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 have a problem, may you help me! I have a json array:

"category" : [
{
    id: 1,
    product: [{id : product_1, type : ball}] 
},
{
    id : 2,
    product :[{id : product_2, type : pen}]
}
]

My problem is: if i have a link such as: http://test/category/1 then , How can I do to get product information by category with id = 1 ? Thanks for any suggestion :)

share|improve this question

4 Answers 4

Assuming your data structure looks like this:

var data = {
    "category" : [
    {
        id: 1,
        product: [{id : product_1, type : ball}] 
    },
    {
        id : 2,
        product :[{id : product_2, type : pen}]
    }
    ]
}

Then, you can find the item in the category array with id == 1 by searching through the array like this:

function findId(data, idToLookFor) {
    var categoryArray = data.category;
    for (var i = 0; i < categoryArray.length; i++) {
        if (categoryArray[i].id == idToLookFor) {
            return(categoryArray[i].product);
        }
    }
}

var item = findId(data, 1);
// item.id, item.type
share|improve this answer
    
thankyou! it works:D –  JaclBlack Nov 17 '11 at 10:19
    
its old. but why not mark as an answer? worked perfect. –  Tony May 14 '14 at 17:41

If you save your array of categories in categories JS variable, you can filter this array based on simple JavaScript (with no jQuery) like that:

var result = categories.filter(function(element){
    if (element.id == 2){
        return true;
    } else {
        return false;
    }
});

and then in result[0].product you will have array of products that are within specific category.

See this jsfiddle for a proof.

PS. filter() method is not available in all browsers, you may need to apply some code that will make it available if needed and not found. Here is some article on Mozilla Developers Network on the details of filter() and the code you need to make it work on old browsers: MDN: filter().

share|improve this answer

I think the OP wants to retrieve corresponding data from url.

So the first step is map the url to identifier

var urlParts = window.location.href.split(/\//)
//window.location.href = http://domain.com/category/1
// urlParts = ['http:', '', 'domain.com', 'category', '1']
var id = urlParts.pop();
var category = urlParts.pop();

Then you retrive the data from JSON string with JSON.parse:

var data = JSON.parse('{"category" : [{"id": 1, "product": [{"id" : "product_1", "type" : "ball"}] }, {"id" : 2, "product" :[{"id" : "product_2", "type" : "pen"}] } ]}');

//The data structure
// {"category" : [
//   {"id": 1, "product" : 
//     [
//       {"id" : "product_1", "type" : "ball"}
//     ]},

//   {"id" : 2, "product" :
//     [
//       {"id" : "product_2", "type" : "pen"}
//     ]} 
// ]}

At last, you can retrive the data similar @jfriend00's post with id and category

function findId(data, idToLookFor) {
    var categoryArray = data.category;
    for (var i = 0; i < categoryArray.length; i++) {
        if (categoryArray[i].id == idToLookFor) {
            return(categoryArray[i].product);
        }
    }
}

var item = findId(data.category, id);
// item.id, item.type
share|improve this answer

This is a way to do it in one line and without using for:

function filterById(jsonObject, id) {return jsonObject.filter(function(jsonObject) {return (jsonObject['id'] == id);})[0];}

Then if you want to get, for example, the object with id=2, you just use:

var selectedObject = filterById(yourJson['category'], 2);

And then selectedObject will get this value, as per your example:

{
    id : 2,
    product :[{id : product_2, type : pen}]
}

There is a downside: Old browsers, such as IE8, don't support filter() so you need to add this code for old browser compatibility: https://developer.mozilla.org/en-US/docs/JavaScript/Reference/Global_Objects/Array/filter#Compatibility

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.