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Can anyone explain to me why the following snippet doesn't work? The resulting hex string will be only two characters long.

#!/usr/bin/python

s = 'Hello, World!'

hs = ''
for i in range(len(s)):
    c = s[i:1]
    hs += c.encode('hex')
print hs
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2 Answers 2

Because on each loop, you're trying to slice from i (which is increasing) to position 1 - which means after i > 1, you get empty strings...

It looks though, that you're doing:

from binascii import hexlify

s = 'Hello, World!'
print hexlify(s)

... the hard way...

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Yep. Got it alright. –  matsp888 May 25 '13 at 12:17
    
And I know it can be done in a simpler way, I just wondered why this one wasn't working, and the reason was that I thought the second figure after the colon in the slice notation was a length, not an index. –  matsp888 May 25 '13 at 12:19

c = s[i:1] should be c = s[i:i+1] or c[i]

In python you can loop over the string itsellf, so no need of slicing in your example:

hs = ''
for c in s:
    hs += c.encode('hex')

or a one-liner using str.join, which is faster than concatenation:

hs = "".join([c.encode('hex') for c in s])
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Yes, of course. I've been doing Perl until now, so I'm rather new at this. Thank you very much. –  matsp888 May 25 '13 at 12:12
1  
You can of course also do s.encode('hex') –  Volatility May 25 '13 at 12:14
    
Yes, I know that, I just used this as a silly example of something that I didn't think was working. –  matsp888 May 25 '13 at 12:15
    
Oh, I love your one-liner, so pretty and elegant :) –  Peter Varo May 25 '13 at 12:16
    
@Ashiwini Chaudhary just one complement: join() also works with generator, not just lists, so: this is valid: hs = "".join((c.encode('hex') for c in s)) –  Peter Varo May 25 '13 at 12:18

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