0

I currently try to safe data of different users in an array using the push() function.
Here is my current code:

function data()
{

    var information = [];
    var imgs = '';
    var percentage;

    var imgs = 'ABC';
    var percentage = '1';

    information.push({ imgs: imgs, chance: percentage });

    var imgs = 'DEF';
    var percentage = '2';

    information.push({ imgs: imgs, chance: percentage });

    console.log(information);

    information.forEach(function(deposit)
    {
        var deposit=deposit.imgs;
        var chance=deposit.chance;

        console.log(deposit);
        console.log(chance);
    });


}

This is the output of console.log(information):

[ { imgs: 'ABC', chance: '1' }, { imgs: 'DEF', chance: '2' } ]

And this is the output of information.forEach(function(deposit):

ABC
undefined
DEF
undefined

At that's my problem. As you can see, it outputs the chance as undefined however it should output 1 and 2. Anyone know why it do that and know how I can fix it?

6

On the next line, you reassign your deposit object:

var deposit=deposit.imgs;

Just change this variable name. Or assign chance before deposit.

  • 1
    Oh yeah, thanks a lot, it fixed it! :) – Lukeyyy Aug 19 '17 at 18:17
  • I'm glad it helped! You may consider accepting the answer if it is the one you used :) – Ulysse BN Aug 21 '17 at 14:17
2

You are assigning a value to the deposit variable which is also the parameter in your forEach function.

Therefore change deposit variable in var deposit = deposit.imgs; to any other random variable and also update the change in the log statement. console.log(**deposit**);

Hope thats clear and I hope its solves your problem.

0

It is undefined because you declared var deposit=deposit.imgs; deposit here is another variable declaration. Then the next line var chance=deposit.chance; this deposit is got from the var deposit above so it will result undefined. Just change var deposit=deposit.imgs; to another variable like var images = deposit.imgs;

this will work.

0

There is a bug inside the forEach of information. Basically your current code overwrite the currentValue of the forEach (to a string).

You could solve this issue by chaning the name of variable inside your forEach as shown below.

function data() {
  var information = [];
  var imgs = '';
  var percentage;

  var imgs = 'ABC';
  var percentage = '1';

  information.push({
    imgs: imgs,
    chance: percentage
  });

  var imgs = 'DEF';
  var percentage = '2';

  information.push({
    imgs: imgs,
    chance: percentage
  });

  console.log(information);

  information.forEach(function(deposit) {
    // change name of variables
    var depositImgs = deposit.imgs;
    var depositChange = deposit.chance;

    console.log(depositImgs);
    console.log(depositChange);


  });
}
data();

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