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I am tired to remove all the words less than 3 characters, like in, on ,the....

My code not work for me, Uncaught TypeError: Object ... has no method 'replace' ask for a help.

var str = 'Proin néc turpis eget dolor dictǔm lacínia. Nullam nǔnc magna, tincidunt eǔ porta in, faucibus sèd magna. Suspendisse laoreet ornare ullamcorper. Nulla in tortòr nibh. Pellentesque sèd est vitae odio vestibulum aliquet in nec leo.';
var newstr = str.split(" ").replace(/(\b(\w{1,3})\b(\s|$))/g,'');
alert(newstr);
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1  
why do you use split(" ") ? –  Marek Sebera Sep 11 '11 at 19:53
1  
No need for the split, but \W? is needed is needed or you will not get leo. –  mplungjan Sep 11 '11 at 20:00
    
ok, that is right, thanks. –  cj333 Sep 11 '11 at 20:10
    
A second big problem in here and in most of the answers is the use of \w which does not match accented characters. –  Ray Toal Sep 11 '11 at 20:19

5 Answers 5

up vote 6 down vote accepted

You need to change the order of split and replace:

var newstr = str.replace(/(\b(\w{1,3})\b(\s|$))/g,'').split(" ");

Otherwise, you end up calling replace on an array, which does not have this method.

See it in action.

Note: Your current regex does not correctly handle the case where a "short" word is immediately followed by a punctuation character. You can change it slightly to do that:

/(\b(\w{1,3})\b(\W|$))/g
                ^^

Apart from that, you also have to take care of the fact that the resulting array may contain empty strings (because deleting consecutive short words separated by spaces will end up leaving consecutive spaces in the string before it's split). So you might also want to change how you split. All of this gives us:

var newstr = str.replace(/(\b(\w{1,3})\b(\W|$))/g,'').split(/\s+/);

See it in action.

Update: As Ray Toal correctly points out in a comment, in JavaScript regexes \w does not match non-ASCII characters (e.g. characters with accents). This means that the above regexes will not work correctly (they will work correctly on certain other flavors of regex). Unfortunately, there is no convenient way around that and you will have to replace \w with a character group such as [a-zA-Zéǔí], and do the converse for \W.

Update:

Ugh, doing this in JavaScript regex is not easy. I came up with this regex:

([^ǔa-z\u00C0-\u017E]([ǔa-z\u00C0-\u017E]{1,3})(?=[^ǔa-z\u00C0-\u017E]|$))

...which I still don't like because I had to manually include the ǔ in there.

See it in action.

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ok, this can work, just change order. thanks. –  cj333 Sep 11 '11 at 19:56
    
Why use split at all? Either use split and check the length of each item you get in the resulting array, or use a regex, and don't bother splitting the string at all. –  GolezTrol Sep 11 '11 at 20:00
    
@GolezTrol: split by itself will produce "words" that include non-alpha characters and whose length may be more than 3 due to the presence of these characters. This is not the behavior that the OP wants. And I presume that split is also necessary at some point so they can loop over the results. –  Jon Sep 11 '11 at 20:02
1  
@RayToal: There's nothing to be sorry about, thank you for pointing it out (quickly scanning by eye did not allow me to catch this). Unfortunately this means that the regex will get ugly -- there's no surefire easy way to match accented letters in JS. –  Jon Sep 11 '11 at 20:42
1  

Try this:

str = str.split( ' ' ).filter(function ( str ) {
    var word = str.match(/(\w+)/);
    return word && word[0].length > 3;
}).join( ' ' );

Live demo: http://jsfiddle.net/sTfEs/1/

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Shouldn't that be .fliter? –  Joseph Silber Sep 11 '11 at 19:59
    
@Joseph Yes :) –  Šime Vidas Sep 11 '11 at 20:00
    
I like more method for teach people multi way to study. –  cj333 Sep 11 '11 at 20:13
    
Your fiddle dropped the word "lacínia" –  Ray Toal Sep 11 '11 at 20:21

str.split(" ") returns an array, which does not have a replace method.

Secondly, you probably don't use regexes for this. JavaScript does not have good support for non-ASCII letters in regexes. See Regular expression to match non-english characters?. If you need to use a regex, there are hints in there.

And BTW, in all regex flavors, \w{1,3} DOES NOT match "néc" As you probably know, \w is [A-Za-z_]. See http://jsfiddle.net/3YWSC/ for an example.

Are you only trying to match words of non-spaces? Or are you looking to for words of three or less letters only? On the one hand you split across spaces, but on the other you used \w. I would go with something like Dennis's answer.

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oh, that is what I ignored –  cj333 Sep 11 '11 at 20:16
var words = str.split(" "); //Turns the string into an array of words
var longWords = []; //Initialize array
for(var i = 0; i<words.length; i++){
    if(words[i].length > 3) {
        longWords.push(words[i]);
    }
}
var newString = longWords.join(" "); //Create a new string of the words separated by spaces.
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set words as an away, will cost more system memory in the JavaScript processing? this is I always puzzle, and afraid to try. –  cj333 Sep 11 '11 at 20:10
1  
The regex will take time and memory as well. It would take testing to figure out how much each would require. Just figure out what works and use that. –  Dennis Sep 11 '11 at 20:40

Try

var newstr = str.replace(/(\b(\w{1,3})\b(\s|$))/g,'').split(" ");
share|improve this answer
    
The OP has characters in there that do not match \w. –  Ray Toal Sep 11 '11 at 20:20

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