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quick question: my pattern is an svg string and it looks like l 5 0 l 0 10 l -5 0 l 0 -10 To do some unittest comparison against a reference I need to ditch all but the first l I know i can ditch them all and put an 'l' upfront, or I can use substrings. But I'm wondering is there a javascript regexp idiom for this?

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Is the first l always at the start of the string? –  Mark Byers Oct 31 '11 at 21:32
    
i know you said you don't want this, but substring up to the first space seems like the easiest to read and maintain. –  Randy Oct 31 '11 at 21:36
    
@Mark yes for this usecase, it is even ' l', but that also works with the negative lookahead. –  dr jerry Oct 31 '11 at 21:49
    
@Randy yes I know, but I wanted to deepen my knowledge on regexps. Your point about readability and maintainability is something to consider. I'll start with commenting. –  dr jerry Oct 31 '11 at 21:49

4 Answers 4

up vote 5 down vote accepted

You can try a negative lookahead, avoiding the start of the string:

/(?!^)l/g

See if online: jsfiddle

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Yea this seems to work thanks! –  dr jerry Oct 31 '11 at 21:42
 "l 5 0 l 0 10 l -5 0 l 0 -10".replace(/^\s+/, '').replace(/\s+l/g, '')

makes sure the first 'l' is not preceded by space and removes any space followed by an 'l'.

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There's no JS RegExp to replace everything-but-the-first-pattern-match. You can, however, implement this behaviour by passing a function as a second argument to the replacemethod.

var regexp = /(foo bar )(red)/g; //Example
var string = "somethingfoo bar red  foo bar red red pink   foo bar red red";
var first = true;

//The arguments of the function are similar to $0 $1 $2 $3 etc
var fn_replaceBy = function(match, group1, group2){ //group in accordance with RE
    if (first) {
        first = false;
        return match;
    }
    // Else, deal with RegExp, for example:
    return group1 + group2.toUpperCase();
}
string = string.replace(regexp, fn_replaceBy);
//equals string = "something foo bar red  foo bar RED red pink   foo bar RED red"

The function (fn_replaceBy) is executed for each match. At the first match, the function immediately returns with the matched string (nothing happens), and a flag is set.
Every other match will be replaced according to the logic as described in the function: Normally, you use $0 $1 $2, et cetera, to refer back to groups. In fn_replaceBy, the function arguments equal these: First argument = $0, second argument = $1, et cetera.

The matched substring will be replaced by the return value of function fn_replaceBy. Using a function as a second parameter for replace allows very powerful applcations, such as an intelligent HTML parser.

See also: MDN: String.replace > Specifying a function as a parameter

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Something like this?

"l 5 0 l 0 10 l -5 0 l 0 -10".replace(/[^^]l/g, '')

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2  
Although this does work in this case, doesn't ^ represent the literal character in a character class? –  pimvdb Oct 31 '11 at 21:37
1  
[^^] matches any character besides '^'. It does not match zero-characters at any point other than the start of input as you require. (!/[^^]/.test('^') && /[^^]/.test('x')) === true –  Mike Samuel Oct 31 '11 at 21:41

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