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Could someone help to understand how it works in python (2.7.3 version)?

for,example there are two hex strings

a='5f70a65ac'
b='58e7e5c36'

how can I xor it properly?

I tried use something like that hex (0x5f0x70 ^ 0x580xe70), but it doesn't work

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2  
What's 0x5f0x70? –  NullUserException Nov 12 '12 at 16:16
    
have you not tried 0x5f70a65ac ^ 0x58e7e5c36 ? –  Gus Nov 12 '12 at 16:17
    
what does "0x" actually means? does it just define that it's a hexdecimal type of date? –  Leo Nov 12 '12 at 19:57

2 Answers 2

up vote 6 down vote accepted

Convert the strings to integers before trying to do math on them, then back to string afterward.

print "%x" % (int(a, 16) ^ int(b, 16))

I'm using % here to convert back to string rather than hex() because hex() adds 0x to the beginning (and L to the end if the value is a long integer). You can strip those off, but easier just to not generate them in the first place.

You could also just write them as hex literals in the first place:

a=0x5f70a65ac
b=0x58e7e5c36
print "%x" % (a ^ b)

However, if you're reading them from a file or getting them from a user or whatever, the first approach is what you need.

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1  
or use format() : "{0:x}".format((int(a, 16) ^ int(b, 16))) or format(int(a, 16) ^ int(b, 16),"x"). –  Ashwini Chaudhary Nov 12 '12 at 16:22
a = '5f70a65ac'
b = '58e7e5c36'
h = lambda s: ('0' + s)[(len(s) + 1) % 2:]
ah = h(a).decode('hex')
bh = h(b).decode('hex')
result = "".join(chr(ord(i) ^ ord(j)) for i, j in zip(ah, bh)).encode("hex")

Currently, this only works with equally-lengthed strings, but can easily extended to work with arbitrary-lengthed ones.

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what does "0x" actually means? does it just define that it's a hexdecimal type of date? –  Leo Nov 12 '12 at 18:31
    
Indeed, 0x is the prefix for hexadecimal represented integers. So 0xFF is the same as 255, as well as 0377 (resp. 0o377 in Oython 3). –  glglgl Nov 12 '12 at 20:25

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