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Say I have the classic 4-byte signed integer, and I want something like

print hex(-1)

to give me something like

>> 0xffffffff

In reality, the above gives me -0x1. I'm dawdling about in some lower level language, and python commandline is quick n easy.

So.. is there a way to do it?

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2 Answers

up vote 16 down vote accepted

This will do the trick:

>>> print hex (-1 & 0xffffffff)
0xffffffffL

or, in function form (and stripping off the trailing "L"):

>>> def hex2(n):
...     return hex (n & 0xffffffff)[:-1]
...
>>> print hex2(-1)
0xffffffff
>>> print hex2(17)
0x11

or, a variant that always returns fixed size (there may well be a better way to do this):

>>> def hex3(n):
...     return "0x%s"%("00000000%s"%(hex(n&0xffffffff)[2:-1]))[-8:]
...
>>> print hex3(-1)
0xffffffff
>>> print hex3(17)
0x00000011

Or, avoiding the hex() altogether, thanks to Ignacio and bobince:

def hex2(n):
    return "0x%x"%(n&0xffffffff)

def hex3(n):
    return "0x%s"%("00000000%x"%(n&0xffffffff))[-8:]
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.. or it would if I were less dyslexic .. –  Ellery Newcomer Oct 23 '08 at 6:19
2  
Don't rely on the 'L' suffix, it is going away in Python 3.0 so hex2 will chop off a digit. The %x formatting operator is generally a better bet than hex(). –  bobince Oct 23 '08 at 7:37
    
Incorporated comment and Ignacios option below into accepted answer (and gave Ignacio an upvote) –  paxdiablo Oct 23 '08 at 11:56
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Try this function:

'%#4x' % (-1 & 0xffffffff)
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