitted.

This struct can fire this event with the following EventID values:

BeforeTimestampThis event is fired before a timestamp is requested from the timestamping authority. Use the event handler to modify TSA and HTTP settings.
TimestampErrorThis event is only fired if the struct failed to obtain a timestamp from the timestamping authority. The EventParam parameter contains extended error info.
TimestampRequestA timestamp is requested from the custom timestamping authority. This event is only fired if timestamp_server was set to a virtual:// URI. The EventParam parameter contains the TSP request (or the plain hash, depending on the value provided to timestamp_server), in base16, that needs to be sent to the TSA.

Use the event handler to send the request to the TSA. Upon receiving the response, assign it, in base16, to the TimestampResponse configuration property.

on_start event (AuthenticodeSigner Struct)

This event is fired when the struct is about to start the signing process.

Syntax

// AuthenticodeSignerStartEventArgs carries the AuthenticodeSigner Start event's parameters.
pub struct AuthenticodeSignerStartEventArgs {
  fn specified_checksum(&self) -> i32
  fn actual_checksum(&self) -> i32
  fn is_signed(&self) -> bool
  fn cancel(&self) -> bool
  fn set_cancel(&self, value : bool)
}

// AuthenticodeSignerStartEvent defines the signature of the AuthenticodeSigner Start event's handler function.
pub trait AuthenticodeSignerStartEvent {
  fn on_start(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerStartEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_start(&self) -> &'a dyn AuthenticodeSignerStartEvent;
  pub fn set_on_start(&mut self, value : &'a dyn AuthenticodeSignerStartEvent);
  ...
}

Remarks

This event marks the start of the signing process over a certain file.

SpecifiedChecksum is the checksum specified in the file itself, ActualChecksum is the actual checksum computed by the struct, IsSigned specifies whether the file is already signed, and Cancel allows to stop the operation.

on_timestamp_request event (AuthenticodeSigner Struct)

Fires when the struct is ready to request a timestamp from an external TSA.

Syntax

// AuthenticodeSignerTimestampRequestEventArgs carries the AuthenticodeSigner TimestampRequest event's parameters.
pub struct AuthenticodeSignerTimestampRequestEventArgs {
  fn tsa(&self) -> &String
  fn timestamp_request(&self) -> &String
  fn timestamp_response(&self) -> &String
  fn set_timestamp_response(&self, value : &str)
  fn set_timestamp_response_ref(&self, value : &String)
  fn suppress_default(&self) -> bool
  fn set_suppress_default(&self, value : bool)
}

// AuthenticodeSignerTimestampRequestEvent defines the signature of the AuthenticodeSigner TimestampRequest event's handler function.
pub trait AuthenticodeSignerTimestampRequestEvent {
  fn on_timestamp_request(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerTimestampRequestEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_timestamp_request(&self) -> &'a dyn AuthenticodeSignerTimestampRequestEvent;
  pub fn set_on_timestamp_request(&mut self, value : &'a dyn AuthenticodeSignerTimestampRequestEvent);
  ...
}

Remarks

Subscribe to this event to intercept timestamp requests. You can use it to override timestamping requests and perform them in your code.

The TSA parameter indicates the timestamping service being used. It matches the value passed to the timestamp_server property. Set the SuppressDefault parameter to true if you would like to stop the built-in TSA request from going ahead. The built-in TSA request is also not performed if the returned TimestampResponse parameter is not empty.

on_tls_cert_needed event (AuthenticodeSigner Struct)

Fires when a remote TLS party requests a client certificate.

Syntax

// AuthenticodeSignerTLSCertNeededEventArgs carries the AuthenticodeSigner TLSCertNeeded event's parameters.
pub struct AuthenticodeSignerTLSCertNeededEventArgs {
  fn host(&self) -> &String
  fn ca_names(&self) -> &String
}

// AuthenticodeSignerTLSCertNeededEvent defines the signature of the AuthenticodeSigner TLSCertNeeded event's handler function.
pub trait AuthenticodeSignerTLSCertNeededEvent {
  fn on_tls_cert_needed(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerTLSCertNeededEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_tls_cert_needed(&self) -> &'a dyn AuthenticodeSignerTLSCertNeededEvent;
  pub fn set_on_tls_cert_needed(&mut self, value : &'a dyn AuthenticodeSignerTLSCertNeededEvent);
  ...
}

Remarks

This event fires to notify the implementation that a remote TLS server has requested a client certificate. The Host parameter identifies the host that makes a request, and the CANames parameter (optional, according to the TLS spec) advises on the accepted issuing CAs.

Use the tls_client_chain property in response to this event to provide the requested certificate. Please make sure the client certificate includes the associated private key. Note that you may set the certificates before the connection without waiting for this event to fire.

This event is preceded by the on_tls_handshake event for the given host and, if the certificate was accepted, succeeded by the on_tls_established event.

on_tls_cert_validate event (AuthenticodeSigner Struct)

This event is fired upon receipt of the TLS server's certificate, allowing the user to control its acceptance.

Syntax

// AuthenticodeSignerTLSCertValidateEventArgs carries the AuthenticodeSigner TLSCertValidate event's parameters.
pub struct AuthenticodeSignerTLSCertValidateEventArgs {
  fn server_host(&self) -> &String
  fn server_ip(&self) -> &String
  fn accept(&self) -> bool
  fn set_accept(&self, value : bool)
}

// AuthenticodeSignerTLSCertValidateEvent defines the signature of the AuthenticodeSigner TLSCertValidate event's handler function.
pub trait AuthenticodeSignerTLSCertValidateEvent {
  fn on_tls_cert_validate(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerTLSCertValidateEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_tls_cert_validate(&self) -> &'a dyn AuthenticodeSignerTLSCertValidateEvent;
  pub fn set_on_tls_cert_validate(&mut self, value : &'a dyn AuthenticodeSignerTLSCertValidateEvent);
  ...
}

Remarks

This event is fired during a TLS handshake. Use the tls_server_chain property to access the certificate chain. In general, structs may contact a number of TLS endpoints during their work, depending on their configuration.

Accept is assigned in accordance with the outcome of the internal validation check performed by the struct, and can be adjusted if needed.

on_tls_established event (AuthenticodeSigner Struct)

Fires when a TLS handshake with Host successfully completes.

Syntax

// AuthenticodeSignerTLSEstablishedEventArgs carries the AuthenticodeSigner TLSEstablished event's parameters.
pub struct AuthenticodeSignerTLSEstablishedEventArgs {
  fn host(&self) -> &String
  fn version(&self) -> &String
  fn ciphersuite(&self) -> &String
  fn connection_id(&self) -> &[u8]
  fn abort(&self) -> bool
  fn set_abort(&self, value : bool)
}

// AuthenticodeSignerTLSEstablishedEvent defines the signature of the AuthenticodeSigner TLSEstablished event's handler function.
pub trait AuthenticodeSignerTLSEstablishedEvent {
  fn on_tls_established(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerTLSEstablishedEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_tls_established(&self) -> &'a dyn AuthenticodeSignerTLSEstablishedEvent;
  pub fn set_on_tls_established(&mut self, value : &'a dyn AuthenticodeSignerTLSEstablishedEvent);
  ...
}

Remarks

The struct uses this event to notify the application about a successful completion of a TLS handshake.

The Version, Ciphersuite, and ConnectionId parameters indicate the security parameters of the new connection. Use the Abort parameter if you need to terminate the connection at this stage.

on_tls_handshake event (AuthenticodeSigner Struct)

Fires when a new TLS handshake is initiated, before the handshake commences.

Syntax

// AuthenticodeSignerTLSHandshakeEventArgs carries the AuthenticodeSigner TLSHandshake event's parameters.
pub struct AuthenticodeSignerTLSHandshakeEventArgs {
  fn host(&self) -> &String
  fn abort(&self) -> bool
  fn set_abort(&self, value : bool)
}

// AuthenticodeSignerTLSHandshakeEvent defines the signature of the AuthenticodeSigner TLSHandshake event's handler function.
pub trait AuthenticodeSignerTLSHandshakeEvent {
  fn on_tls_handshake(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerTLSHandshakeEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_tls_handshake(&self) -> &'a dyn AuthenticodeSignerTLSHandshakeEvent;
  pub fn set_on_tls_handshake(&mut self, value : &'a dyn AuthenticodeSignerTLSHandshakeEvent);
  ...
}

Remarks

The struct uses this event to notify the application about the start of a new TLS handshake to Host. If the handshake is successful, this event will be followed by the on_tls_established event. If the server chooses to request a client certificate, the on_tls_cert_needed event will also be fired.

on_tls_shutdown event (AuthenticodeSigner Struct)

Reports the graceful closure of a TLS connection.

Syntax

// AuthenticodeSignerTLSShutdownEventArgs carries the AuthenticodeSigner TLSShutdown event's parameters.
pub struct AuthenticodeSignerTLSShutdownEventArgs {
  fn host(&self) -> &String
}

// AuthenticodeSignerTLSShutdownEvent defines the signature of the AuthenticodeSigner TLSShutdown event's handler function.
pub trait AuthenticodeSignerTLSShutdownEvent {
  fn on_tls_shutdown(&self, sender : AuthenticodeSigner, e : &mut AuthenticodeSignerTLSShutdownEventArgs);
}

impl <'a> AuthenticodeSigner<'a> {
  pub fn on_tls_shutdown(&self) -> &'a dyn AuthenticodeSignerTLSShutdownEvent;
  pub fn set_on_tls_shutdown(&mut self, value : &'a dyn AuthenticodeSignerTLSShutdownEvent);
  ...
}

Remarks

This event notifies the application about the closure of an earlier established TLS connection. Note that only graceful connection closures are reported.

Config Settings (AuthenticodeSigner Struct)

The struct accepts one or more of the following configuration settings. Configuration settings are similar in functionality to properties, but they are rarely used. In order to avoid "polluting" the property namespace of the struct, access to these internal properties is provided through the config method.

AuthenticodeSigner Config Settings

AttributeConflictResolution:   Specifies how to resolve updating conflicts.

Use this property to specify what to do when a custom unsigned attribute with the same OID already exists. Default: tcrInsert. Available options are:

acrInsert0Add one more unsigned attribute with the same OID.
acrIgnore1Do nothing.
acrReplace2Replace the existing unsigned attribute with the provided one.
acrError3Throw an error.
BufferSize:   Specifies processing buffer size in bytes.

Use this property to set the buffer size (in bytes) that should be used when processing binaries. The default value is 1048576 (1 MB).

ChainCurrentCACert:   Returns the current CA certificate.

This property returns the CA certificate that is used on the current step.

ChainCurrentCert:   Returns the certificate that is currently being validated.

Use this property to obtain the body of the certificate that is currently being validated.

ChainCurrentCRL:   Returns the current CRL.

Returns the CRL object that is currently being processed.

ChainCurrentCRLSize:   Returns the size of the current CRL.

This property returns the size of the CRL object that is currently being processed.

ChainCurrentOCSP:   Returns the current OCSP response.

Returns the OCSP object that is currently being processed.

ChainCurrentOCSPSigner:   Returns the signer of the current OCSP object.

Returns the signer/CA that has issued the OCSP response that is currently being processed.

ChainInterimDetails:   Returns the current interim validation details.

This property returns the interim chain validation details.

ChainInterimResult:   Returns the current interim validation result.

Use this setting to obtain the current (mid-chain) validation result. This property applies to the current validation step and may change as the chain walk proceeds. The final result will be published in the ChainValidationResult property once the validation process completes.

CheckValidityPeriodForTrusted:   Whether to check validity period for trusted certificates.

Whether to check validity period for trusted certificates.

DislikeOpenEndedOCSPs:   Tells the struct to discourage OCSP responses without an explicit NextUpdate parameter.

When this property is set to True, the validation engine treats OCSP response without a NextUpdate field as 'substandard' and tries to obtain some further revocation material for the certificate in question (a different OCSP or a CRL, even if the struct is configured to prefer the OCSP route). This is to work around Adobe Reader's intolerance to such OCSPs when classifying signed documents as LTV (as of August 2022).

EvaluateSystemTrust:   Enables or disables usage of the platform's built-in trust validation facilities.

When enabled, the component delegates the certificate chain validation to the operating system's native trust evaluation mechanism (e.g. SecTrustEvaluate on Apple platforms). This functionality is currently available on macOS and iOS systems only. This property is disabled by default, because enabling it may prevent the AdES components from collecting full revocation information required for long-term validation (LTV) signatures.

EvaluateSystemTrustForSelfSignedCertificates:   Enables or disables usage of the platform's built-in trust validation facilities for self-signed certificates.

When enabled, the component delegates the certificate chain validation to the operating system's native trust evaluation mechanism (e.g. SecTrustEvaluate on Apple platforms) for self-signed certificates. This functionality is currently available on macOS and iOS systems only. This property is enabled by default.

EvaluateSystemTrustForSSL:   Enables or disables usage of the platform's built-in trust validation facilities for SSL/TLS.

When enabled, the component delegates the certificate chain validation to the operating system's native trust evaluation mechanism (e.g. SecTrustEvaluate on Apple platforms) specifically for SSL/TLS certificates. This functionality is currently available on macOS and iOS systems only. This property is enabled by default.

ForceCompleteChainValidation:   Whether to check the CA certificates when the signing certificate is invalid.

Set this property to True to check issuer (CA) certificates if the signing or an intermediate chain certificate is invalid.

ForceCompleteChainValidationForTrusted:   Whether to continue with the full validation up to the root CA certificate for mid-level trust anchors.

Set this property to True to enable full chain validation for explicitly trusted intermediary or end-entity certificates. This may be useful when creating signatures to enforce completeness of the collected revocation information. It often makes sense to set this property to false when validating signatures to reduce validation time and avoid issues with badly configured environments.

GracePeriod:   Specifies a grace period to apply during revocation information checks.

Use this property to specify a grace period (in seconds). Grace period applies to certain subprotocols, such as OCSP, and caters to the inaccuracy and/or missynchronization of clocks on different participating systems. Any time deviations within the grace period will be tolerated.

IgnoreChainLoops:   Whether chain loops should be ignored.

Set this property to True to make the validation engine ignore chain loops. This may be an option when you need to process chains from buggy CAs that happen to include subchains that sign themselves.

IgnoreOCSPNoCheckExtension:   Whether the OCSP NoCheck extension should be ignored.

Set this property to True to make the validation engine ignore the OCSP no-check extension. You would normally need to set this property when validating severely non-compliant chains that misuse the extension, causing chain loops or other validation issues.

IgnoreSystemTrust:   Whether trusted Windows Certificate Stores should be treated as trusted.

Specifies whether, during chain validation, the struct should respect the trust to CA certificates as configured in the operating system. In Windows this effectively defines whether the struct should trust the certificates residing in the Trusted Root Certification Authorities store.

If IgnoreSystemTrust is True, certificates residing in the trusted root store are treated as if they are known, rather than trusted. Only certificates provided via other means (such as the trusted_certificates property) are considered trusted.

ImplicitlyTrustSelfSignedCertificates:   Whether to trust self-signed certificates.

Set this property to True to implicitly trust all self-signed certificates. Use it with care as trusting just about every self-signed certificate is unwise. One exceptional reason where this property may be handy is where a chain is validated in an environment that is not supposed to trust it (for example, a signing, rather than verifying environment, or a QA server). Trusting all self-signing certificates (which are normally trusted) allows emulating the verifying environment without actually changing its security settings.

PromoteLongOCSPResponses:   Whether long OCSP responses are requested.

Set this property to True to force the struct to publish the 'long' form of OCSP responses. Otherwise, only BasicOCSPResponse blobs are promoted.

PSSUsed:   Whether to use RSASSA-PSS algorithm.

Although the RSASSA-PSS algorithm provides better security than a classic RSA scheme (PKCS#1-1.5), please take into account that RSASSA-PSS is a relatively new algorithm which may not be understood by older implementations. This is an alias for UsePSS.

TempPath:   Path for storing temporary files.

This setting specifies an absolute path to the location on disk where temporary files are stored. This setting is supported only in the Java edition for all applicable signing components except PDFSigner, where this limitation does not apply. Path for storing temporary files.

This setting specifies an absolute path to the location on disk where temporary files are stored. This setting is supported only in the Java edition for all applicable signing components except PDFSigner, where this limitation does not apply.

TempPath:   Path for storing temporary files.

This setting specifies an absolute path to the location on disk where temporary files are stored. This setting is supported only in the Java edition for all applicable signing components except PDFSigner, where this limitation does not apply. Path for storing temporary files.

This setting specifies an absolute path to the location on disk where temporary files are stored. This setting is supported only in the Java edition for all applicable signing components except PDFSigner, where this limitation does not apply.

TimestampConflictResolution:   Specifies how to resolve timestamping conflicts.

Use this property to specify how timestamping conflicts should be resolved. Default value: tcrIgnore. Available options are:

tcrIgnore0Do nothing.
tcrReplace1Replace the existing timestamp with a new one.
tcrError2Throw an error.
TimestampResponse:   A base16-encoded timestamp response received from a TSA.

When using virtual:// timestamp endpoints, assign this property in your on_notification event handler with the TSP response that you receive from the TSA. Remember to encode the response in hex (base16).

TLSChainValidationDetails:   Contains the advanced details of the TLS server certificate validation.

Check this property in the TLSCertValidate event handler to access the TLS certificate validation details.

TLSChainValidationResult:   Contains the result of the TLS server certificate validation.

Check this property in the TLSCertValidate event handler to obtain the TLS certificate validation result.

TLSClientAuthRequested:   Indicates whether the TLS server requests client authentication.

Check this property in the TLSCertValidate event handler to find out whether the TLS server requests the client to provide the authentication certificate. If this property is set to true, provide your certificate via the TLSClientChain property. Note that the struct may fire this event more than once during each operation, as more than one TLS-enabled server may need to be contacted.

TLSValidationLog:   Contains the log of the TLS server certificate validation.

Check this property in the TLSCertValidate event handler to retrieve the validation log of the TLS server.

TolerateMinorChainIssues:   Whether to tolerate minor chain issues.

This parameter controls whether the chain validator should tolerate minor technical issues when validating the chain. Those are:

  • CA, revocation source, TLS key usage requirements are not mandated
  • Violation of OCSP issuer requirements are ignored
  • The AuthorityKeyID extension in CRL- and certificate-issuing CAs are ignored (helps with incorrectly renewed certificates)
  • Basic constraints and name constraints of CA certificates are ignored
  • Some weaker algorithms are tolerated
TspAttemptCount:   Specifies the number of timestamping request attempts.

Use this property to specify a number of timestamping request attempts.

In case of a timestamping failure, provide new TSA and HTTP settings inside the on_notification event handler ('BeforeTimestamp' and 'TimestampError' event IDs).

TspHashAlgorithm:   Sets a specific hash algorithm for use with the timestamping service.

In default configuration struct uses the 'SHA256' hash algorithm. Use this property to specify a different hash algorithm for the timestamp.

Note: Unlike other structs, PDFSigner struct uses the same hash algorithm for the main signature and any associated timestamps during signing. Use this property to specify a different hash algorithm for the timestamp.

TspReqPolicy:   Sets a request policy ID to include in the timestamping request.

Use this property to provide a specific request policy OID to include in the timestamping request. Use the standard human-readable OID notation (1.2.3.4.5).

UseEnvStorages:   Enables or disables use of the environment storages.

Enable this property to make the chain validation module automatically look up missing CA and intermediate certificates in the environment storages.

UseMicrosoftCTL:   Enables or disables the automatic use of the Microsoft online certificate trust list.

Enable this property to make the chain validation module automatically look up missing CA certificates in the public Windows Update repository.

UsePSS:   Whether to use RSASSA-PSS algorithm.

Although the RSASSA-PSS algorithm provides better security than a classic RSA scheme (PKCS#1-1.5), please take into account that RSASSA-PSS is a relatively new algorithm which may not be understood by older implementations.

UseSystemCertificates:   Enables or disables the use of the system certificates.

Use this property to tell the chain validation module to automatically look up missing CA certificates in the system certificates. In many cases it is beneficial to switch this property on, as the operating system certificate configuration provides a representative trust framework.

UseValidationCache:   Enables or disable the use of the product-wide certificate chain validation cache.

Use this property to enable or disable the use of the global chain validation cache. If enabled, the struct will consult the product-wide validation cache when validating the signing chains. Also, the outcomes of any new chain validations performed by the struct, both interim and final, will be saved in the cache and available for re-use by any future validations. Disable this property to ignore the cache and always perform the validation from a fresh start.

UseValidatorSettingsForTLSValidation:   Whether to employ the primary chain validator setup for auxiliary TLS chain validations.

Use this property to specify whether you would like to use the primary (AdES) chain validator component to validate TLS chains for any connections involved (OCSP, CRL).

Base Config Settings

ASN1UseGlobalTagCache:   Controls whether ASN.1 module should use a global object cache.

This is a performance setting. It is unlikely that you will ever need to adjust it.

AssignSystemSmartCardPins:   Specifies whether CSP-level PINs should be assigned to CNG keys.

This is a low-level tweak for certain cryptographic providers. It is unlikely that you will ever need to adjust it.

CheckKeyIntegrityBeforeUse:   Enables or disable private key integrity check before use.

This global property enables or disables private key material check before each signing operation. This slows down performance a bit, but prevents a selection of attacks on RSA keys where keys with unknown origins are used.

You can switch this property off to improve performance if your project only uses known, good private keys.

CookieCaching:   Specifies whether a cookie cache should be used for HTTP(S) transports.

Set this property to enable or disable cookies caching for the struct.

Supported values are:

offNo caching (default)
localLocal caching
globalGlobal caching

Cookies:   Gets or sets local cookies for the struct.

Use this property to get cookies from the internal cookie storage of the struct and/or restore them back between application sessions.

DefDeriveKeyIterations:   Specifies the default key derivation algorithm iteration count.

This global property sets the default number of iterations for all supported key derivation algorithms. Note that you can provide the required number of iterations by using properties of the relevant key generation component; this global setting is used in scenarios where specific iteration count is not or cannot be provided.

DNSLocalSuffix:   The suffix to assign for TLD names.

Use this global setting to adjust the default suffix to assign to top-level domain names. The default is .local.

EnableClientSideSSLFFDHE:   Enables or disables finite field DHE key exchange support in TLS clients.

This global property enables or disables support for finite field DHE key exchange methods in TLS clients. FF DHE is a slower algorithm if compared to EC DHE; enabling it may result in slower connections.

This setting only applies to sessions negotiated with TLS version 1.3.

EnableSSHMLKEM:   Enables support for ML-KEM/hybrid key exchange algorithms in SSH client and server components.

Use this setting to enable hybrid key exchange algorithms in client and server SSH and SFTP components. This is a global setting that enables ML-KEM blanketly in all SSH-dependent components.

EnableTLSMLKEM:   Enables support for ML-KEM and hybrid groups in TLS client and server components.

Use this setting to enable ML-KEM and hybrid key exchange groups in client and server TLS components. This is a global setting that enables ML-KEM blanketly in all TLS-dependent components.

GlobalCookies:   Gets or sets global cookies for all the HTTP transports.

Use this property to get cookies from the GLOBAL cookie storage or restore them back between application sessions. These cookies will be used by all the structs that have its CookieCaching property set to "global".

HardwareCryptoUsePolicy:   The hardware crypto usage policy.

This global setting controls the hardware cryptography usage policy.

Supported Values:

auto Use hardware cryptography if available; otherwise, fall back to software-based cryptography (default).
enableAlways attempt to use hardware cryptography. If unavailable, exception will be thrown.
disableDo not use hardware cryptography.

HttpUserAgent:   Specifies the user agent name to be used by all HTTP clients.

This global setting defines the User-Agent field of the HTTP request provides information about the software that initiates the request. This value will be used by all the HTTP clients including the ones used internally in other structs.

HttpVersion:   The HTTP version to use in any inner HTTP client components created.

Set this property to 1.0 or 1.1 to indicate the HTTP version that any internal HTTP clients should use.

IgnoreExpiredMSCTLSigningCert:   Whether to tolerate the expired Windows Update signing certificate.

It is not uncommon for Microsoft Windows Update Certificate Trust List to be signed with an expired Microsoft certificate. Setting this global property to true makes SBB ignore the expired factor and take the Trust List into account.

ListDelimiter:   The delimiter character for multi-element lists.

Allows to set the delimiter for any multi-entry values returned by the component as a string object, such as file lists. For most of the components, this property is set to a newline sequence.

LogDestination:   Specifies the debug log destination.

Contains a comma-separated list of values that specifies where debug log should be dumped.

Supported values are:

fileFile
consoleConsole
systemlogSystem Log (supported for Android only)
debuggerDebugger (supported for VCL for Windows and .Net)

LogDetails:   Specifies the debug log details to dump.

Contains a comma-separated list of values that specifies which debug log details to dump.

Supported values are:

timeCurrent time
levelLevel
packagePackage name
moduleModule name
classClass name
methodMethod name
threadidThread Id
contenttypeContent type
contentContent
allAll details

LogFile:   Specifies the debug log filename.

Use this property to provide a path to the log file.

LogFilters:   Specifies the debug log filters.

Contains a comma-separated list of value pairs ("name:value") that describe filters.

Supported filter names are:

exclude-packageExclude a package specified in the value
exclude-moduleExclude a module specified in the value
exclude-classExclude a class specified in the value
exclude-methodExclude a method specified in the value
include-packageInclude a package specified in the value
include-moduleInclude a module specified in the value
include-classInclude a class specified in the value
include-methodInclude a method specified in the value

LogFlushMode:   Specifies the log flush mode.

Use this property to set the log flush mode. The following values are defined:

noneNo flush (caching only)
immediateImmediate flush (real-time logging)
maxcountFlush cached entries upon reaching LogMaxEventCount entries in the cache.

LogLevel:   Specifies the debug log level.

Use this property to provide the desired debug log level.

Supported values are:

noneNone (by default)
fatalSevere errors that cause premature termination.
errorOther runtime errors or unexpected conditions.
warningUse of deprecated APIs, poor use of API, 'almost' errors, other runtime situations that are undesirable or unexpected, but not necessarily "wrong".
infoInteresting runtime events (startup/shutdown).
debugDetailed information on flow of through the system.
traceMore detailed information.

LogMaxEventCount:   Specifies the maximum number of events to cache before further action is taken.

Use this property to specify the log event number threshold. This threshold may have different effects, depending on the rotation setting and/or the flush mode.

The default value of this setting is 100.

LogRotationMode:   Specifies the log rotation mode.

Use this property to set the log rotation mode. The following values are defined:

noneNo rotation
deleteolderDelete older entries from the cache upon reaching LogMaxEventCount
keepolderKeep older entries in the cache upon reaching LogMaxEventCount (newer entries are discarded)

MaxASN1BufferLength:   Specifies the maximal allowed length for ASN.1 primitive tag data.

This global property limits the maximal allowed length for ASN.1 tag data for non-content-carrying structures, such as certificates, CRLs, or timestamps. It does not affect structures that can carry content, such as CMS/CAdES messages. This is a security property aiming at preventing DoS attacks.

MaxASN1TreeDepth:   Specifies the maximal depth for processed ASN.1 trees.

This global property limits the maximal depth of ASN.1 trees that the component can handle without throwing an error. This is a security property aiming at preventing DoS attacks.

OCSPHashAlgorithm:   Specifies the hash algorithm to be used to identify certificates in OCSP requests.

This global setting defines the hash algorithm to use in OCSP requests during chain validation. Some OCSP responders can only use older algorithms, in which case setting this property to SHA1 may be helpful.

OldClientSideRSAFallback:   Specifies whether the SSH client should use a SHA1 fallback.

Tells the SSH client to use a legacy ssh-rsa authentication even if the server indicates support for newer algorithms, such as rsa-sha-256. This is a backward-compatibility tweak.

PKICache:   Specifies which PKI elements (certificates, CRLs, OCSP responses) should be cached.

The PKICache setting specifies which Public Key Infrastructure (PKI) elements should be cached to optimize performance and reduce retrieval times. It supports comma-separated values to indicate the specific types of PKI data that should be cached.

Supported Values:

certificateEnables caching of certificates.
crlEnables caching of Certificate Revocation Lists (CRLs).
ocspEnables caching of OCSP (Online Certificate Status Protocol) responses.

Example (default value): PKICache=certificate,crl,ocsp In this example, the component caches certificates, CRLs, and OCSP responses.

PKICachePath:   Specifies the file system path where cached PKI data is stored.

The PKICachePath setting defines the file system path where cached PKI data (e.g., certificates, CRLs, OCSP responses and Trusted Lists) will be stored. This allows the system to persistently save and retrieve PKI cache data, even across application restarts.

The default value is an empty string - no cached PKI data is stored on disk.

Example: PKICachePath=C:\Temp\cache In this example, the cached PKI data is stored in the C:\Temp\cache directory.

ProductVersion:   Returns the version of the SecureBlackbox library.

This property returns the long version string of the SecureBlackbox library being used (major.minor.build.revision).

ServerSSLDHKeyLength:   Sets the size of the TLS DHE key exchange group.

Use this property to adjust the length, in bits, of the DHE prime to be used by the TLS server.

StaticDNS:   Specifies whether static DNS rules should be used.

Set this property to enable or disable static DNS rules for the struct. Works only if UseOwnDNSResolver is set to true.

Supported values are:

noneNo static DNS rules (default)
localLocal static DNS rules
globalGlobal static DNS rules

StaticIPAddress[domain]:   Gets or sets an IP address for the specified domain name.

Use this property to get or set an IP address for the specified domain name in the internal (of the struct) or global DNS rules storage depending on the StaticDNS value. The type of the IP address (IPv4 or IPv6) is determined automatically. If both addresses are available, they are divided by the | (pipe) character.

StaticIPAddresses:   Gets or sets all the static DNS rules.

Use this property to get static DNS rules from the current rules storage or restore them back between application sessions. If StaticDNS of the struct is set to "local", the property returns/restores the rules from/to the internal storage of the struct. If StaticDNS of the struct is set to "global", the property returns/restores the rules from/to the GLOBAL storage. The rules list is returned and accepted in JSON format.

Tag:   Allows to store any custom data.

Use this config property to store any custom data.

TLSSessionGroup:   Specifies the group name of TLS sessions to be used for session resumption.

Use this property to limit the search of cached TLS sessions to the specified group. Sessions from other groups will be ignored. By default, all sessions are cached with an empty group name and available to all the structs.

TLSSessionLifetime:   Specifies lifetime in seconds of the cached TLS session.

Use this property to specify how much time the TLS session should be kept in the session cache. After this time, the session expires and will be automatically removed from the cache. Default value is 300 seconds (5 minutes).

TLSSessionPurgeInterval:   Specifies how often the session cache should remove the expired TLS sessions.

Use this property to specify the time interval of purging the expired TLS sessions from the session cache. Default value is 60 seconds (1 minute).

UseCRLObjectCaching:   Specifies whether reuse of loaded CRL objects is enabled.

This setting enables or disables the caching of CRL objects. When set to true (the default value), the system checks if a CRL object is already loaded in memory before attempting to load a new instance. If the object is found, the existing instance is reused, and its reference count is incremented to track its usage. When the reference count reaches zero, indicating that no references to the object remain, the system will free the object from memory. This setting enhances performance by minimizing unnecessary object instantiation and promotes efficient memory management, particularly in scenarios where CRL objects are frequently used.

UseInternalRandom:   Switches between SecureBlackbox-own and platform PRNGs.

Allows to switch between internal/native PRNG implementation and the one provided by the platform.

UseLegacyAdESValidation:   Enables legacy AdES validation mode.

Use this setting to switch the AdES component to the validation approach that was used in SBB 2020/SBB 2022 (less attention to temporal details).

UseOCSPResponseObjectCaching:   Specifies whether reuse of loaded OCSP response objects is enabled.

This setting enables or disables the caching of OCSP response objects. When set to true (the default value), the system checks if a OCSP response object is already loaded in memory before attempting to load a new instance. If the object is found, the existing instance is reused, and its reference count is incremented to track its usage. When the reference count reaches zero, indicating that no references to the object remain, the system will free the object from memory. This setting enhances performance by minimizing unnecessary object instantiation and promotes efficient memory management, particularly in scenarios where OCSP response objects are frequently used.

UseOwnDNSResolver:   Specifies whether the client components should use own DNS resolver.

Set this global property to false to force all the client components to use the DNS resolver provided by the target OS instead of using own one.

UseSharedSystemStorages:   Specifies whether the validation engine should use a global per-process copy of the system certificate stores.

Set this global property to false to make each validation run use its own copy of system certificate stores.

UseSystemNativeSizeCalculation:   An internal CryptoAPI access tweak.

This is an internal setting. Please do not use it unless instructed by the support team.

UseSystemOAEPAndPSS:   Enforces or disables the use of system-driven RSA OAEP and PSS computations.

This global setting defines who is responsible for performing RSA-OAEP and RSA-PSS computations where the private key is stored in a Windows system store and is exportable. If set to true, SBB will delegate the computations to Windows via a CryptoAPI call. Otherwise, it will export the key material and perform the computations using its own OAEP/PSS implementation.

This setting only applies to certificates originating from a Windows system store.

UseSystemRandom:   Enables or disables the use of the OS PRNG.

Use this global property to enable or disable the use of operating system-driven pseudorandom number generation.

XMLRDNDescriptorName[OID]:   Defines an OID mapping to descriptor names for the certificate's IssuerRDN or SubjectRDN.

This property defines custom mappings between Object Identifiers (OIDs) and descriptor names. This mapping specifies how the certificate's issuer and subject information (ds:IssuerRDN and ds:SubjectRDN elements respectively) are represented in XML signatures.

The property accepts comma-separated values where the first descriptor name is used when the OID is mapped, and subsequent values act as aliases for parsing.

Syntax: Config("XMLRDNDescriptorName[OID]=PrimaryName,Alias1,Alias2");

Where:

OID: The Object Identifier from the certificate's IssuerRDN or SubjectRDN that you want to map.

PrimaryName: The main descriptor name used in the XML signature when the OID is encountered.

Alias1, Alias2, ...: Optional alternative names recognized during parsing.

Usage Examples:

Map OID 2.5.4.5 to SERIALNUMBER: Config("XMLRDNDescriptorName[2.5.4.5]=SERIALNUMBER");

Map OID 1.2.840.113549.1.9.1 to E, with aliases EMAIL and EMAILADDRESS: Config("XMLRDNDescriptorName[1.2.840.113549.1.9.1]=E,EMAIL,EMAILADDRESS");

XMLRDNDescriptorPriority[OID]:   Specifies the priority of descriptor names associated with a specific OID.

This property specifies the priority of descriptor names associated with a specific OID that allows to reorder descriptors in the ds:IssuerRDN and ds:SubjectRDN elements during signing.

XMLRDNDescriptorReverseOrder:   Specifies whether to reverse the order of descriptors in RDN.

Specifies whether to reverse the order of descriptors in the ds:IssuerRDN and ds:SubjectRDN elements during XML signing. By default, this property is set to true (as specified in RFC 2253, 2.1).

XMLRDNDescriptorSeparator:   Specifies the separator used between descriptors in RDN.

Specifies the separator used between descriptors in the ds:IssuerRDN and ds:SubjectRDN elements during XML signing. By default, this property is set to ", " value.

Trappable Errors (AuthenticodeSigner Struct)

AuthenticodeSigner Errors

1048577   Invalid parameter (SB_ERROR_INVALID_PARAMETER)
1048578   Invalid configuration (SB_ERROR_INVALID_SETUP)
1048579   Invalid state (SB_ERROR_INVALID_STATE)
1048580   Invalid value (SB_ERROR_INVALID_VALUE)
1048581   Private key not found (SB_ERROR_NO_PRIVATE_KEY)
1048582   Cancelled by the user (SB_ERROR_CANCELLED_BY_USER)
1048583   The file was not found (SB_ERROR_NO_SUCH_FILE)
1048584   Unsupported feature or operation (SB_ERROR_UNSUPPORTED_FEATURE)
1048585   General error (SB_ERROR_GENERAL_ERROR)