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I have this form to change profile pic of user. I am trying to change the pic on clicking current pic and select from user filesystem

Form:

<form id="changeProfilePicForm" action="<?=base_url()?>user/change_profile_pic" method="post" accept-charset="utf-8" enctype="multipart/form-data">
      <div data-content="Click To update" class="image" id="profile-image">
        <input id="profile-image-upload" class="hidden" name="image" type="file" accept="image/x-png, image/gif, image/jpeg">
        <?if(strlen($user['image'])){?>
          <img src="<?=base_url().'uploads/profile/'.$user['image']?>" class="img-circle" alt="user profile pic" height="125px" width="125px">
        <?}else{?>
          <img src="<?=base_url()?>includes/img/avtar.png" class="img-circle" alt="user profile pic" height="125px" width="125px">
        <?}?>
        <input type="submit" class="hidden">
      </div>
    </form>

Javascript:

$("#changeProfilePicForm").on('submit',(function(e){
  e.preventDefault();
  var $form = $( this );
  $.ajax({
    url: $form.attr( 'action' ),
    type: "POST",
    data:  new FormData($form),
    contentType: false,
    cache: false,
    processData:false,
    success: function(data){
      console.log(data);
    },
    error: function(data){
      console.log(data);
    }           
  });
}));

document.getElementById('profile-image').onclick = function() {
  document.getElementById('profile-image-upload').click();
};

document.getElementById('profile-image-upload').onchange = function(){
  document.getElementById('changeProfilePicForm').submit();
};

PHP controller:

public function change_profile_pic()
{
    $user_id = $this->session->user_id;
    $image = $this->uploadimage();
    if(strlen($image)){
        $user_data['image'] = $image;
        $updated = $this->user_model->update_user($user_id, $user_data);
        $data['response'] = 1;
        $data['image'] = $image;
        // redirect(base_url()."user");
        echo json_encode($data);
    }else{
        $data['response'] = 0;
        $data['message'] = "error";
        echo json_encode($data);
    }
    //redirect(base_url()."user");
}

Problem I am facing is, the form is not submitted via ajax. It is directory submitted as simple form. I can't figure out whats wrong with the code since image is being upload on simple form submission. Is there any problem with event binding or i am missing something here ?

2
  • This could be due to you having the ajax run inside of $("#changeProfilePicForm").on('submit', The on change event for profile-image-upload is triggering a submit with no ajax involved.
    – NewToJS
    Commented Oct 23, 2016 at 7:33
  • add return false; after $.ajax(....); to ignore form submit Commented Oct 23, 2016 at 8:23

2 Answers 2

1

When you call

document.getElementById('changeProfilePicForm').submit();

the submit event is not fired. Try

$('#changeProfilePicForm').trigger('submit');

Edit. Get rid of the form in html:

<input type="file" id="image">

js:

function handleUpload(event) {
  var file = this.files[0];
  if (!file) return;
  var formData = new FormData();
  formData.append('file', file);
  return $.ajax({
    type: 'POST',
    url: '/images',
    data: formData,
    processData: false,
    contentType: false,
    //...
  });
}

$('#image').on('change', handleUpload);
2
  • that did work but now image is not being posted via ajax. Is there any particular reason that why submit event was not fired ? Commented Oct 23, 2016 at 7:57
  • The particular reason is that calling an action on a DOM element via JS doesn't trigger events as it would've done naturally. I.e. if you're calling $('#btn').click() or $('#form').submit() it won't trigger event handlers listening for click or submit events. I would suggest avoiding this .on('submit)` logic by moving $.ajax to a separate function and calling that function on file input change. Commented Oct 23, 2016 at 8:13
0

I believe FormData expects a native form element $form[0], not jQuery form element $form.

$("#changeProfilePicForm").submit(function (e) {
    e.preventDefault();
    var $form = $(this);
    $.ajax({
        url: $form.attr('action'),
        type: "POST",
        data:  new FormData($form[0]),
        contentType: false,
        cache: false,
        processData: false,
        success: function (data) {
            console.log(data);
        },
        error: function(data){
            console.log(data);
        }           
    });
}));

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