# Copyright (c) 2013-2018 by Ron Frederick <ronf@timeheart.net>.
# All rights reserved.
#
# This program and the accompanying materials are made available under
# the terms of the Eclipse Public License v1.0 which accompanies this
# distribution and is available at:
#
# http://www.eclipse.org/legal/epl-v10.html
#
# Contributors:
# Ron Frederick - initial implementation, API, and documentation
"""SSH asymmetric encryption handlers"""
import binascii
from datetime import datetime, timedelta
import os
import re
import time
try:
from .crypto import generate_x509_certificate, import_x509_certificate
_x509_available = True
except ImportError: # pragma: no cover
_x509_available = False
try:
import bcrypt
_bcrypt_available = hasattr(bcrypt, 'kdf')
except ImportError: # pragma: no cover
_bcrypt_available = False
from .asn1 import ASN1DecodeError, BitString, der_encode, der_decode
from .cipher import get_encryption_params, get_cipher
from .misc import ip_network
from .packet import NameList, String, UInt32, UInt64
from .packet import PacketDecodeError, SSHPacket
from .pbe import KeyEncryptionError, pkcs1_encrypt, pkcs8_encrypt
from .pbe import pkcs1_decrypt, pkcs8_decrypt
_public_key_algs = []
_certificate_algs = []
_x509_certificate_algs = []
_public_key_alg_map = {}
_certificate_alg_map = {}
_certificate_version_map = {}
_pem_map = {}
_pkcs8_oid_map = {}
_abs_date_pattern = re.compile(r'\d{8}')
_abs_time_pattern = re.compile(r'\d{14}')
_rel_time_pattern = re.compile(r'(?:(?P<weeks>[+-]?\d+)[Ww]|'
r'(?P<days>[+-]?\d+)[Dd]|'
r'(?P<hours>[+-]?\d+)[Hh]|'
r'(?P<minutes>[+-]?\d+)[Mm]|'
r'(?P<seconds>[+-]?\d+)[Ss])+')
_subject_pattern = re.compile(r'(?:Distinguished[ -_]?Name|Subject|DN)[=:]?\s?',
re.IGNORECASE)
# SSH certificate types
CERT_TYPE_USER = 1
CERT_TYPE_HOST = 2
_OPENSSH_KEY_V1 = b'openssh-key-v1\0'
_OPENSSH_SALT_LEN = 16
_OPENSSH_WRAP_LEN = 70
def _parse_time(t):
"""Parse a time value"""
if isinstance(t, int):
return t
elif isinstance(t, float):
return int(t)
elif isinstance(t, datetime):
return int(t.timestamp())
elif isinstance(t, str):
if t == 'now':
return int(time.time())
match = _abs_date_pattern.fullmatch(t)
if match:
return int(datetime.strptime(t, '%Y%m%d').timestamp())
match = _abs_time_pattern.fullmatch(t)
if match:
return int(datetime.strptime(t, '%Y%m%d%H%M%S').timestamp())
match = _rel_time_pattern.fullmatch(t)
if match:
delta = {k: int(v) for k, v in match.groupdict(0).items()}
return int(time.time() + timedelta(**delta).total_seconds())
raise ValueError('Unrecognized time value')
def _wrap_base64(data, wrap=64):
"""Break a Base64 value into multiple lines."""
data = binascii.b2a_base64(data)[:-1]
return b'\n'.join(data[i:i+wrap]
for i in range(0, len(data), wrap)) + b'\n'
[docs]class KeyGenerationError(ValueError):
"""Key generation error
This exception is raised by :func:`generate_private_key`,
:meth:`generate_user_certificate() <SSHKey.generate_user_certificate>`
or :meth:`generate_host_certificate()
<SSHKey.generate_host_certificate>` when the requested parameters are
unsupported.
"""
[docs]class KeyImportError(ValueError):
"""Key import error
This exception is raised by key import functions when the
data provided cannot be imported as a valid key.
"""
[docs]class KeyExportError(ValueError):
"""Key export error
This exception is raised by key export functions when the
requested format is unknown or encryption is requested for a
format which doesn't support it.
"""
[docs]class SSHKey:
"""Parent class which holds an asymmetric encryption key"""
algorithm = None
sig_algorithms = None
x509_algorithms = None
all_sig_algorithms = None
pem_name = None
pkcs8_oid = None
def __init__(self, key=None):
self._key = key
self._comment = None
@property
def pyca_key(self):
"""Return PyCA key for use in X.509 module"""
return self._key.pyca_key
def _generate_certificate(self, key, version, serial, cert_type,
key_id, principals, valid_after,
valid_before, cert_options, comment):
"""Generate a new SSH certificate"""
valid_after = _parse_time(valid_after)
valid_before = _parse_time(valid_before)
if valid_before <= valid_after:
raise ValueError('Valid before time must be later than '
'valid after time')
try:
algorithm, cert_handler = _certificate_version_map[key.algorithm,
version]
except KeyError:
raise KeyGenerationError('Unknown certificate version') from None
return cert_handler.generate(self, algorithm, key, serial, cert_type,
key_id, principals, valid_after,
valid_before, cert_options, comment)
def _generate_x509_certificate(self, key, subject, issuer, serial,
valid_after, valid_before, ca, ca_path_len,
purposes, user_principals, host_principals,
hash_alg, comment):
"""Generate a new X.509 certificate"""
if not _x509_available: # pragma: no cover
raise KeyGenerationError('X.509 certificate generation '
'requires PyOpenSSL')
if not self.x509_algorithms:
raise KeyGenerationError('X.509 certificate generation not '
'supported for ' + self.get_algorithm() +
' keys')
valid_after = _parse_time(valid_after)
valid_before = _parse_time(valid_before)
if valid_before <= valid_after:
raise ValueError('Valid before time must be later than '
'valid after time')
return SSHX509Certificate.generate(self, key, subject, issuer, serial,
valid_after, valid_before, ca,
ca_path_len, purposes,
user_principals, host_principals,
hash_alg, comment)
[docs] def get_algorithm(self):
"""Return the algorithm associated with this key"""
return self.algorithm.decode('ascii')
def sign_der(self, data, sig_algorithm):
"""Abstract method to compute a DER-encoded signature"""
raise NotImplementedError
def verify_der(self, data, sig_algorithm, sig):
"""Abstract method to verify a DER-encoded signature"""
raise NotImplementedError
def sign_ssh(self, data, sig_algorithm):
"""Abstract method to compute an SSH-encoded signature"""
raise NotImplementedError
def verify_ssh(self, data, sig_algorithm, sig):
"""Abstract method to verify an SSH-encoded signature"""
raise NotImplementedError
def sign(self, data, sig_algorithm):
"""Return an SSH-encoded signature of the specified data"""
if sig_algorithm not in self.all_sig_algorithms:
raise ValueError('Unrecognized signature algorithm')
return b''.join((String(sig_algorithm),
String(self.sign_ssh(data, sig_algorithm))))
def verify(self, data, sig):
"""Verify an SSH signature of the specified data using this key"""
try:
packet = SSHPacket(sig)
sig_algorithm = packet.get_string()
sig = packet.get_string()
packet.check_end()
if sig_algorithm not in self.all_sig_algorithms:
return False
return self.verify_ssh(data, sig_algorithm, sig)
except PacketDecodeError:
return False
def encode_pkcs1_private(self):
"""Export parameters associated with a PKCS#1 private key"""
# pylint: disable=no-self-use
raise KeyExportError('PKCS#1 private key export not supported')
def encode_pkcs1_public(self):
"""Export parameters associated with a PKCS#1 public key"""
# pylint: disable=no-self-use
raise KeyExportError('PKCS#1 public key export not supported')
def encode_pkcs8_private(self):
"""Export parameters associated with a PKCS#8 private key"""
# pylint: disable=no-self-use
raise KeyExportError('PKCS#8 private key export not supported')
def encode_pkcs8_public(self):
"""Export parameters associated with a PKCS#8 public key"""
# pylint: disable=no-self-use
raise KeyExportError('PKCS#8 public key export not supported')
def encode_ssh_private(self):
"""Export parameters associated with an OpenSSH private key"""
# pylint: disable=no-self-use
raise KeyExportError('OpenSSH private key export not supported')
def encode_ssh_public(self):
"""Export parameters associated with an OpenSSH public key"""
# pylint: disable=no-self-use
raise KeyExportError('OpenSSH public key export not supported')
def get_ssh_private_key(self):
"""Return OpenSSH private key in binary format"""
return String(self.algorithm) + self.encode_ssh_private()
def get_ssh_public_key(self):
"""Return OpenSSH public key in binary format"""
return String(self.algorithm) + self.encode_ssh_public()
[docs] def convert_to_public(self):
"""Return public key corresponding to this key
This method converts an :class:`SSHKey` object which contains
a private key into one which contains only the corresponding
public key. If it is called on something which is already
a public key, it has no effect.
"""
result = decode_ssh_public_key(self.get_ssh_public_key())
result.set_comment(self.get_comment_bytes())
return result
[docs] def generate_user_certificate(self, user_key, key_id, version=1,
serial=0, principals=(), valid_after=0,
valid_before=0xffffffffffffffff,
force_command=None, source_address=None,
permit_x11_forwarding=True,
permit_agent_forwarding=True,
permit_port_forwarding=True,
permit_pty=True, permit_user_rc=True,
comment=()):
"""Generate a new SSH user certificate
This method returns an SSH user certifcate with the requested
attributes signed by this private key.
:param user_key:
The user's public key.
:param key_id:
The key identifier associated with this certificate.
:param version: (optional)
The version of certificate to create, defaulting to 1.
:param serial: (optional)
The serial number of the certificate, defaulting to 0.
:param principals: (optional)
The user names this certificate is valid for. By default,
it can be used with any user name.
:param valid_after: (optional)
The earliest time the certificate is valid for, defaulting to
no restriction on when the certificate starts being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param valid_before: (optional)
The latest time the certificate is valid for, defaulting to
no restriction on when the certificate stops being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param force_command: (optional)
The command (if any) to force a session to run when this
certificate is used.
:param source_address: (optional)
A list of source addresses and networks for which the
certificate is valid, defaulting to all addresses.
:param permit_x11_forwarding: (optional)
Whether or not to allow this user to use X11 forwarding,
defaulting to `True`.
:param permit_agent_forwarding: (optional)
Whether or not to allow this user to use agent forwarding,
defaulting to `True`.
:param permit_port_forwarding: (optional)
Whether or not to allow this user to use port forwarding,
defaulting to `True`.
:param permit_pty: (optional)
Whether or not to allow this user to allocate a
pseudo-terminal, defaulting to `True`.
:param permit_user_rc: (optional)
Whether or not to run the user rc file when this certificate
is used, defaulting to `True`.
:param comment:
The comment to associate with this certificate. By default,
the comment will be set to the comment currently set on
user_key.
:type user_key: :class:`SSHKey`
:type key_id: `str`
:type version: `int`
:type serial: `int`
:type principals: `list` of `str`
:type force_command: `str` or `None`
:type source_address: list of ip_address and ip_network values
:type permit_x11_forwarding: `bool`
:type permit_agent_forwarding: `bool`
:type permit_port_forwarding: `bool`
:type permit_pty: `bool`
:type permit_user_rc: `bool`
:type comment: `str`, `bytes`, or `None`
:returns: :class:`SSHCertificate`
:raises: | :exc:`ValueError` if the validity times are invalid
| :exc:`KeyGenerationError` if the requested certificate
parameters are unsupported
"""
cert_options = {}
if force_command:
cert_options['force-command'] = force_command
if source_address:
cert_options['source-address'] = [ip_network(addr)
for addr in source_address]
if permit_x11_forwarding:
cert_options['permit-X11-forwarding'] = True
if permit_agent_forwarding:
cert_options['permit-agent-forwarding'] = True
if permit_port_forwarding:
cert_options['permit-port-forwarding'] = True
if permit_pty:
cert_options['permit-pty'] = True
if permit_user_rc:
cert_options['permit-user-rc'] = True
if comment == ():
comment = user_key.get_comment_bytes()
return self._generate_certificate(user_key, version, serial,
CERT_TYPE_USER, key_id,
principals, valid_after,
valid_before, cert_options, comment)
[docs] def generate_host_certificate(self, host_key, key_id, version=1,
serial=0, principals=(), valid_after=0,
valid_before=0xffffffffffffffff,
comment=()):
"""Generate a new SSH host certificate
This method returns an SSH host certifcate with the requested
attributes signed by this private key.
:param host_key:
The host's public key.
:param key_id:
The key identifier associated with this certificate.
:param version: (optional)
The version of certificate to create, defaulting to 1.
:param serial: (optional)
The serial number of the certificate, defaulting to 0.
:param principals: (optional)
The host names this certificate is valid for. By default,
it can be used with any host name.
:param valid_after: (optional)
The earliest time the certificate is valid for, defaulting to
no restriction on when the certificate starts being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param valid_before: (optional)
The latest time the certificate is valid for, defaulting to
no restriction on when the certificate stops being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param comment:
The comment to associate with this certificate. By default,
the comment will be set to the comment currently set on
host_key.
:type host_key: :class:`SSHKey`
:type key_id: `str`
:type version: `int`
:type serial: `int`
:type principals: `list` of `str`
:type comment: `str`, `bytes`, or `None`
:returns: :class:`SSHCertificate`
:raises: | :exc:`ValueError` if the validity times are invalid
| :exc:`KeyGenerationError` if the requested certificate
parameters are unsupported
"""
if comment == ():
comment = host_key.get_comment_bytes()
return self._generate_certificate(host_key, version, serial,
CERT_TYPE_HOST, key_id,
principals, valid_after,
valid_before, {}, comment)
[docs] def generate_x509_user_certificate(self, user_key, subject, issuer=None,
serial=None, principals=(),
valid_after=0,
valid_before=0xffffffffffffffff,
purposes='secureShellClient',
hash_alg='sha256', comment=()):
"""Generate a new X.509 user certificate
This method returns an X.509 user certifcate with the requested
attributes signed by this private key.
:param user_key:
The user's public key.
:param subject:
The subject name in the certificate, expresed as a
comma-separated list of X.509 `name=value` pairs.
:param issuer: (optional)
The issuer name in the certificate, expresed as a
comma-separated list of X.509 `name=value` pairs. If
not specified, the subject name will be used, creating
a self-signed certificate.
:param serial: (optional)
The serial number of the certificate, defaulting to a random
64-bit value.
:param principals: (optional)
The user names this certificate is valid for. By default,
it can be used with any user name.
:param valid_after: (optional)
The earliest time the certificate is valid for, defaulting to
no restriction on when the certificate starts being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param valid_before: (optional)
The latest time the certificate is valid for, defaulting to
no restriction on when the certificate stops being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param purposes: (optional)
The allowed purposes for this certificate or `None` to
not restrict the certificate's purpose, defaulting to
'secureShellClient'
:param hash_alg: (optional)
The hash algorithm to use when signing the new certificate,
defaulting to SHA256.
:param comment: (optional)
The comment to associate with this certificate. By default,
the comment will be set to the comment currently set on
user_key.
:type user_key: :class:`SSHKey`
:type subject: `str`
:type issuer: `str`
:type serial: `int`
:type principals: `list` of `str`
:type purposes: `list` of `str` or `None`
:type hash_alg: `str`
:type comment: `str`, `bytes`, or `None`
:returns: :class:`SSHCertificate`
:raises: | :exc:`ValueError` if the validity times are invalid
| :exc:`KeyGenerationError` if the requested certificate
parameters are unsupported
"""
if comment == ():
comment = user_key.get_comment_bytes()
return self._generate_x509_certificate(user_key, subject, issuer,
serial, valid_after,
valid_before, False, None,
purposes, principals, (),
hash_alg, comment)
[docs] def generate_x509_host_certificate(self, host_key, subject, issuer=None,
serial=None, principals=(),
valid_after=0,
valid_before=0xffffffffffffffff,
purposes='secureShellServer',
hash_alg='sha256', comment=()):
"""Generate a new X.509 host certificate
This method returns a X.509 host certifcate with the requested
attributes signed by this private key.
:param host_key:
The host's public key.
:param subject:
The subject name in the certificate, expresed as a
comma-separated list of X.509 `name=value` pairs.
:param issuer: (optional)
The issuer name in the certificate, expresed as a
comma-separated list of X.509 `name=value` pairs. If
not specified, the subject name will be used, creating
a self-signed certificate.
:param serial: (optional)
The serial number of the certificate, defaulting to a random
64-bit value.
:param principals: (optional)
The host names this certificate is valid for. By default,
it can be used with any host name.
:param valid_after: (optional)
The earliest time the certificate is valid for, defaulting to
no restriction on when the certificate starts being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param valid_before: (optional)
The latest time the certificate is valid for, defaulting to
no restriction on when the certificate stops being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param purposes: (optional)
The allowed purposes for this certificate or `None` to
not restrict the certificate's purpose, defaulting to
'secureShellServer'
:param hash_alg: (optional)
The hash algorithm to use when signing the new certificate,
defaulting to SHA256.
:param comment: (optional)
The comment to associate with this certificate. By default,
the comment will be set to the comment currently set on
host_key.
:type host_key: :class:`SSHKey`
:type subject: `str`
:type issuer: `str`
:type serial: `int`
:type principals: `list` of `str`
:type purposes: `list` of `str` or `None`
:type hash_alg: `str`
:type comment: `str`, `bytes`, or `None`
:returns: :class:`SSHCertificate`
:raises: | :exc:`ValueError` if the validity times are invalid
| :exc:`KeyGenerationError` if the requested certificate
parameters are unsupported
"""
if comment == ():
comment = host_key.get_comment_bytes()
return self._generate_x509_certificate(host_key, subject, issuer,
serial, valid_after,
valid_before, False, None,
purposes, (), principals,
hash_alg, comment)
[docs] def generate_x509_ca_certificate(self, ca_key, subject, issuer=None,
serial=None, valid_after=0,
valid_before=0xffffffffffffffff,
ca_path_len=None, hash_alg='sha256',
comment=()):
"""Generate a new X.509 CA certificate
This method returns a X.509 CA certifcate with the requested
attributes signed by this private key.
:param ca_key:
The new CA's public key.
:param subject:
The subject name in the certificate, expresed as a
comma-separated list of X.509 `name=value` pairs.
:param issuer: (optional)
The issuer name in the certificate, expresed as a
comma-separated list of X.509 `name=value` pairs. If
not specified, the subject name will be used, creating
a self-signed certificate.
:param serial: (optional)
The serial number of the certificate, defaulting to a random
64-bit value.
:param valid_after: (optional)
The earliest time the certificate is valid for, defaulting to
no restriction on when the certificate starts being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param valid_before: (optional)
The latest time the certificate is valid for, defaulting to
no restriction on when the certificate stops being valid.
See :ref:`SpecifyingTimeValues` for allowed time specifications.
:param ca_path_len: (optional)
The maximum number of levels of intermediate CAs allowed
below this new CA or `None` to not enforce a limit,
defaulting to no limit.
:param hash_alg: (optional)
The hash algorithm to use when signing the new certificate,
defaulting to SHA256.
:param comment: (optional)
The comment to associate with this certificate. By default,
the comment will be set to the comment currently set on
ca_key.
:type ca_key: :class:`SSHKey`
:type subject: `str`
:type issuer: `str`
:type serial: `int`
:type ca_path_len: `int` or `None`
:type hash_alg: `str`
:type comment: `str`, `bytes`, or `None`
:returns: :class:`SSHCertificate`
:raises: | :exc:`ValueError` if the validity times are invalid
| :exc:`KeyGenerationError` if the requested certificate
parameters are unsupported
"""
if comment == ():
comment = ca_key.get_comment_bytes()
return self._generate_x509_certificate(ca_key, subject, issuer,
serial, valid_after,
valid_before, True,
ca_path_len, None, (), (),
hash_alg, comment)
[docs] def export_private_key(self, format_name='openssh', passphrase=None,
cipher_name='aes256-cbc', hash_name='sha256',
pbe_version=2, rounds=128, ignore_few_rounds=False):
"""Export a private key in the requested format
This method returns this object's private key encoded in the
requested format. If a passphrase is specified, the key will
be exported in encrypted form.
Available formats include:
pkcs1-der, pkcs1-pem, pkcs8-der, pkcs8-pem, openssh
By default, openssh format will be used.
Encryption is supported in pkcs1-pem, pkcs8-der, pkcs8-pem,
and openssh formats. For pkcs1-pem, only the cipher can be
specified. For pkcs8-der and pkcs-8, cipher, hash and PBE
version can be specified. For openssh, cipher and rounds
can be specified.
Available ciphers for pkcs1-pem are:
aes128-cbc, aes192-cbc, aes256-cbc, des-cbc, des3-cbc
Available ciphers for pkcs8-der and pkcs8-pem are:
aes128-cbc, aes192-cbc, aes256-cbc, blowfish-cbc,
cast128-cbc, des-cbc, des2-cbc, des3-cbc, rc4-40, rc4-128
Available ciphers for openssh format include the following
:ref:`encryption algorithms <EncryptionAlgs>`.
Available hashes include:
md5, sha1, sha256, sha384, sha512
Available PBE versions include 1 for PBES1 and 2 for PBES2.
Not all combinations of cipher, hash, and version are supported.
The default cipher is aes256. In the pkcs8 formats, the default
hash is sha256 and default version is PBES2.
In openssh format, the default number of rounds is 128.
.. note:: The openssh format uses bcrypt for encryption, but
unlike the traditional bcrypt cost factor used in
password hashing which scales logarithmically, the
encryption strength here scales linearly with the
rounds value. Since the cipher is rekeyed 64 times
per round, the default rounds value of 128 corresponds
to 8192 total iterations, which is the equivalent of
a bcrypt cost factor of 13.
:param format_name: (optional)
The format to export the key in.
:param passphrase: (optional)
A passphrase to encrypt the private key with.
:param cipher_name: (optional)
The cipher to use for private key encryption.
:param hash_name: (optional)
The hash to use for private key encryption.
:param pbe_version: (optional)
The PBE version to use for private key encryption.
:param rounds: (optional)
The number of KDF rounds to apply to the passphrase.
:type format_name: `str`
:type passphrase: `str` or `bytes`
:type cipher_name: `str`
:type hash_name: `str`
:type pbe_version: `int`
:type rounds: `int`
:returns: `bytes` representing the exported private key
"""
if format_name in ('pkcs1-der', 'pkcs1-pem'):
data = der_encode(self.encode_pkcs1_private())
if passphrase is not None:
if format_name == 'pkcs1-der':
raise KeyExportError('PKCS#1 DER format does not support '
'private key encryption')
alg, iv, data = pkcs1_encrypt(data, cipher_name, passphrase)
headers = (b'Proc-Type: 4,ENCRYPTED\n' +
b'DEK-Info: ' + alg + b',' +
binascii.b2a_hex(iv).upper() + b'\n\n')
else:
headers = b''
if format_name == 'pkcs1-pem':
keytype = self.pem_name + b' PRIVATE KEY'
data = (b'-----BEGIN ' + keytype + b'-----\n' +
headers + _wrap_base64(data) +
b'-----END ' + keytype + b'-----\n')
return data
elif format_name in ('pkcs8-der', 'pkcs8-pem'):
alg_params, data = self.encode_pkcs8_private()
data = der_encode((0, (self.pkcs8_oid, alg_params), data))
if passphrase is not None:
data = pkcs8_encrypt(data, cipher_name, hash_name,
pbe_version, passphrase)
if format_name == 'pkcs8-pem':
if passphrase is not None:
keytype = b'ENCRYPTED PRIVATE KEY'
else:
keytype = b'PRIVATE KEY'
data = (b'-----BEGIN ' + keytype + b'-----\n' +
_wrap_base64(data) +
b'-----END ' + keytype + b'-----\n')
return data
elif format_name == 'openssh':
check = os.urandom(4)
nkeys = 1
data = b''.join((check, check, self.get_ssh_private_key(),
String(self.get_comment_bytes() or b'')))
if passphrase is not None:
try:
alg = cipher_name.encode('ascii')
key_size, iv_size, block_size, mode = \
get_encryption_params(alg)
except (KeyError, UnicodeEncodeError):
raise KeyEncryptionError('Unknown cipher: %s' %
cipher_name) from None
if not _bcrypt_available: # pragma: no cover
raise KeyExportError('OpenSSH private key encryption '
'requires bcrypt with KDF support')
kdf = b'bcrypt'
salt = os.urandom(_OPENSSH_SALT_LEN)
kdf_data = b''.join((String(salt), UInt32(rounds)))
if isinstance(passphrase, str):
passphrase = passphrase.encode('utf-8')
# pylint: disable=no-member
key = bcrypt.kdf(passphrase, salt, key_size + iv_size,
rounds, ignore_few_rounds)
# pylint: enable=no-member
cipher = get_cipher(alg, key[:key_size], key[key_size:])
block_size = max(block_size, 8)
else:
cipher = None
alg = b'none'
kdf = b'none'
kdf_data = b''
block_size = 8
mac = b''
pad = len(data) % block_size
if pad: # pragma: no branch
data = data + bytes(range(1, block_size + 1 - pad))
if cipher:
if mode == 'chacha':
data, mac = cipher.encrypt_and_sign(b'', data, UInt64(0))
elif mode == 'gcm':
data, mac = cipher.encrypt_and_sign(b'', data)
else:
data, mac = cipher.encrypt(data), b''
data = b''.join((_OPENSSH_KEY_V1, String(alg), String(kdf),
String(kdf_data), UInt32(nkeys),
String(self.get_ssh_public_key()),
String(data), mac))
return (b'-----BEGIN OPENSSH PRIVATE KEY-----\n' +
_wrap_base64(data, _OPENSSH_WRAP_LEN) +
b'-----END OPENSSH PRIVATE KEY-----\n')
else:
raise KeyExportError('Unknown export format')
[docs] def export_public_key(self, format_name='openssh'):
"""Export a public key in the requested format
This method returns this object's public key encoded in the
requested format. Available formats include:
pkcs1-der, pkcs1-pem, pkcs8-der, pkcs8-pem, openssh, rfc4716
By default, openssh format will be used.
:param format_name: (optional)
The format to export the key in.
:type format_name: `str`
:returns: `bytes` representing the exported public key
"""
if format_name in ('pkcs1-der', 'pkcs1-pem'):
data = der_encode(self.encode_pkcs1_public())
if format_name == 'pkcs1-pem':
keytype = self.pem_name + b' PUBLIC KEY'
data = (b'-----BEGIN ' + keytype + b'-----\n' +
_wrap_base64(data) +
b'-----END ' + keytype + b'-----\n')
return data
elif format_name in ('pkcs8-der', 'pkcs8-pem'):
alg_params, data = self.encode_pkcs8_public()
data = der_encode(((self.pkcs8_oid, alg_params), BitString(data)))
if format_name == 'pkcs8-pem':
data = (b'-----BEGIN PUBLIC KEY-----\n' +
_wrap_base64(data) +
b'-----END PUBLIC KEY-----\n')
return data
elif format_name == 'openssh':
data = self.get_ssh_public_key()
if self._comment:
comment = b' ' + self._comment
else:
comment = b''
return (self.algorithm + b' ' +
binascii.b2a_base64(data)[:-1] + comment + b'\n')
elif format_name == 'rfc4716':
data = self.get_ssh_public_key()
if self._comment:
comment = (b'Comment: "' + self._comment + b'"\n')
else:
comment = b''
return (b'---- BEGIN SSH2 PUBLIC KEY ----\n' +
comment + _wrap_base64(data) +
b'---- END SSH2 PUBLIC KEY ----\n')
else:
raise KeyExportError('Unknown export format')
[docs] def write_private_key(self, filename, *args, **kwargs):
"""Write a private key to a file in the requested format
This method is a simple wrapper around :meth:`export_private_key`
which writes the exported key data to a file.
:param filename:
The filename to write the private key to.
:param \\*args,\\ \\*\\*kwargs:
Additional arguments to pass through to
:meth:`export_private_key`.
:type filename: `str`
"""
with open(filename, 'wb') as f:
f.write(self.export_private_key(*args, **kwargs))
[docs] def write_public_key(self, filename, *args, **kwargs):
"""Write a public key to a file in the requested format
This method is a simple wrapper around :meth:`export_public_key`
which writes the exported key data to a file.
:param filename:
The filename to write the public key to.
:param \\*args,\\ \\*\\*kwargs:
Additional arguments to pass through to
:meth:`export_public_key`.
:type filename: `str`
"""
with open(filename, 'wb') as f:
f.write(self.export_public_key(*args, **kwargs))
[docs] def append_private_key(self, filename, *args, **kwargs):
"""Append a private key to a file in the requested format
This method is a simple wrapper around :meth:`export_private_key`
which appends the exported key data to an existing file.
:param filename:
The filename to append the private key to.
:param \\*args,\\ \\*\\*kwargs:
Additional arguments to pass through to
:meth:`export_private_key`.
:type filename: `str`
"""
with open(filename, 'ab') as f:
f.write(self.export_private_key(*args, **kwargs))
[docs] def append_public_key(self, filename, *args, **kwargs):
"""Append a public key to a file in the requested format
This method is a simple wrapper around :meth:`export_public_key`
which appends the exported key data to an existing file.
:param filename:
The filename to append the public key to.
:param \\*args,\\ \\*\\*kwargs:
Additional arguments to pass through to
:meth:`export_public_key`.
:type filename: `str`
"""
with open(filename, 'ab') as f:
f.write(self.export_public_key(*args, **kwargs))
[docs]class SSHCertificate:
"""Parent class which holds an SSH certificate"""
is_x509 = False
is_x509_chain = False
def __init__(self, algorithm, sig_algorithms, host_key_algorithms,
key, data, comment):
self.algorithm = algorithm
self.sig_algorithms = sig_algorithms
self.host_key_algorithms = host_key_algorithms
self.key = key
self.data = data
self.set_comment(comment)
def __eq__(self, other):
return isinstance(other, type(self)) and self.data == other.data
def __hash__(self):
return hash(self.data)
[docs] def get_algorithm(self):
"""Return the algorithm associated with this certificate"""
return self.algorithm.decode('ascii')
[docs] def export_certificate(self, format_name='openssh'):
"""Export a certificate in the requested format
This function returns this certificate encoded in the requested
format. Available formats include:
der, pem, openssh, rfc4716
By default, OpenSSH format will be used.
:param format_name: (optional)
The format to export the certificate in.
:type format_name: `str`
:returns: `bytes` representing the exported certificate
"""
if self.is_x509:
if format_name == 'rfc4716':
raise KeyExportError('RFC4716 format is not supported for '
'X.509 certificates')
else:
if format_name in ('der', 'pem'):
raise KeyExportError('DER and PEM formats are not supported '
'for OpenSSH certificates')
if format_name == 'der':
return self.data
elif format_name == 'pem':
return (b'-----BEGIN CERTIFICATE-----\n' +
_wrap_base64(self.data) +
b'-----END CERTIFICATE-----\n')
elif format_name == 'openssh':
if self._comment:
comment = b' ' + self._comment
else:
comment = b''
return (self.algorithm + b' ' +
binascii.b2a_base64(self.data)[:-1] + comment + b'\n')
elif format_name == 'rfc4716':
if self._comment:
comment = (b'Comment: "' + self._comment + b'"\n')
else:
comment = b''
return (b'---- BEGIN SSH2 PUBLIC KEY ----\n' +
comment + _wrap_base64(self.data) +
b'---- END SSH2 PUBLIC KEY ----\n')
else:
raise KeyExportError('Unknown export format')
[docs] def write_certificate(self, filename, *args, **kwargs):
"""Write a certificate to a file in the requested format
This function is a simple wrapper around export_certificate
which writes the exported certificate to a file.
:param filename:
The filename to write the certificate to.
:param \\*args,\\ \\*\\*kwargs:
Additional arguments to pass through to
:meth:`export_certificate`.
:type filename: `str`
"""
with open(filename, 'wb') as f:
f.write(self.export_certificate(*args, **kwargs))
[docs] def append_certificate(self, filename, *args, **kwargs):
"""Append a certificate to a file in the requested format
This function is a simple wrapper around export_certificate
which appends the exported certificate to an existing file.
:param filename:
The filename to append the certificate to.
:param \\*args,\\ \\*\\*kwargs:
Additional arguments to pass through to
:meth:`export_certificate`.
:type filename: `str`
"""
with open(filename, 'ab') as f:
f.write(self.export_certificate(*args, **kwargs))
class SSHOpenSSHCertificate(SSHCertificate):
"""Class which holds an OpenSSH certificate"""
_user_option_encoders = []
_user_extension_encoders = []
_host_option_encoders = []
_host_extension_encoders = []
_user_option_decoders = {}
_user_extension_decoders = {}
_host_option_decoders = {}
_host_extension_decoders = {}
def __init__(self, algorithm, key, data, principals, options, signing_key,
serial, cert_type, key_id, valid_after, valid_before,
comment):
super().__init__(algorithm, key.sig_algorithms, (algorithm,),
key, data, comment)
self.principals = principals
self.options = options
self.signing_key = signing_key
self._serial = serial
self._cert_type = cert_type
self._key_id = key_id
self._valid_after = valid_after
self._valid_before = valid_before
@classmethod
def generate(cls, signing_key, algorithm, key, serial, cert_type, key_id,
principals, valid_after, valid_before, options, comment):
"""Generate a new SSH certificate"""
principals = list(principals)
cert_principals = b''.join(String(p) for p in principals)
if cert_type == CERT_TYPE_USER:
cert_options = cls._encode_options(options,
cls._user_option_encoders)
cert_extensions = cls._encode_options(options,
cls._user_extension_encoders)
else:
cert_options = cls._encode_options(options,
cls._host_option_encoders)
cert_extensions = cls._encode_options(options,
cls._host_extension_encoders)
key = key.convert_to_public()
data = b''.join((String(algorithm),
cls._encode(key, serial, cert_type, key_id,
cert_principals, valid_after,
valid_before, cert_options,
cert_extensions),
String(signing_key.get_ssh_public_key())))
data += String(signing_key.sign(data, signing_key.algorithm))
signing_key = signing_key.convert_to_public()
return cls(algorithm, key, data, principals, options, signing_key,
serial, cert_type, key_id, valid_after, valid_before,
comment)
@classmethod
def construct(cls, packet, algorithm, key_handler, comment):
"""Construct an SSH certificate from packetized data"""
key_params, serial, cert_type, key_id, \
principals, valid_after, valid_before, \
options, extensions = cls._decode(packet, key_handler)
signing_key = decode_ssh_public_key(packet.get_string())
data = packet.get_consumed_payload()
signature = packet.get_string()
packet.check_end()
if not signing_key.verify(data, signature):
raise KeyImportError('Invalid certificate signature')
key = key_handler.make_public(*key_params)
data = packet.get_consumed_payload()
try:
key_id = key_id.decode('utf-8')
except UnicodeDecodeError:
raise KeyImportError('Invalid characters in key ID')
packet = SSHPacket(principals)
principals = []
while packet:
try:
principal = packet.get_string().decode('utf-8')
except UnicodeDecodeError:
raise KeyImportError('Invalid characters in principal name')
principals.append(principal)
if cert_type == CERT_TYPE_USER:
options = cls._decode_options(options, cls._user_option_decoders,
True)
options.update(cls._decode_options(extensions,
cls._user_extension_decoders,
False))
elif cert_type == CERT_TYPE_HOST:
options = cls._decode_options(options, cls._host_option_decoders,
True)
options.update(cls._decode_options(extensions,
cls._host_extension_decoders,
False))
else:
raise KeyImportError('Unknown certificate type')
return cls(algorithm, key, data, principals, options, signing_key,
serial, cert_type, key_id, valid_after, valid_before,
comment)
@classmethod
def _encode(cls, key, serial, cert_type, key_id, principals,
valid_after, valid_before, options, extensions):
"""Encode an SSH certificate"""
raise NotImplementedError
@classmethod
def _decode(cls, packet, key_handler):
"""Decode an SSH certificate"""
raise NotImplementedError
@staticmethod
def _encode_options(options, encoders):
"""Encode options found in this certificate"""
result = []
for name, encoder in encoders:
value = options.get(name)
if value:
result.append(String(name) + String(encoder(value)))
return b''.join(result)
@staticmethod
def _encode_bool(value):
"""Encode a boolean option value"""
# pylint: disable=unused-argument
return b''
@staticmethod
def _encode_force_cmd(force_command):
"""Encode a force-command option"""
return String(force_command)
@staticmethod
def _encode_source_addr(source_address):
"""Encode a source-address option"""
return NameList(str(addr).encode('ascii') for addr in source_address)
@staticmethod
def _decode_bool(packet):
"""Decode a boolean option value"""
# pylint: disable=unused-argument
return True
@staticmethod
def _decode_force_cmd(packet):
"""Decode a force-command option"""
try:
return packet.get_string().decode('utf-8')
except UnicodeDecodeError:
raise KeyImportError('Invalid characters in command') from None
@staticmethod
def _decode_source_addr(packet):
"""Decode a source-address option"""
try:
return [ip_network(addr.decode('ascii'))
for addr in packet.get_namelist()]
except (UnicodeDecodeError, ValueError):
raise KeyImportError('Invalid source address') from None
@staticmethod
def _decode_options(options, decoders, critical=True):
"""Decode options found in this certificate"""
packet = SSHPacket(options)
result = {}
while packet:
name = packet.get_string()
decoder = decoders.get(name)
if decoder:
data_packet = SSHPacket(packet.get_string())
result[name.decode('ascii')] = decoder(data_packet)
data_packet.check_end()
elif critical:
raise KeyImportError('Unrecognized critical option: %s' %
name.decode('ascii', errors='replace'))
return result
def validate(self, cert_type, principal):
"""Validate an OpenSSH certificate"""
if self._cert_type != cert_type:
raise ValueError('Invalid certificate type')
now = time.time()
if now < self._valid_after:
raise ValueError('Certificate not yet valid')
if now >= self._valid_before:
raise ValueError('Certificate expired')
if principal and self.principals and principal not in self.principals:
raise ValueError('Certificate principal mismatch')
class SSHOpenSSHCertificateV01(SSHOpenSSHCertificate):
"""Encoder/decoder class for version 01 OpenSSH certificates"""
# pylint: disable=bad-whitespace
_user_option_encoders = (
('force-command', SSHOpenSSHCertificate._encode_force_cmd),
('source-address', SSHOpenSSHCertificate._encode_source_addr)
)
_user_extension_encoders = (
('permit-X11-forwarding', SSHOpenSSHCertificate._encode_bool),
('permit-agent-forwarding', SSHOpenSSHCertificate._encode_bool),
('permit-port-forwarding', SSHOpenSSHCertificate._encode_bool),
('permit-pty', SSHOpenSSHCertificate._encode_bool),
('permit-user-rc', SSHOpenSSHCertificate._encode_bool)
)
_user_option_decoders = {
b'force-command': SSHOpenSSHCertificate._decode_force_cmd,
b'source-address': SSHOpenSSHCertificate._decode_source_addr
}
_user_extension_decoders = {
b'permit-X11-forwarding': SSHOpenSSHCertificate._decode_bool,
b'permit-agent-forwarding': SSHOpenSSHCertificate._decode_bool,
b'permit-port-forwarding': SSHOpenSSHCertificate._decode_bool,
b'permit-pty': SSHOpenSSHCertificate._decode_bool,
b'permit-user-rc': SSHOpenSSHCertificate._decode_bool
}
# pylint: enable=bad-whitespace
@classmethod
def _encode(cls, key, serial, cert_type, key_id, principals,
valid_after, valid_before, options, extensions):
"""Encode a version 01 SSH certificate"""
return b''.join((String(os.urandom(32)), key.encode_ssh_public(),
UInt64(serial), UInt32(cert_type), String(key_id),
String(principals), UInt64(valid_after),
UInt64(valid_before), String(options),
String(extensions), String('')))
@classmethod
def _decode(cls, packet, key_handler):
"""Decode a version 01 SSH certificate"""
_ = packet.get_string() # nonce
key_params = key_handler.decode_ssh_public(packet)
serial = packet.get_uint64()
cert_type = packet.get_uint32()
key_id = packet.get_string()
principals = packet.get_string()
valid_after = packet.get_uint64()
valid_before = packet.get_uint64()
options = packet.get_string()
extensions = packet.get_string()
_ = packet.get_string() # reserved
return (key_params, serial, cert_type, key_id, principals,
valid_after, valid_before, options, extensions)
class SSHX509Certificate(SSHCertificate):
"""Encoder/decoder class for SSH X.509 certificates"""
is_x509 = True
def __init__(self, key, x509_cert):
super().__init__(b'x509v3-' + key.algorithm, key.x509_algorithms,
key.x509_algorithms, key, x509_cert.data,
x509_cert.comment)
self.subject = x509_cert.subject
self.issuer = x509_cert.issuer
self.issuer_hash = x509_cert.issuer_hash
self.user_principals = x509_cert.user_principals
self.x509_cert = x509_cert
def _expand_trust_store(self, cert, trusted_cert_paths, trust_store):
"""Look up certificates by issuer hash to build a trust store"""
issuer_hash = cert.issuer_hash
for path in trusted_cert_paths:
idx = 0
try:
while True:
cert_path = os.path.join(path, issuer_hash + '.' + str(idx))
idx += 1
c = read_certificate(cert_path)
if c.subject != cert.issuer or c in trust_store:
continue
trust_store.add(c)
self._expand_trust_store(c, trusted_cert_paths, trust_store)
except (OSError, KeyImportError):
pass
@classmethod
def generate(cls, signing_key, key, subject, issuer, serial, valid_after,
valid_before, ca, ca_path_len, purposes, user_principals,
host_principals, hash_alg, comment):
"""Generate a new X.509 certificate"""
key = key.convert_to_public()
if isinstance(comment, str):
comment = comment.encode('utf-8')
x509_cert = generate_x509_certificate(signing_key, key, subject, issuer,
serial, valid_after, valid_before,
ca, ca_path_len, purposes,
user_principals, host_principals,
hash_alg, comment)
return cls(key, x509_cert)
@classmethod
def construct(cls, data):
"""Construct an SSH X.509 certificate from DER data"""
try:
x509_cert = import_x509_certificate(data)
key = import_public_key(x509_cert.key_data)
except ValueError as exc:
raise KeyImportError(str(exc)) from None
return cls(key, x509_cert)
def validate_chain(self, trust_chain, trusted_certs, trusted_cert_paths,
purposes, user_principal=None, host_principal=None):
"""Validate an X.509 certificate chain"""
trust_chain = set(c for c in trust_chain if c.subject != c.issuer)
trust_store = trust_chain | set(c for c in trusted_certs)
if trusted_cert_paths:
self._expand_trust_store(self, trusted_cert_paths, trust_store)
for c in trust_chain:
self._expand_trust_store(c, trusted_cert_paths, trust_store)
self.x509_cert.validate([c.x509_cert for c in trust_store],
purposes, user_principal, host_principal)
class SSHX509CertificateChain(SSHCertificate):
"""Encoder/decoder class for an SSH X.509 certificate chain"""
is_x509_chain = True
def __init__(self, algorithm, data, certs, ocsp_responses, comment):
key = certs[0].key
super().__init__(algorithm, key.x509_algorithms, key.x509_algorithms,
key, data, comment)
self.subject = certs[0].subject
self.issuer = certs[-1].issuer
self.user_principals = certs[0].user_principals
self._certs = certs
self._ocsp_responses = ocsp_responses
@classmethod
def construct(cls, packet, algorithm, key_handler, comment=None):
"""Construct an SSH X.509 certificate from packetized data"""
# pylint: disable=unused-argument
cert_count = packet.get_uint32()
certs = [import_certificate(packet.get_string())
for _ in range(cert_count)]
ocsp_resp_count = packet.get_uint32()
ocsp_responses = [packet.get_string() for _ in range(ocsp_resp_count)]
packet.check_end()
data = packet.get_consumed_payload()
if not certs:
raise KeyImportError('No certificates present')
return cls(algorithm, data, certs, ocsp_responses, comment)
@classmethod
def construct_from_certs(cls, certs):
"""Construct an SSH X.509 certificate chain from certificates"""
cert = certs[0]
algorithm = cert.algorithm
data = (String(algorithm) + UInt32(len(certs)) +
b''.join(String(c.data) for c in certs) + UInt32(0))
return cls(algorithm, data, certs, (), cert.get_comment_bytes())
def validate_chain(self, trusted_certs, trusted_cert_paths, revoked_certs,
purposes, user_principal=None, host_principal=None):
"""Validate an X.509 certificate chain"""
if revoked_certs:
for cert in self._certs:
if cert in revoked_certs:
raise ValueError('Revoked X.509 certificate in '
'certificate chain')
self._certs[0].validate_chain(self._certs[1:], trusted_certs,
trusted_cert_paths, purposes,
user_principal, host_principal)
[docs]class SSHKeyPair:
"""Parent class which represents an asymmetric key pair
This is an abstract class which provides a method to sign data
with a private key and members to access the corresponding
algorithm and public key or certificate information needed to
identify what key was used for signing.
"""
_key_type = 'unknown'
def __init__(self, algorithm, comment):
self.algorithm = algorithm
self.set_comment(comment)
[docs] def get_key_type(self):
"""Return what type of key pair this is
This method returns 'local' for locally loaded keys, and
'agent' for keys managed by an SSH agent.
"""
return self._key_type
[docs] def get_algorithm(self):
"""Return the algorithm associated with this key pair"""
return self.algorithm.decode('ascii')
def set_sig_algorithm(self, sig_algorithm):
"""Set the signature algorithm to use when signing data"""
raise NotImplementedError
def sign(self, data):
"""Sign a block of data with this private key"""
raise NotImplementedError
class SSHLocalKeyPair(SSHKeyPair):
"""Class which holds a local asymmetric key pair
This class holds a private key and associated public data
which can either be the matching public key or a certificate
which has signed that public key.
"""
_key_type = 'local'
def __init__(self, key, cert=None):
super().__init__(cert.algorithm if cert else key.algorithm,
key.get_comment_bytes())
self._key = key
self._cert = cert
self.sig_algorithm = key.algorithm
if cert:
if key.get_ssh_public_key() != cert.key.get_ssh_public_key():
raise ValueError('Certificate key mismatch')
self.sig_algorithms = cert.sig_algorithms
self.host_key_algorithms = cert.host_key_algorithms
self.public_data = cert.data
else:
self.sig_algorithms = key.sig_algorithms
self.host_key_algorithms = key.sig_algorithms
self.public_data = key.get_ssh_public_key()
def get_agent_private_key(self):
"""Return binary encoding of keypair for upload to SSH agent"""
if self._cert:
data = String(self.public_data) + \
self._key.encode_agent_cert_private()
else:
data = self._key.encode_ssh_private()
return String(self.algorithm) + data
def set_sig_algorithm(self, sig_algorithm):
"""Set the signature algorithm to use when signing data"""
if sig_algorithm.startswith(b'x509v3-'):
sig_algorithm = sig_algorithm[7:]
self.sig_algorithm = sig_algorithm
if not self._cert:
self.algorithm = sig_algorithm
elif self._cert.algorithm.startswith(b'x509v3-'):
self.algorithm = b'x509v3-' + sig_algorithm
def sign(self, data):
"""Sign a block of data with this private key"""
return self._key.sign(data, self.sig_algorithm)
def _decode_pkcs1_private(pem_name, key_data):
"""Decode a PKCS#1 format private key"""
handler = _pem_map.get(pem_name)
if handler is None:
raise KeyImportError('Unknown PEM key type: %s' %
pem_name.decode('ascii'))
key_params = handler.decode_pkcs1_private(key_data)
if key_params is None:
raise KeyImportError('Invalid %s private key' %
pem_name.decode('ascii'))
return handler.make_private(*key_params)
def _decode_pkcs1_public(pem_name, key_data):
"""Decode a PKCS#1 format public key"""
handler = _pem_map.get(pem_name)
if handler is None:
raise KeyImportError('Unknown PEM key type: %s' %
pem_name.decode('ascii'))
key_params = handler.decode_pkcs1_public(key_data)
if key_params is None:
raise KeyImportError('Invalid %s public key' %
pem_name.decode('ascii'))
return handler.make_public(*key_params)
def _decode_pkcs8_private(key_data):
"""Decode a PKCS#8 format private key"""
if (isinstance(key_data, tuple) and len(key_data) >= 3 and
key_data[0] in (0, 1) and isinstance(key_data[1], tuple) and
len(key_data[1]) == 2 and isinstance(key_data[2], bytes)):
alg, alg_params = key_data[1]
handler = _pkcs8_oid_map.get(alg)
if handler is None:
raise KeyImportError('Unknown PKCS#8 algorithm')
key_params = handler.decode_pkcs8_private(alg_params, key_data[2])
if key_params is None:
raise KeyImportError('Invalid %s private key' %
handler.pem_name.decode('ascii'))
return handler.make_private(*key_params)
else:
raise KeyImportError('Invalid PKCS#8 private key')
def _decode_pkcs8_public(key_data):
"""Decode a PKCS#8 format public key"""
if (isinstance(key_data, tuple) and len(key_data) == 2 and
isinstance(key_data[0], tuple) and len(key_data[0]) == 2 and
isinstance(key_data[1], BitString) and key_data[1].unused == 0):
alg, alg_params = key_data[0]
handler = _pkcs8_oid_map.get(alg)
if handler is None:
raise KeyImportError('Unknown PKCS#8 algorithm')
key_params = handler.decode_pkcs8_public(alg_params, key_data[1].value)
if key_params is None:
raise KeyImportError('Invalid %s public key' %
handler.pem_name.decode('ascii'))
return handler.make_public(*key_params)
else:
raise KeyImportError('Invalid PKCS#8 public key')
def _decode_openssh_private(data, passphrase):
"""Decode an OpenSSH format private key"""
try:
if not data.startswith(_OPENSSH_KEY_V1):
raise KeyImportError('Unrecognized OpenSSH private key type')
data = data[len(_OPENSSH_KEY_V1):]
packet = SSHPacket(data)
cipher_name = packet.get_string()
kdf = packet.get_string()
kdf_data = packet.get_string()
nkeys = packet.get_uint32()
_ = packet.get_string() # public_key
key_data = packet.get_string()
mac = packet.get_remaining_payload()
if nkeys != 1:
raise KeyImportError('Invalid OpenSSH private key')
if cipher_name != b'none':
if passphrase is None:
raise KeyImportError('Passphrase must be specified to import '
'encrypted private keys')
try:
key_size, iv_size, block_size, mode = \
get_encryption_params(cipher_name)
except KeyError:
raise KeyEncryptionError('Unknown cipher: %s' %
cipher_name.decode('ascii')) from None
if kdf != b'bcrypt':
raise KeyEncryptionError('Unknown kdf: %s' %
kdf.decode('ascii'))
if not _bcrypt_available: # pragma: no cover
raise KeyEncryptionError('OpenSSH private key encryption '
'requires bcrypt with KDF support')
packet = SSHPacket(kdf_data)
salt = packet.get_string()
rounds = packet.get_uint32()
packet.check_end()
if isinstance(passphrase, str):
passphrase = passphrase.encode('utf-8')
try:
# pylint: disable=no-member
key = bcrypt.kdf(passphrase, salt, key_size + iv_size,
rounds, ignore_few_rounds=True)
# pylint: enable=no-member
except ValueError:
raise KeyEncryptionError('Invalid OpenSSH '
'private key') from None
cipher = get_cipher(cipher_name, key[:key_size], key[key_size:])
if mode == 'chacha':
key_data = cipher.verify_and_decrypt(b'', key_data,
UInt64(0), mac)
mac = b''
elif mode == 'gcm':
key_data = cipher.verify_and_decrypt(b'', key_data, mac)
mac = b''
else:
key_data = cipher.decrypt(key_data)
if key_data is None:
raise KeyEncryptionError('Incorrect passphrase')
block_size = max(block_size, 8)
else:
block_size = 8
if mac:
raise KeyImportError('Invalid OpenSSH private key')
packet = SSHPacket(key_data)
check1 = packet.get_uint32()
check2 = packet.get_uint32()
if check1 != check2:
if cipher_name != b'none':
raise KeyEncryptionError('Incorrect passphrase') from None
else:
raise KeyImportError('Invalid OpenSSH private key')
alg = packet.get_string()
handler = _public_key_alg_map.get(alg)
if not handler:
raise KeyImportError('Unknown OpenSSH private key algorithm')
key_params = handler.decode_ssh_private(packet)
comment = packet.get_string()
pad = packet.get_remaining_payload()
if len(pad) >= block_size or pad != bytes(range(1, len(pad) + 1)):
raise KeyImportError('Invalid OpenSSH private key')
key = handler.make_private(*key_params)
key.set_comment(comment)
return key
except PacketDecodeError:
raise KeyImportError('Invalid OpenSSH private key')
def _decode_der_private(data, passphrase):
"""Decode a DER format private key"""
try:
# pylint: disable=unpacking-non-sequence
key_data, end = der_decode(data, partial_ok=True)
# pylint: enable=unpacking-non-sequence
except ASN1DecodeError:
raise KeyImportError('Invalid DER private key') from None
# First, if there's a passphrase, try to decrypt PKCS#8
if passphrase is not None:
try:
key_data = pkcs8_decrypt(key_data, passphrase)
except KeyEncryptionError:
# Decryption failed - try decoding it as unencrypted
pass
# Then, try to decode PKCS#8
try:
return _decode_pkcs8_private(key_data), end
except KeyImportError:
# PKCS#8 failed - try PKCS#1 instead
pass
# If that fails, try each of the possible PKCS#1 encodings
for pem_name in _pem_map:
try:
return _decode_pkcs1_private(pem_name, key_data), end
except KeyImportError:
# Try the next PKCS#1 encoding
pass
raise KeyImportError('Invalid DER private key')
def _decode_der_public(data):
"""Decode a DER format public key"""
try:
# pylint: disable=unpacking-non-sequence
key_data, end = der_decode(data, partial_ok=True)
# pylint: enable=unpacking-non-sequence
except ASN1DecodeError:
raise KeyImportError('Invalid DER public key') from None
# First, try to decode PKCS#8
try:
return _decode_pkcs8_public(key_data), end
except KeyImportError:
# PKCS#8 failed - try PKCS#1 instead
pass
# If that fails, try each of the possible PKCS#1 encodings
for pem_name in _pem_map:
try:
return _decode_pkcs1_public(pem_name, key_data), end
except KeyImportError:
# Try the next PKCS#1 encoding
pass
raise KeyImportError('Invalid DER public key')
def _decode_der_certificate(data):
"""Decode a DER format X.509 certificate"""
return SSHX509Certificate.construct(data)
def _decode_der_certificate_list(data):
"""Decode a DER format X.509 certificate list"""
certs = []
while data:
try:
_, end = der_decode(data, partial_ok=True)
except ASN1DecodeError:
raise KeyImportError('Invalid DER certificate') from None
certs.append(_decode_der_certificate(data[:end]))
data = data[end:]
return certs
def _decode_pem(lines, keytype):
"""Decode a PEM format key"""
start = None
line = ''
for i, line in enumerate(lines):
line = line.strip()
if (line.startswith(b'-----BEGIN ') and
line.endswith(b' ' + keytype + b'-----')):
start = i+1
break
if not start:
raise KeyImportError('Missing PEM header of type %s' %
keytype.decode('ascii'))
pem_name = line[11:-(6+len(keytype))].strip()
if pem_name:
keytype = pem_name + b' ' + keytype
headers = {}
for start, line in enumerate(lines[start:], start):
line = line.strip()
if b':' in line:
hdr, value = line.split(b':')
headers[hdr.strip()] = value.strip()
else:
break
end = None
tail = b'-----END ' + keytype + b'-----'
for i, line in enumerate(lines[start:], start):
line = line.strip()
if line == tail:
end = i
break
if not end:
raise KeyImportError('Missing PEM footer')
try:
data = binascii.a2b_base64(b''.join(lines[start:end]))
except binascii.Error:
raise KeyImportError('Invalid PEM data') from None
return pem_name, headers, data, end+1
def _decode_pem_private(lines, passphrase):
"""Decode a PEM format private key"""
pem_name, headers, data, end = _decode_pem(lines, b'PRIVATE KEY')
if pem_name == b'OPENSSH':
return _decode_openssh_private(data, passphrase), end
if headers.get(b'Proc-Type') == b'4,ENCRYPTED':
if passphrase is None:
raise KeyImportError('Passphrase must be specified to import '
'encrypted private keys')
dek_info = headers.get(b'DEK-Info', b'').split(b',')
if len(dek_info) != 2:
raise KeyImportError('Invalid PEM encryption params')
alg, iv = dek_info
try:
iv = binascii.a2b_hex(iv)
except binascii.Error:
raise KeyImportError('Invalid PEM encryption params') from None
try:
data = pkcs1_decrypt(data, alg, iv, passphrase)
except KeyEncryptionError:
raise KeyImportError('Unable to decrypt PKCS#1 '
'private key') from None
try:
key_data = der_decode(data)
except ASN1DecodeError:
raise KeyImportError('Invalid PEM private key') from None
if pem_name == b'ENCRYPTED':
if passphrase is None:
raise KeyImportError('Passphrase must be specified to import '
'encrypted private keys')
pem_name = b''
try:
key_data = pkcs8_decrypt(key_data, passphrase)
except KeyEncryptionError:
raise KeyImportError('Unable to decrypt PKCS#8 '
'private key') from None
if pem_name:
return _decode_pkcs1_private(pem_name, key_data), end
else:
return _decode_pkcs8_private(key_data), end
def _decode_pem_public(lines):
"""Decode a PEM format public key"""
pem_name, _, data, end = _decode_pem(lines, b'PUBLIC KEY')
try:
key_data = der_decode(data)
except ASN1DecodeError:
raise KeyImportError('Invalid PEM public key') from None
if pem_name:
return _decode_pkcs1_public(pem_name, key_data), end
else:
return _decode_pkcs8_public(key_data), end
def _decode_pem_certificate(lines):
"""Decode a PEM format X.509 certificate"""
pem_name, _, data, end = _decode_pem(lines, b'CERTIFICATE')
if pem_name:
raise KeyImportError('Invalid PEM certificate')
return SSHX509Certificate.construct(data), end
def _decode_pem_certificate_list(lines):
"""Decode a PEM format X.509 certificate list"""
certs = []
while lines:
cert, end = _decode_pem_certificate(lines)
certs.append(cert)
lines = lines[end:]
return certs
def _decode_openssh(line):
"""Decode an OpenSSH format public key or certificate"""
line = line.split(None, 2)
if len(line) < 2:
raise KeyImportError('Invalid OpenSSH public key or certificate')
elif len(line) == 2:
comment = None
else:
comment = line[2]
try:
return line[0], binascii.a2b_base64(line[1]), comment
except binascii.Error:
raise KeyImportError('Invalid OpenSSH public key '
'or certificate') from None
def _decode_rfc4716(lines):
"""Decode an RFC 4716 format public key"""
start = None
for i, line in enumerate(lines):
line = line.strip()
if line == b'---- BEGIN SSH2 PUBLIC KEY ----':
start = i+1
break
if not start:
raise KeyImportError('Missing RFC 4716 header')
hdr = b''
comment = None
for start, line in enumerate(lines[start:], start):
line = line.strip()
if line[-1:] == b'\\':
hdr += line[:-1]
else:
hdr += line
if b':' in hdr:
hdr, value = hdr.split(b':')
if hdr.strip() == b'Comment':
comment = value.strip()
if comment[:1] == b'"' and comment[-1:] == b'"':
comment = comment[1:-1]
hdr = b''
else:
break
end = None
for i, line in enumerate(lines[start:], start):
line = line.strip()
if line == b'---- END SSH2 PUBLIC KEY ----':
end = i
break
if not end:
raise KeyImportError('Missing RFC 4716 footer')
try:
return binascii.a2b_base64(b''.join(lines[start:end])), comment, end+1
except binascii.Error:
raise KeyImportError('Invalid RFC 4716 public key '
'or certificate') from None
def register_public_key_alg(algorithm, handler, sig_algorithms=None):
"""Register a new public key algorithm"""
if not sig_algorithms:
sig_algorithms = handler.sig_algorithms
_public_key_alg_map[algorithm] = handler
_public_key_algs.extend(sig_algorithms)
if handler.pem_name:
_pem_map[handler.pem_name] = handler
if handler.pkcs8_oid:
_pkcs8_oid_map[handler.pkcs8_oid] = handler
def register_certificate_alg(version, algorithm, cert_algorithm,
key_handler, cert_handler):
"""Register a new certificate algorithm"""
_certificate_alg_map[cert_algorithm] = (key_handler, cert_handler)
_certificate_algs.append(cert_algorithm)
_certificate_version_map[algorithm, version] = \
(cert_algorithm, cert_handler)
def register_x509_certificate_alg(cert_algorithm):
"""Register a new X.509 certificate algorithm"""
if _x509_available: # pragma: no branch
_certificate_alg_map[cert_algorithm] = (None, SSHX509CertificateChain)
_x509_certificate_algs.append(cert_algorithm)
def get_public_key_algs():
"""Return supported public key algorithms"""
return _public_key_algs
def get_certificate_algs():
"""Return supported certificate-based public key algorithms"""
return _certificate_algs
def get_x509_certificate_algs():
"""Return supported X.509 certificate-based public key algorithms"""
return _x509_certificate_algs
def decode_ssh_public_key(data):
"""Decode a packetized SSH public key"""
try:
packet = SSHPacket(data)
alg = packet.get_string()
handler = _public_key_alg_map.get(alg)
if handler:
key_params = handler.decode_ssh_public(packet)
packet.check_end()
key = handler.make_public(*key_params)
key.algorithm = alg
return key
else:
raise KeyImportError('Unknown key algorithm: %s' %
alg.decode('ascii', errors='replace'))
except PacketDecodeError:
raise KeyImportError('Invalid public key') from None
def decode_ssh_certificate(data, comment=None):
"""Decode a packetized SSH certificate"""
try:
packet = SSHPacket(data)
alg = packet.get_string()
key_handler, cert_handler = _certificate_alg_map.get(alg, (None, None))
if cert_handler:
return cert_handler.construct(packet, alg, key_handler, comment)
else:
raise KeyImportError('Unknown certificate algorithm: %s' %
alg.decode('ascii', errors='replace'))
except (PacketDecodeError, ValueError):
raise KeyImportError('Invalid OpenSSH certificate') from None
[docs]def generate_private_key(alg_name, comment=None, **kwargs):
"""Generate a new private key
This function generates a new private key of a type matching
the requested SSH algorithm. Depending on the algorithm, additional
parameters can be passed which affect the generated key.
Available algorithms include:
ssh-dss, ssh-rsa, ecdsa-sha2-nistp256, ecdsa-sha2-nistp384,
ecdsa-sha2-nistp521, ssh-ed25519
For ssh-dss, no parameters are supported. The key size is fixed at
1024 bits due to the use of SHA1 signatures.
For ssh-rsa, the key size can be specified using the `key_size`
parameter, and the RSA public exponent can be changed using the
`exponent` parameter. By default, generated keys are 2048 bits
with a public exponent of 65537.
For ecdsa, the curve to use is part of the SSH algorithm name
and that determines the key size. No other parameters are supported.
For ssh-ed25519, no parameters are supported. The key size is fixed
by the algorithm at 256 bits.
:param alg_name:
The SSH algorithm name corresponding to the desired type of key.
:param comment: (optional)
A comment to associate with this key.
:param key_size: (optional)
The key size in bits for RSA keys.
:param exponent: (optional)
The public exponent for RSA keys.
:type alg_name: `str`
:type comment: `str`, `bytes`, or `None`
:type key_size: `int`
:type exponent: `int`
:returns: An :class:`SSHKey` private key
:raises: :exc:`KeyGenerationError` if the requested key parameters
are unsupported
"""
algorithm = alg_name.encode('utf-8')
handler = _public_key_alg_map.get(algorithm)
if handler:
try:
key = handler.generate(algorithm, **kwargs)
except (TypeError, ValueError) as exc:
raise KeyGenerationError(str(exc)) from None
else:
raise KeyGenerationError('Unknown algorithm: %s' % alg_name)
key.set_comment(comment)
return key
[docs]def import_private_key(data, passphrase=None):
"""Import a private key
This function imports a private key encoded in PKCS#1 or PKCS#8 DER
or PEM format or OpenSSH format. Encrypted private keys can be
imported by specifying the passphrase needed to decrypt them.
:param data:
The data to import.
:param passphrase: (optional)
The passphrase to use to decrypt the key.
:type data: `bytes` or ASCII `str`
:type passphrase: `str` or `bytes`
:returns: An :class:`SSHKey` private key
"""
if isinstance(data, str):
try:
data = data.encode('ascii')
except UnicodeEncodeError:
raise KeyImportError('Invalid encoding for private key') from None
stripped_key = data.lstrip()
if stripped_key.startswith(b'-----'):
key, _ = _decode_pem_private(stripped_key.splitlines(), passphrase)
else:
key, _ = _decode_der_private(data, passphrase)
return key
def import_private_key_and_certs(data, passphrase=None):
"""Import a private key and optional certificate chain"""
stripped_key = data.lstrip()
if stripped_key.startswith(b'-----'):
lines = stripped_key.splitlines()
key, end = _decode_pem_private(lines, passphrase)
lines = lines[end:]
certs = _decode_pem_certificate_list(lines) if any(lines) else None
else:
key, end = _decode_der_private(data, passphrase)
data = data[end:]
certs = _decode_der_certificate_list(data) if data else None
if certs:
chain = SSHX509CertificateChain.construct_from_certs(certs)
else:
chain = None
return key, chain
[docs]def import_public_key(data):
"""Import a public key
This function imports a public key encoded in OpenSSH, RFC4716, or
PKCS#1 or PKCS#8 DER or PEM format.
:param data:
The data to import.
:type data: `bytes` or ASCII `str`
:returns: An :class:`SSHKey` public key
"""
if isinstance(data, str):
try:
data = data.encode('ascii')
except UnicodeEncodeError:
raise KeyImportError('Invalid encoding for public key') from None
stripped_key = data.lstrip()
if stripped_key.startswith(b'-----'):
key, _ = _decode_pem_public(stripped_key.splitlines())
elif stripped_key.startswith(b'---- '):
data, comment, _ = _decode_rfc4716(stripped_key.splitlines())
key = decode_ssh_public_key(data)
key.set_comment(comment)
elif data.startswith(b'\x30'):
key, _ = _decode_der_public(data)
elif data:
algorithm, data, comment = _decode_openssh(stripped_key.splitlines()[0])
key = decode_ssh_public_key(data)
if algorithm != key.algorithm:
raise KeyImportError('Public key algorithm mismatch')
key.set_comment(comment)
else:
raise KeyImportError('Invalid public key')
return key
[docs]def import_certificate(data):
"""Import a certificate
This function imports an SSH certificate in DER, PEM, OpenSSH, or
RFC4716 format.
:param data:
The data to import.
:type data: `bytes` or ASCII `str`
:returns: An :class:`SSHCertificate` object
"""
if isinstance(data, str):
try:
data = data.encode('ascii')
except UnicodeEncodeError:
raise KeyImportError('Invalid encoding for certificate') from None
stripped_key = data.lstrip()
if stripped_key.startswith(b'-----'):
cert, _ = _decode_pem_certificate(stripped_key.splitlines())
elif data.startswith(b'\x30'):
cert = _decode_der_certificate(data)
elif stripped_key.startswith(b'---- '):
data, comment, _ = _decode_rfc4716(stripped_key.splitlines())
cert = decode_ssh_certificate(data, comment)
else:
algorithm, data, comment = _decode_openssh(stripped_key.splitlines()[0])
if algorithm.startswith(b'x509v3-'):
cert = _decode_der_certificate(data)
else:
cert = decode_ssh_certificate(data, comment)
return cert
def import_certificate_subject(data):
"""Import an X.509 certificate subject name"""
try:
algorithm, data = data.strip().split(None, 1)
except ValueError:
raise KeyImportError('Missing certificate subject algorithm') from None
if algorithm.startswith('x509v3-'):
match = _subject_pattern.match(data)
if match:
return data[match.end():]
raise KeyImportError('Invalid certificate subject')
[docs]def read_private_key(filename, passphrase=None):
"""Read a private key from a file
This function reads a private key from a file. See the function
:func:`import_private_key` for information about the formats
supported.
:param filename:
The file to read the key from.
:param passphrase: (optional)
The passphrase to use to decrypt the key.
:type filename: `str`
:type passphrase: `str` or `bytes`
:returns: An :class:`SSHKey` private key
"""
with open(filename, 'rb') as f:
key = import_private_key(f.read(), passphrase)
if not key.get_comment_bytes():
key.set_comment(filename)
return key
def read_private_key_and_certs(filename, passphrase=None):
"""Read a private key and optional certificate chain from a file"""
with open(filename, 'rb') as f:
key, cert = import_private_key_and_certs(f.read(), passphrase)
if not key.get_comment_bytes():
key.set_comment(filename)
return key, cert
[docs]def read_public_key(filename):
"""Read a public key from a file
This function reads a public key from a file. See the function
:func:`import_public_key` for information about the formats
supported.
:param filename:
The file to read the key from.
:type filename: `str`
:returns: An :class:`SSHKey` public key
"""
with open(filename, 'rb') as f:
key = import_public_key(f.read())
if not key.get_comment_bytes():
key.set_comment(filename)
return key
[docs]def read_certificate(filename):
"""Read a certificate from a file
This function reads an SSH certificate from a file. See the
function :func:`import_certificate` for information about the
formats supported.
:param filename:
The file to read the certificate from.
:type filename: `str`
:returns: An :class:`SSHCertificate` object
"""
with open(filename, 'rb') as f:
return import_certificate(f.read())
[docs]def read_private_key_list(filename, passphrase=None):
"""Read a list of private keys from a file
This function reads a list of private keys from a file. See the
function :func:`import_private_key` for information about the
formats supported. If any of the keys are encrypted, they must
all be encrypted with the same passphrase.
:param filename:
The file to read the keys from.
:param passphrase: (optional)
The passphrase to use to decrypt the keys.
:type filename: `str`
:type passphrase: `str` or `bytes`
:returns: A list of :class:`SSHKey` private keys
"""
with open(filename, 'rb') as f:
data = f.read()
keys = []
stripped_key = data.strip()
if stripped_key.startswith(b'-----'):
lines = stripped_key.splitlines()
while lines:
key, end = _decode_pem_private(lines, passphrase)
keys.append(key)
lines = lines[end:]
else:
while data:
key, end = _decode_der_private(data, passphrase)
keys.append(key)
data = data[end:]
for key in keys:
if not key.get_comment_bytes():
key.set_comment(filename)
return keys
[docs]def read_public_key_list(filename):
"""Read a list of public keys from a file
This function reads a list of public keys from a file. See the
function :func:`import_public_key` for information about the
formats supported.
:param filename:
The file to read the keys from.
:type filename: `str`
:returns: A list of :class:`SSHKey` public keys
"""
with open(filename, 'rb') as f:
data = f.read()
keys = []
stripped_key = data.strip()
if stripped_key.startswith(b'-----'):
lines = stripped_key.splitlines()
while lines:
key, end = _decode_pem_public(lines)
keys.append(key)
lines = lines[end:]
elif stripped_key.startswith(b'---- '):
lines = stripped_key.splitlines()
while lines:
data, comment, end = _decode_rfc4716(lines)
key = decode_ssh_public_key(data)
key.set_comment(comment)
keys.append(key)
lines = lines[end:]
elif data.startswith(b'\x30'):
while data:
key, end = _decode_der_public(data)
keys.append(key)
data = data[end:]
else:
for line in stripped_key.splitlines():
algorithm, data, comment = _decode_openssh(line)
key = decode_ssh_public_key(data)
if algorithm != key.algorithm:
raise KeyImportError('Public key algorithm mismatch')
key.set_comment(comment)
keys.append(key)
for key in keys:
if not key.get_comment_bytes():
key.set_comment(filename)
return keys
[docs]def read_certificate_list(filename):
"""Read a list of certificates from a file
This function reads a list of SSH certificates from a file. See
the function :func:`import_certificate` for information about
the formats supported.
:param filename:
The file to read the certificates from.
:type filename: `str`
:returns: A list of :class:`SSHCertificate` certificates
"""
with open(filename, 'rb') as f:
data = f.read()
certs = []
stripped_key = data.strip()
if stripped_key.startswith(b'-----'):
certs = _decode_pem_certificate_list(stripped_key.splitlines())
elif data.startswith(b'\x30'):
certs = _decode_der_certificate_list(data)
elif stripped_key.startswith(b'---- '):
lines = stripped_key.splitlines()
while lines:
data, comment, end = _decode_rfc4716(lines)
certs.append(decode_ssh_certificate(data, comment))
lines = lines[end:]
else:
for line in stripped_key.splitlines():
algorithm, data, comment = _decode_openssh(line)
if algorithm.startswith(b'x509v3-'):
cert = _decode_der_certificate(data)
else:
cert = decode_ssh_certificate(data, comment)
certs.append(cert)
return certs
[docs]def load_keypairs(keylist, passphrase=None):
"""Load SSH private keys and optional matching certificates
This function loads a list of SSH keys and optional matching
certificates.
When certificates are specified, the private key is added to
the list both with and without the certificate.
:param keylist:
The list of private keys and certificates to load.
:param passphrase: (optional)
The passphrase to use to decrypt private keys.
:type keylist: *see* :ref:`SpecifyingPrivateKeys`
:type passphrase: `str` or `bytes`
:returns: A list of :class:`SSHKeyPair` objects
"""
result = []
if isinstance(keylist, str):
try:
keys = read_private_key_list(keylist, passphrase)
if len(keys) > 1:
return [SSHLocalKeyPair(key) for key in keys]
except KeyImportError:
pass
keylist = [keylist]
elif isinstance(keylist, (tuple, bytes, SSHKey, SSHKeyPair)):
keylist = [keylist]
elif not keylist:
keylist = []
for key in keylist:
if isinstance(key, SSHKeyPair):
result.append(key)
else:
allow_certs = False
default_cert_file = None
ignore_missing_cert = False
if isinstance(key, str):
allow_certs = True
default_cert_file = key + '-cert.pub'
ignore_missing_cert = True
elif isinstance(key, bytes):
allow_certs = True
elif isinstance(key, tuple):
key, certs = key
else:
certs = None
if isinstance(key, str):
if allow_certs:
key, certs = read_private_key_and_certs(key, passphrase)
if not certs and default_cert_file:
certs = default_cert_file
else:
key = read_private_key(key, passphrase)
elif isinstance(key, bytes):
if allow_certs:
key, certs = import_private_key_and_certs(key, passphrase)
else:
key = import_private_key(key, passphrase)
if certs:
try:
certs = load_certificates(certs)
except OSError:
if ignore_missing_cert:
certs = None
else:
raise
if certs is None:
cert = None
elif len(certs) == 1 and not certs[0].is_x509:
cert = certs[0]
else:
cert = SSHX509CertificateChain.construct_from_certs(certs)
if cert:
result.append(SSHLocalKeyPair(key, cert))
result.append(SSHLocalKeyPair(key, None))
return result
[docs]def load_public_keys(keylist):
"""Load public keys
This function loads a list of SSH public keys.
:param keylist:
The list of public keys to load.
:type keylist: *see* :ref:`SpecifyingPublicKeys`
:returns: A list of :class:`SSHKey` objects
"""
if isinstance(keylist, str):
return read_public_key_list(keylist)
else:
result = []
for key in keylist:
if isinstance(key, str):
key = read_public_key(key)
elif isinstance(key, bytes):
key = import_public_key(key)
result.append(key)
return result
[docs]def load_certificates(certlist):
"""Load certificates
This function loads a list of OpenSSH or X.509 certificates.
:param certlist:
The list of certificates to load.
:type certlist: *see* :ref:`SpecifyingCertificates`
:returns: A list of :class:`SSHCertificate` objects
"""
if isinstance(certlist, SSHCertificate):
return [certlist]
elif isinstance(certlist, (bytes, str)):
certlist = [certlist]
result = []
for cert in certlist:
if isinstance(cert, str):
certs = read_certificate_list(cert)
elif isinstance(cert, bytes):
certs = [import_certificate(cert)]
elif isinstance(cert, SSHCertificate):
certs = [cert]
else:
certs = cert
result.extend(certs)
return result