Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have 2 32bit unsigned integers..

777007543 and 114997259

and the string of bytes..

0x47 0x30 0x22 0x2D 0x5A 0x3F 0x47 0x58

How do I get python to give me the concatenation of these 3 such that I have...

0x2E 0x50 0x31 0xB7 0x06 0xDA 0xB8 0x0B 0x47 0x30 0x22 0x2D 0x5A 0x3F 0x47 0x58

I would then run that through an md5 hash and get...

0x30 0x73 0x74 0x33 0x52 0x6C 0x26 0x71 0x2D 0x32 0x5A 0x55 0x5E 0x77 0x65 0x75

If anyone could run that through in python code it would be much appreciated

share|improve this question
2  
Python 2 or Python 3? And what exactly do you mean by "string of bytes"? –  Tim Pietzcker Jan 4 '11 at 15:18
    
if i print it looks like b'....' Its the last 8 bytes received through a socket –  user558383 Jan 4 '11 at 15:25
    
probably python 3 –  user558383 Jan 4 '11 at 15:26
3  
"probably python 3"? Funny. Could you please do import sys; sys.version and post the answer? "probably" is useless and inoformative. –  S.Lott Jan 4 '11 at 15:33
1  
@user Strings changed fundamentally in Python 3. Any answer to this question is going to be specific to either 2 or 3. So unless you want to support both (which if so, you should have good reason) you really do need to decide which one you're using and let us know. –  marcog Jan 4 '11 at 15:55

3 Answers 3

up vote 6 down vote accepted
import struct
import hashlib

x = struct.pack('>II8B', 777007543, 114997259, 0x47, 0x30, 0x22, 0x2D, 0x5A, 0x3F, 0x47, 0x58)
hash = hashlib.md5(x).digest()

print [hex(ord(d)) for d in x]
(output) ['0x2e', '0x50', '0x31', '0xb7', '0x6', '0xda', '0xb8', '0xb', '0x47', '0x30', '0x22', '0x2d', '0x5a', '0x3f', '0x47', '0x58']

print [hex(ord(d)) for d in hash]
(output) ['0x30', '0x73', '0x74', '0x33', '0x52', '0x6c', '0x26', '0x71', '0x2d', '0x32', '0x5a', '0x55', '0x5e', '0x77', '0x65', '0x75']
share|improve this answer
    
+1: struct.pack. Handles big-endian and small-ending so gracefully. –  S.Lott Jan 4 '11 at 15:56
    
stackoverflow.com/questions/3828527/… - ha someone had linked to my blog on this site complaining my implementation doesn't work... well it does now anyway! Although it looks like stackoverflow.com/users/471795/kanaka has already done this. –  user558383 Jan 4 '11 at 19:48
q = hex(777007543) + hex(114997259)[2:] + '4730222d5a3f4758'

just do this. here's why it works:

>>> num1, num2
(777007543, 114997259)
>>> hex(num1), hex(num2)
('0x2e5031b7', '0x6dab80b')
>>> hex(num1) + hex(num2) + '0x4730222d5a3f4758'
'0x2e5031b70x6dab80b0x4730222d5a3f4758'
>>> hex(num1) + hex(num2)[2:] + '4730222d5a3f4758'
'0x2e5031b76dab80b4730222d5a3f4758'
>>> int(_, 16)
3847554995347152223960862296285071192L

it's not difficult however to deal exactly with the representation you showed in your answer, if you want

edit:

here is what scott griffhits said. He's right ;)

"

Using hex only works here because the numbers are large enough to need 8 hex digits. We need to use a format, for example '{0:08x}{1:08x}'.format(num1, num2) will pad the hex with up to eight zeros.

"

share|improve this answer
    
Using hex only works here because the numbers are large enough to need 8 hex digits. For smaller numbers you'd need a format to get it to pad properly with zeros. –  Scott Griffiths Jan 4 '11 at 16:15
    
yes, that's right.. –  Ant Jan 4 '11 at 16:18
    
For example '{0:08x}{1:08x}'.format(num1, num2) will pad the hex with up to eight zeros. –  Scott Griffiths Jan 4 '11 at 16:22
    
edited, including your comments ;) –  Ant Jan 4 '11 at 16:34

This will give you a list of all the values you want,

>>> [777007543 >> i & 0xff for i in xrange(24,0,-8)] + \
... [114997259 >> i & 0xff for i in xrange(24,0,-8)] + \
... map(ord, stringofbytes)

or even better (from the other thread you started),

>>> struct.unpack('>12B', \
... struct.pack('>L', 777007543) + struct.pack('>L', 114997259) + '.P1\xb7')

If you then want to make this a string to pass to your md5 hash,

>>> map(chr, _)

I am assuming that each byte of the string is supposed to represent a 1byte number.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.