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Is it standard behaviour for browsers to only send the checkbox input value data if it is checked upon form submission?

And if no value data is supplied, is the default value always "on"?

Assuming the above is correct, is this consistent behaviour across all browsers?

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It is input type="checkbox" /> ; input type=“checkbox” /> will not work. – Nicolas Barbulesco May 28 '15 at 13:21
up vote 77 down vote accepted

Yes, standard behaviour is the value is only sent if the checkbox is checked. This typically means you need to have a way of remembering what checkboxes you are expecting on the server side since not all the data comes back from the form.

The default value is always "on", this should be consistent across browsers.

This is covered in the W3C HTML 4 recommendation:

Checkboxes (and radio buttons) are on/off switches that may be toggled by the user. A switch is "on" when the control element's checked attribute is set. When a form is submitted, only "on" checkbox controls can become successful.

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In HTML, each <input /> element is associated with a single name and value pair. This pair is sent in the subsequent request (in this case, a POST request body) only if the <input /> is "successful". A checkbox that is not checked will therefore not have its pair sent to the server.

HTML forms do not send names without values.

Frameworks like ASP.NET MVC work around this by (surreptitiously) pairing every single <input type="checkbox" /> with an <input type="hidden" name="sameAsCheckbox" value="false" /> that will always be sent in the POST body so the framework can detect the prescence of a field and know for certain that the checkbox was not checked.

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From HTML 4 spec, which should be consistent across almost all browsers:

http://www.w3.org/TR/html401/interact/forms.html#checkbox

Checkboxes (and radio buttons) are on/off switches that may be toggled by the user. A switch is "on" when the control element's checked attribute is set. When a form is submitted, only "on" checkbox controls can become successful.

Successful is defined as follows:

A successful control is "valid" for submission. Every successful control has its control name paired with its current value as part of the submitted form data set. A successful control must be defined within a FORM element and must have a control name.

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If checkbox isn't checked then it doesn't contribute to the data sent on form submission.

HTML5 section 4.10.22.4 Constructing the form data set describes the way form data is constructed:

If any of the following conditions are met, then skip these substeps for this element: [...]

The field element is an input element whose type attribute is in the Checkbox state and whose checkedness is false.

Thus unchecked checkboxes are skipped during form data construction.

Similar behavior is required under HTML4. It's reasonable to expect this behavior from all compliant browsers.

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Checkboxes are posting value 'on' if and only if the checkbox is checked. Insted of catching checkbox value you can use hidden inputs

JS:

var chk = $('input[type="checkbox"]');
    chk.each(function(){
        var v = $(this).attr('checked') == 'checked'?1:0;
        $(this).after('<input type="hidden" name="'+$(this).attr('rel')+'" value="'+v+'" />');
    });

chk.change(function(){ 
        var v = $(this).is(':checked')?1:0;
        $(this).next('input[type="hidden"]').val(v);
    });

HTML:

<label>Active</label><input rel="active" type="checkbox" />
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Is it standard behaviour for browsers to only send the checkbox input value data if it is checked upon form submission?

Yes, because otherwise there'd be no solid way of determining if the checkbox was actually checked or not (if it changed the value, the case may exist when your desired value if it were checked would be the same as the one that it was swapped to).

And if no value data is supplied, is the default value always "on"?

Other answers confirm that "on" is the default. However, if you are not interested in the value, just use:

if (isset($_POST['the_checkbox'])){
    // name="the_checkbox" is checked
}
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Just like ASP.NET variant, except put the hidden input with the same name before the actual checkbox (of the same name). Only last values will be sent. This way if a box is checked then its name and value "on" is sent, whereas if it's unchecked then the name of the corresponding hidden input and whatever value you might like to give it will be sent. In the end you will get the $_POST array to read, with all checked and unchecked elements in it, "on" and "false" values, no duplicate keys. Easy to process in PHP.

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I resolved the problem with this code:

HTML Form

<input type="checkbox" id="is-business" name="is-business" value="off" onclick="changeValueCheckbox(this)" >
<label for="is-business">Soy empresa</label>

and the javascript function by change the checkbox value form:

//change value of checkbox element
function changeValueCheckbox(element){
   if(element.checked){
    element.value='on';
  }else{
    element.value='off';
  }
}

and the server checked if the data post is "on" or "off". I used playframework java

        final Map<String, String[]> data = request().body().asFormUrlEncoded();

        if (data.get("is-business")[0].equals('on')) {
            login.setType(new MasterValue(Login.BUSINESS_TYPE));
        } else {
            login.setType(new MasterValue(Login.USER_TYPE));
        }
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