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I'm sorry if this sounds silly, but I'm new with JavaScript, and what I would like to do is this:

Let's say I have some article with keywords inside, like for example "training". The article would be like:

Some text here training and more bla bla bla. We can training this... Using training you can...

Now what I would like to do is replacing "training" with let's say "runing", but I don't want them all replaced, I just want to replace one of them (a random one that is).

How can i do this using JavaScript?

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stackoverflow.com/a/12604533/1250044 –  yckart Sep 26 '12 at 14:54

3 Answers 3

I've written a small less 140byt.es function for this "problem": https://gist.github.com/3728254

HTML

<div id="str">Some text here training and more bla bla bla. We can training this... Using training you can...</div>

JS

var replaceR = function(a,b,c,d,e){e=new RegExp(b,"ig");a.innerHTML=a.innerHTML.replace(d?b:e,c)};

    replaceR(document.getElementById('str'), 'training', 'runing', false);

DEMO

UPDATE

var string = document.getElementById('str').innerHTML,
    newString = string.replace('training', 'running');

document.getElementById('str').innerHTML = newString;

http://fiddle.jshell.net/db3yc/

UPDATE 2

var s = "Some text here training and more bla bla bla. We can training this... Using training you can...",
    nth = 0,
    r = (new Date().getSeconds()) % 4;
s = s.replace(/training/g, function(match, i, original) {
    nth++;
    return (nth === r) ? "running" : match;
});
document.write(s);

http://fiddle.jshell.net/JfYvA/

share|improve this answer
    
This just replaces all occurences. –  pimvdb Sep 26 '12 at 14:58
    
Ok, I've to accept! –  yckart Sep 26 '12 at 15:01
    
I've updated my answer! –  yckart Sep 26 '12 at 15:12
    
I think you missed the key word of the question: "random". –  pimvdb Sep 26 '12 at 15:16
    
im missing random part here, and it would be nice if html part would not be needed, just plain text to work with. Thank you –  SomeoneWeird Sep 26 '12 at 15:21

I'm not 100% sure but after some small tests this should work :)

function replaceRandom(str, search, replace) {
    var split = str.split(new RegExp("\b?" + search + "\b?")),
        length = split.length - 1,
        rnd = ~~(Math.random() * length),
        result;

    if (length > 0) {
        result = split.map(function(val, idx) {
            return val && (val + (idx === rnd ? replace : search));
        })

        return result.join("").substring(-search.length);
    } else{
        return str;
    }
}

fiddle

share|improve this answer
    
im not sure how to use this one :) sorry, but like said, im new to JS. –  SomeoneWeird Sep 26 '12 at 15:07
    
I've added an example –  Andreas Sep 26 '12 at 15:11
    
it doesnt work... :( –  SomeoneWeird Sep 26 '12 at 15:18
    
Means what? Any errors in the console? No replacement as in the example?...? –  Andreas Sep 26 '12 at 15:39

Wrote a function that builds a list of substring positions inside the main string and then performs a single random replacement:

function replaceRandom(str, needle, replacement)
{
    var indices = [],
    re = new RegExp(needle.replace(/[-[\]{}()*+?.,\\^$|#\s]/g, "\\$&"), 'ig');

    // find all string positions where needle occurs
    while (match = re.exec(str)) {
        indices.push(match.index);
    }

    if (indices.length) {
        // determine a random match to do replacement on
        var pos = indices[Math.floor(indices.length * Math.random())];
        return str.substr(0, pos) + replacement + str.substr(pos + needle.length);
    } else {
        return str;
    }
}

To call it:

var newStr = replaceRandom('Some text here training and more bla bla bla. We can training this... Using training you can...', 'training', 'running');
// newStr now contains a single replacement
share|improve this answer
    
this one is not working for me either... –  SomeoneWeird Sep 27 '12 at 1:09
    
@SomeoneWeird explain "not working", I've added the code to test it. –  Ja͢ck Sep 27 '12 at 1:54

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