0

I am using slick carousel with some custom code to provide pagination. It's working great but now I want to have multiple carousels per page and although I've found solutions, I'm having trouble getting them to work with the customisations in my code.

There is an example [here] (Multiple Slick Sliders Issue) that iterates over all elements with a particular class and assigns an ID, but I just can't get it working with the custom pagination code I have.

$('.carousel').on('init afterChange', function(event, slick, currentSlide){
    let total = $('.carousel .item').length;
    var first = $('.slick-active:first > div:first').get(0);
    var last = $('.slick-active:last > div:last').get(0);
  if($(last).html() == '')
    last = $('.slick-active:last > div:not(:empty)').get(0);
    let start,end;
    $('.slick-slide > div').each(function(i,v){
        if(first === $(v).get(0)) {
            start = i+1;
        } 
        if(last === $(v).get(0)) {
            end = i+1;
        }
    });
  $('.results').html(`Showing ${start} to ${end} of ${total} results`)
})
$('.carousel').slick({
  rows: 2,
  slidesToShow: 3,
  slidesToScroll: 3,
  autoplay: false,
  arrows: true,
  infinite: false,
  draggable: false,
  prevArrow: $('.prev'),
  nextArrow: $('.next')
})
.item {
  background: silver;
  color: black;
  text-align: center;
  font-size: 30px;
  display: inline;
  border: 5px solid white;
}
.nav {
  width: 100%;
}
.nav p{
  width: 50%;
  float: left;
  display: block;
  text-align: center;
}
.results {
  text-align: center;
  width: 100%;
  padding-top: 10px
}
<script src="https://cdnjs.cloudflare.com/ajax/libs/jquery/3.3.1/jquery.min.js"></script>
<link href="https://cdnjs.cloudflare.com/ajax/libs/slick-carousel/1.9.0/slick-theme.min.css" rel="stylesheet"/>
<link href="https://cdnjs.cloudflare.com/ajax/libs/slick-carousel/1.9.0/slick.css" rel="stylesheet"/>
<script src="https://cdnjs.cloudflare.com/ajax/libs/slick-carousel/1.9.0/slick.js"></script>


<div class="carousel">
  <div class="item">1</div>
  <div class="item">2</div>
  <div class="item">3</div>
  <div class="item">4</div>
  <div class="item">5</div>
  <div class="item">6</div>
  <div class="item">7</div>
  <div class="item">8</div>
  <div class="item">9</div>
  <div class="item">10</div>
  <div class="item">11</div>
  <div class="item">12</div>
  <div class="item">13</div>
  <div class="item">14</div>
  <div class="item">15</div>
  <div class="item">16</div>
  <div class="item">17</div>
  <div class="item">18</div>
</div>
<div class="nav">
  <p class="prev">prev</p>
  <p class="next">next</p>
</div>
<div class="results">
  Showing 1 to 9 of [total] results
</div>
1

You could create a wrapper container to isolate instances

<div class="slider">
  <div class="carousel">
    <div class="item">1</div>
    <div class="item">2</div>

  </div>
  <div class="nav">
    <p class="prev">prev</p>
    <p class="next">next</p>
  </div>
  <div class="results">
    Showing 1 to 9 of [total] results
  </div>
</div>

Then to initialize use an each loop for isolation

$('.slider').each(function() {
  var $slider = $(this),
      // arrows within this instance 
      $nArrow = $slider.find('.next'),
      $pArrow = $slider.find('.prev');

  // initialize this carousel instance with appropriate arrows    
  $slider.find('.carousel').slick({
    rows: 2,
    slidesToShow: 3,
    slidesToScroll: 3,
    autoplay: false,
    arrows: true,
    infinite: false,
    draggable: false,
    prevArrow: $pArrow,
    nextArrow:  $nArrow
  });

})

For the events , look up to the container class and use find() for the elements within that instance

$('.carousel').on('init afterChange', function(event, slick, currentSlide){
    var $slider = $(this).parent();
    // examples finding elements within this instance
    let total = $slider.find('.carousel .item').length;
    var first = $slider.find('.slick-active:first > div:first').get(0);
    var last = $slider.find('.slick-active:last > div:last').get(0);

    // use find for other elements also
    ......

})
|improve this answer|||||

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.