5

Use Case

I'd like to search a string for several matches. Each match is eventually linked to an object property in an object array. When a match is found, that match is replaced by another property within an object. The problem is the code will always return null on the second match.

Test Case

This is the test case that I am using. To simplify the problem, I just replace all matches with the number 5, but note that the final code will be replacing the match with a variable value.

Test Code

Below is the code I'm using to test and debug the issue. The interesting thing is that if I change var str = '5 + QUESTION_2', QUESTION_2 is successfully replaced with 5. Essentially, the problem boils down to the second match always returning null even though it can be matched.

var re = /( |^)(QUESTION_1|QUESTION_2|QUESTION_3)( |$)/g;
var str = 'QUESTION_1 + QUESTION_2';
var rep = 5;

matches = re.exec(str);
var re2 = new RegExp("( |^)(" + matches[2] + ")( |$)", "g");
console.log(matches); // Returns a match on QUESTION_1
str = str.replace(re2, rep);
console.log(str); // Returns 5+ QUESTION_2

matches = re.exec(str);
console.log(matches); // Returns a match on NULL - doesn't find QUESTION_2
re2 = new RegExp("( |^)(" + matches[2] + ")( |$)", "g");
str = str.replace(re2, rep);
console.log(str); // Returns 5+ QUESTION_2

Question

  • Why is the second match always null?
  • The jsfiddle is available here.
  • The selected answer correctly identifies the issue, however I believe that you should be doing what I suggest in mine rather than relying on multiple execs and tweaking the lastIndex. – plalx Apr 25 '14 at 17:15
8

Since you're using global flag in exec call regex engine remembers lastIndex which is is a read/write integer property of regular expressions that specifies the index at which to start the next match.

Place this to reset it:

re.lastIndex=0;

Just before next call to RegExp.exec

re.lastIndex = 0 allows you to reset the search index to perform a second search starting from the beginning. Without it, the search begins at the index of the last match, which would yield null in this case.

Read this Mozilla doc for more info on this. As per this manual:

This property is set only if the regular expression used the "g" flag to indicate a global search.

| improve this answer | |
1

When calling exec on a global regex, it remembers where was the last match and starts the next one from there.

var rx = /a/g, matches = rx.exec('aa');
rx.lastIndex; //1

When you modify your input string, between exec calls, the lastIndex becomes desychronised.

While there's a few way to fix this, I would rather perform the replace in a single statement.

'QUESTION1 + QUESTION2 + QUESTION3'.replace(/QUESTION\d+/g, function ($1) { 
    return 'VALUE_FOR_' + $1; 
});

//"VALUE_FOR_QUESTION1 + VALUE_FOR_QUESTION2 + VALUE_FOR_QUESTION3"
| improve this answer | |
  • Interesting solution. I'm going to have to play around with this. The use case is a bit more complex in the real code, but I think this could be leveraged and could simplify my production problem. In the production problem the replacements are also variable, I just used QUESTION_? to simplify it. However, for this particular test case, this is a much more elegant solution +1. – Pete Apr 25 '14 at 17:22
  • @mister_rampage You mean that what has to be replaced might vary based on the last match? If you explain your real problem perhaps I could help you to find a working solution. – plalx Apr 25 '14 at 17:25
  • Just wanted to let you know that your solution was gold. Much more elegant for than the original looping solution. Thanks a bunch for all your help. I wish I could accept both answers. – Pete Apr 25 '14 at 17:37
  • @mister_rampage I'm glad to hear this. Unfortunately that's not possible and you have to pick the one that better answers the question. Not only for you but also for others ;) I just want to say that setting back the lastIndex to 0 might work, but not in every case, since it will start matching again at the beginning of the string. Depending on your replacements, it could produce wierd behaviours. – plalx Apr 25 '14 at 18:00

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