12

I am trying to perform an ajax call inside a form (a Drupal node edit form) , but it seems when performing the call, it submits the form for some reason. Here is a sample code:

jQuery.ajax({
     type: "POST",
     url: "my_custom/url",
     dataType: "html",
     data: {"text": jQuery("#edit-body").html()
      },
     success: function(result){
        console.log(result);
     }
    });  

I can replicate this just by executing it in the console, but I attach this to a button click function inside the form. Any tips on preventing the form from submitting, on a POST ajax call?

Here is the full code as requested

        jQuery("#edit-body").before('<div id="proofread_bot-button-holder"><button type="button"  id="proofread_bot-submit" onclick="return false;">Check with Proofread Bot</button></div>'); 
    jQuery("#proofread_bot-submit").click(function(event){
      event.preventDefault();
      jQuery("#proofread_bot-button-holder").append("<img id=\"proofread_bot_throbber\" src=\"sites/all/modules/proofread_bot/images/throbber.gif\" />");

      jQuery.ajax({
         type: "POST",
         url: "proofread_bot/check",
         dataType: "html",
         data: {"text": jQuery("#edit-' . variable_get('proofread_bot_field') . '").html()
          },
         success: function(proofread_result){
            jQuery("#proofread_bot-submit").after(proofread_result);
            jQuery("#proofread_bot_throbber").remove(); 
         }
        });    
      });
1
  • upload the code for the button
    – Royi Namir
    Commented Nov 14, 2011 at 13:01

3 Answers 3

19

You need to override form's onsubmit event to prevent submitting:

$("formSelector").bind('submit', function (e) {
    var isValid = someYourFunctionToCheckIfFormIsValid();
    if (isValid) {
        jQuery.ajax({
            type: "POST",
            url: "my_custom/url",
            dataType: "html",
            data: { "text": jQuery("#edit-body").html()
            },
            success: function (result) {
                console.log(result);
            }
        });
    }
    e.preventDefault();
    return false;
});

By calling

e.preventDefault();
return false;

You prevent synchronous postback from occurring.

UPDATE: If you don't want to override form submit, maybe you could place your button outside of form tag (you can adjust position with css if necessary)?

2
  • Thanks Goran, this looks promising. In the validation function, how could I check if the POST, or the click is coming from my button instead of the submit button? I think that would solve it.
    – giorgio79
    Commented Nov 14, 2011 at 13:09
  • As e.sourceElement contains collection of all elements through which event propagated, you can do that with $("input[type=submit]", e.sourceElement), providing that your button is input of type submit (adjust your selector if necessary) Commented Nov 14, 2011 at 13:14
3

If you are using a input type="submit" button, then you need to do a return false; at the end of the function to prevent it from submitting.

Another solution is to e.preventDefault() on the button click

$(".button").click(function(e){
    e.preventDefault();
    return false;
});
1

you can change submit button type to just a button type and add "onclick" event to that button. input type="button" value="savebutton" onclick="return doThisOnClick();"

function doThisOnClick(){
jQuery.ajax({
        type: "POST",
        url: "my_custom/url",
        dataType: "html",
        data: { "text": jQuery("#edit-body").html()
        },
        success: function (result) {
            console.log(result);
        }
    });

}

I think this is most straightforward.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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