Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm working on a simple browser mud-client, and i need to provide some basic functions to string processing. So, when some user casts a mass spell, it should be collapsed into a one string, i.e. CAST: User1 -> [target1, target2]. I wrote the code:

function CastGroup(caster, cast, targets, text) {
    this.cast = cast || '';
    this.targets = targets || [];
    this.caster = caster || '';
    this.text = text || '';
}

CastGroup.prototype = new String;

CastGroup.prototype.render = function(){
    var targets = this.targets ? '[' + this.targets.join(', ') + ']' : '';
    var text = '<b>CAST</b>: ' + this.caster + ' ' + this.cast + ' -> ' + targets + '\n';
    this.text = text;

    return new CastGroup(this.caster, this.cast, this.targets, this.text);
};

CastGroup.prototype.valueOf = function(){
    return this.text;
};

CastGroup.prototype.toString = function(){
    return this.render();
};


var c = new CastGroup('name', 'supercast', ['1', '2']);
console.log(typeof c); // object
var s = c.replace('name', 'nomnom');
console.log(typeof s); // string

Any string function, i.e. String.replace() replaces the original object. How can i avoid it?

EDIT1

I have a post-process highlighting "engine", that calls user's callbacks. User should think, that bundle has only strings. bundle is an array with raw text, plain text, and colorized text. User defines callbacks in user-space, that should do all the highlighting work.

function process_highlights(bundle){
    if (!bundle || !bundle.length){
        return bundle;
    }

    var highlight_result = bundle;
    for (var i=0; i<HIGHLIGHTS.length; i++){
        highlight_result = HIGHLIGHTS[i](highlight_result);
    }
    return highlight_result;
}

So, text process chain looks like: original_bundle -> subst_processor -> trigger_processor -> highlight_processor -> output_window. All of these processors takes and return a bundle, that should contain strings. I cannot change the design now.

share|improve this question
    
What do you mean it replaces the original object? –  Danny G Jun 3 '13 at 16:25
    
Because the replace calls the toString() method, which stores the string into s, it is not going to store the object in c. –  epascarello Jun 3 '13 at 16:27
    
epascarello, i see. But how to teach the replace method to use valueOf, and return this, not a new instance? I'm using subclassing because i don't want to break the original string functions. –  lilo.panic Jun 3 '13 at 16:33

2 Answers 2

If I understand your question correctly, you need to remove this: CastGroup.prototype = new String;

and do this: CastGroup.prototype = String.prototype;

This will give you the String methods without returning a new String object. To learn more about this (and about advanced Javascript in general), check out these slides.

Update:

I think I understand your question a little better now. The replace string method returns a new string, which is why it's overwriting your object.

You don't need to inherit from the String object at all. String methods won't even work on an object (so delete CastGroup.prototype = new String). What you want to do is just modify the object's values directly.

If you need to modify the 'text' value of your CastGroup, then declare another method:

CastGroup.prototype.modifyText = function (findValue, replaceValue) {
    var text = this.text;
    this.text = text.replace(findValue, replaceValue);
    return this;
};
share|improve this answer
    
I have a text highlighting processor, that calls (may call) str.replace() after a CastGroup object was created. So, i need the replace() method to do nothing, but replace this. –  lilo.panic Jun 3 '13 at 17:41

This worked for me.

CastGroup.prototype.replace = function() {
    this.text = this.text.replace.apply(this.text, arguments);
    return this;
};

Overwrite the prototype in your object, update the field that needs updating, then return the object.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.