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 trying to loop through a number of items, and create a json object. Each loop should be a new item on the object, but I'm having some issues doing it. It seems that only one set of items gets added, instead of multiple ones.

Here is my code:

jsonObj = {}
rows.each(function (index) {
    jsonObj["id"] = $this.find('.elementOne').val();
    jsonObj["name"] = $this.find('.elementTwo').text();

});

Here is what my json looks like:

{
    id: "3"
    name: "Stuff"
},

Here is what I am trying to do:

{
    id: "1"
    name: "Stuff"
},
{
    id: "2"
    name: "Stuff"
},
{
    id: "3"
    name: "Stuff"
}
share|improve this question
2  
Technically there is no such thing as a "JSON object" - JSON is a string representing a JavaScript Object. What you are dealing with here is a JavaScript Object, not JSON. –  Mark Eirich Jun 30 '12 at 22:32
    
JSON is a string representing a data structure which can be parsed with many programming languages. It is based on a subset of JavaScript, but the data types it supports appear in a great many languages. –  Quentin Jun 30 '12 at 22:36

5 Answers 5

up vote 9 down vote accepted

There is no JSON here. Please don't confuse:

  • A JavaScript object (a data structure)
  • A JavaScript object literal (code to create such a data structure)
  • JSON (a data format based on a subset of object literal notation)

If you want an ordered list of objects (or any other kind of JavaScript data structure) then use an array. Arrays have a push method.

var myData = [];
rows.each(function (index) {
    var obj = { 
        id: $this.find('.elementOne').val(),
        name: $this.find('.elementTwo').text()
    };
    myData.push(obj);
});
share|improve this answer
var jsonObj = [];
rows.each(function(index) {
    jsonObj.push({
        id: $this.find('.elementOne').val(),
        name: $this.find('.elementTwo').text()
    });
});
share|improve this answer

You override the object instead of adding it a new value each iteration.

Fixed code using an array:

jsonObj = [];
rows.each(function(index) {
    jsonObj.push({
        'id': $this.find('.elementOne').val(),
        'name': $this.find('.elementTwo').text()
    });
});​
share|improve this answer

This is because you're merely overwriting the same properties of your object, id and name, each time. You need to be making a sub-object for each, then push it into the master object (which I've converted to array, since it's non-associative).

var jsonObj = []
rows.each(function (index) {
    var temp_obj = {};
    temp_obj["id"] = $this.find('.elementOne').val();
    temp_obj["name"] = $this.find('.elementTwo').text();
    jsonObj.push(temp_obj);
});

[EDIT] - as Mark Eirich's answer shows, the temp_obj is unnecessary - you could push an anonymous object instead, but I defined temp_obj just to make it crystal clear what's happening.

Also read Quentin's very good points re: common confusion between JavaScript objects and JSON.

share|improve this answer

What you want is an array of objects. When you try to write the same property on the same object multiple times, it gets overwritten which is why you're seeing id and name contain values for the last iteration of the loop.

Although you haven't tagged the question with jQuery, it does look like jQuery, so here's a solution:

I've taken the liberty to change $this to this because $this seems to be referring to the same object in each iteration, which is now what you may want (methinks)

var myArray = rows.map(function() {
    return {
        id: $(this).find('.elementOne').val(),
        name: $(this).find('.elementTwo').text()
    };
});
share|improve this answer
    
The best answer here. Nice N clean! +1. –  gdoron Jun 30 '12 at 22:37

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.