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I made this helper function to find single words, that are not part of bigger expressions
it works fine on any word that is NOT first or last in a sentence, why is that?
is there a way to add "" to regexp?

String.prototype.findWord = function(word) {

    var startsWith = /[\[\]\.,-\/#!$%\^&\*;:{}=\-_~()\s]/ ;
    var endsWith = /[^A-Za-z0-9]/ ;

    var wordIndex = this.indexOf(word);

    if (startsWith.test(this.charAt(wordIndex - 1)) &&
        endsWith.test(this.charAt(wordIndex + word.length))) {

        return wordIndex;
    }
    else {return -1;}
}

Also, any improvement suggestions for the function itself are welcome!

UPDATE: example: I want to find the word able in a string, I waht it to work in cases like [able] able, #able1 etc.. but not in cases that it is part of another word like disable, enable etc

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Your question is confusing, can you give us an example input sentence and desired output? I don't know what "part of a bigger expression" means. –  Andy Ray Jul 29 '11 at 10:03
    
@Andy Ray I updated the question –  ilyo Jul 29 '11 at 10:06
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3 Answers

A different version:

String.prototype.findWord = function(word) {
   return this.search(new RegExp("\\b"+word+"\\b"));
}

Your if will only evaluate to true if endsWith matches after the word. But the last word of a sentence ends with a full stop, which won't match your alphanumeric expression.

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thanx, so how do I add those to the regexp? –  ilyo Jul 29 '11 at 10:03
    
@IlyaD, I suggest you use my method :) –  davin Jul 29 '11 at 10:08
    
it works great but I don't completely understand it, Looked up \b and it says "word boundary", so it automatically does what I was aiming for..? :) –  ilyo Jul 29 '11 at 10:33
1  
@IlyaD, yep. Nice isn't it ? :) –  davin Jul 29 '11 at 10:33
    
Very much :) is the fist ` before \b` meant to say thet the \b is regexp and not a string? –  ilyo Jul 29 '11 at 11:33
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Did you try word boundary -- \b?

There is also \w which match one word character ([a-zA-Z_]) -- this could help you too (depends on your word definition).

See RegExp docs for more details.

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I need to find what is before the searched word, if someone searches for able i need to see that it is not starting with a letter and can be disable –  ilyo Jul 29 '11 at 9:57
    
\w matches digits, too: [A-Za-z0-9_]. –  Alan Moore Jul 29 '11 at 17:07
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If you want your endsWith regexp also matches the empty string, you just need to append |^$ to it:

var endsWith = /[^A-Za-z0-9]|^$/ ;

Anyway, you can easily check if it is the beginning of the text with if (wordIndex == 0), and if it is the end with if (wordIndex + word.length == this.length).

It is also possible to eliminate this issue by operating on a copy of the input string, surrounded with non-alphanumerical characters. For example:

var s = "#" + this + "#"; 
var wordIndex = this.indexOf(word) - 1;

But I'm afraid there is another problems with your function: it would never match "able" in a string like "disable able enable" since the call to indexOf would return 3, then startsWith.test(wordIndex) would return false and the function would exit with -1 without searching further.

So you could try:

String.prototype.findWord = function (word) {

   var startsWith = "[\\[\\]\\.,-\\/#!$%\\^&\*;:{}=\\-_~()\\s]";
   var endsWith =   "[^A-Za-z0-9]";

   var wordIndex = ("#"+this+"#").search(new RegExp(startsWith + word + endsWith)) - 1;

   if (wordIndex == -1) { return -1; }
   return wordIndex;
}
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