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| from ._IntegerBase import IntegerBase
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|
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| from Cryptodome.Util.number import long_to_bytes, bytes_to_long, inverse, GCD
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| class IntegerNative(IntegerBase):
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| """A class to model a natural integer (including zero)"""
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| def __init__(self, value):
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| if isinstance(value, float):
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| raise ValueError("A floating point type is not a natural number")
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| try:
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| self._value = value._value
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| except AttributeError:
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| self._value = value
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| def __int__(self):
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| return self._value
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| def __str__(self):
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| return str(int(self))
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| def __repr__(self):
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| return "Integer(%s)" % str(self)
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| def __hex__(self):
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| return hex(self._value)
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| def __index__(self):
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| return int(self._value)
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|
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| def to_bytes(self, block_size=0, byteorder='big'):
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| if self._value < 0:
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| raise ValueError("Conversion only valid for non-negative numbers")
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| result = long_to_bytes(self._value, block_size)
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| if len(result) > block_size > 0:
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| raise ValueError("Value too large to encode")
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| if byteorder == 'big':
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| pass
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| elif byteorder == 'little':
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| result = bytearray(result)
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| result.reverse()
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| result = bytes(result)
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| else:
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| raise ValueError("Incorrect byteorder")
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| return result
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|
|
| @classmethod
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| def from_bytes(cls, byte_string, byteorder='big'):
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| if byteorder == 'big':
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| pass
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| elif byteorder == 'little':
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| byte_string = bytearray(byte_string)
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| byte_string.reverse()
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| else:
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| raise ValueError("Incorrect byteorder")
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| return cls(bytes_to_long(byte_string))
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|
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|
|
| def __eq__(self, term):
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| if term is None:
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| return False
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| return self._value == int(term)
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|
|
| def __ne__(self, term):
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| return not self.__eq__(term)
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|
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| def __lt__(self, term):
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| return self._value < int(term)
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| def __le__(self, term):
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| return self.__lt__(term) or self.__eq__(term)
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|
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| def __gt__(self, term):
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| return not self.__le__(term)
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|
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| def __ge__(self, term):
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| return not self.__lt__(term)
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|
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| def __nonzero__(self):
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| return self._value != 0
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| __bool__ = __nonzero__
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|
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| def is_negative(self):
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| return self._value < 0
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| def __add__(self, term):
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| try:
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| return self.__class__(self._value + int(term))
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| except (ValueError, AttributeError, TypeError):
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| return NotImplemented
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|
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| def __sub__(self, term):
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| try:
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| return self.__class__(self._value - int(term))
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| except (ValueError, AttributeError, TypeError):
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| return NotImplemented
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|
|
| def __mul__(self, factor):
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| try:
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| return self.__class__(self._value * int(factor))
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| except (ValueError, AttributeError, TypeError):
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| return NotImplemented
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|
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| def __floordiv__(self, divisor):
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| return self.__class__(self._value // int(divisor))
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|
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| def __mod__(self, divisor):
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| divisor_value = int(divisor)
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| if divisor_value < 0:
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| raise ValueError("Modulus must be positive")
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| return self.__class__(self._value % divisor_value)
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|
|
| def inplace_pow(self, exponent, modulus=None):
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| exp_value = int(exponent)
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| if exp_value < 0:
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| raise ValueError("Exponent must not be negative")
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|
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| if modulus is not None:
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| mod_value = int(modulus)
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| if mod_value < 0:
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| raise ValueError("Modulus must be positive")
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| if mod_value == 0:
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| raise ZeroDivisionError("Modulus cannot be zero")
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| else:
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| mod_value = None
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| self._value = pow(self._value, exp_value, mod_value)
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| return self
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|
|
| def __pow__(self, exponent, modulus=None):
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| result = self.__class__(self)
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| return result.inplace_pow(exponent, modulus)
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|
|
| def __abs__(self):
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| return abs(self._value)
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|
|
| def sqrt(self, modulus=None):
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|
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| value = self._value
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| if modulus is None:
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| if value < 0:
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| raise ValueError("Square root of negative value")
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|
|
|
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| x = value
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| y = (x + 1) // 2
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| while y < x:
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| x = y
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| y = (x + value // x) // 2
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| result = x
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| else:
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| if modulus <= 0:
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| raise ValueError("Modulus must be positive")
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| result = self._tonelli_shanks(self % modulus, modulus)
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|
|
| return self.__class__(result)
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|
|
| def __iadd__(self, term):
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| self._value += int(term)
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| return self
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|
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| def __isub__(self, term):
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| self._value -= int(term)
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| return self
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|
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| def __imul__(self, term):
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| self._value *= int(term)
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| return self
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|
|
| def __imod__(self, term):
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| modulus = int(term)
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| if modulus == 0:
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| raise ZeroDivisionError("Division by zero")
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| if modulus < 0:
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| raise ValueError("Modulus must be positive")
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| self._value %= modulus
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| return self
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|
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|
|
| def __and__(self, term):
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| return self.__class__(self._value & int(term))
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|
|
| def __or__(self, term):
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| return self.__class__(self._value | int(term))
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|
|
| def __rshift__(self, pos):
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| try:
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| return self.__class__(self._value >> int(pos))
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| except OverflowError:
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| if self._value >= 0:
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| return 0
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| else:
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| return -1
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|
|
| def __irshift__(self, pos):
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| try:
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| self._value >>= int(pos)
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| except OverflowError:
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| if self._value >= 0:
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| return 0
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| else:
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| return -1
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| return self
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|
|
| def __lshift__(self, pos):
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| try:
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| return self.__class__(self._value << int(pos))
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| except OverflowError:
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| raise ValueError("Incorrect shift count")
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|
|
| def __ilshift__(self, pos):
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| try:
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| self._value <<= int(pos)
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| except OverflowError:
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| raise ValueError("Incorrect shift count")
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| return self
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|
|
| def get_bit(self, n):
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| if self._value < 0:
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| raise ValueError("no bit representation for negative values")
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| try:
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| try:
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| result = (self._value >> n._value) & 1
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| if n._value < 0:
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| raise ValueError("negative bit count")
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| except AttributeError:
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| result = (self._value >> n) & 1
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| if n < 0:
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| raise ValueError("negative bit count")
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| except OverflowError:
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| result = 0
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| return result
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|
|
|
|
| def is_odd(self):
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| return (self._value & 1) == 1
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|
|
| def is_even(self):
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| return (self._value & 1) == 0
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|
|
| def size_in_bits(self):
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|
|
| if self._value < 0:
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| raise ValueError("Conversion only valid for non-negative numbers")
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|
|
| if self._value == 0:
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| return 1
|
|
|
| return self._value.bit_length()
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|
|
| def size_in_bytes(self):
|
| return (self.size_in_bits() - 1) // 8 + 1
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|
|
| def is_perfect_square(self):
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| if self._value < 0:
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| return False
|
| if self._value in (0, 1):
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| return True
|
|
|
| x = self._value // 2
|
| square_x = x ** 2
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|
|
| while square_x > self._value:
|
| x = (square_x + self._value) // (2 * x)
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| square_x = x ** 2
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|
|
| return self._value == x ** 2
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|
|
| def fail_if_divisible_by(self, small_prime):
|
| if (self._value % int(small_prime)) == 0:
|
| raise ValueError("Value is composite")
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|
|
| def multiply_accumulate(self, a, b):
|
| self._value += int(a) * int(b)
|
| return self
|
|
|
| def set(self, source):
|
| self._value = int(source)
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|
|
| def inplace_inverse(self, modulus):
|
| self._value = inverse(self._value, int(modulus))
|
| return self
|
|
|
| def inverse(self, modulus):
|
| result = self.__class__(self)
|
| result.inplace_inverse(modulus)
|
| return result
|
|
|
| def gcd(self, term):
|
| return self.__class__(GCD(abs(self._value), abs(int(term))))
|
|
|
| def lcm(self, term):
|
| term = int(term)
|
| if self._value == 0 or term == 0:
|
| return self.__class__(0)
|
| return self.__class__(abs((self._value * term) // self.gcd(term)._value))
|
|
|
| @staticmethod
|
| def jacobi_symbol(a, n):
|
| a = int(a)
|
| n = int(n)
|
|
|
| if n <= 0:
|
| raise ValueError("n must be a positive integer")
|
|
|
| if (n & 1) == 0:
|
| raise ValueError("n must be odd for the Jacobi symbol")
|
|
|
|
|
| a = a % n
|
|
|
| if a == 1 or n == 1:
|
| return 1
|
|
|
| if a == 0:
|
| return 0
|
|
|
| e = 0
|
| a1 = a
|
| while (a1 & 1) == 0:
|
| a1 >>= 1
|
| e += 1
|
|
|
| if (e & 1) == 0:
|
| s = 1
|
| elif n % 8 in (1, 7):
|
| s = 1
|
| else:
|
| s = -1
|
|
|
| if n % 4 == 3 and a1 % 4 == 3:
|
| s = -s
|
|
|
| n1 = n % a1
|
|
|
| return s * IntegerNative.jacobi_symbol(n1, a1)
|
|
|
| @staticmethod
|
| def _mult_modulo_bytes(term1, term2, modulus):
|
| if modulus < 0:
|
| raise ValueError("Modulus must be positive")
|
| if modulus == 0:
|
| raise ZeroDivisionError("Modulus cannot be zero")
|
| if (modulus & 1) == 0:
|
| raise ValueError("Odd modulus is required")
|
|
|
| number_len = len(long_to_bytes(modulus))
|
| return long_to_bytes((term1 * term2) % modulus, number_len)
|
|
|