Convert "little endian" hex string to IP address in Python
Question:
What’s the best way to turn a string in this form into an IP address: "0200A8C0". The “octets” present in the string are in reverse order, i.e. the given example string should generate 192.168.0.2.
Answers:
You could do something like this:
>>> s = '0200A8C0'
>>> octets = [s[i:i+2] for i in range(0, len(s), 2)]
>>> ip = [int(i, 16) for i in reversed(octets)]
>>> ip_formatted = '.'.join(str(i) for i in ip)
>>> print ip_formatted
192.168.0.2
The octet splitting could probably be done more elegantly, but I can’t think of a simpler way off the top of my head.
EDIT: Or on one line:
>>> s = '0200A8C0'
>>> print '.'.join(str(int(i, 16)) for i in reversed([s[i:i+2] for i in range(0, len(s), 2)]))
192.168.0.2
>>> s = "0200A8C0"
>>> bytes = ["".join(x) for x in zip(*[iter(s)]*2)]
>>> bytes
['02', '00', 'A8', 'C0']
>>> bytes = [int(x, 16) for x in bytes]
>>> bytes
[2, 0, 168, 192]
>>> print ".".join(str(x) for x in reversed(bytes))
192.168.0.2
It is short and clear; wrap it up in a function with error checking to suit your needs.
Handy grouping functions:
def group(iterable, n=2, missing=None, longest=True):
"""Group from a single iterable into groups of n.
Derived from http://bugs.python.org/issue1643
"""
if n < 1:
raise ValueError("invalid n")
args = (iter(iterable),) * n
if longest:
return itertools.izip_longest(*args, fillvalue=missing)
else:
return itertools.izip(*args)
def group_some(iterable, n=2):
"""Group from a single iterable into groups of at most n."""
if n < 1:
raise ValueError("invalid n")
iterable = iter(iterable)
while True:
L = list(itertools.islice(iterable, n))
if L:
yield L
else:
break
Network address manipulation is provided by the socket module.
Convert a 32-bit packed IPv4 address (a string four characters in length) to its standard dotted-quad string representation (for example, ‘123.45.67.89’). This is useful when conversing with a program that uses the standard C library and needs objects of type struct in_addr, which is the C type for the 32-bit packed binary data this function takes as an argument.
You can translate your hex string to packed ip using struct.pack()
and the little endian, unsigned long format.
s = "0200A8C0"
import socket
import struct
addr_long = int(s, 16)
print(hex(addr_long)) # '0x200a8c0'
print(struct.pack("<L", addr_long)) # 'xc0xa8x00x02'
print(socket.inet_ntoa(struct.pack("<L", addr_long))) # '192.168.0.2'
My try:
a = '0200A8C0'
indices = range(0, 8, 2)
data = [str(int(a[x:x+2], 16)) for x in indices]
'.'.join(reversed(data))
A simple def you can make to convert from hex to decimal-ip:
def hex2ip(iphex):
ip = ["".join(x) for x in zip(*[iter(str(iphex))]*2)]
ip = [int(x, 16) for x in ip]
ip = ".".join(str(x) for x in (ip))
return ip
# And to use it:
ip = "ac10fc40"
ip = hex2ip(iphex)
print(ip)
What’s the best way to turn a string in this form into an IP address: "0200A8C0". The “octets” present in the string are in reverse order, i.e. the given example string should generate 192.168.0.2.
You could do something like this:
>>> s = '0200A8C0'
>>> octets = [s[i:i+2] for i in range(0, len(s), 2)]
>>> ip = [int(i, 16) for i in reversed(octets)]
>>> ip_formatted = '.'.join(str(i) for i in ip)
>>> print ip_formatted
192.168.0.2
The octet splitting could probably be done more elegantly, but I can’t think of a simpler way off the top of my head.
EDIT: Or on one line:
>>> s = '0200A8C0'
>>> print '.'.join(str(int(i, 16)) for i in reversed([s[i:i+2] for i in range(0, len(s), 2)]))
192.168.0.2
>>> s = "0200A8C0"
>>> bytes = ["".join(x) for x in zip(*[iter(s)]*2)]
>>> bytes
['02', '00', 'A8', 'C0']
>>> bytes = [int(x, 16) for x in bytes]
>>> bytes
[2, 0, 168, 192]
>>> print ".".join(str(x) for x in reversed(bytes))
192.168.0.2
It is short and clear; wrap it up in a function with error checking to suit your needs.
Handy grouping functions:
def group(iterable, n=2, missing=None, longest=True):
"""Group from a single iterable into groups of n.
Derived from http://bugs.python.org/issue1643
"""
if n < 1:
raise ValueError("invalid n")
args = (iter(iterable),) * n
if longest:
return itertools.izip_longest(*args, fillvalue=missing)
else:
return itertools.izip(*args)
def group_some(iterable, n=2):
"""Group from a single iterable into groups of at most n."""
if n < 1:
raise ValueError("invalid n")
iterable = iter(iterable)
while True:
L = list(itertools.islice(iterable, n))
if L:
yield L
else:
break
Network address manipulation is provided by the socket module.
Convert a 32-bit packed IPv4 address (a string four characters in length) to its standard dotted-quad string representation (for example, ‘123.45.67.89’). This is useful when conversing with a program that uses the standard C library and needs objects of type struct in_addr, which is the C type for the 32-bit packed binary data this function takes as an argument.
You can translate your hex string to packed ip using struct.pack()
and the little endian, unsigned long format.
s = "0200A8C0"
import socket
import struct
addr_long = int(s, 16)
print(hex(addr_long)) # '0x200a8c0'
print(struct.pack("<L", addr_long)) # 'xc0xa8x00x02'
print(socket.inet_ntoa(struct.pack("<L", addr_long))) # '192.168.0.2'
My try:
a = '0200A8C0'
indices = range(0, 8, 2)
data = [str(int(a[x:x+2], 16)) for x in indices]
'.'.join(reversed(data))
A simple def you can make to convert from hex to decimal-ip:
def hex2ip(iphex):
ip = ["".join(x) for x in zip(*[iter(str(iphex))]*2)]
ip = [int(x, 16) for x in ip]
ip = ".".join(str(x) for x in (ip))
return ip
# And to use it:
ip = "ac10fc40"
ip = hex2ip(iphex)
print(ip)