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How can I emulate the SQL keyword LIKE in JavaScript?

For those of you who don't know what LIKE is, it's a very simple regex which only supports the wildcards %, which matches 0 or more characters, and _ which matches exactly one character.

However, it's not just possible to do something like:

var match = new RegEx(likeExpr.replace("%", ".*").replace("_", ".")).exec(str) != null;

...because the pattern might contain dots, stars and any other special regex characters.

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fyi- in your sample code you're missing a close parenthesis before ".exec" –  Kip Aug 21 '09 at 20:54
    
@C.barlow: don't hesitate to remove older 'edit: .. blah' markings when editing. Aim for "the best standalone question"; the edit history is there for all to see, so no need to keep commentary around. :) –  sarnold Feb 10 '12 at 22:57
    
@sarnold Gotcha! Thanks for the guidance! –  Chris Barlow Feb 10 '12 at 22:59

5 Answers 5

up vote 5 down vote accepted

What you have will work as long as you first escape the regex characters in your pattern. Below is one example from Simon Willison’s blog:

RegExp.escape = function(text) {
  if (!arguments.callee.sRE) {
    var specials = [
      '/', '.', '*', '+', '?', '|',
      '(', ')', '[', ']', '{', '}', '\\'
    ];
    arguments.callee.sRE = new RegExp(
      '(\\' + specials.join('|\\') + ')', 'g'
    );
  }
  return text.replace(arguments.callee.sRE, '\\$1');
}

You could then implement your code as:

likeExpr = RegExp.escape(likeExpr);
var match = new RegEx(likeExpr.replace("%", ".*").replace("_", ".")).exec(str) != null;
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1  
Assuming what you have already - RegExp.like = function (text) { return new RegExp("^"+(RegExp.escape(text).replace(/%/g, ".*").replace(/_/g, "."))+"$"); } might be a bit more reusable for him. –  gnarf Aug 21 '09 at 21:04
    
That Regex.escape implementation is quite of an overkill. First of all, arguments.callee occurrence prevents some of the optimizations in modern browsers (and is deprecated in ES5-strict), so it's better to avoid it when possible. Second, there's an unnecessary escaping of characters, when instead they could be placed in a character class. Here's a smaller (and most likely faster) version that we use in Prototype.js - RegExp.escape = function(str) { return str.replace(/([.*+?^=!:${}()|[\]\/\\])/g, '\\$1'); }; –  kangax Aug 23 '09 at 6:45

Here's a function I use, based on PHP's preg_quote function:

function regex_quote(str) {
  return str.replace(new RegExp("([\\.\\\\\\+\\*\\?\\[\\^\\]\\$\\(\\)\\{\\}\\=\\!\\<\\>\\|\\:\\-])", "g"), "\\$1");
}

So your line would now be:

var match = new RegEx(regex_quote(likeExpr).replace("%", ".*").replace("_", ".")).exec(str) != null;
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If you want to use a regex, you can wrap each character of the string in square-brackets. Then you only have a few characters to escape.

But a better option might be to truncate the target strings so the length matches your search string and check for equality.

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I was looking for an answer the same question and came up with this after reading Kip's reply:

String.prototype.like = function(search) {
    if (typeof search !== 'string' || this === null) {return false; }
    // Remove special chars
    search = search.replace(new RegExp("([\\.\\\\\\+\\*\\?\\[\\^\\]\\$\\(\\)\\{\\}\\=\\!\\<\\>\\|\\:\\-])", "g"), "\\$1");
    // Replace % and _ with equivalent regex
    search = search.replace(/%/g, '.*').replace(/_/g, '.');
    // Check matches
    return RegExp('^' + search + '$', 'gi').test(this);
}

You can then use it as follows (note that it ignores UPPER/lower case):

var url = 'http://www.mydomain.com/page1.aspx';
console.log(url.like('%mydomain.com/page_.asp%')); // true

NOTE 29/11/2013: Updated with RegExp.test() performance improvement as per Lucios comment below.

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instead of !!this.match(..., shouldn't you use this.test(... ? –  Lucio M. Tato Nov 17 '13 at 0:59
    
hi @LucioM.Tato, x.test() method is for RegExp instances, not for String object.. http://www.w3schools.com/jsref/jsref_regexp_test.asp –  Steven de Salas Nov 18 '13 at 11:35
    
I'm sorry I wasn't clear. You're getting a match array (expensive regexp) instead of using .test (better performance). Should be: return new RegExp(...).test(this); instead of converting an array or null to boolean by double negation.. stackoverflow.com/questions/10940137/… –  Lucio M. Tato Nov 23 '13 at 12:36
1  
+1 upvoted. I've used your solution with my change ( return RegExp('^' + search + '$', 'gi').test(this); –  Lucio M. Tato Nov 23 '13 at 12:42
    
Good solution. Code is cleaner as well as faster. I've updated with your suggestion. –  Steven de Salas Nov 28 '13 at 23:40

In Chris Van Opstal's answer you should use replaceAll instead of replace to replace all occurrances of '%' and '_'. Reference to how to do replaceAll - here

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