2

I have the following scenario:

<body class="theme-blue nav-black">
  <a href="#" data-class="theme-blue">Blue theme </a>
  <a href="#" data-class="nav-black">Dark Nav</a>
  <a href="#" data-class="nav-white">Light Nav</a>
</body>

Trying to write a script to match the classes from and for each matching 'data-class' to add a class "active" to the element;

Whats the best way to go about doing this?

So the result should look like:

<body class="theme-blue nav-black">
  <a href="#" data-class="theme-blue" class="active">Blue theme </a>
  <a href="#" data-class="nav-black" class="active">Dark Nav</a>
  <a href="#" data-class="nav-white">Light Nav</a>
</body>
2

Using jQuery

Get the classes from the body, split, map to an array of data attribute strings, and join. Add the class active to all selected elements:

var classNames = $('body')
  .attr("class")
  .split(' ')
  .map(function(c) {
    return '[data-class="' +  c + '"]';
  })
  .join(',');
  
$(classNames).addClass('active');

console.log(classNames);
.active {
  color: red;
}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<body class="theme-blue nav-black">
  <a href="#" data-class="theme-blue">Blue theme </a>
  <a href="#" data-class="nav-black">Dark Nav</a>
  <a href="#" data-class="nav-white">Light Nav</a>
</body>

Without jQuery:

Get the classList from the body, and convert it to a string query by casting the classList to an array using Array#slice, mapping the classes to data attributes strings, and joining with a comma. Then use Document#querySelectorAll to get the nodeList. Iterate the nodeList with NodeList#forEach, and add the active class to each node.

var classNames = [].slice.call(document.querySelector('body').classList, 0).map(function(c) {
  return '[data-class="' +  c + '"]';
}).join(',');

document.querySelectorAll(classNames).forEach(function(node) {
  node.classList.add('active');
});
.active {
  color: red;
}
<body class="theme-blue nav-black">
  <a href="#" data-class="theme-blue">Blue theme </a>
  <a href="#" data-class="nav-black">Dark Nav</a>
  <a href="#" data-class="nav-white">Light Nav</a>
</body>

  • Thanks Ori, I used your one as it was more clear to use. BTW if I wanted to extend it, and do a check to remove the "active" class for those that don't match the data-class, where do I add the if statement? – webkitfanz Sep 23 '17 at 21:04
  • You can do the old $('.active').removeClass('active') before setting the '.active' class with my code. Or use @NenadVracar's solution, which contains an if clause, by adding an else clause to it. – Ori Drori Sep 23 '17 at 22:07
2

You can loop each a element and then use hasClass() to check if body has the same class and if it does use addClass()

$('a').each(function() {
  if ($('body').hasClass($(this).data('class'))) {
    $(this).addClass('active')
  }
})
.active {
  background: red;
}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>

<body class="theme-blue nav-black">
  <a href="#" data-class="theme-blue">Blue theme </a>
  <a href="#" data-class="nav-black">Dark Nav</a>
  <a href="#" data-class="nav-white">Light Nav</a>
</body>

2

var bodyClass=$("div").attr("class").split(" ");
$.map( bodyClass, function( val, i ) {
    $("a[data-class='"+val+"']").addClass('active');
});
.active{
 color:red;
}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script>
<div class="theme-blue nav-black">
  <a href="#" data-class="theme-blue" >Blue theme </a>
  <a href="#" data-class="nav-black" >Dark Nav</a>
  <a href="#" data-class="nav-white">Light Nav</a>  
</div>

  • Wouldn't be easier to filter through an array list instead of doing $.each – webkitfanz Sep 23 '17 at 20:17
  • yes . i changed code with $.map . it is faster – Farhad Bagherlo Sep 23 '17 at 20:26

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