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What is the most elegant way to convert the string "a.pdf" into "a.jpg" using Python?

I would like for my code to look beautiful.

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closed as primarily opinion-based by Prashant Kumar, karthik, Gagravarr, trippino, Bathsheba Dec 19 '13 at 7:49

Many good questions generate some degree of opinion based on expert experience, but answers to this question will tend to be almost entirely based on opinions, rather than facts, references, or specific expertise.If this question can be reworded to fit the rules in the help center, please edit the question.

6  
Please post the code you have now that you would like beautified. –  S.Lott Dec 18 '09 at 12:03
2  
Elegant - good. But beautiful? I don't remember a section on >beauty< in the OO primer. Try to make the program as a whole (hmm perhaps not) or at least the gross features of it beautiful. That's my recommendation. Not that it's achievable. Code is born ugly and dies ugly. That's just the way it is. –  martinr Dec 18 '09 at 15:27
    
when will these kids get it? it's whats inside that counts.... –  curtisk Dec 18 '09 at 18:11
    
@martinr: Truly, I'd be surprised to find beautiful code in any OO primer. –  Roger Pate Oct 11 '10 at 14:32

10 Answers 10

up vote -1 down vote accepted
s = 'a.pdf'
print s.replace('pdf', 'jpg')

That what you're looking for?

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9  
It's a simple solution, but will fail if you have a file called "CopyOfMyPdf.jpg". maybe s.replace('.pdf','.jpg') would be better, but still not perfect –  ZombieSheep Dec 18 '09 at 11:45
2  
This is a very assumptive solution. –  Ben James Dec 18 '09 at 11:56
4  
very bad solution –  SilentGhost Dec 18 '09 at 12:02
2  
Actually, maybe the . needs escaping because its a special character... Should the regex be "\.[pP][dD][fF]$" so import re a top of file then re.sub('\.[pP][dD][fF]$','.jpg',s) in function? –  martinr Dec 18 '09 at 12:10
22  
ROFL - this is the answer the question deserves. –  Pascal Dec 18 '09 at 12:21

With some inspiration from @Peter Hansen's answer I managed to create a function that accomplishes pretty much what you need. While his approach is nice, it is a bit lacking in that it can only convert file names that are exactly 5 characters long.

My solution fixes that:

from numpy import array

def convert_pdf_filename_to_jpg_filename_in_a_really_really_elegant_way(s):
    """
    Examples:
    >>> convert_pdf_filename_to_jpg_filename_in_a_really_really_elegant_way("a.pdf")
    'a.jpg'
    >>> convert_pdf_filename_to_jpg_filename_in_a_really_really_elegant_way("myfile.pdf")
    'myfile.jpg'
    """
    return ''.join([chr(c) for c in (array([ord(c) for c in s]) + list([0] * (len(s) - 3) + [-6, 12, 1]))])

I am quite satisfied with this code. I would not mind if it was added to the Python standard library (perhaps in a really_really_elegant_code module?). But than that would require that numpy was added to the standard library as well. Does anyone have an idea if that is likely to happen?

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This one requires NumPy, but of course that means it will run much faster than the alternatives:

>>> s = 'a.pdf'
>>> from numpy import array
>>> ''.join([chr(c) for c in (array([ord(c) for c in s]) + [0, 0, -6, 12, 1])])
'a.jpg'

Of course, whether you consider this "elegant" or not depends on your definition of "elegant" but, as with all other useful information, the question didn't include that...

Edit: yes, this is a joke, but trying to make a point...

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you're joking, right? –  SilentGhost Dec 18 '09 at 14:19
    
Definitely... I figured it would be obvious. Too subtle? –  Peter Hansen Dec 18 '09 at 14:41
    
Besides, how else am I going to get the Peer Pressure badge? Someone else, vote me down! :) –  Peter Hansen Dec 18 '09 at 14:44
    
jokes are usually posted as community wiki –  SilentGhost Dec 18 '09 at 14:50
    
Thanks, SilentGhost... didn't know that. I would assume that tends to give the joke away though. Made CW. –  Peter Hansen Dec 18 '09 at 15:32

The most "correct" way of doing this would be something like the following. This would handle it no matter what the extension is, regardless of platform, and generally without reinventing the wheel.

import os.path
root, ext = os.path.splitext('a.pdf')

# Optional error checking, if necessary:
if ext.lower() != '.pdf':
    raise ValueError('File lacks proper extension')

filename = "%s.jpg" % (root,)
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6  
Congratulations on your Reversal badge, I had the final downvote ;) –  Daniel May Dec 18 '09 at 14:46
3  
Welcome to the Reversal club. Come out back and we'll teach you the secret handshake. (It's not really that secret; you just have to turn around and use your left hand behind your back.) –  Michael Myers Dec 18 '09 at 15:55
    
nicely done! and with a reversal to boot –  curtisk Dec 18 '09 at 18:13
    
Thank-you all. :) –  Daniel Bruce Dec 18 '09 at 20:16

Strings are immutable in Python, so basically you cannot alter it.

If you want a new string, there are plenty of options, depending on what you exactly want.

def silly_thing(s):
    return s[:-4]+".jpg" if s[-4:] == ".pdf" else s
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+1 Beat me to it by 10 months! Also, as long as we're being overly literal (wait for it...), one should just say return "a.jpg"; (...see? a pun!). –  user359996 Oct 10 '10 at 9:00

Use the $ from regex to make sure you replace the file extension.

>>> import re
>>> s = 'my_pdf_file.pdf'
>>> re.sub('\.pdf$', '.jpg', s)
'my_pdf_file.jpg'
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".pdf$" matches "xpdf" as well as ".pdf" and thus will do far more than merely replace the literal string .pdf with something else. –  Bryan Oakley Dec 18 '09 at 12:25
1  
You've got a \. there –  Johannes Charra Dec 18 '09 at 12:31
    
I see what you did there. –  Paul McGuire Dec 18 '09 at 14:03
1  
@jellybean: There wasn't a \ before the "." when I made my comment. –  Bryan Oakley Dec 18 '09 at 14:25

I's suggest 1ch1g0's solution, but instead of s[-3:]=='pdf': s.endswith('.pdf') and no '+' for strings which is slow:

>>> s = 'a.pdf'
>>> s.endswith('.pdf') and ''.join([s[:-3], 'jpg'])
'a.jpg'
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1  
+ is slow compared to join when concatenating many strings, for just a few + is much faster: 47ns vs 237ns in my machine, measured with timeit. –  fortran Dec 18 '09 at 12:52

i don't know if it's elegant:

  • string.replace:

    >>> s = "a.pdf"
    >>> s.replace(".pdf", ".jpg")
    

    'a.jpg'

  • regular expression:

    >>> import re
    >>> re.sub("\.pdf$", ".jpg", "a.pdf")
    'a.jpg'
    
  • os.path

    >>> import os.path
    >>> name, ext = os.path.splitext("a.pdf")
    >>> "%s.jpg" % (name)
    'a.jpg'
    
  • string index:

    >>> s = "a.pdf"
    >>> s[-3:] == "pdf" and s[:-3] + "jpg"
    'a.jpg'
    
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1  
some of your solutions are imperfect. ".pdf$", for instance, matches "xpdf" as well as ".pdf". And of course, the string replace will do wrong things with all sorts of input. –  Bryan Oakley Dec 18 '09 at 12:23
    
"\.pdf$" doesn't match "xpdf" because the regular expression is explicitly looking for a dot before the extension. –  kiamlaluno Dec 18 '09 at 12:59
    
@kiamlaluno, the original was broken. You're looking at an edited version, so the comments are "stale". –  Peter Hansen Dec 18 '09 at 14:42
    
@kiamlaluno: when I made my comment there was no backslash before the dot in the regex. –  Bryan Oakley Dec 18 '09 at 16:00
>>> s = 'a.pdf'
>>> s[-3:]=="pdf" and s[:-3]+"jpg"
'a.jpg'
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Not the most elegant perhaps, but safer:

root, ext = os.path.splitext(s)
if ext != '.pdf':
    # Error handling
else:
    s = root + '.jpg'
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