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<form method="post" action="load_statements.php?action=load" id="loadForm"
                            enctype="multipart/form-data">

that is my form, which looks fine to me. in that form, i put this button:

<input type="button" name="submit" id="submit" value="Submit" onclick="confirmSubmit()" class="smallGreenButton" />

here is the function it calls:

function confirmSubmit() {
    // get the number of statements that are matched
    $.post(
        "load_statements.php?action=checkForReplace",
        {
            statementType : $("#statementType").val(),
            year : $("#year").val()
        },
        function(data) {
            if(data['alreadyExists']) {
                if( confirm("Statements already exist for " + $("#statementType").html() + " " + $("#year").val() +
                    ". Are you sure you want to load more statements with these settings? (Note: All duplicate files will be replaced)"
                )) {
                    $("#loadForm").submit();
                }
            } else {
                $("#loadForm").submit();
            }
        }, "json"
    );
}

and as you can see, it calls $("#loadForm").submit();, but the form is not submitting (ie. the page is not refreshing). why is that?

thanks!

share|improve this question
    
Do you hit a breakpoint if you put it on the submit call? –  mackenir Jul 22 '10 at 10:00
    
yeah, it runs, but doesn't actually submit the form for some reason. –  Garrett Jul 22 '10 at 12:36

6 Answers 6

up vote 7 down vote accepted

http://api.jquery.com/submit/

The jQuery submit() event adds an event listener to happen when you submit the form. So your code is binding essentially nothing to the submit event. If you want that form to be submitted, you use old-school JavaScript (document.formName.submit()).

edit:

I'm leaving my original answer intact to point out where I was off (as at least two people have already downvoted me for). What I MEANT to say, is that if you have a function like this, it's confusing why you would post the values in an ajax portion and then use jQuery to submit the form. In this case, I would bind the event to the click of the button, and then return true if you want it to return, otherwise, return false, like so

$('#submit').click( function() {
  // ajax logic to test for what you want
  if (ajaxtrue) { return confirm(whatever); } else { return true;}
});

If this function returns true, then it counts as successful click of the submit button and the normal browser behavior happens. Then you've also separated the logic from the markup in the form of an event handler.

Make more sense?

share|improve this answer
2  
Thats if you pass a function. If you just call submit(), the default submit action on the form will be fired, so the form will be submitted. –  Yisroel Jul 21 '10 at 21:23
    
... supposedly... but for some reason, no =( –  Garrett Jul 22 '10 at 12:41
1  
I've updated the answer to explain what I meant. I was not being very clear, that was my bad. –  NateDSaint Jul 22 '10 at 18:27
    
i need to get ajax data because depending on the form, the confirmation will be different (if you want specifics, i am checking to see if the file a user is uploading is already in the database, and if so, notifying that the old file will be overwritten). although it kills me to say it, your answer is better than mine, as it is more semantic and does not require an invisible submit button. i'm marking this as the correct answer, but i'm still confused as to why the submit() function didn't work =( –  Garrett Jul 23 '10 at 17:49
2  
To be honest I think your problem is that the event that's firing it is the click of the submit button, and you're telling jQuery to perform a submit() within that function. All you really have to do is return true, and the onclick goes through. –  NateDSaint Jul 23 '10 at 20:13

Change button's "submit" name to something else. That causes the problem. See dennisjq's answer at: http://forum.jquery.com/topic/submiting-a-form-programmatically-not-working

See the jQuery submit() documentation:

Forms and their child elements should not use input names or ids that conflict with properties of a form, such as submit, length, or method. Name conflicts can cause confusing failures. For a complete list of rules and to check your markup for these problems, see DOMLint.

share|improve this answer
    
This seems to be the right answer, not the others. At least it was the exact problem in my case and appears to be the problem in the question. The other answers seem wrong. –  arunkumar Aug 10 '13 at 9:01
    
I tested the same case and found that changing of id or name attributes still produce the same error. –  Alex G.P. Oct 25 '13 at 7:36
6  
This was the answer for me. Took forever to find out –  Hard worker Jan 13 at 12:05
    
at first, i thought that it might be the form's id or name that was causing the issue. turns out it was another input element that had an id/name that was submit. Changing that fixed this issue. –  R. L. Aug 26 at 15:06

I use $("form")[0].submit()

here $("form") returns an array of DOM elements so by accessing the relevant index we can get the DOM object for the form element and execute the submit() function within that DOM element.

Draw back is if you have several form elements within one html page you have to have an idea about correct order of "form"s

share|improve this answer
    
Fixed the problem for me, +1 –  Angad Mar 9 '13 at 13:07
    
@garrett $("#loadForm")[0].submit(); works for me. It seems that submit() does not work on an array of elements returned by $("#loadForm") selector. –  hongster Dec 2 '13 at 8:43

i added an invisible submit button to the form, and instead of calling the submit() function, i call the click() function on the submit button =)

the button: <div style="display:none"><input id="alternateSubmit" type="submit" /></div>

the crazy way to get around the form submission: $("#alternateSubmit").click();

share|improve this answer
    
I updated my answer to include a new possible solution, which I successfully tested, I can provide the code for that if you'd like it. –  NateDSaint Jul 23 '10 at 16:39

Looks like you have the submit happening in a callback that only runs after an ajax post in your onclick handler.

In other words, when you click submit, the browser has to first go out and hit the checkForReplace action.

share|improve this answer
    
yes, which it does, and then hits $("#loadForm").submit(); which does nothing. –  Garrett Jul 22 '10 at 12:42

its Ajax call, why you need to submit your form while you already process it using ajax. You can navigate away from page using

window.location.href = "/somewhere/else";
share|improve this answer
    
i need to process part of it before in order to give the user the correct confirm() statement. –  Garrett Jul 22 '10 at 12:50

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