__version__ = '1.0'
import functools
IPV4LENGTH = 32
IPV6LENGTH = 128
class AddressValueError(ValueError):
class NetmaskValueError(ValueError):
def ip_address(address):
try:
return IPv4Address(address)
except (AddressValueError, NetmaskValueError):
pass
try:
return IPv6Address(address)
except (AddressValueError, NetmaskValueError):
pass
raise ValueError(f'{address!r} does not appear to be an IPv4 or IPv6 address')
def ip_network(address, strict=True):
try:
return IPv4Network(address, strict)
except (AddressValueError, NetmaskValueError):
pass
try:
return IPv6Network(address, strict)
except (AddressValueError, NetmaskValueError):
pass
raise ValueError(f'{address!r} does not appear to be an IPv4 or IPv6 network')
def ip_interface(address):
try:
return IPv4Interface(address)
except (AddressValueError, NetmaskValueError):
pass
try:
return IPv6Interface(address)
except (AddressValueError, NetmaskValueError):
pass
raise ValueError(f'{address!r} does not appear to be an IPv4 or IPv6 interface')
def v4_int_to_packed(address):
try:
return address.to_bytes(4) except OverflowError:
raise ValueError("Address negative or too large for IPv4")
def v6_int_to_packed(address):
try:
return address.to_bytes(16) except OverflowError:
raise ValueError("Address negative or too large for IPv6")
def _split_optional_netmask(address):
addr = str(address).split('/')
if len(addr) > 2:
raise AddressValueError(f"Only one '/' permitted in {address!r}")
return addr
def _find_address_range(addresses):
it = iter(addresses)
first = last = next(it)
for ip in it:
if ip._ip != last._ip + 1:
yield first, last
first = ip
last = ip
yield first, last
def _count_righthand_zero_bits(number, bits):
if number == 0:
return bits
return min(bits, (~number & (number-1)).bit_length())
def summarize_address_range(first, last):
if (not (isinstance(first, _BaseAddress) and
isinstance(last, _BaseAddress))):
raise TypeError('first and last must be IP addresses, not networks')
if first.version != last.version:
raise TypeError("%s and %s are not of the same version" % (
first, last))
if first > last:
raise ValueError('last IP address must be greater than first')
if first.version == 4:
ip = IPv4Network
elif first.version == 6:
ip = IPv6Network
else:
raise ValueError('unknown IP version')
ip_bits = first.max_prefixlen
first_int = first._ip
last_int = last._ip
while first_int <= last_int:
nbits = min(_count_righthand_zero_bits(first_int, ip_bits),
(last_int - first_int + 1).bit_length() - 1)
net = ip((first_int, ip_bits - nbits))
yield net
first_int += 1 << nbits
if first_int - 1 == ip._ALL_ONES:
break
def _collapse_addresses_internal(addresses):
to_merge = list(addresses)
subnets = {}
while to_merge:
net = to_merge.pop()
supernet = net.supernet()
existing = subnets.get(supernet)
if existing is None:
subnets[supernet] = net
elif existing != net:
del subnets[supernet]
to_merge.append(supernet)
last = None
for net in sorted(subnets.values()):
if last is not None:
if last.broadcast_address >= net.broadcast_address:
continue
yield net
last = net
def collapse_addresses(addresses):
addrs = []
ips = []
nets = []
for ip in addresses:
if isinstance(ip, _BaseAddress):
if ips and ips[-1].version != ip.version:
raise TypeError("%s and %s are not of the same version" % (
ip, ips[-1]))
ips.append(ip)
elif ip._prefixlen == ip.max_prefixlen:
if ips and ips[-1].version != ip.version:
raise TypeError("%s and %s are not of the same version" % (
ip, ips[-1]))
try:
ips.append(ip.ip)
except AttributeError:
ips.append(ip.network_address)
else:
if nets and nets[-1].version != ip.version:
raise TypeError("%s and %s are not of the same version" % (
ip, nets[-1]))
nets.append(ip)
ips = sorted(set(ips))
if ips:
for first, last in _find_address_range(ips):
addrs.extend(summarize_address_range(first, last))
return _collapse_addresses_internal(addrs + nets)
def get_mixed_type_key(obj):
if isinstance(obj, _BaseNetwork):
return obj._get_networks_key()
elif isinstance(obj, _BaseAddress):
return obj._get_address_key()
return NotImplemented
class _IPAddressBase:
__slots__ = ()
@property
def exploded(self):
return self._explode_shorthand_ip_string()
@property
def compressed(self):
return str(self)
@property
def reverse_pointer(self):
return self._reverse_pointer()
def _check_int_address(self, address):
if address < 0:
msg = "%d (< 0) is not permitted as an IPv%d address"
raise AddressValueError(msg % (address, self.version))
if address > self._ALL_ONES:
msg = "%d (>= 2**%d) is not permitted as an IPv%d address"
raise AddressValueError(msg % (address, self.max_prefixlen,
self.version))
def _check_packed_address(self, address, expected_len):
address_len = len(address)
if address_len != expected_len:
msg = "%r (len %d != %d) is not permitted as an IPv%d address"
raise AddressValueError(msg % (address, address_len,
expected_len, self.version))
@classmethod
def _ip_int_from_prefix(cls, prefixlen):
return cls._ALL_ONES ^ (cls._ALL_ONES >> prefixlen)
@classmethod
def _prefix_from_ip_int(cls, ip_int):
trailing_zeroes = _count_righthand_zero_bits(ip_int,
cls.max_prefixlen)
prefixlen = cls.max_prefixlen - trailing_zeroes
leading_ones = ip_int >> trailing_zeroes
all_ones = (1 << prefixlen) - 1
if leading_ones != all_ones:
byteslen = cls.max_prefixlen // 8
details = ip_int.to_bytes(byteslen, 'big')
msg = 'Netmask pattern %r mixes zeroes & ones'
raise ValueError(msg % details)
return prefixlen
@classmethod
def _report_invalid_netmask(cls, netmask_str):
msg = '%r is not a valid netmask' % netmask_str
raise NetmaskValueError(msg) from None
@classmethod
def _prefix_from_prefix_string(cls, prefixlen_str):
if not (prefixlen_str.isascii() and prefixlen_str.isdigit()):
cls._report_invalid_netmask(prefixlen_str)
try:
prefixlen = int(prefixlen_str)
except ValueError:
cls._report_invalid_netmask(prefixlen_str)
if not (0 <= prefixlen <= cls.max_prefixlen):
cls._report_invalid_netmask(prefixlen_str)
return prefixlen
@classmethod
def _prefix_from_ip_string(cls, ip_str):
try:
ip_int = cls._ip_int_from_string(ip_str)
except AddressValueError:
cls._report_invalid_netmask(ip_str)
try:
return cls._prefix_from_ip_int(ip_int)
except ValueError:
pass
ip_int ^= cls._ALL_ONES
try:
return cls._prefix_from_ip_int(ip_int)
except ValueError:
cls._report_invalid_netmask(ip_str)
@classmethod
def _split_addr_prefix(cls, address):
if isinstance(address, (bytes, int)):
return address, cls.max_prefixlen
if not isinstance(address, tuple):
address = _split_optional_netmask(address)
if len(address) > 1:
return address
return address[0], cls.max_prefixlen
def __reduce__(self):
return self.__class__, (str(self),)
_address_fmt_re = None
@functools.total_ordering
class _BaseAddress(_IPAddressBase):
__slots__ = ()
def __int__(self):
return self._ip
def __eq__(self, other):
try:
return (self._ip == other._ip
and self.version == other.version)
except AttributeError:
return NotImplemented
def __lt__(self, other):
if not isinstance(other, _BaseAddress):
return NotImplemented
if self.version != other.version:
raise TypeError('%s and %s are not of the same version' % (
self, other))
if self._ip != other._ip:
return self._ip < other._ip
return False
def __add__(self, other):
if not isinstance(other, int):
return NotImplemented
return self.__class__(int(self) + other)
def __sub__(self, other):
if not isinstance(other, int):
return NotImplemented
return self.__class__(int(self) - other)
def __repr__(self):
return '%s(%r)' % (self.__class__.__name__, str(self))
def __str__(self):
return str(self._string_from_ip_int(self._ip))
def __hash__(self):
return hash(hex(int(self._ip)))
def _get_address_key(self):
return (self.version, self)
def __reduce__(self):
return self.__class__, (self._ip,)
def __format__(self, fmt):
if not fmt or fmt[-1] == 's':
return format(str(self), fmt)
global _address_fmt_re
if _address_fmt_re is None:
import re
_address_fmt_re = re.compile('(#?)(_?)([xbnX])')
m = _address_fmt_re.fullmatch(fmt)
if not m:
return super().__format__(fmt)
alternate, grouping, fmt_base = m.groups()
if fmt_base == 'n':
if self.version == 4:
fmt_base = 'b' else:
fmt_base = 'x'
if fmt_base == 'b':
padlen = self.max_prefixlen
else:
padlen = self.max_prefixlen // 4
if grouping:
padlen += padlen // 4 - 1
if alternate:
padlen += 2
return format(int(self), f'{alternate}0{padlen}{grouping}{fmt_base}')
@functools.total_ordering
class _BaseNetwork(_IPAddressBase):
def __repr__(self):
return '%s(%r)' % (self.__class__.__name__, str(self))
def __str__(self):
return '%s/%d' % (self.network_address, self.prefixlen)
def hosts(self):
network = int(self.network_address)
broadcast = int(self.broadcast_address)
for x in range(network + 1, broadcast):
yield self._address_class(x)
def __iter__(self):
network = int(self.network_address)
broadcast = int(self.broadcast_address)
for x in range(network, broadcast + 1):
yield self._address_class(x)
def __getitem__(self, n):
network = int(self.network_address)
broadcast = int(self.broadcast_address)
if n >= 0:
if network + n > broadcast:
raise IndexError('address out of range')
return self._address_class(network + n)
else:
n += 1
if broadcast + n < network:
raise IndexError('address out of range')
return self._address_class(broadcast + n)
def __lt__(self, other):
if not isinstance(other, _BaseNetwork):
return NotImplemented
if self.version != other.version:
raise TypeError('%s and %s are not of the same version' % (
self, other))
if self.network_address != other.network_address:
return self.network_address < other.network_address
if self.netmask != other.netmask:
return self.netmask < other.netmask
return False
def __eq__(self, other):
try:
return (self.version == other.version and
self.network_address == other.network_address and
int(self.netmask) == int(other.netmask))
except AttributeError:
return NotImplemented
def __hash__(self):
return hash((int(self.network_address), int(self.netmask)))
def __contains__(self, other):
if self.version != other.version:
return False
if isinstance(other, _BaseNetwork):
return False
else:
return other._ip & self.netmask._ip == self.network_address._ip
def overlaps(self, other):
return self.network_address in other or (
self.broadcast_address in other or (
other.network_address in self or (
other.broadcast_address in self)))
@functools.cached_property
def broadcast_address(self):
return self._address_class(int(self.network_address) |
int(self.hostmask))
@functools.cached_property
def hostmask(self):
return self._address_class(int(self.netmask) ^ self._ALL_ONES)
@property
def with_prefixlen(self):
return '%s/%d' % (self.network_address, self._prefixlen)
@property
def with_netmask(self):
return '%s/%s' % (self.network_address, self.netmask)
@property
def with_hostmask(self):
return '%s/%s' % (self.network_address, self.hostmask)
@property
def num_addresses(self):
return int(self.broadcast_address) - int(self.network_address) + 1
@property
def _address_class(self):
msg = '%200s has no associated address class' % (type(self),)
raise NotImplementedError(msg)
@property
def prefixlen(self):
return self._prefixlen
def address_exclude(self, other):
if not self.version == other.version:
raise TypeError("%s and %s are not of the same version" % (
self, other))
if not isinstance(other, _BaseNetwork):
raise TypeError("%s is not a network object" % other)
if not other.subnet_of(self):
raise ValueError('%s not contained in %s' % (other, self))
if other == self:
return
other = other.__class__('%s/%s' % (other.network_address,
other.prefixlen))
s1, s2 = self.subnets()
while s1 != other and s2 != other:
if other.subnet_of(s1):
yield s2
s1, s2 = s1.subnets()
elif other.subnet_of(s2):
yield s1
s1, s2 = s2.subnets()
else:
raise AssertionError('Error performing exclusion: '
's1: %s s2: %s other: %s' %
(s1, s2, other))
if s1 == other:
yield s2
elif s2 == other:
yield s1
else:
raise AssertionError('Error performing exclusion: '
's1: %s s2: %s other: %s' %
(s1, s2, other))
def compare_networks(self, other):
if self.version != other.version:
raise TypeError('%s and %s are not of the same type' % (
self, other))
if self.network_address < other.network_address:
return -1
if self.network_address > other.network_address:
return 1
if self.netmask < other.netmask:
return -1
if self.netmask > other.netmask:
return 1
return 0
def _get_networks_key(self):
return (self.version, self.network_address, self.netmask)
def subnets(self, prefixlen_diff=1, new_prefix=None):
if self._prefixlen == self.max_prefixlen:
yield self
return
if new_prefix is not None:
if new_prefix < self._prefixlen:
raise ValueError('new prefix must be longer')
if prefixlen_diff != 1:
raise ValueError('cannot set prefixlen_diff and new_prefix')
prefixlen_diff = new_prefix - self._prefixlen
if prefixlen_diff < 0:
raise ValueError('prefix length diff must be > 0')
new_prefixlen = self._prefixlen + prefixlen_diff
if new_prefixlen > self.max_prefixlen:
raise ValueError(
'prefix length diff %d is invalid for netblock %s' % (
new_prefixlen, self))
start = int(self.network_address)
end = int(self.broadcast_address) + 1
step = (int(self.hostmask) + 1) >> prefixlen_diff
for new_addr in range(start, end, step):
current = self.__class__((new_addr, new_prefixlen))
yield current
def supernet(self, prefixlen_diff=1, new_prefix=None):
if self._prefixlen == 0:
return self
if new_prefix is not None:
if new_prefix > self._prefixlen:
raise ValueError('new prefix must be shorter')
if prefixlen_diff != 1:
raise ValueError('cannot set prefixlen_diff and new_prefix')
prefixlen_diff = self._prefixlen - new_prefix
new_prefixlen = self.prefixlen - prefixlen_diff
if new_prefixlen < 0:
raise ValueError(
'current prefixlen is %d, cannot have a prefixlen_diff of %d' %
(self.prefixlen, prefixlen_diff))
return self.__class__((
int(self.network_address) & (int(self.netmask) << prefixlen_diff),
new_prefixlen
))
@property
def is_multicast(self):
return (self.network_address.is_multicast and
self.broadcast_address.is_multicast)
@staticmethod
def _is_subnet_of(a, b):
try:
if a.version != b.version:
raise TypeError(f"{a} and {b} are not of the same version")
return (b.network_address <= a.network_address and
b.broadcast_address >= a.broadcast_address)
except AttributeError:
raise TypeError(f"Unable to test subnet containment "
f"between {a} and {b}")
def subnet_of(self, other):
return self._is_subnet_of(self, other)
def supernet_of(self, other):
return self._is_subnet_of(other, self)
@property
def is_reserved(self):
return (self.network_address.is_reserved and
self.broadcast_address.is_reserved)
@property
def is_link_local(self):
return (self.network_address.is_link_local and
self.broadcast_address.is_link_local)
@property
def is_private(self):
return any(self.network_address in priv_network and
self.broadcast_address in priv_network
for priv_network in self._constants._private_networks) and all(
self.network_address not in network and
self.broadcast_address not in network
for network in self._constants._private_networks_exceptions
)
@property
def is_global(self):
return not self.is_private
@property
def is_unspecified(self):
return (self.network_address.is_unspecified and
self.broadcast_address.is_unspecified)
@property
def is_loopback(self):
return (self.network_address.is_loopback and
self.broadcast_address.is_loopback)
class _BaseConstants:
_private_networks = []
_BaseNetwork._constants = _BaseConstants
class _BaseV4:
__slots__ = ()
version = 4
_ALL_ONES = (2**IPV4LENGTH) - 1
max_prefixlen = IPV4LENGTH
_netmask_cache = {}
def _explode_shorthand_ip_string(self):
return str(self)
@classmethod
def _make_netmask(cls, arg):
if arg not in cls._netmask_cache:
if isinstance(arg, int):
prefixlen = arg
if not (0 <= prefixlen <= cls.max_prefixlen):
cls._report_invalid_netmask(prefixlen)
else:
try:
prefixlen = cls._prefix_from_prefix_string(arg)
except NetmaskValueError:
prefixlen = cls._prefix_from_ip_string(arg)
netmask = IPv4Address(cls._ip_int_from_prefix(prefixlen))
cls._netmask_cache[arg] = netmask, prefixlen
return cls._netmask_cache[arg]
@classmethod
def _ip_int_from_string(cls, ip_str):
if not ip_str:
raise AddressValueError('Address cannot be empty')
octets = ip_str.split('.')
if len(octets) != 4:
raise AddressValueError("Expected 4 octets in %r" % ip_str)
try:
return int.from_bytes(map(cls._parse_octet, octets), 'big')
except ValueError as exc:
raise AddressValueError("%s in %r" % (exc, ip_str)) from None
@classmethod
def _parse_octet(cls, octet_str):
if not octet_str:
raise ValueError("Empty octet not permitted")
if not (octet_str.isascii() and octet_str.isdigit()):
msg = "Only decimal digits permitted in %r"
raise ValueError(msg % octet_str)
if len(octet_str) > 3:
msg = "At most 3 characters permitted in %r"
raise ValueError(msg % octet_str)
if octet_str != '0' and octet_str[0] == '0':
msg = "Leading zeros are not permitted in %r"
raise ValueError(msg % octet_str)
octet_int = int(octet_str, 10)
if octet_int > 255:
raise ValueError("Octet %d (> 255) not permitted" % octet_int)
return octet_int
@classmethod
def _string_from_ip_int(cls, ip_int):
return '.'.join(map(str, ip_int.to_bytes(4, 'big')))
def _reverse_pointer(self):
reverse_octets = str(self).split('.')[::-1]
return '.'.join(reverse_octets) + '.in-addr.arpa'
class IPv4Address(_BaseV4, _BaseAddress):
__slots__ = ('_ip', '__weakref__')
def __init__(self, address):
if isinstance(address, int):
self._check_int_address(address)
self._ip = address
return
if isinstance(address, bytes):
self._check_packed_address(address, 4)
self._ip = int.from_bytes(address) return
addr_str = str(address)
if '/' in addr_str:
raise AddressValueError(f"Unexpected '/' in {address!r}")
self._ip = self._ip_int_from_string(addr_str)
@property
def packed(self):
return v4_int_to_packed(self._ip)
@property
def is_reserved(self):
return self in self._constants._reserved_network
@property
@functools.lru_cache()
def is_private(self):
return (
any(self in net for net in self._constants._private_networks)
and all(self not in net for net in self._constants._private_networks_exceptions)
)
@property
@functools.lru_cache()
def is_global(self):
return self not in self._constants._public_network and not self.is_private
@property
def is_multicast(self):
return self in self._constants._multicast_network
@property
def is_unspecified(self):
return self == self._constants._unspecified_address
@property
def is_loopback(self):
return self in self._constants._loopback_network
@property
def is_link_local(self):
return self in self._constants._linklocal_network
@property
def ipv6_mapped(self):
return IPv6Address(f'::ffff:{self}')
class IPv4Interface(IPv4Address):
def __init__(self, address):
addr, mask = self._split_addr_prefix(address)
IPv4Address.__init__(self, addr)
self.network = IPv4Network((addr, mask), strict=False)
self.netmask = self.network.netmask
self._prefixlen = self.network._prefixlen
@functools.cached_property
def hostmask(self):
return self.network.hostmask
def __str__(self):
return '%s/%d' % (self._string_from_ip_int(self._ip),
self._prefixlen)
def __eq__(self, other):
address_equal = IPv4Address.__eq__(self, other)
if address_equal is NotImplemented or not address_equal:
return address_equal
try:
return self.network == other.network
except AttributeError:
return False
def __lt__(self, other):
address_less = IPv4Address.__lt__(self, other)
if address_less is NotImplemented:
return NotImplemented
try:
return (self.network < other.network or
self.network == other.network and address_less)
except AttributeError:
return False
def __hash__(self):
return hash((self._ip, self._prefixlen, int(self.network.network_address)))
__reduce__ = _IPAddressBase.__reduce__
@property
def ip(self):
return IPv4Address(self._ip)
@property
def with_prefixlen(self):
return '%s/%s' % (self._string_from_ip_int(self._ip),
self._prefixlen)
@property
def with_netmask(self):
return '%s/%s' % (self._string_from_ip_int(self._ip),
self.netmask)
@property
def with_hostmask(self):
return '%s/%s' % (self._string_from_ip_int(self._ip),
self.hostmask)
class IPv4Network(_BaseV4, _BaseNetwork):
_address_class = IPv4Address
def __init__(self, address, strict=True):
addr, mask = self._split_addr_prefix(address)
self.network_address = IPv4Address(addr)
self.netmask, self._prefixlen = self._make_netmask(mask)
packed = int(self.network_address)
if packed & int(self.netmask) != packed:
if strict:
raise ValueError('%s has host bits set' % self)
else:
self.network_address = IPv4Address(packed &
int(self.netmask))
if self._prefixlen == (self.max_prefixlen - 1):
self.hosts = self.__iter__
elif self._prefixlen == (self.max_prefixlen):
self.hosts = lambda: iter((IPv4Address(addr),))
@property
@functools.lru_cache()
def is_global(self):
return (not (self.network_address in IPv4Network('100.64.0.0/10') and
self.broadcast_address in IPv4Network('100.64.0.0/10')) and
not self.is_private)
class _IPv4Constants:
_linklocal_network = IPv4Network('169.254.0.0/16')
_loopback_network = IPv4Network('127.0.0.0/8')
_multicast_network = IPv4Network('224.0.0.0/4')
_public_network = IPv4Network('100.64.0.0/10')
_private_networks = [
IPv4Network('0.0.0.0/8'),
IPv4Network('10.0.0.0/8'),
IPv4Network('127.0.0.0/8'),
IPv4Network('169.254.0.0/16'),
IPv4Network('172.16.0.0/12'),
IPv4Network('192.0.0.0/24'),
IPv4Network('192.0.0.170/31'),
IPv4Network('192.0.2.0/24'),
IPv4Network('192.168.0.0/16'),
IPv4Network('198.18.0.0/15'),
IPv4Network('198.51.100.0/24'),
IPv4Network('203.0.113.0/24'),
IPv4Network('240.0.0.0/4'),
IPv4Network('255.255.255.255/32'),
]
_private_networks_exceptions = [
IPv4Network('192.0.0.9/32'),
IPv4Network('192.0.0.10/32'),
]
_reserved_network = IPv4Network('240.0.0.0/4')
_unspecified_address = IPv4Address('0.0.0.0')
IPv4Address._constants = _IPv4Constants
IPv4Network._constants = _IPv4Constants
class _BaseV6:
__slots__ = ()
version = 6
_ALL_ONES = (2**IPV6LENGTH) - 1
_HEXTET_COUNT = 8
_HEX_DIGITS = frozenset('0123456789ABCDEFabcdef')
max_prefixlen = IPV6LENGTH
_netmask_cache = {}
@classmethod
def _make_netmask(cls, arg):
if arg not in cls._netmask_cache:
if isinstance(arg, int):
prefixlen = arg
if not (0 <= prefixlen <= cls.max_prefixlen):
cls._report_invalid_netmask(prefixlen)
else:
prefixlen = cls._prefix_from_prefix_string(arg)
netmask = IPv6Address(cls._ip_int_from_prefix(prefixlen))
cls._netmask_cache[arg] = netmask, prefixlen
return cls._netmask_cache[arg]
@classmethod
def _ip_int_from_string(cls, ip_str):
if not ip_str:
raise AddressValueError('Address cannot be empty')
if len(ip_str) > 45:
shorten = ip_str
if len(shorten) > 100:
shorten = f'{ip_str[:45]}({len(ip_str)-90} chars elided){ip_str[-45:]}'
raise AddressValueError(f"At most 45 characters expected in "
f"{shorten!r}")
_max_parts = cls._HEXTET_COUNT + 1
parts = ip_str.split(':', maxsplit=_max_parts)
_min_parts = 3
if len(parts) < _min_parts:
msg = "At least %d parts expected in %r" % (_min_parts, ip_str)
raise AddressValueError(msg)
if '.' in parts[-1]:
try:
ipv4_int = IPv4Address(parts.pop())._ip
except AddressValueError as exc:
raise AddressValueError("%s in %r" % (exc, ip_str)) from None
parts.append('%x' % ((ipv4_int >> 16) & 0xFFFF))
parts.append('%x' % (ipv4_int & 0xFFFF))
if len(parts) > _max_parts:
msg = "At most %d colons permitted in %r" % (_max_parts-1, ip_str)
raise AddressValueError(msg)
skip_index = None
for i in range(1, len(parts) - 1):
if not parts[i]:
if skip_index is not None:
msg = "At most one '::' permitted in %r" % ip_str
raise AddressValueError(msg)
skip_index = i
if skip_index is not None:
parts_hi = skip_index
parts_lo = len(parts) - skip_index - 1
if not parts[0]:
parts_hi -= 1
if parts_hi:
msg = "Leading ':' only permitted as part of '::' in %r"
raise AddressValueError(msg % ip_str) if not parts[-1]:
parts_lo -= 1
if parts_lo:
msg = "Trailing ':' only permitted as part of '::' in %r"
raise AddressValueError(msg % ip_str) parts_skipped = cls._HEXTET_COUNT - (parts_hi + parts_lo)
if parts_skipped < 1:
msg = "Expected at most %d other parts with '::' in %r"
raise AddressValueError(msg % (cls._HEXTET_COUNT-1, ip_str))
else:
if len(parts) != cls._HEXTET_COUNT:
msg = "Exactly %d parts expected without '::' in %r"
raise AddressValueError(msg % (cls._HEXTET_COUNT, ip_str))
if not parts[0]:
msg = "Leading ':' only permitted as part of '::' in %r"
raise AddressValueError(msg % ip_str) if not parts[-1]:
msg = "Trailing ':' only permitted as part of '::' in %r"
raise AddressValueError(msg % ip_str) parts_hi = len(parts)
parts_lo = 0
parts_skipped = 0
try:
ip_int = 0
for i in range(parts_hi):
ip_int <<= 16
ip_int |= cls._parse_hextet(parts[i])
ip_int <<= 16 * parts_skipped
for i in range(-parts_lo, 0):
ip_int <<= 16
ip_int |= cls._parse_hextet(parts[i])
return ip_int
except ValueError as exc:
raise AddressValueError("%s in %r" % (exc, ip_str)) from None
@classmethod
def _parse_hextet(cls, hextet_str):
if not cls._HEX_DIGITS.issuperset(hextet_str):
raise ValueError("Only hex digits permitted in %r" % hextet_str)
if len(hextet_str) > 4:
msg = "At most 4 characters permitted in %r"
raise ValueError(msg % hextet_str)
return int(hextet_str, 16)
@classmethod
def _compress_hextets(cls, hextets):
best_doublecolon_start = -1
best_doublecolon_len = 0
doublecolon_start = -1
doublecolon_len = 0
for index, hextet in enumerate(hextets):
if hextet == '0':
doublecolon_len += 1
if doublecolon_start == -1:
doublecolon_start = index
if doublecolon_len > best_doublecolon_len:
best_doublecolon_len = doublecolon_len
best_doublecolon_start = doublecolon_start
else:
doublecolon_len = 0
doublecolon_start = -1
if best_doublecolon_len > 1:
best_doublecolon_end = (best_doublecolon_start +
best_doublecolon_len)
if best_doublecolon_end == len(hextets):
hextets += ['']
hextets[best_doublecolon_start:best_doublecolon_end] = ['']
if best_doublecolon_start == 0:
hextets = [''] + hextets
return hextets
@classmethod
def _string_from_ip_int(cls, ip_int=None):
if ip_int is None:
ip_int = int(cls._ip)
if ip_int > cls._ALL_ONES:
raise ValueError('IPv6 address is too large')
hex_str = '%032x' % ip_int
hextets = ['%x' % int(hex_str[x:x+4], 16) for x in range(0, 32, 4)]
hextets = cls._compress_hextets(hextets)
return ':'.join(hextets)
def _explode_shorthand_ip_string(self):
if isinstance(self, IPv6Network):
ip_str = str(self.network_address)
elif isinstance(self, IPv6Interface):
ip_str = str(self.ip)
else:
ip_str = str(self)
ip_int = self._ip_int_from_string(ip_str)
hex_str = '%032x' % ip_int
parts = [hex_str[x:x+4] for x in range(0, 32, 4)]
if isinstance(self, (_BaseNetwork, IPv6Interface)):
return '%s/%d' % (':'.join(parts), self._prefixlen)
return ':'.join(parts)
def _reverse_pointer(self):
reverse_chars = self.exploded[::-1].replace(':', '')
return '.'.join(reverse_chars) + '.ip6.arpa'
@staticmethod
def _split_scope_id(ip_str):
addr, sep, scope_id = ip_str.partition('%')
if not sep:
scope_id = None
elif not scope_id or '%' in scope_id:
raise AddressValueError('Invalid IPv6 address: "%r"' % ip_str)
return addr, scope_id
class IPv6Address(_BaseV6, _BaseAddress):
__slots__ = ('_ip', '_scope_id', '__weakref__')
def __init__(self, address):
if isinstance(address, int):
self._check_int_address(address)
self._ip = address
self._scope_id = None
return
if isinstance(address, bytes):
self._check_packed_address(address, 16)
self._ip = int.from_bytes(address, 'big')
self._scope_id = None
return
addr_str = str(address)
if '/' in addr_str:
raise AddressValueError(f"Unexpected '/' in {address!r}")
addr_str, self._scope_id = self._split_scope_id(addr_str)
self._ip = self._ip_int_from_string(addr_str)
def _explode_shorthand_ip_string(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is None:
return super()._explode_shorthand_ip_string()
prefix_len = 30
raw_exploded_str = super()._explode_shorthand_ip_string()
return f"{raw_exploded_str[:prefix_len]}{ipv4_mapped!s}"
def _reverse_pointer(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is None:
return super()._reverse_pointer()
prefix_len = 30
raw_exploded_str = super()._explode_shorthand_ip_string()[:prefix_len]
ipv4_int = ipv4_mapped._ip
reverse_chars = f"{raw_exploded_str}{ipv4_int:008x}"[::-1].replace(':', '')
return '.'.join(reverse_chars) + '.ip6.arpa'
def _ipv4_mapped_ipv6_to_str(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is None:
raise AddressValueError("Can not apply to non-IPv4-mapped IPv6 address %s" % str(self))
high_order_bits = self._ip >> 32
return "%s:%s" % (self._string_from_ip_int(high_order_bits), str(ipv4_mapped))
def __str__(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is None:
ip_str = super().__str__()
else:
ip_str = self._ipv4_mapped_ipv6_to_str()
return ip_str + '%' + self._scope_id if self._scope_id else ip_str
def __hash__(self):
return hash((self._ip, self._scope_id))
def __eq__(self, other):
address_equal = super().__eq__(other)
if address_equal is NotImplemented:
return NotImplemented
if not address_equal:
return False
return self._scope_id == getattr(other, '_scope_id', None)
def __reduce__(self):
return (self.__class__, (str(self),))
@property
def scope_id(self):
return self._scope_id
@property
def packed(self):
return v6_int_to_packed(self._ip)
@property
def is_multicast(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is not None:
return ipv4_mapped.is_multicast
return self in self._constants._multicast_network
@property
def is_reserved(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is not None:
return ipv4_mapped.is_reserved
return any(self in x for x in self._constants._reserved_networks)
@property
def is_link_local(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is not None:
return ipv4_mapped.is_link_local
return self in self._constants._linklocal_network
@property
def is_site_local(self):
return self in self._constants._sitelocal_network
@property
@functools.lru_cache()
def is_private(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is not None:
return ipv4_mapped.is_private
return (
any(self in net for net in self._constants._private_networks)
and all(self not in net for net in self._constants._private_networks_exceptions)
)
@property
def is_global(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is not None:
return ipv4_mapped.is_global
return not self.is_private
@property
def is_unspecified(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is not None:
return ipv4_mapped.is_unspecified
return self._ip == 0
@property
def is_loopback(self):
ipv4_mapped = self.ipv4_mapped
if ipv4_mapped is not None:
return ipv4_mapped.is_loopback
return self._ip == 1
@property
def ipv4_mapped(self):
if (self._ip >> 32) != 0xFFFF:
return None
return IPv4Address(self._ip & 0xFFFFFFFF)
@property
def teredo(self):
if (self._ip >> 96) != 0x20010000:
return None
return (IPv4Address((self._ip >> 64) & 0xFFFFFFFF),
IPv4Address(~self._ip & 0xFFFFFFFF))
@property
def sixtofour(self):
if (self._ip >> 112) != 0x2002:
return None
return IPv4Address((self._ip >> 80) & 0xFFFFFFFF)
class IPv6Interface(IPv6Address):
def __init__(self, address):
addr, mask = self._split_addr_prefix(address)
IPv6Address.__init__(self, addr)
self.network = IPv6Network((addr, mask), strict=False)
self.netmask = self.network.netmask
self._prefixlen = self.network._prefixlen
@functools.cached_property
def hostmask(self):
return self.network.hostmask
def __str__(self):
return '%s/%d' % (super().__str__(),
self._prefixlen)
def __eq__(self, other):
address_equal = IPv6Address.__eq__(self, other)
if address_equal is NotImplemented or not address_equal:
return address_equal
try:
return self.network == other.network
except AttributeError:
return False
def __lt__(self, other):
address_less = IPv6Address.__lt__(self, other)
if address_less is NotImplemented:
return address_less
try:
return (self.network < other.network or
self.network == other.network and address_less)
except AttributeError:
return False
def __hash__(self):
return hash((self._ip, self._prefixlen, int(self.network.network_address)))
__reduce__ = _IPAddressBase.__reduce__
@property
def ip(self):
return IPv6Address(self._ip)
@property
def with_prefixlen(self):
return '%s/%s' % (self._string_from_ip_int(self._ip),
self._prefixlen)
@property
def with_netmask(self):
return '%s/%s' % (self._string_from_ip_int(self._ip),
self.netmask)
@property
def with_hostmask(self):
return '%s/%s' % (self._string_from_ip_int(self._ip),
self.hostmask)
@property
def is_unspecified(self):
return self._ip == 0 and self.network.is_unspecified
@property
def is_loopback(self):
return super().is_loopback and self.network.is_loopback
class IPv6Network(_BaseV6, _BaseNetwork):
_address_class = IPv6Address
def __init__(self, address, strict=True):
addr, mask = self._split_addr_prefix(address)
self.network_address = IPv6Address(addr)
self.netmask, self._prefixlen = self._make_netmask(mask)
packed = int(self.network_address)
if packed & int(self.netmask) != packed:
if strict:
raise ValueError('%s has host bits set' % self)
else:
self.network_address = IPv6Address(packed &
int(self.netmask))
if self._prefixlen == (self.max_prefixlen - 1):
self.hosts = self.__iter__
elif self._prefixlen == self.max_prefixlen:
self.hosts = lambda: iter((IPv6Address(addr),))
def hosts(self):
network = int(self.network_address)
broadcast = int(self.broadcast_address)
for x in range(network + 1, broadcast + 1):
yield self._address_class(x)
@property
def is_site_local(self):
return (self.network_address.is_site_local and
self.broadcast_address.is_site_local)
class _IPv6Constants:
_linklocal_network = IPv6Network('fe80::/10')
_multicast_network = IPv6Network('ff00::/8')
_private_networks = [
IPv6Network('::1/128'),
IPv6Network('::/128'),
IPv6Network('::ffff:0:0/96'),
IPv6Network('64:ff9b:1::/48'),
IPv6Network('100::/64'),
IPv6Network('2001::/23'),
IPv6Network('2001:db8::/32'),
IPv6Network('2002::/16'),
IPv6Network('3fff::/20'),
IPv6Network('fc00::/7'),
IPv6Network('fe80::/10'),
]
_private_networks_exceptions = [
IPv6Network('2001:1::1/128'),
IPv6Network('2001:1::2/128'),
IPv6Network('2001:3::/32'),
IPv6Network('2001:4:112::/48'),
IPv6Network('2001:20::/28'),
IPv6Network('2001:30::/28'),
]
_reserved_networks = [
IPv6Network('::/8'), IPv6Network('100::/8'),
IPv6Network('200::/7'), IPv6Network('400::/6'),
IPv6Network('800::/5'), IPv6Network('1000::/4'),
IPv6Network('4000::/3'), IPv6Network('6000::/3'),
IPv6Network('8000::/3'), IPv6Network('A000::/3'),
IPv6Network('C000::/3'), IPv6Network('E000::/4'),
IPv6Network('F000::/5'), IPv6Network('F800::/6'),
IPv6Network('FE00::/9'),
]
_sitelocal_network = IPv6Network('fec0::/10')
IPv6Address._constants = _IPv6Constants
IPv6Network._constants = _IPv6Constants