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I wrote this simple function:

def padded_hex(i, l):
    given_int = i
    given_len = l

    hex_result = hex(given_int)[2:] # remove '0x' from beginning of str
    num_hex_chars = len(hex_result)
    extra_zeros = '0' * (given_len - num_hex_chars) # may not get used..

    return ('0x' + hex_result if num_hex_chars == given_len else
            '?' * given_len if num_hex_chars > given_len else
            '0x' + extra_zeros + hex_result if num_hex_chars < given_len else
            None)

Examples:

padded_hex(42,4) # result '0x002a'
hex(15) # result '0xf'
padded_hex(15,1) # result '0xf'

Whilst this is clear enough for me and fits my use case (a simple test tool for a simple printer) I can't help thinking there's a lot of room for improvement and this could be squashed down to something very concise.

What other approaches are there to this problem?

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3 Answers 3

up vote 23 down vote accepted

Use the new .format() string method:

>>> "{0:#0{1}x}".format(42,6)
0x002a

Explanation:

{   # Format identifier
0:  # first parameter
#   # use "0x" prefix
0   # fill with zeroes
{1} # to a length of n characters (including 0x), defined by the second parameter
x   # hexadecimal number, using lowercase letters for a-f
}   # End of format identifier
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6  
or "{0:#0{1}x}".format(42,6) pass width too. ` –  Ashwini Chaudhary Sep 28 '12 at 10:45
    
@AshwiniChaudhary: Excellent idea. Thanks! –  Tim Pietzcker Sep 28 '12 at 10:46
    
Aren't Ashwini's and Tim's answers the same or did I miss an edit? –  deStrangis Sep 28 '12 at 10:51
2  
@deStrangis: You missed an edit - Ashwini was extremely fast to point this out, and I nabbed it immediately. –  Tim Pietzcker Sep 28 '12 at 10:52

How about this:

print '0x%04x' % 42
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awesomeness :-) –  jon Sep 28 '12 at 10:43
5  
use the * to pass width: '0x%0*x' % (4,42) –  Ashwini Chaudhary Sep 28 '12 at 10:49

Use * to pass width and X for uppercase

print '0x%0*X' % (4,42) # '0x002A'

As suggested by georg and Ashwini Chaudhary

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