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I can't find a way to have JavaScript regular expression start matching in the middle of a string, and have it bound by '^' (have the start of the regex anchored to my specified starting point).

Perl and Python have what I need (although they are entirely different methodologies from each other).

In Perl I can do:

$s = 'foo bar baz';
$r = qr/\Gbar/;
pos($s) = 4;
print 'OK' if $s =~ $r;

In Python I can do:

s = 'foo bar baz'
r = r'bar'             # r'^bar' also works
if re.match(r, s[4:]): # re.match implies '^'
    print 'OK'

In JavaScript (at least in Node.js) I try:

s = 'foo bar baz';
r = /^bar/g;
r.lastIndex = 4;
if (r.exec(s))
    console.log('OK');

Which doesn't work. If I change the second line to:

r = /bar/g;

Then it does match, but it could have matched at any position after 4 as well (which I don't want).

Background: I'm working on the JavaScript port of a multi-language parsing framework called Pegex, where every terminal is a regex which is tried at the current parsed position (and anchored to the front of it). Efficiency is a concern. For instance, using a substring copy of the input at my starting point would be about the worst solution.

One solution I can think of is to compare the 'index' value of the match to the lastIndex value I set, to see if it matched at the beginning. This throws away the efficiency of '^' but might not cost so much, as the Pegex regexes are generally small and without bracktracking.

Can anyone think of a better solution?

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2  
So, you want a regex match to start at a particular index in the string without doing a substring first? –  jfriend00 Aug 5 '12 at 18:24
    
That's a decent approximation. –  ingydotnet Aug 5 '12 at 19:10
    
You may be after a false efficiency here. It might be much quicker to just do a manual comparison starting at the desired index and NOT use a regex as regex matches are notoriously slow. You'd have to test to know for sure. Or, it might be faster to do the substring() and use a simple regex rather than a complicated regex that avoids the substring(). –  jfriend00 Aug 5 '12 at 19:14
    
Except that this entire framework is based off of regular expression matches only. Here is the Pegex grammar to parse Pegex itself. I have to disagree that regex parsing is slow in dynamic languages (references welcome). I would guess that any simple (non backtracking) regex match, is faster than any two other operations. ie a.match(/^b/) is faster than a.substr(0,1) == 'b'. –  ingydotnet Aug 5 '12 at 19:32
1  
You ought to test before you make assumptions. In this jsperf, the substr() version is 8x faster than the regex version in Chrome. –  jfriend00 Aug 5 '12 at 20:07
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2 Answers

What about matching "^.{4}actualre" ?

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Now that's a great idea. I'll follow up with a general solution based on that. –  ingydotnet Aug 5 '12 at 19:14
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Skipping the number of characters to where you want to start matching is a very good general solution to this problem (imho).

s = 'foo bar baz';                                                          
r = 'bar';                                                                  
p = 4;                                                                      
r = new RegExp('^[\\s\\S]{' + p + '}' + r);                 
if (r.exec(s))                                                              
    console.log('OK');                                                      

I'll have to test how this performs on large data, but I imagine it could be quite good depending on the regex implementation. For instance if the implementation was aware that [\s\S] was the common way of asking for any char (including newline) in JS, then it could simply index forward in one go.

Any other great ideas? :)

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I came with that idea as well, but I don't think it does perform better than substring operations - regex constructors are costly. BTW, you still can have r beeing a literal if you want –  Bergi Aug 5 '12 at 20:01
    
See jsperf.com/compute-regex-vs-substr –  Bergi Aug 5 '12 at 20:34
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