111

I'm bashing my head against an error I can't work out how to fix. I have the following;

JSON

{"products":
[
    {
        "product_id" : "123",
        "product_data" : {
            "image_id" : "1234",
            "text" : "foo",
            "link" : "bar",
            "image_url" : "baz"
        }
    },{
        "product_id" : "456",
        "product_data" : {
            "image_id" : "1234",
            "text" : "foo",
            "link" : "bar",
            "image_url" : "baz"
        }
    }
]}

and the following jQuery

function getData(data) {
    this.productID = data.product_id;
    this.productData = data.product_data;
    this.imageID = data.product_data.image_id;
    this.text = data.product_data.text;
    this.link = data.product_data.link;
    this.imageUrl = data.product_data.image_url;
}

$.getJSON("json/products.json").done(function (data) {

    var allProducts = data.map(function (item) {
        return new getData(item);
    });
});

yet I'm getting an error that map.data is undefined as a function? Looking at it I don't know what's not working as I've copied this to a new project from previously used code. The only thing different is the JSON source. The previous one didn't have the {"products": part before the [] brackets. Is this what's throwing me off?

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  • 74
    Please don't bash your head anymore - we will get through this... – Mark C. Jun 12 '15 at 12:51
  • map.data or data.map? – depperm Jun 12 '15 at 12:54
192

Objects, {} in JavaScript does not have the method .map(). It's only for Arrays, [].

So in order for your code to work change data.map() to data.products.map() since products is an array which you can iterate upon.

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  • iwow it works , thanks a lot i had same issues there was a row before the data – Anoop P S May 6 at 14:35
64

The right way to iterate over objects is

Object.keys(someObject).map(function(item)...
Object.keys(someObject).forEach(function(item)...;

// ES way
Object.keys(data).map(item => {...});
Object.keys(data).forEach(item => {...});

Read here for details

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  • 10
    sometimes you might be looking for values not keys > Object.values(someObject).map(function(item)... //instead of keys – Ram Nov 20 '17 at 2:34
7

The SIMPLEST answer is to put "data" into a pair of square brackets (i.e. [data]):

     $.getJSON("json/products.json").done(function (data) {

         var allProducts = [data].map(function (item) {
             return new getData(item);
         });

     });

Here, [data] is an array, and the ".map" method can be used on it. It works for me! enter image description here

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  • Doesn't this simply create a new array with only one data element - your original object? Why do you need to map that? var data = {foo: 'bar'}; [data].map(function (item) { console.log(item); }); – EpicVoyage Oct 12 at 16:35
  • Yes, it DOES simply create a new array with only one data element. There is nothing wrong with that. It's not that I who need to map. It's the specific project that needs to map. If it needs to map but your data is not an array, there'll be an error. Converting it to an array just changes its format, not its values, and that's just what the project needs. – William Hou Oct 13 at 20:07
  • I might be missing something. It seems to me that your example would do the same thing without the map: $.getJSON("json/products.json").done(function (data) { var allProducts = new getData(data); }); – EpicVoyage Oct 14 at 14:41
  • My original answer is very, very, very simple -- it's just to convert the data into an array, so that NOT ONLY will the "data.map is not a function" error DISAPPEAR, but more importantly, the .map method will also WORK to produce correct results. Nothing else. – William Hou Oct 14 at 15:40
  • "EpicVoyage" -- the problem is here is that you don't understand the question. The original question is "data.map is not a function", and please go to the top of the page and take a look at it. It's not MY project. I repeat: IT IS NOT MY PROJECT. It's how to fix the "data.map is not a function" ERROR. – William Hou Oct 15 at 14:58
4

data is not an array, it is an object with an array of products so iterate over data.products

var allProducts = data.products.map(function (item) {
    return new getData(item);
});
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1

If you want to map an object you can use Lodash. Just make sure it's installed via NPM or Yarn and import it.

With Lodash:

Lodash provides a function _.mapValues to map the values and preserve the keys.

_.mapValues({ one: 1, two: 2, three: 3 }, function (v) { return v * 3; });

// => { one: 3, two: 6, three: 9 }
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0

You can always do the following:

const SomeCall = request.get(res => { 

const Store = []; 
Store.push(res.data);

Store.forEach(item => { DoSomethingNeat 
});
}); 
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0
this.$http.get('https://pokeapi.co/api/v2/pokemon')
.then(response => {
   if(response.status === 200)
   {
      this.usuarios = response.data.results.map(usuario => {
      return { name: usuario.name, url: usuario.url, captched: false } })
          }
    })
.catch( error => { console.log("Error al Cargar los Datos: " + error ) } )
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  • Hello Fernando, and welcome to Stack Overflow! This is an English-only site. I have edited out the part of your answer that was not posted in English. Feel free to translate it and re-add it. – Pika the Wizard of the Whales Mar 7 '19 at 1:27
0

data needs to be Json object, to do so please make sure the follow:

data = $.parseJSON(data);

Now you can do something like:

data.map(function (...) {
            ...
        });

I hope this help some one

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-1

There is an error on $.map() invocation, try this:

    function getData(data) {
        this.productID = data.product_id;
        this.productData = data.product_data;
        this.imageID = data.product_data.image_id;
        this.text = data.product_data.text;
        this.link = data.product_data.link;
        this.imageUrl = data.product_data.image_url;
    }

    $.getJSON("json.json?sdfsdfg").done(function (data) {

        var allPosts = $.map(data,function (item) {

            for (var i = 0; i < item.length; i++) {
                new getData(item[i]);
            };

        });

    }); 

The error in your code was that you made return in your AJAX call, so it executed only one time.

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