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I'm currently using PHP's str_replace to replace a particular value with another, in a loop.

The problem is, str_replace will replace ALL of the instances of the first value, with the second value, rather than replacing them sequentially. For example:

$replacements = array('A', 'one', 'some');
$str = "The quick brown fox jumps over the lazy dog and runs to the forest.";
foreach($replacements as $replace){
    $str = str_replace('the', $replace, $str);
}

this will ultimately return:

"A quick brown fox jumps over A lazy dog and runs to A forest."

rather than what I want which would be:

"A quick brown fox jumps over one lazy dog and runs to some forest."

What would be the most efficient way of doing this? I thought I could use preg_replace but I'm mediocre with regex.

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1  
Similar but definitely not duplicates... that one wants to limit to only one replace total, I want to do a sequential replace of each instance of needle, with a different replacement value. –  Jonathan van Clute Oct 20 '11 at 1:40

3 Answers 3

up vote 4 down vote accepted

Untested, but I think this will do the trick.

$replacements = array('A', 'one', 'some');
$str = "The quick brown fox jumps over the lazy dog and runs to the forest.";
foreach($replacements as $replace){
    $str = preg_replace('/the/i', $replace, $str, 1);
}
echo $str;

Edit: added the i to make it case insensitive

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1  
That will only replace the first occurrence, once, and will never get to the second. –  rid Oct 20 '11 at 1:44
    
+1. Works when I run it here: codepad.org/Sxpksp0A -- I suppose a more efficient method might be to use a single call to preg_replace_callback()... –  Frank Farmer Oct 20 '11 at 1:48
    
@Syntax Error, you're right, sorry, I misunderstood the question. –  rid Oct 20 '11 at 1:49
    
Never mind my previous confused comments... I'm glad it works though. –  Syntax Error Oct 20 '11 at 1:51
    
hmmm works on codepad but not working for me in production. Here is my real line of code: $to_parse = preg_replace('/{{'.$words.'}}/i', $output, $to_parse, 1); I'm replacing a series of tokens in the format {{value}}, does the pattern need tweaking to find that? I tried escaping the braces but it didn't seem to help... –  Jonathan van Clute Oct 20 '11 at 1:55

Okay maybe this is super convoluted?

$replacements = array('A', 'one', 'some');
$str = "The quick brown fox jumps over the lazy dog and runs to the forest.";
$str_array = explode(" ", $str);
$replace_word = "the";
$i = $j = 0;
foreach($str_array as $word){
      if(strtolower($word) === $replace_word){
         $str_array[$i] = $new_word[$j];
         $j++;
      }
   $i++;
}
$str = implode(" ", $str_array);
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Yes I just noticed that typo actually but SE won't allow me to edit it. In my production code, that mistake is not present. –  Jonathan van Clute Oct 20 '11 at 1:30
    
I stand corrected, edit has now been approved. –  Jonathan van Clute Oct 20 '11 at 1:31
    
Okay check my edit –  donutdan4114 Oct 20 '11 at 1:41
    
Yeah that's very similar to the approach I took to work around this... I just figured there HAD to be a better way than blowing up multiple paragraphs of content into individual words and doing a comparison on every word. –  Jonathan van Clute Oct 20 '11 at 1:43

Apparantly this seemed to work :

$replacements = array('A', 'one', 'some');
$the=array('the','the','the');
$str = "The quick brown fox jumps over the lazy dog and runs to the forest.";
$str = str_ireplace($the, $replacements, $str);

I think this is exactly what was asked.

see parameter description http://php.net/manual/en/function.str-replace.php

http://codepad.org/VIacFmoM

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Thanks, I was not aware of the 'count' feature of str_replace! Unfortunately it does not appear to be doing anything at all. There is no change to my results. Additionally when I use an integer for the number rather than a variable, I get Fatal error: Only variables can be passed by reference –  Jonathan van Clute Oct 20 '11 at 1:21
1  
The "count" parameter is a reference to a variable in which str_replace() will write the number of replacements made. It has nothing to do with what the OP asked. –  rid Oct 20 '11 at 1:34
    
aha, that explains why it didn't seem to do what I thought it would, based on the suggestion to use it! –  Jonathan van Clute Oct 20 '11 at 1:36
1  
That's not how the $count parameter works. You supply a variable for $count, and after the operation is performed $count will tell you how many replacements were made. –  Syntax Error Oct 20 '11 at 1:37
    
Oops you win Radu –  Syntax Error Oct 20 '11 at 1:38

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