Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I want to convert an integer (int or long) a big-endian byte string. The byte string has to be of variable length, so that only the minimum number of bytes are used (the total length length of the preceding data is known, so the variable length can be inferred).

My current solution is

import bitstring

bitstring.BitString(hex=hex(456)).tobytes()

Which obviously depends on the endianness of the machine and gives false results, because 0 bits are append and no prepended.

Does any one know a way to do this without making any assumption about the length or endianess of an int?

share|improve this question
    
Does this only need to work for an int, or does it need to work for a long as well? – jchl Aug 23 '10 at 13:09
    
For long as well, I forgot about this. I will edit the question. – user141335 Aug 23 '10 at 14:03
    
This can be done simply in any version of Python without external dependencies -- in any case, you want a BYTEstring, not a BITstring. – John Machin Aug 23 '10 at 22:51
up vote 0 down vote accepted

If you're using Python 2.7 or later then you can use the bit_length method to round the length up to the next byte:

>>> i = 456
>>> bitstring.BitString(uint=i, length=(i.bit_length()+7)/8*8).bytes
'\x01\xc8'

otherwise you can just test for whole-byteness and pad with a zero nibble at the start if needed:

>>> s = bitstring.BitString(hex=hex(i))
>>> ('0x0' + s if s.len%8 else s).bytes
'\x01\xc8'
share|improve this answer
    
bit_length seems to be a clean solution (though I'm on Python 2.6 on Debian). (i.bit_length()+7)/8*8 rounds up the length to a length that is dividable by 8, am I right? The endianness problem also still exists. – user141335 Aug 24 '10 at 18:47
    
I found an explanation for the rounding. So only the endianness problem remains. – user141335 Aug 24 '10 at 19:50
    
uint is an alias for uintbe, so the endianess problem is also solved. – user141335 Aug 24 '10 at 19:55
    
This was a bit more difficult than it needed to be, so I've added a feature request (code.google.com/p/python-bitstring/issues/detail?id=99) so hopefully in the next version you could say just BitString(uintbe=456).bytes. :) – Scott Griffiths Aug 24 '10 at 20:09

Something like this. Untested (until next edit). For Python 2.x. Assumes n > 0.

tmp = []
while n:
    n, d = divmod(n, 256)
    tmp.append(chr(d))
result = ''.join(tmp[::-1])

Edit: tested.

If you don't read manuals but like bitbashing, instead of the divmod caper, try this:

d = n & 0xFF; n >>= 8

Edit 2: If your numbers are relatively small, the following may be faster:

result = ''
while n:
    result = chr(n & 0xFF) + result
    n >>= 8

Edit 3: The second method doesn't assume that the int is already bigendian. Here's what happens in a notoriously littleendian environment:

Python 2.7 (r27:82525, Jul  4 2010, 09:01:59) [MSC v.1500 32 bit (Intel)] on win32
Type "help", "copyright", "credits" or "license" for more information.
>>> n = 65539
>>> result = ''
>>> while n:
...     result = chr(n & 0xFF) + result
...     n >>= 8
...
>>> result
'\x01\x00\x03'
>>> import sys; sys.byteorder
'little'
>>>
share|improve this answer
    
This assumes that 1 byte equals 8 bits. I don't know if you can make this assumption with regard to the python semantics. The second method assumes that the integer is already in big-endian. – user141335 Aug 23 '10 at 13:59
1  
@ott: It's quite safe to say that 1 byte equals 8 bits, and Python integers themselves don't have endianness - it's only an issue in how they are stored or transmitted (i.e. it's only a problem if you've incorrectly unpacked n from somewhere before getting this far). Both methods look fine to me. – Scott Griffiths Aug 23 '10 at 15:52
    
Actually, it merely assumes that a byte is at least 8 bits, which is guaranteed by the C standard, and thus by the C PyBytes type. – dan04 Aug 23 '10 at 15:57
    
(1) Somebody please show me a machine that's got a non-8-bit byte and isn't in a museum (like Univac 110X (9-bit) or ICL 190X (6-bit)) and has a currently supported Python implementation (2) for any non-negative integer x, x & 0xFF and x % 256 mean exactly the same thing in both C and Python irrespective of the endianness of the host machine. – John Machin Aug 23 '10 at 22:15

A solution using struct and itertools:

>>> import itertools, struct
>>> "".join(itertools.dropwhile(lambda c: not(ord(c)), struct.pack(">i", 456))) or chr(0)
'\x01\xc8'

We can drop itertools by using a simple string strip:

>>> struct.pack(">i", 456).lstrip(chr(0)) or chr(0)
'\x01\xc8'

Or even drop struct using a recursive function:

def to_bytes(n): 
    return ([chr(n & 255)] + to_bytes(n >> 8) if n > 0 else [])

"".join(reversed(to_bytes(456))) or chr(0)
share|improve this answer
    
The struct.pack method doesn't work, because struct.unpack requires a fixed length. For the other methods you would also need a reverse function (trivial). – user141335 Aug 23 '10 at 13:54

I reformulated John Machins second answer in one line for use on my server:

def bytestring(n):
    return ''.join([chr((n>>(i*8))&0xFF) for i in range(n.bit_length()/8,-1,-1)])

I have found that the second method, using bit-shifting, was faster for both large and small numbers, and not just small numbers.

share|improve this answer

Your Answer

 
discard

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