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https://gitlab.com/MoonTestUse1/AdministrationItDepartmens.git
synced 2025-08-14 00:25:46 +02:00
591 lines
16 KiB
Python
591 lines
16 KiB
Python
from __future__ import division
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from six import PY2
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from . import der, ecdsa, ellipticcurve, eddsa
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from .util import orderlen, number_to_string, string_to_number
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from ._compat import normalise_bytes, bit_length
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# orderlen was defined in this module previously, so keep it in __all__,
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# will need to mark it as deprecated later
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__all__ = [
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"UnknownCurveError",
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"orderlen",
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"Curve",
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"SECP112r1",
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"SECP112r2",
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"SECP128r1",
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"SECP160r1",
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"NIST192p",
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"NIST224p",
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"NIST256p",
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"NIST384p",
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"NIST521p",
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"curves",
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"find_curve",
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"curve_by_name",
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"SECP256k1",
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"BRAINPOOLP160r1",
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"BRAINPOOLP160t1",
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"BRAINPOOLP192r1",
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"BRAINPOOLP192t1",
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"BRAINPOOLP224r1",
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"BRAINPOOLP224t1",
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"BRAINPOOLP256r1",
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"BRAINPOOLP256t1",
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"BRAINPOOLP320r1",
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"BRAINPOOLP320t1",
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"BRAINPOOLP384r1",
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"BRAINPOOLP384t1",
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"BRAINPOOLP512r1",
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"BRAINPOOLP512t1",
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"PRIME_FIELD_OID",
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"CHARACTERISTIC_TWO_FIELD_OID",
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"Ed25519",
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"Ed448",
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]
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PRIME_FIELD_OID = (1, 2, 840, 10045, 1, 1)
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CHARACTERISTIC_TWO_FIELD_OID = (1, 2, 840, 10045, 1, 2)
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class UnknownCurveError(Exception):
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pass
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class Curve:
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def __init__(self, name, curve, generator, oid, openssl_name=None):
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self.name = name
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self.openssl_name = openssl_name # maybe None
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self.curve = curve
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self.generator = generator
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self.order = generator.order()
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if isinstance(curve, ellipticcurve.CurveEdTw):
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# EdDSA keys are special in that both private and public
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# are the same size (as it's defined only with compressed points)
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# +1 for the sign bit and then round up
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self.baselen = (bit_length(curve.p()) + 1 + 7) // 8
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self.verifying_key_length = self.baselen
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else:
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self.baselen = orderlen(self.order)
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self.verifying_key_length = 2 * orderlen(curve.p())
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self.signature_length = 2 * self.baselen
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self.oid = oid
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if oid:
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self.encoded_oid = der.encode_oid(*oid)
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def __eq__(self, other):
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if isinstance(other, Curve):
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return (
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self.curve == other.curve and self.generator == other.generator
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)
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return NotImplemented
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def __ne__(self, other):
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return not self == other
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def __repr__(self):
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return self.name
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def to_der(self, encoding=None, point_encoding="uncompressed"):
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"""Serialise the curve parameters to binary string.
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:param str encoding: the format to save the curve parameters in.
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Default is ``named_curve``, with fallback being the ``explicit``
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if the OID is not set for the curve.
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:param str point_encoding: the point encoding of the generator when
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explicit curve encoding is used. Ignored for ``named_curve``
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format.
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:return: DER encoded ECParameters structure
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:rtype: bytes
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"""
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if encoding is None:
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if self.oid:
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encoding = "named_curve"
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else:
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encoding = "explicit"
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if encoding not in ("named_curve", "explicit"):
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raise ValueError(
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"Only 'named_curve' and 'explicit' encodings supported"
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)
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if encoding == "named_curve":
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if not self.oid:
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raise UnknownCurveError(
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"Can't encode curve using named_curve encoding without "
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"associated curve OID"
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)
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return der.encode_oid(*self.oid)
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elif isinstance(self.curve, ellipticcurve.CurveEdTw):
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assert encoding == "explicit"
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raise UnknownCurveError(
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"Twisted Edwards curves don't support explicit encoding"
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)
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# encode the ECParameters sequence
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curve_p = self.curve.p()
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version = der.encode_integer(1)
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field_id = der.encode_sequence(
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der.encode_oid(*PRIME_FIELD_OID), der.encode_integer(curve_p)
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)
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curve = der.encode_sequence(
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der.encode_octet_string(
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number_to_string(self.curve.a() % curve_p, curve_p)
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),
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der.encode_octet_string(
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number_to_string(self.curve.b() % curve_p, curve_p)
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),
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)
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base = der.encode_octet_string(self.generator.to_bytes(point_encoding))
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order = der.encode_integer(self.generator.order())
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seq_elements = [version, field_id, curve, base, order]
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if self.curve.cofactor():
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cofactor = der.encode_integer(self.curve.cofactor())
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seq_elements.append(cofactor)
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return der.encode_sequence(*seq_elements)
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def to_pem(self, encoding=None, point_encoding="uncompressed"):
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"""
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Serialise the curve parameters to the :term:`PEM` format.
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:param str encoding: the format to save the curve parameters in.
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Default is ``named_curve``, with fallback being the ``explicit``
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if the OID is not set for the curve.
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:param str point_encoding: the point encoding of the generator when
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explicit curve encoding is used. Ignored for ``named_curve``
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format.
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:return: PEM encoded ECParameters structure
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:rtype: str
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"""
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return der.topem(
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self.to_der(encoding, point_encoding), "EC PARAMETERS"
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)
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@staticmethod
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def from_der(data, valid_encodings=None):
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"""Decode the curve parameters from DER file.
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:param data: the binary string to decode the parameters from
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:type data: :term:`bytes-like object`
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:param valid_encodings: set of names of allowed encodings, by default
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all (set by passing ``None``), supported ones are ``named_curve``
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and ``explicit``
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:type valid_encodings: :term:`set-like object`
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"""
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if not valid_encodings:
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valid_encodings = set(("named_curve", "explicit"))
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if not all(i in ["named_curve", "explicit"] for i in valid_encodings):
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raise ValueError(
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"Only named_curve and explicit encodings supported"
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)
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data = normalise_bytes(data)
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if not der.is_sequence(data):
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if "named_curve" not in valid_encodings:
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raise der.UnexpectedDER(
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"named_curve curve parameters not allowed"
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)
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oid, empty = der.remove_object(data)
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if empty:
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raise der.UnexpectedDER("Unexpected data after OID")
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return find_curve(oid)
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if "explicit" not in valid_encodings:
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raise der.UnexpectedDER("explicit curve parameters not allowed")
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seq, empty = der.remove_sequence(data)
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if empty:
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raise der.UnexpectedDER(
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"Unexpected data after ECParameters structure"
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)
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# decode the ECParameters sequence
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version, rest = der.remove_integer(seq)
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if version != 1:
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raise der.UnexpectedDER("Unknown parameter encoding format")
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field_id, rest = der.remove_sequence(rest)
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curve, rest = der.remove_sequence(rest)
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base_bytes, rest = der.remove_octet_string(rest)
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order, rest = der.remove_integer(rest)
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cofactor = None
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if rest:
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# the ASN.1 specification of ECParameters allows for future
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# extensions of the sequence, so ignore the remaining bytes
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cofactor, _ = der.remove_integer(rest)
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# decode the ECParameters.fieldID sequence
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field_type, rest = der.remove_object(field_id)
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if field_type == CHARACTERISTIC_TWO_FIELD_OID:
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raise UnknownCurveError("Characteristic 2 curves unsupported")
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if field_type != PRIME_FIELD_OID:
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raise UnknownCurveError(
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"Unknown field type: {0}".format(field_type)
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)
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prime, empty = der.remove_integer(rest)
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if empty:
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raise der.UnexpectedDER(
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"Unexpected data after ECParameters.fieldID.Prime-p element"
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)
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# decode the ECParameters.curve sequence
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curve_a_bytes, rest = der.remove_octet_string(curve)
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curve_b_bytes, rest = der.remove_octet_string(rest)
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# seed can be defined here, but we don't parse it, so ignore `rest`
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curve_a = string_to_number(curve_a_bytes)
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curve_b = string_to_number(curve_b_bytes)
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curve_fp = ellipticcurve.CurveFp(prime, curve_a, curve_b, cofactor)
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# decode the ECParameters.base point
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base = ellipticcurve.PointJacobi.from_bytes(
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curve_fp,
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base_bytes,
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valid_encodings=("uncompressed", "compressed", "hybrid"),
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order=order,
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generator=True,
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)
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tmp_curve = Curve("unknown", curve_fp, base, None)
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# if the curve matches one of the well-known ones, use the well-known
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# one in preference, as it will have the OID and name associated
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for i in curves:
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if tmp_curve == i:
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return i
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return tmp_curve
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@classmethod
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def from_pem(cls, string, valid_encodings=None):
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"""Decode the curve parameters from PEM file.
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:param str string: the text string to decode the parameters from
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:param valid_encodings: set of names of allowed encodings, by default
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all (set by passing ``None``), supported ones are ``named_curve``
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and ``explicit``
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:type valid_encodings: :term:`set-like object`
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"""
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if not PY2 and isinstance(string, str): # pragma: no branch
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string = string.encode()
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ec_param_index = string.find(b"-----BEGIN EC PARAMETERS-----")
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if ec_param_index == -1:
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raise der.UnexpectedDER("EC PARAMETERS PEM header not found")
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return cls.from_der(
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der.unpem(string[ec_param_index:]), valid_encodings
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)
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# the SEC curves
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SECP112r1 = Curve(
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"SECP112r1",
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ecdsa.curve_112r1,
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ecdsa.generator_112r1,
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(1, 3, 132, 0, 6),
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"secp112r1",
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)
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SECP112r2 = Curve(
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"SECP112r2",
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ecdsa.curve_112r2,
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ecdsa.generator_112r2,
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(1, 3, 132, 0, 7),
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"secp112r2",
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)
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SECP128r1 = Curve(
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"SECP128r1",
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ecdsa.curve_128r1,
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ecdsa.generator_128r1,
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(1, 3, 132, 0, 28),
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"secp128r1",
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)
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SECP160r1 = Curve(
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"SECP160r1",
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ecdsa.curve_160r1,
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ecdsa.generator_160r1,
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(1, 3, 132, 0, 8),
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"secp160r1",
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)
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# the NIST curves
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NIST192p = Curve(
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"NIST192p",
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ecdsa.curve_192,
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ecdsa.generator_192,
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(1, 2, 840, 10045, 3, 1, 1),
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"prime192v1",
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)
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NIST224p = Curve(
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"NIST224p",
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ecdsa.curve_224,
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ecdsa.generator_224,
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(1, 3, 132, 0, 33),
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"secp224r1",
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)
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NIST256p = Curve(
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"NIST256p",
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ecdsa.curve_256,
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ecdsa.generator_256,
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(1, 2, 840, 10045, 3, 1, 7),
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"prime256v1",
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)
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NIST384p = Curve(
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"NIST384p",
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ecdsa.curve_384,
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ecdsa.generator_384,
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(1, 3, 132, 0, 34),
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"secp384r1",
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)
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NIST521p = Curve(
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"NIST521p",
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ecdsa.curve_521,
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ecdsa.generator_521,
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(1, 3, 132, 0, 35),
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"secp521r1",
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)
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SECP256k1 = Curve(
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"SECP256k1",
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ecdsa.curve_secp256k1,
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ecdsa.generator_secp256k1,
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(1, 3, 132, 0, 10),
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"secp256k1",
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)
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BRAINPOOLP160r1 = Curve(
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"BRAINPOOLP160r1",
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ecdsa.curve_brainpoolp160r1,
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ecdsa.generator_brainpoolp160r1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 1),
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"brainpoolP160r1",
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)
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BRAINPOOLP160t1 = Curve(
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"BRAINPOOLP160t1",
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ecdsa.curve_brainpoolp160t1,
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ecdsa.generator_brainpoolp160t1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 2),
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"brainpoolP160t1",
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)
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BRAINPOOLP192r1 = Curve(
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"BRAINPOOLP192r1",
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ecdsa.curve_brainpoolp192r1,
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ecdsa.generator_brainpoolp192r1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 3),
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"brainpoolP192r1",
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)
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BRAINPOOLP192t1 = Curve(
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"BRAINPOOLP192t1",
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ecdsa.curve_brainpoolp192t1,
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ecdsa.generator_brainpoolp192t1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 4),
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"brainpoolP192t1",
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)
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BRAINPOOLP224r1 = Curve(
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"BRAINPOOLP224r1",
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ecdsa.curve_brainpoolp224r1,
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ecdsa.generator_brainpoolp224r1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 5),
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"brainpoolP224r1",
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)
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BRAINPOOLP224t1 = Curve(
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"BRAINPOOLP224t1",
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ecdsa.curve_brainpoolp224t1,
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ecdsa.generator_brainpoolp224t1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 6),
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"brainpoolP224t1",
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)
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BRAINPOOLP256r1 = Curve(
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"BRAINPOOLP256r1",
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ecdsa.curve_brainpoolp256r1,
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ecdsa.generator_brainpoolp256r1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 7),
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"brainpoolP256r1",
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)
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BRAINPOOLP256t1 = Curve(
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"BRAINPOOLP256t1",
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ecdsa.curve_brainpoolp256t1,
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ecdsa.generator_brainpoolp256t1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 8),
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"brainpoolP256t1",
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)
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BRAINPOOLP320r1 = Curve(
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"BRAINPOOLP320r1",
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ecdsa.curve_brainpoolp320r1,
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ecdsa.generator_brainpoolp320r1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 9),
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"brainpoolP320r1",
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)
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BRAINPOOLP320t1 = Curve(
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"BRAINPOOLP320t1",
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ecdsa.curve_brainpoolp320t1,
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ecdsa.generator_brainpoolp320t1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 10),
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"brainpoolP320t1",
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)
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BRAINPOOLP384r1 = Curve(
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"BRAINPOOLP384r1",
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ecdsa.curve_brainpoolp384r1,
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ecdsa.generator_brainpoolp384r1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 11),
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"brainpoolP384r1",
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)
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BRAINPOOLP384t1 = Curve(
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"BRAINPOOLP384t1",
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ecdsa.curve_brainpoolp384t1,
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ecdsa.generator_brainpoolp384t1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 12),
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"brainpoolP384t1",
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)
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BRAINPOOLP512r1 = Curve(
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"BRAINPOOLP512r1",
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ecdsa.curve_brainpoolp512r1,
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ecdsa.generator_brainpoolp512r1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 13),
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"brainpoolP512r1",
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)
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BRAINPOOLP512t1 = Curve(
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"BRAINPOOLP512t1",
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ecdsa.curve_brainpoolp512t1,
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ecdsa.generator_brainpoolp512t1,
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(1, 3, 36, 3, 3, 2, 8, 1, 1, 14),
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"brainpoolP512t1",
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)
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Ed25519 = Curve(
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"Ed25519",
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eddsa.curve_ed25519,
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eddsa.generator_ed25519,
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(1, 3, 101, 112),
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)
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Ed448 = Curve(
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"Ed448",
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eddsa.curve_ed448,
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eddsa.generator_ed448,
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(1, 3, 101, 113),
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)
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# no order in particular, but keep previously added curves first
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curves = [
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NIST192p,
|
|
NIST224p,
|
|
NIST256p,
|
|
NIST384p,
|
|
NIST521p,
|
|
SECP256k1,
|
|
BRAINPOOLP160r1,
|
|
BRAINPOOLP192r1,
|
|
BRAINPOOLP224r1,
|
|
BRAINPOOLP256r1,
|
|
BRAINPOOLP320r1,
|
|
BRAINPOOLP384r1,
|
|
BRAINPOOLP512r1,
|
|
SECP112r1,
|
|
SECP112r2,
|
|
SECP128r1,
|
|
SECP160r1,
|
|
Ed25519,
|
|
Ed448,
|
|
BRAINPOOLP160t1,
|
|
BRAINPOOLP192t1,
|
|
BRAINPOOLP224t1,
|
|
BRAINPOOLP256t1,
|
|
BRAINPOOLP320t1,
|
|
BRAINPOOLP384t1,
|
|
BRAINPOOLP512t1,
|
|
]
|
|
|
|
|
|
def find_curve(oid_curve):
|
|
"""Select a curve based on its OID
|
|
|
|
:param tuple[int,...] oid_curve: ASN.1 Object Identifier of the
|
|
curve to return, like ``(1, 2, 840, 10045, 3, 1, 7)`` for ``NIST256p``.
|
|
|
|
:raises UnknownCurveError: When the oid doesn't match any of the supported
|
|
curves
|
|
|
|
:rtype: ~ecdsa.curves.Curve
|
|
"""
|
|
for c in curves:
|
|
if c.oid == oid_curve:
|
|
return c
|
|
raise UnknownCurveError(
|
|
"I don't know about the curve with oid %s."
|
|
"I only know about these: %s" % (oid_curve, [c.name for c in curves])
|
|
)
|
|
|
|
|
|
def curve_by_name(name):
|
|
"""Select a curve based on its name.
|
|
|
|
Returns a :py:class:`~ecdsa.curves.Curve` object with a ``name`` name.
|
|
Note that ``name`` is case-sensitve.
|
|
|
|
:param str name: Name of the curve to return, like ``NIST256p`` or
|
|
``prime256v1``
|
|
|
|
:raises UnknownCurveError: When the name doesn't match any of the supported
|
|
curves
|
|
|
|
:rtype: ~ecdsa.curves.Curve
|
|
"""
|
|
for c in curves:
|
|
if name == c.name or (c.openssl_name and name == c.openssl_name):
|
|
return c
|
|
raise UnknownCurveError(
|
|
"Curve with name {0!r} unknown, only curves supported: {1}".format(
|
|
name, [c.name for c in curves]
|
|
)
|
|
)
|