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I'm trying to convert some Ruby code into Python. I'm having troubles with this line:

Digest::MD5.digest(message).unpack('L*')

I think I should use the struct module and the hashlib one, but if I do:

struct.unpack('L', hashlib.md5(message).digest())

I get this error:

struct.error: unpack requires a bytes object of length 4

What should I do? Thank you,

rubik

P.S. The output should be a list of 4 x 32 bit ints:

irb(main):039:0> Digest::MD5.digest('Hash').unpack('L*')
=> [631892218, 1967199614, 3683860954, 4130231798]
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1  
DId you try struct.unpack('LLLL', hashlib.md5(message).digest())? If this doesn't work, please provide a sample of your message. –  Thomas Orozco Jul 12 '12 at 8:17
    
@ThomasOrozco: Wow it works! Can you please give an explanation of the LLLL format? Thank you! –  rubik Jul 12 '12 at 8:19
1  
LLLL means "4 32 bits ints". So if you want 4 32 bits ints, you use LLLL format and not L format which is only 1 32 bits int. –  Thomas Orozco Jul 12 '12 at 8:21
    
@ThomasOrozco: Great! Thanks! –  rubik Jul 12 '12 at 8:25

3 Answers 3

up vote 2 down vote accepted

There is no support for arbitrary length unpacks (the * operator). You'll have to specify a repeater manually.

Luckily the struct module does let you specify a fixed length, and the hashlib module tells you how many bytes to expect. By putting an integer number before the L you specify the number of times to apply the pattern. And a specific hash in the hashlib library has a .digest_size attribute that tells you how many bytes long a specific hash is.

To combine these:

structspec = '%iL' % (hashlib.hash('md5').digest_size / 4)
struct.unpack(structspec, hashlib.md5(message).digest())

If you don't even want to hardcode the 4 there, you can ask struct.calcsize for the size of an L unsigned long as well:

structspec = '%iL' % (hashlib.hash('md5').digest_size / struct.calcsize('L'))
struct.unpack(structspec, hashlib.md5(message).digest())

In fact, on 64 bit platforms like my Mac, L is 8 bytes, so the latter calculation matters enormously if you are deploying across different architectures.

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struct.unpack('L', ...) will only unpack a single long from the parameter. What you want to do is extract all, unlike Ruby, Pythons unpack function does not have the ability to unpack an arbitrary amount of values, instead you must repeat the format specifier.

hash = hashlib.md5(message).digest()
struct.unpack('L' * (len(hash) / 4), hash)

This will repeat the 'L' as many times as the string allows and unpack all the ints in the hash and return a tuple with len / 4 items in it. If you want the result as a list, simple cast it to one with list().

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Alternatively, 'nL' will also work, with n being an integer number. –  Martijn Pieters Jul 12 '12 at 8:41

If you're sure you want 4 longs, the format is 'LLLL':

struct.unpack('LLLL', hashlib.md5(message).digest())
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1  
Alternatively, 4L will also work. –  Martijn Pieters Jul 12 '12 at 8:41

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