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Assume the following URL: http://a2.mzstatic.com/us/ryoyo0/078/Purple100x100/v4/38/e3/b4/38e3b4a2-b422-8d1e-69f2-593fc035c9d4/mzl.vqhwzhhc.100x100-75.jpg

We want to replace the last occurrence of 100x100 with 256x256. The URL should read:

http://a2.mzstatic.com/us/ryoyo0/078/Purple100x100/v4/38/e3/b4/38e3b4a2-b422-8d1e-69f2-593fc035c9d4/mzl.vqhwzhhc.256x256-75.jpg

Here's our JavaScript replace method:

replace( /100x100(?!100x100)/, '256x256' )

Unfortunately, we consistently replace the first, not the last, occurrence.

What are we doing wrong?

Thanks!

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Use "I" instead of "we," I am not working on the project with you. (Sure, a very minor thing, but it somewhat annoys me :P) –  Doorknob Mar 12 '13 at 21:26
3  
@Doorknob: perhaps, but s/he may be part of a team working on this, for which the 'we' pronoun is specifically correct. –  David Thomas Mar 12 '13 at 21:27
3  
100x100(?!100x100) means "'100x100' not immediately followed by '100x100'". –  Rocket Hazmat Mar 12 '13 at 21:27
    
/100x100\-(\d+)/, '256x256-\1' should also work, (if the last always have a dash-int afterwards.) –  h2ooooooo Mar 12 '13 at 21:31
    
Thanks, @RocketHazmat! –  Crashalot Mar 13 '13 at 2:07

4 Answers 4

up vote 3 down vote accepted

Another way to do it...

replace( /(.*)100x100/, '$1256x256' )

Works by...

  1. Capturing everything up to the 100x100 as greedily as possible, with (.*), into group 1
  2. Matching the 100x100
  3. Replacing it with the captured group 1, by using $1 and then adding 256x256 in place of the non-captured match

N.B. This method can only work for the last match (or first if you make the initial capture un-greedy by adding a ? after the .*)

It is usually good to avoid using look-around assertions, for performance reasons, for compatibility with various regex implementations, and I believe also for readability.

EDIT: Test Script

var url = "http://a2.mzstatic.com/us/ryoyo0/078/Purple100x100/v4/38/e3/b4/38e3b4a2-b422-8d1e-69f2-593fc035c9d4/mzl.vqhwzhhc.100x100-75.jpg"

console.log(url.replace(/(.*)100x100/, '$1256x256'))

// OUTPUT:
// http://a2.mzstatic.com/us/ryoyo0/078/Purple100x100/v4/38/e3/b4/38e3b4a2-b422-8d1e-69f2-593fc035c9d4/mzl.vqhwzhhc.256x256-75.jpg
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Sorry, initially awarded you the answer, but when we tested, this replaces both occurrences of 100x100 instead of only the last one. How to only replace the last occurrence? –  Crashalot Mar 13 '13 at 2:10
    
This does only replace the last one (unless you run it twice). I have included a test script, which shows the results I am getting. –  Billy Moon Mar 13 '13 at 2:19
    
Well, that makes sense. Your input already hase 256x256 at the end, and my regex always replaces the last occurrence of 100x100, so in the case of the input in my answer, and in your question, it replaces the dimensions at the end. In the case of your input you pasted here, it replaces the only one it can find. –  Billy Moon Mar 13 '13 at 6:29
    
I had taken your question very literally, so replace the last occurrence is what my regex does, not replace occurrences that appear near the end, or after a specified character etc... –  Billy Moon Mar 13 '13 at 6:30
    
yes, sorry. our fault. didn't catch this until just now. actually was coming here to delete our comment, but you spotted the error first. sorry again. this is the correct answer! –  Crashalot Mar 13 '13 at 7:37

Try this: replace( /100x100(?!.*100x100)/, '256x256' )

Adding the .* accounts for additional characters between the first occurrence and the last occurrence of 100x100.

Note - While my answer describes what you did wrong in your pattern and how to fix it, the answer provided by Billy Moon is probably a better pattern for what you seem to be trying to do.

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Thanks, based on your suggestion, we awarded the answer to @BillyMoon. –  Crashalot Mar 13 '13 at 2:07
    
@Crashalot - sounds good. –  Daedalus Mar 13 '13 at 2:08
    
Hmm, actually both your answer and Billy Moon's replaces both instances of 100x100 (as opposed to only the last one). Are we doing something wrong? –  Crashalot Mar 13 '13 at 2:11
1  
Works for me: jsfiddle.net/GRNVZ –  Daedalus Mar 13 '13 at 2:19

You could change your negative lookahead to look for the slash also. Since the second occurrence ends with a period, not a slash, that should solve it.

/100x100(?!\/)/
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Does this not make an assumption about the format of the URL? Who's to say in some future URL the first occurrence will be followed immediately by a /? –  Daedalus Mar 12 '13 at 21:33
    
@Daedalus: you're right, but you have to make some kind of assumption about the format. For example, the first 100x100 is part of a directory name, so it should be safe to assume there will be at least one slash after it somewhere. And the second 100x100 is part of the file name, so we know there won't be any more slashes after it. In other words, change the lookahead to (?=[^\/]*$) –  Alan Moore Mar 13 '13 at 3:30

Yet another approach, due to possibly misunderstood intentions, which only replaces 100x100s that appear in the filename part (with no / appearing after it in the string) of the url.

replace(/100x100([^\/]*)$/, '256x256$1')

Works by...

  1. matching 100x100
  2. ... followed by capturing into group 1, zero or more, not forward slashes, with ([^\/]*)
  3. ... followed by the end of the string, $
  4. replacing with 256x256 and the first capture group, $1

If there is no match after the last / in the string, then no replacements are done.

N.B. I checked the speed of this answer, my other answer, and the answer of @Daedalus, and whilst I would normally expect avoiding assertions to speed up the regex, in this case, I have found them to be all identical in speed, and be very fast, running a couple of hundred thousand times a second on my computer.

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