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I'm trying to write the code so it removes the "bad" words from the string (the text).

The word is "bad" if it has comma or any special sign thereafter. The word is not "bad" if it contains only a to z (small letters).

So, the result I'm trying to achieve is:

<script>
String.prototype.azwords = function() {
   return this.replace(/[^a-z]+/g, "0");
}

var res = "good Remove remove1 remove, ### rem0ve? RemoVE gooood remove.".azwords();//should be "good gooood"
//Remove has a capital letter
//remove1 has 1
//remove, has comma
//###  has three #
//rem0ve? has 0 and ?
//RemoVE has R and V and E
//remove. has .
alert(res);//should alert "good gooood"
</script>
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5 Answers 5

up vote 1 down vote accepted

Try this:

return this.replace(/(^|\s+)[a-z]*[^a-z\s]\S*(?!\S)/g, "");

It tries to match a word (that is surrounded by whitespaces / string ends) and contains any (non-whitespace) character but at least one that is not a-z. However, this is quite complicated and unmaintainable. Maybe you should try a more functional approach:

return this.split(/\s+/).filter(function(word) {
    return word && !/[^a-z]/.test(word);
}).join(" ");
share|improve this answer
    
Yes, after editing your post seems like it works now... Thank you... –  Haradzieniec Jan 31 '13 at 11:11
    
Thank you. But what about this: return this.replace(/(^|\s+)[a-z]*[^a-z\s]\S*(?!\S)/g, ""); so you don't need to .trim(), once you replace with "" instead of " "? –  Haradzieniec Jan 31 '13 at 11:13
    
@Haradzieniec: You're right! I thought that would leave no space between the words. –  Bergi Jan 31 '13 at 11:16
    
Follow-up on the JSPerf I mentioned in comments to my solution: I ran the benchmarking tests in a few browsers to see which solution was objectively faster. Chrome: my solution is faster; Firefox, this one is. IE, however, threw an error when I tried to use this solution. I'm not sure why. Depends on how important IE-compatibility is to you but might be worth looking into. Results here. –  guypursey Jan 31 '13 at 11:55
1  
jQuery never was meant to handle data. All it can do is DOM, Ajax and Animation (it has namespaced map, grep, inArray etc, but those are poor copies). To get cross-browser compability, use es5-shim and/or Underscore –  Bergi Jan 31 '13 at 12:09

okay, first off you probably want to use the word boundary escape \b in your regex. Also, it's a bit tricky if you match the bad words, because a bad word might contain lower case chars, so your current regex will exclude anything which does have lowecase letters.

I'd be tempted to pick out the good words and put them in a new string. It's a much easier regex.

/\b[a-z]+\b/g

NB: I'm not totally sure that it'll work for the first and last words in the string so you might need to account for that as well. http://www.regextester.com/ is exceptionally useful.

EDIT: as you want punctiation after the word to be 'bad', this will actually do what I was suggesting

(^|\s)[a-z]+(\s|$)
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How are you going to use that? .match(…).join(" ")? –  Bergi Jan 31 '13 at 11:23
    
Seems like this solutions doesn't work... Thank you anyway... –  Haradzieniec Jan 31 '13 at 11:23

Firstly I wouldn't recommend changing the prototype of String (or of any native object) if you can avoid because you leave yourself open to conflicts with other code that might define the same property in different ways. Much better to put custom methods like this on a namespaced object, though I'm sure some will disagree.

Second, is there any need to use RegEx completely? (Genuine question; not trying to be facetious.)

Here is an example of the function with plain old JS using a little bit of RegEx here and there. Easier to comment, debug, and reuse.

Here is the code:

var azwords = function(str) {
   var arr = str.split(/\s+/),
       len = arr.length,
       i = 0,
       res = "";
   for (i; i < len; i += 1) {
       if (!(arr[i].match(/[^a-z]/))) {
           res += (!res) ? arr[i] : " " + arr[i];
       }
   }
   return res;
}

var res = "good Remove remove1 remove, ### rem0ve? RemoVE gooood remove."; //should be "good gooood"

//Remove has a capital letter
//remove1 has 1
//remove, has comma
//###  has three #
//rem0ve? has 0 and ?
//RemoVE has R and V and E
//remove. has .

alert(azwords(res));//should alert "good gooood";
share|improve this answer
    
This returns "good gooood " (notice the trailing blank). See my answer for a more concise implementation of that word filter :-) –  Bergi Jan 31 '13 at 11:25
    
You are probably right but your code is longer and I'm not sure if it works faster. Anyway, thanks for the solution. It looks clear. What about the blank space after the right word, please use .trim() :) –  Haradzieniec Jan 31 '13 at 11:28
    
@Bergi Thanks for pointing me to your own solution. I like the concise chained functional approach; it's very neat and uses the filter method which in my sticking to plain old JS I didn't think of :-) I've corrected the trailing blank by modifying my code. –  guypursey Jan 31 '13 at 11:47
    
@Haradzieniec I've fixed the trailing blank, not with trim but by correcting the concatenation up front. I used JSPerf to see which is faster and in my browser, it looks as though mine might be. You can see the results here. I declared called JQuery in my code even though I don't use any JQuery in my solution because you said you were using it and I wanted to ensure the test was fair. –  guypursey Jan 31 '13 at 11:50

Try this one:

 var res = "good Remove remove1 remove, ### rem0ve? RemoVE gooood remove.";     
 var new_one = res.replace(/\s*\w*[#A-Z0-9,.?\\xA1-\\xFF]\w*/g,'');


//Output `good gooood`

Description:

             \s*           # zero-or-more spaces
             \w*           # zero-or-more alphanumeric characters 
             [#A-Z0-9,.?\\xA1-\\xFF]  # matches any list of characters
             \w*           # zero-or-more alphanumeric characters

             /g  - global (run over all string) 
share|improve this answer
    
It does not remove remöve - not sure whether that is a problem –  Bergi Jan 31 '13 at 11:19
    
@Bergi Thank you for this notie. I was trying to note that either. Yes, that is a problem. As far as I understand, [#A-Z0-9,.?] should be replaced with some kind of [^a-z], but I have no luck with that. So the list of allowed symbols is more preferable than a long list of symbols to be excluded. –  Haradzieniec Jan 31 '13 at 11:21
    
@Bergi sorry, didnt notice, i fixed my response: added \xA1-\xF6 –  Maxim Shoustin Jan 31 '13 at 11:53
    
@Haradzieniec i fixed my response, suppose it should work (added ASCII range as well) –  Maxim Shoustin Jan 31 '13 at 11:54

This will find all the words you want /^[a-z]+\s|\s[a-z]+$|\s[a-z]+\s/g so you could use match.

this.match(/^[a-z]+\s|\s[a-z]+$|\s[a-z]+\s/g).join(" "); should return the list of valid words.

Note that this took some time as a JSFiddle so it maybe more efficient to split and iterate your list.

share|improve this answer
    
Why not use \b after the word as well? And why repeat everything? –  Bergi Jan 31 '13 at 12:01
    
@Bergi Yes true, updated, thanks –  Harty-McGraaaa Jan 31 '13 at 12:22

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