For the legacy schemes with rsaEncryption nothing changes, but if an
actual signature scheme is encoded we use that to find the key and
verify the signature.
The descriptions for the PKCS#7 structure are adapted for CMS.
Some encoders, like those provided by the dnskey and sshkey plugins,
require these separately when encoding keys.
Also fixes the type for the ASN.1 encoding (which is a subjectPublicKeyInfo
structure) depending on the key type. This worked fine for PEM encoding
as the pem plugin doesn't care what the actual type of the key is (which
is encoded in the SPKI structure), but other plugins do (e.g. the sshkey
plugin).
We don't have any information on the issuer of cached OCSP responses, in
particular if the OCSP response is issued by a dedicated OCSP signer,
whose certificate might not be contained in the response or even signed
by the same CA but could just be locally installed. So the only way to
determine if a response applies to the current certificate and its CA
is searching for the response's issuer certificate and verifying that.
However, when using multiple CAs that provide revocation checking via
OCSP, in particular with multi-level CAs (e.g. like the
ikev2-multi-ca/ocsp-signers test scenario), we might have unrelated OCSP
responses in the cache when verifying a particular certificate. In this
case we don't need any confusing
ocsp response verification failed, no signer certificate '...' found
error messages because the response was for a different CA.
Similarly, if lots of clients of the same CA connect there could be lots
of OCSP responses in the cache that, while being applicable to the current
CA, don't have any information on the certificate we are currently
checking. In this case all the
ocsp response correctly signed by "..."
ocsp response contains no status on our certificate
messages don't provide any value.
In the mentioned test scenario, we suppress the
ocsp response verification failed, no signer certificate 'C=CH, O=strongSwan Project, OU=Research OCSP Signing Authority, CN=ocsp.research.strongswan.org' found
message from the cached OCSP response for carol's end-entity certificate
when verifying the "Research" intermediate CA certificate that issued
carol's certificate.
Then the
ocsp response verification failed, no signer certificate 'C=CH, O=strongSwan Project, OU=Research OCSP Signing Authority, CN=ocsp.research.strongswan.org' found
ocsp response verification failed, no signer certificate 'C=CH, O=strongSwan Project, OU=OCSP Signing Authority, CN=ocsp.strongswan.org' found
messages from the cached OCSP responses for carol's end-entity and
intermediate CA certificates when verifying dave's end-entity certificate.
And finally the
ocsp response verification failed, no signer certificate 'C=CH, O=strongSwan Project, OU=Research OCSP Signing Authority, CN=ocsp.research.strongswan.org' found
ocsp response correctly signed by "C=CH, O=strongSwan Project, OU=OCSP Signing Authority, CN=ocsp.strongswan.org"
ocsp response contains no status on our certificate
ocsp response verification failed, no signer certificate 'C=CH, O=strongSwan Project, OU=Sales OCSP Signing Authority, CN=ocsp.sales.strongswan.org' found
messages from the cached OCSP responses for carol's end-entity
certificate, the applicable but unrelated response for carol's "Research"
intermediate CA certificate and the response for dave's end-entity
certificate when verifying dave's "Sales" intermediate CA.
This was the order before 46a6b06282 ("openssl: Only announce ECDH
groups actually supported by OpenSSL") but that's not really the reason
for this change. It's related to the Android app, where we previously
didn't support these DH groups in BoringSSL and added the curve25519
plugin after the openssl plugin instead. This resulted in the same
order, i.e. ECDH groups before curve25519. With the switch to OpenSSL
and the mentioned commit, this changed and curve25519 was now the first
group that was proposed and used for the KE payload. Not really an
issue you'd think, however, there are apparently Zyxel Firewalls with
older firmware versions (some forum posts mentioned a fix in V5.31) that
can't handle KE payloads with DH groups > 21 (ecp521). So with
curve25519 (31) proposed in the KE payload, they silently dropped the
IKE_SA_INIT request and no connection could be established.
If libcurl is built with MultiSSL support (not the case for e.g.
Debian/Ubuntu, which ship separate, conflicting libraries), this allows
selecting the SSL/TLS backend libcurl uses.
Only older versions of OpenSSL and GnuTLS need special treatment, so we
now accept all other backends (e.g. "(SecureTransport) OpenSSL/1.1.1s"
on macOS).
Whenever we remove support for the affected versions of the mentioned
libraries, we can remove the corresponding *-threading plugin feature
and the code here.
The x509 plugin retrieves serial numbers with two's complement
encoding whereas the openssl plugin partially returns them without
leading zeroes.
Serial numbers in X.509 certificates, X.509 CRL, X.509 attribute
certificates, OCSP Requests and OCSP responses are now returned in
canonical form without prepended zero octets.
The wolfSSL's OpenSSL compatibility layer is not used by the plugin at
all and preventing its inclusion avoids conflicts with ASN1_ constants.
The inclusion of wolfssl/ssl.h is moved to the only file that requires
it as older wolfSSL versions defined a conflicting ASN1_GENERALIZEDTIME.
Other changes address issues with the FIPS use case.
Closesstrongswan/strongswan#1332
Malicious servers could otherwise block the fetching thread indefinitely
after the initial TCP handshake (which has a default timeout of 10s
in the curl and winhttp plugins, the soup plugin actually has a default
overall timeout of 10s).
The pattern currently is to call get_cache(), generate the encoding
if that failed and then store it with cache(). The latter adopts the
passed encoding and frees any stored encoding. However, the latter means
that if two threads concurrently fail to get a cached encoding and then
both generate and store one, one of the threads might use an encoding
that was freed by the other thread.
Since encodings are not expected to change, we can avoid this issue by
not replacing an existing cache entry and instead return that (while
freeing the passed value instead of the cached one).
Closesstrongswan/strongswan#1231
When an X.509 certificate has to be renewed it is helpful to use
the old PKCS#10 certificate request as a template, so that the
distinguishedName (DN), the subjectAlternativeName (SAN) and
a certificate profile name don't have to be typed-in again.
The old public key in the existing certreq is replaced with the
new key and the signature is re-generated using the new private key.
The msCertificateTypeExtension OID (1.3.6.1.4.1.311.20.2) can
be used in a PKCS#10 certificate request to define a certificate
profile. It consists of an UTF8 string.
pki: profile option
Rename `encrypt` methods to avoid the following build failure when wolfSSL
is built with --enable-opensslextra:
In file included from ../../../../src/libstrongswan/utils/utils.h:59,
from ../../../../src/libstrongswan/library.h:101,
from wolfssl_common.h:29,
from wolfssl_aead.c:23:
wolfssl_aead.c:90:16: error: conflicting types for 'encrypt'; have '_Bool(union <anonymous>, chunk_t, chunk_t, chunk_t, chunk_t *)'
90 | METHOD(aead_t, encrypt, bool,
| ^~~~~~~
../../../../src/libstrongswan/utils/utils/object.h:99:20: note: in definition of macro 'METHOD'
99 | static ret name(union {iface *_public; this;} \
| ^~~~
In file included from /home/autobuild/autobuild/instance-5/output-1/host/powerpc64le-buildroot-linux-musl/sysroot/usr/include/wolfssl/wolfcrypt/wc_port.h:573,
from /home/autobuild/autobuild/instance-5/output-1/host/powerpc64le-buildroot-linux-musl/sysroot/usr/include/wolfssl/wolfcrypt/types.h:35,
from /home/autobuild/autobuild/instance-5/output-1/host/powerpc64le-buildroot-linux-musl/sysroot/usr/include/wolfssl/wolfcrypt/logging.h:33,
from /home/autobuild/autobuild/instance-5/output-1/host/powerpc64le-buildroot-linux-musl/sysroot/usr/include/wolfssl/ssl.h:35,
from wolfssl_common.h:64,
from wolfssl_aead.c:23:
/home/autobuild/autobuild/instance-5/output-1/host/powerpc64le-buildroot-linux-musl/sysroot/usr/include/unistd.h:149:6: note: previous declaration of 'encrypt' with type 'void(char *, int)'
149 | void encrypt(char *, int);
| ^~~~~~~
Closesstrongswan/strongswan#1201
The content field of type OCTET STRING of a ContentInfo object
with ContentType Data
ContentInfo ::= SEQUENCE {
contentType ContentType,
content
[0] EXPLICIT OCTET STRING OPTIONAL
is optional and can be missing if no data is available
The 5.4.0 update changed the default bignum implementation to what
could explicitly be enabled via `--enable-sp-math-all`. Since this uses
fixed-sized buffers sufficient for key sizes of SP_INT_BITS, with a default
of 4096, modp6144 and modp8192 didn't work anymore (wc_DhGenerateKeyPair()
returned MP_EXPTMOD_E). So we have to adapt the feature checks for this.
To support the larger DH groups we can either increase the buffer size
via `--with-max-rsa-bits` or add `--enable-heapmath` so buffers get
(re-)allocated as needed. We go with the latter for now.
This avoids the use of a variable length array, which should probably
be avoided in general due to potential performance, portability and
security issues (not in this particular case, though).
Closesstrongswan/strongswan#1095
GCC assumes this->b is zero (or may be zero) and spits out the following
warning (or error with -Werror):
src/libstrongswan/plugins/fips_prf/fips_prf.c:124:12: error: array subscript 18446744073709551615 is above array bounds of ‘uint8_t[<U8090>]’ {aka ‘unsigned char[<U8090>]’} [-Werror=array-bounds]
124 | one[this->b - 1] = 0x01;
| ~~~^~~~~~~~~~~~~