1

So I have this HTML here generated by Wordpress. I want to select the DIVs seperately using JS. Is this possible? Can I maybe select them by the order on which JS finds them in my HTML?

I tried if something like this would be possible (By adding an index number) but I believe that is used only for the LI element. But you get the idea. The end result is to add a different classname to each div object using .className

var koffie = document.getElementsByClassName("g-gridstatistic-item-text2")[0];
var brain = document.getElementsByClassName("g-gridstatistic-item-text2")[1];
var tevred = document.getElementsByClassName("g-gridstatistic-item-text2")[2];

console.log(koffie);
console.log(brain);
console.log(tevred);
<div class="g-gridstatistic-wrapper g-gridstatistic-3cols">
    <div class="g-gridstatistic-item">
    <div class="g-gridstatistic-item-wrapper">
    <div class="g-gridstatistic-item-text1 odometer" data-odometer-value="4"></div>
    <div class="g-gridstatistic-item-text2">Kopjes koffie per dag</div>
    </div>
    </div>
    <div class="g-gridstatistic-item">
    <div class="g-gridstatistic-item-wrapper">
    <div class="g-gridstatistic-item-text1 odometer" data-odometer-value="14"></div>
    <div class="g-gridstatistic-item-text2">Brainstormsessies per week</div>
    </div>
    </div>
    <div class="g-gridstatistic-item">
    <div class="g-gridstatistic-item-wrapper">
    <div class="g-gridstatistic-item-text1 odometer" data-odometer-value="12"></div>
    <div class="g-gridstatistic-item-text2">Tevreden klanten</div>
    </div>

  • 1
    You selected all the elements you wanted, am I wrong? What are you trying to do? – kalsowerus Apr 20 '17 at 14:09
  • You are correct, but I want to select them seperately. – Melvin Apr 20 '17 at 14:26
  • Be more precise please – kalsowerus Apr 20 '17 at 14:27
  • When using document.getElementsByClassName() I can select HTML DOM Objects by their classname. However I have duplicate classnames in my HTML file. I want to be able to select them on the className and the order on which they appear on my page, seperately. Next I want to edit their className value seperate. They all need an added class which differentiates per div. So I have to select them seperate on their classname while they all have the same classname. – Melvin Apr 20 '17 at 14:32
  • Can you update your question and also include, what you want the end-result to look like? Maybe a loop can solve your problem. – kalsowerus Apr 20 '17 at 14:36
1

Your JavaScript code is looking for DOM elements before it checks whether the DOM has even loaded. Try wrapping it in an event listener, like so:

JS

document.addEventListener('DOMContentLoaded', function () {

var koffie = document.getElementsByClassName("g-gridstatistic-item-text2")[0];
var brain = document.getElementsByClassName("g-gridstatistic-item-text2")[1];
var tevred = document.getElementsByClassName("g-gridstatistic-item-text2")[2];

//console.log(koffie);
//console.log(brain);
//console.log(tevred);

/*  to evidence that targeting works:  */
brain.classList.add('addedClass'); 

});

CSS

.addedClass {
  font-size:22px;
  color:red;
}

Full demo here: https://jsbin.com/saxizeyabo/edit?html,css,js,console,output

  • Worked like a charm! – Melvin Apr 20 '17 at 21:02
0

simply like this

var yourVariableName = document.getElementsByClassName("g-gridstatistic-item-text2");

console.log(youVariableName[0]);
console.log(youVariableName[1]);

and so on like an array

  • @Melvin did this work for you ?? – ABD ELLATIF LAKEHAL Apr 20 '17 at 14:23
  • No, this did not work for me. I am trying to place them in seperate variables so I can add information to the object className. Running this simply gives me undefined in my console. – Melvin Apr 20 '17 at 14:26
0
document.querySelectorAll('.g-gridstatistic-item-text2').item(0);

https://developer.mozilla.org/de/docs/Web/API/Document/querySelectorAll

This way, you can just use CSS-Selectors

  • Based on your suggestion I came up with this var koffie = document.querySelectorAll('.g-gridstatistic-item-text2'); koffie[0].className += "fa fa-coffee fa-rw"; koffie[1].className += "fa fa-flash fa-rw"; koffie[2].className += "fa fa-handshake-o fa-rw"; It gives me the error TypeError: undefined is not an object (evaluating 'koffie[0].className') – Melvin Apr 20 '17 at 14:43
  • Yes, because its not an array, its an object, and u use the method item to get it as shown... – devsteff Apr 21 '17 at 7:03
0

The below code should work.

var classes = document.getElementsByClassName('g-gridstatistic-item-text2');
for(var i=0; i<=classes.length; i++) {
    var appendClass = 'your_class_name'+i;
    classes[i].classList.add(appendClass);
}

Your Answer

By clicking "Post Your Answer", you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.