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Can you serialize multiple forms into one so that only one post or ajax request is made? I have searched around and it is all for submiting each form separently via post/ajax.

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5 Answers 5

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If you run $('form').serialize() on a page with multiple forms, it will correctly serialize all the forms into one string.

To include only certain forms, use $('#form1, #form2').serialize()

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    @472084 I tried that $('#form1, #form2').serialize() approach, but didn't get it to work, only last form would get posted. I had 1big form that I had to break up into 2, where the second only appears after the 1st validates (that's why I had to break it into 2). So the first submit wouldn't submit data, but only validate, while the last would serialize both forms and submit all the data. I eventually had to serialize both forms separately and concatenate them with an & to make it work. Any documentation you know of that could give me a direct read on why that would fail? I'll keep googling Commented Feb 19, 2014 at 0:06
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When you use the jQuery serialize() function, it simply turns your form into a string in the format a=1&b=2&c=3. So you can certainly apply this function to two forms and concatenate the result, with an & between them, and use the result in your ajax call. You'd want some checks to make sure neither string is empty when you do the concatenation.

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I like the answer from Jleagle above.

if you are more specific about the forms , use

$('#detailsform,#levelForm').serialize();

the above line will return a string value. like customId=08071992&cort=01&empId=7777

you can avoid unwanted fields by adding the attribute disabled="disabled" to the input fields OR in other words "disabled" fields won't get serialized.

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    Thank you for pointing out that input[disabled] are not included in $().serialize().
    – Gideon
    Commented Jul 1, 2016 at 2:49
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For me the solution was:

$('#firstForm').append($('#secondForm').children());
$('#firstForm').submit();

the result in my case - single GET query with both forms in one query string.

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function mergeAndSerialize(f1, f2) {
    let d1 = $(f1).serializeArray(), d2 = $(f2).serializeArray();
    d2.forEach(f => !d1.some(o => o.name === f.name) && d1.push(f));
    return $.param(d1);
}
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    Your answer could be improved by adding more information on what the code does and how it helps the OP.
    – Tyler2P
    Commented Mar 26, 2023 at 18:02

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