Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

To keep this simple I have only included one of the forms I am validating. Everything validates right, but I can't figure out why a token does not get generated. The form never submits. I had the form working right without validating not sure what the problem is.

var oeValidate = {
    'name' : function() {
        var ele = $('#name');

        if(ele.val().length < 6) {
            oeValidate.errors = true;
            ele.removeClass('correct').addClass('error');
        } else {
            ele.removeClass('error').addClass('correct');
        }
    },

    'sendIt' : function() {
        if(!oeValidate.errors) {
            $('#payment-form').submit(function(event){
                // disable the submit button to prevent repeated clicks
                $('#stripe-submit').attr("disabled", "disabled");

                // send the card details to Stripe
                Stripe.createToken({
                    name: $('#name').val(),
                    number: $('#card-number').val(),
                    exp_month: $('select[name="card-month"]').val(),
                    exp_year: $('select[name="card-year"]').val(),
                    cvc: $('#card-cvc').val()
                }, stripeResponseHandler);

                // prevent the form from submitting the default action
                return false;
            });
        }
    }
};

Stripe.setPublishableKey(stripe_vars.publishable_key);

function stripeResponseHandler(status, response) {
    if (response.error) {
        // show errors returned by Stripe
        jQuery(".payment-errors").html(response.error.message);
        // re-enable the submit button
        jQuery('#stripe-submit').attr("disabled", false);
    } else {
        var form$ = jQuery("#payment-form");
        // token contains id, last4, and card type
        var token = response['id'];
        // insert the token into the form so it gets submitted to the server
        form$.append("<input type='hidden' name='stripeToken' value='" + token + "'/>");
        // and submit
        form$.get(0).submit();
    }
}

jQuery(document).ready(function($) {
    $('#stripe-submit').click(function (){
        oeValidate.errors = false;
        oeValidate.name();
        oeValidate.sendIt();
        return false;
    });
});
share|improve this question
up vote 5 down vote accepted

Figured it out. Needed to not have the submit function as a method.

$('#payment-form').submit(function(event){
    // validate fields
    oeValidate.errors = false;
    oeValidate.name();

    // send the card details to Stripe
    if(!oeValidate.errors){
        // disable the submit button to prevent repeated clicks
        $('#stripe-submit').attr("disabled", "disabled");

        Stripe.createToken({
            name: $('#name').val(),
            number: $('#card-number').val(),
            exp_month: $('select[name="card-month"]').val(),
            exp_year: $('select[name="card-year"]').val(),
            cvc: $('#card-cvc').val()
        }, stripeResponseHandler);
    }

    // prevent the form from submitting the default action
    return false;
});
share|improve this answer

suppose you have to use

Stripe.createToken($(this), stripeResponseHandler);

I mean the first parameter must be your form object and your form must contain specified fields, but not an object, that you are trying to create

then response will contain this info

check this docs

share|improve this answer
    
so are you saying I cannot store this information in an object? – ftntravis Jul 10 '13 at 16:14
    
@ftntravis as docs say, you must use $('form').submit(function() {$form = $(this); ... Stripe.createToken($form, stripeResponseHandler); ... }); – vladkras Jul 10 '13 at 16:38
    
I'm sorry, but that did not help. – ftntravis Jul 10 '13 at 17:09

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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