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I have a scenario where i need to copy the array of Objects(Main array) to another Temp array which should not have object reference basically if i make any modification to Main array it should not reflect in the Temp array so that i will preserve the copy independently.

I have used one of the code snippet from stack overflow this one does partially like if i delete all objects from the Main array the temp array still hold the value but when i do some modifications in main array and click cancel button iam removing all objects from the main array using array.Removeall(); but the modification still exist in Temp array so which means that object having a reference.

clone: function (existingArray) {
  var newObj = (existingArray instanceof Array) ? [] : {};
  console.debug('newObj value is ' + newObj);
  for (i in existingArray) {
    console.debug('i value is' + i);
    if (i == 'clone') continue;
    console.debug('existingArray[i] value ' + existingArray[i]);
    if (existingArray[i] && typeof existingArray[i] == "object") {

      newObj[i] = this.clone(existingArray[i]);
    } else {
      console.debug('in else part ' + existingArray[i]);
      newObj[i] = existingArray[i];
    }
  }
  return newObj;
}

my object structure is like

iam using knockout framework.

newObjectCreation = function (localIp, RemoteIp, areaId) {
  this.localIP = ko.observable(localIp);
  this.remoteIP = ko.observable(RemoteIp);
  this.areaId = ko.observable(areaId);
};

template.ProtocolArray.push(new newObjectCreation('', '', '')); // to create default row

please help me in this regard. Thanks in advance.

share|improve this question
    
Do the objects contain anything which is not expressible as JSON (not object literal)? If not, you could simple do: var clone = JSON.parse(JSON.stringify(src)); –  Yoshi Mar 27 '12 at 8:38

2 Answers 2

up vote 5 down vote accepted

Let me understand: you don't want just have a new array, but you want to create a new instance for all objects are present in the array itself? So if you modify one of the objects in the temp array, that changes is not propagated to the main array?

If it's the case, it depends by the values you're keeping in the main array. If these objects are simple objects, and they can be serialized in JSON, then the quickest way is:

var tempArray = JSON.parse(JSON.stringify(mainArray));

If you have more complex objects (like instances created by some your own constructors, html nodes, etc) then you need an approach ad hoc.

Edit:

If you don't have any methods on your newObjectCreation, you could use JSON, however the constructor won't be the same. Otherwise you have to do the copy manually:

var tempArray = [];
for (var i = 0, item; item = mainArray[i++];) {
    tempArray[i] = new newObjectCreation(item.localIP, item.remoteIP, item.areaId);
}
share|improve this answer
    
so will var tempArray = JSON.parse(JSON.stringify(mainArray)); do a deep copy i.e without object reference? 2.)regarding that manual copying doesnt this manual copying still point to same object reference. –  sriramdev Mar 27 '12 at 9:06
    
if you have only properties and not methods, and you don't care about having exactly the same object with the same constructor, but just have plain object that have the same values, yes, you will have a sort of "deep copy". To make it clears: function foo(a) { this.a = a }; var main = [new foo(1)], temp = JSON.parse(JSON.stringify(main)); then you will have main[0].a equals to 1 and temp[0].a as well. If you change the last one temp[0].a = 4 that changes won't be reflected to main[0].a. However main[0].constructor is foo and temp[0].constructor is Object. –  ZER0 Mar 27 '12 at 9:11
    
Thanks a lot for that answer I appreciate your help template.Temparray(JSON.parse(JSON.stringify(ko.toJS(template.Mainarray())))); I have used above snippet and it works as expected with n=knockout framework.Kudos to u :) –  sriramdev Mar 27 '12 at 10:46
1  
Why doesn't JavaScript have a function to do this? Like function cloneObject (o) { return JSON.parse(JSON.stringify(o)); } ...except doing something faster behind-the-scenes. Or even better: a method for all objects called clone() so you could just do mainArray.clone(). –  Luke Mar 7 at 21:13

So you want a deep copy without object reference? Sure, use .slice().

Example:

var mainArr = [],
    tmpArr = []

tmpArr = mainArr.slice(0) // Shallow copy, no reference used.

PS: I don't think double-JSON parsing is performance wise.

share|improve this answer
3  
This did not work for me under Google Chrome 25. After I modified the new array's first object it also modified the original array's first object. No downvote though as it does work with simple arrays, just not with arrays of objects which I think is the OP's point. –  Purefan Mar 16 '13 at 13:06

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