info > openssl-verification-options(1)

πŸ“– NAME

openssl-verification-options - generic X.509 certificate verification options

πŸš€ Quick Reference

Use CaseCommandDescription
πŸ” Verify with default trust storeopenssl verify cert.pemVerify a certificate using system default trust anchors
πŸ“ Specify trust store fileopenssl verify -CAfile ca-certs.pem cert.pemVerify using a specific CA bundle file
πŸ“‚ Specify trust store directoryopenssl verify -CApath /etc/ssl/certs cert.pemVerify using a directory of CA certificates (hash-named)
⏱️ Verify at a specific timeopenssl verify -attime 1609459200 cert.pemCheck certificate validity at a Unix timestamp
πŸ›‘οΈ Strict RFC 5280 complianceopenssl verify -x509_strict cert.pemReject non-compliant certificates
πŸ“‹ Check CRL revocationopenssl verify -crl_check -CRLfile crl.pem cert.pemVerify end-entity certificate against a CRL
πŸ”— Allow partial chainopenssl verify -partial_chain cert.pemAccept a chain ending in a trusted but non-self-signed cert
🎯 Verify for specific purposeopenssl verify -purpose sslserver cert.pemCheck certificate extensions for SSL server use
πŸ“§ Verify email matchopenssl verify -verify_email user@example.com cert.pemVerify email address in Subject Alternative Name or Subject DN
🌐 Verify hostname matchopenssl verify -verify_hostname example.com cert.pemVerify DNS name in SAN or Common Name
πŸ” Verify IP addressopenssl verify -verify_ip 192.168.1.1 cert.pemVerify IP address in Subject Alternative Name
πŸ“Š Set security levelopenssl verify -auth_level 2 cert.pemRequire minimum 112-bit security (e.g., reject SHA-1, RSA < 2048)
πŸ“œ Show verbose detailsopenssl verify -verbose cert.pemPrint extra information about verification steps

πŸ“œ SYNOPSIS

openssl command [ options ... ] [ parameters ... ]

πŸ“ DESCRIPTION

There are many situations where X.509 certificates are verified within the OpenSSL libraries and in various OpenSSL commands.

Certificate verification is implemented by X509_verify_cert(3). It is a complicated process consisting of a number of steps and depending on numerous options. The most important of them are detailed in the following sections.

In a nutshell, a valid chain of certificates needs to be built up and verified starting from the target certificate that is to be verified and ending in a certificate that due to some policy is trusted. Verification is done relative to the given purpose, which is the intended use of the target certificate, such as SSL server, or by default for any purpose.

The details of how each OpenSSL command handles errors are documented on the specific command page.

DANE support is documented in openssl-s_client(1), SSL_CTX_dane_enable(3), SSL_set1_host(3), X509_VERIFY_PARAM_set_flags(3), and X509_check_host(3).

πŸ”’ Trust Anchors

In general, according to RFC 4158 and RFC 5280, a trust anchor is any public key and related subject distinguished name (DN) that for some reason is considered trusted and thus is acceptable as the root of a chain of certificates.

In practice, trust anchors are given in the form of certificates, where their essential fields are the public key and the subject DN. In addition to the requirements in RFC 5280, OpenSSL checks the validity period of such certificates and makes use of some further fields. In particular, the subject key identifier extension, if present, is used for matching trust anchors during chain building.

In the most simple and common case, trust anchors are by default all self-signed "root" CA certificates that are placed in the trust store, which is a collection of certificates that are trusted for certain uses. This is akin to what is used in the trust stores of Mozilla Firefox, or Apple's and Microsoft's certificate stores, ...

From the OpenSSL perspective, a trust anchor is a certificate that should be augmented with an explicit designation for which uses of a target certificate the certificate may serve as a trust anchor. In PEM encoding, this is indicated by the "TRUSTED CERTIFICATE" string. Such a designation provides a set of positive trust attributes explicitly stating trust for the listed purposes and/or a set of negative trust attributes explicitly rejecting the use for the listed purposes. The purposes are encoded using the values defined for the extended key usages (EKUs) that may be given in X.509 extensions of end-entity certificates. See also the "Extended Key Usage" section below.

The currently recognized uses are clientAuth (SSL client use), serverAuth (SSL server use), emailProtection (S/MIME email use), codeSigning (object signer use), OCSPSigning (OCSP responder use), OCSP (OCSP request use), timeStamping (TSA server use), and anyExtendedKeyUsage. As of OpenSSL 1.1.0, the last of these blocks all uses when rejected or enables all uses when trusted.

A certificate, which may be CA certificate or an end-entity certificate, is considered a trust anchor for the given use if and only if all the following conditions hold:

πŸ”— Certification Path Building

First, a certificate chain is built up starting from the target certificate and ending in a trust anchor.

The chain is built up iteratively, looking up in turn a certificate with suitable key usage that matches as an issuer of the current "subject" certificate as described below. If there is such a certificate, the first one found that is currently valid is taken, otherwise the one that expired most recently of all such certificates. For efficiency, no backtracking is performed, thus any further candidate issuer certificates that would match equally are ignored.

When a self-signed certificate has been added, chain construction stops. In this case it must fully match a trust anchor, otherwise chain building fails.

A candidate issuer certificate matches a subject certificate if all of the following conditions hold:

The lookup first searches for issuer certificates in the trust store. If it does not find a match there it consults the list of untrusted ("intermediate" CA) certificates, if provided.

πŸ” Certification Path Validation

When the certificate chain building process was successful the chain components and their links are checked thoroughly.

The first step is to check that each certificate is well-formed. Part of these checks are enabled only if the -x509_strict option is given.

The second step is to check the extensions of every untrusted certificate for consistency with the supplied purpose. If the -purpose option is not given then no such checks are done except for SSL/TLS connection setup, where by default "sslserver" or "sslclient", are checked. The target or "leaf" certificate, as well as any other untrusted certificates, must have extensions compatible with the specified purpose. All certificates except the target or "leaf" must also be valid CA certificates. The precise extensions required are described in more detail in "CERTIFICATE EXTENSIONS" in openssl-x509(1).

The third step is to check the trust settings on the last certificate (which typically is a self-signed root CA certificate). It must be trusted for the given use. For compatibility with previous versions of OpenSSL, a self-signed certificate with no trust attributes is considered to be valid for all uses.

The fourth, and final, step is to check the validity of the certificate chain. For each element in the chain, including the root CA certificate, the validity period as specified by the "notBefore" and "notAfter" fields is checked against the current system time. The -attime flag may be used to use a reference time other than "now." The certificate signature is checked as well (except for the signature of the typically self-signed root CA certificate, which is verified only if the -check_ss_sig option is given). When verifying a certificate signature the keyUsage extension (if present) of the candidate issuer certificate is checked to permit digitalSignature for signing proxy certificates or to permit keyCertSign for signing other certificates, respectively. If all operations complete successfully then certificate is considered valid. If any operation fails then the certificate is not valid.

βš™οΈ OPTIONS

πŸ” Trusted Certificate Options

The following options specify how to supply the certificates that can be used as trust anchors for certain uses. As mentioned, a collection of such certificates is called a trust store.

Note that OpenSSL does not provide a default set of trust anchors. Many Linux distributions include a system default and configure OpenSSL to point to that. Mozilla maintains an influential trust store that can be found at https://www.mozilla.org/en-US/about/governance/policies/security-group/certs/.

The certificates to add to the trust store can be specified using following options.

πŸ” Verification Options

The certificate verification can be fine-tuned with the following flags.

πŸ”— Extended Verification Options

Sometimes there may be more than one certificate chain leading to an end-entity certificate. This usually happens when a root or intermediate CA signs a certificate for another a CA in other organization. Another reason is when a CA might have intermediates that use two different signature formats, such as a SHA-1 and a SHA-256 digest.

The following options can be used to provide data that will allow the OpenSSL command to generate an alternative chain.

πŸ“œ Certificate Extensions

Options like -purpose lead to checking the certificate extensions, which determine what the target certificate and intermediate CA certificates can be used for.

πŸ”’ Basic Constraints

The basicConstraints extension CA flag is used to determine whether the certificate can be used as a CA. If the CA flag is true then it is a CA, if the CA flag is false then it is not a CA. All CAs should have the CA flag set to true.

If the basicConstraints extension is absent, which includes the case that it is an X.509v1 certificate, then the certificate is considered to be a "possible CA" and other extensions are checked according to the intended use of the certificate. The treatment of certificates without basicConstraints as a CA is presently supported, but this could change in the future.

πŸ”‘ Key Usage

If the keyUsage extension is present then additional restraints are made on the uses of the certificate. A CA certificate must have the keyCertSign bit set if the keyUsage extension is present.

πŸ”‘ Extended Key Usage

The extKeyUsage (EKU) extension places additional restrictions on the certificate uses. If this extension is present (whether critical or not) the key can only be used for the purposes specified.

A complete description of each check is given below. The comments about basicConstraints and keyUsage and X.509v1 certificates above apply to all CA certificates.

πŸ–₯️ SSL Client

πŸ–₯️ SSL Client CA

πŸ–₯️ SSL Server

πŸ–₯️ SSL Server CA

🌐 Netscape SSL Server

πŸ“§ Common S/MIME Client Tests

✍️ S/MIME Signing

πŸ”’ S/MIME Encryption

πŸ“§ S/MIME CA

πŸ“‹ CRL Signing

πŸ“‹ CRL Signing CA

πŸ› BUGS

The issuer checks still suffer from limitations in the underlying X509_LOOKUP API. One consequence of this is that trusted certificates with matching subject name must appear in a file (as specified by the -CAfile option), a directory (as specified by -CApath), or a store (as specified by -CAstore). If there are multiple such matches, possibly in multiple locations, only the first one (in the mentioned order of locations) is recognised.

πŸ“š SEE ALSO

X509_verify_cert(3), openssl-verify(1), openssl-ocsp(1), openssl-ts(1), openssl-s_client(1), openssl-s_server(1), openssl-smime(1), openssl-cmp(1), openssl-cms(1)

πŸ“œ HISTORY

The checks enabled by -x509_strict have been extended in OpenSSL 3.0.

©️ COPYRIGHT

Copyright 2000-2021 The OpenSSL Project Authors. All Rights Reserved.

Licensed under the Apache License 2.0 (the "License"). You may not use this file except in compliance with the License. You can obtain a copy in the file LICENSE in the source distribution or at https://www.openssl.org/source/license.html.

openssl-verification-options(1)
πŸ“– NAME πŸš€ Quick Reference πŸ“œ SYNOPSIS πŸ“ DESCRIPTION
πŸ”’ Trust Anchors πŸ”— Certification Path Building πŸ” Certification Path Validation
βš™οΈ OPTIONS
πŸ” Trusted Certificate Options πŸ” Verification Options πŸ”— Extended Verification Options πŸ“œ Certificate Extensions
πŸ› BUGS πŸ“š SEE ALSO πŸ“œ HISTORY ©️ COPYRIGHT

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