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I'm trying to find the value of the userid and password in the below HTML using the following jQuery code, but it doesn't return any value. What am I doing wrong?

<div id='mainpane'>
    <form id='login' method='post' action='#'>
        <p>User Id:<input id='userid' type='text' name='userid'></input></p>
        <p>Password:<input id='password' type='text' name='password'></input></p>
        <p><input id='submit' type='submit' name='Submit' value='Submit'></input></p>           
    </form>
    <div id="message"></div>
    <p>Not a member? <a href="user-signup.html">Signup</a></p>
</div>

Here's the jQuery code:

$(document).ready(function() {
    $('#login').delegate('input#submit','click',function(){
        alert('user id is: '+$(this).parent().parent().find('#userid').html());
        var request = $.ajax({
            type:"POST",
            url:"/login",
            data: {userid:$('#userid').text(), password:$('#password').text}
            });

        });

The alert comes back with an empty data. Appreciate any pointers on what am I doing wrong.

Thanks, Kalyan.

share|improve this question
    
made this fiddle so just chucking it in ayways: jsfiddle.net/tR3TY/1 –  Tats_innit May 24 '12 at 3:36
    
Those aren't sibling elements (they have different parents). But you don't need any DOM traversal .parent(), .find() or whatever methods because the elements you are trying to retrieve have ids and can just be selected directly with $('#idhere'). –  nnnnnn May 24 '12 at 3:44

4 Answers 4

up vote 4 down vote accepted

use .val() to retrieve an input's value.

var userid = $("#userid").val();
var pass   = $("#password").val();
share|improve this answer
    
+1 The simplest answer to the question. –  iambriansreed May 24 '12 at 3:51

Just do:

$.post('/login', $('#login').serialize(), function() {});

in place of your $.ajax call :), the .serialize() takes all the form inputs' values and pass them to the server, encoded for you as well :)

share|improve this answer
    
This is Good! removed my answer! (note for questioner.) –  Tats_innit May 24 '12 at 3:36
1  
-1 This is nice but doesn't answer the question. I don't understand the up vote either. –  iambriansreed May 24 '12 at 3:37
    
@iambriansreed sure, you are entitled to your opinion anyway :) –  SiGanteng May 24 '12 at 3:38
    
Thanks for this @nitfydude. Very helpful tip and this is what I was really trying to do - post form data. –  KumarM May 24 '12 at 3:50
    
@KumarM glad I could be of help :) –  SiGanteng May 24 '12 at 3:51

You have quite a few issues so here's the corrected code with notes:

jQuery

$(function() {
// same as document.ready
    $('#login').submit(function(event){            
    // runs whenever the form is submitted - either enter or submit button is clicked
        event.PreventDefault();
        // since the form is submitted via ajax you wil want to keep the page from changing
        alert('user id is: '+$('#userid').val());
        // no need to reach back through the DOM with .parent() use the ID its the fastest, also you get input values with .val()
        $.ajax({
            type:"POST",
            url:"/login",
            data: $('#login').serialize()
            // serialize() creates an object of all the form data based on the name attribute and values - very clean
        });
    });
});

HTML

<div id='mainpane'>
    <form id='login' method='post' action=''>
        <p>User Id:<input id='userid' type='text' name='userid'/></p>
        <p>Password:<input id='password' type='text' name='password'/></p>
        <p><input id='submit' type='submit' name='Submit' value='Submit'/></p>           
    </form>
    <div id="message"></div>
    <p>Not a member? <a href="user-signup.html">Signup</a></p>
</div>

Inputs are self closing.

share|improve this answer
1  
Thanks for correcting my html. –  KumarM May 24 '12 at 3:50
    
@KumarM and jQuery. :) –  iambriansreed May 24 '12 at 3:50

you try this code

 $(document).ready(function() {
        $('#login').delegate('input#submit','click',function(){

            alert('user id is: '+$(this).parent().parent().find('#userid').val());
            var request = $.ajax({
                type:"POST",
                url:"/login",
                data: {userid:$('#userid').val(), password:$('#password').val()}
                });

            });
        });
share|improve this answer
1  
I didn't downvote, but it might be nice if you explained what you've changed and why (rather than leaving it to the reader to compare your code with the original version). –  nnnnnn May 24 '12 at 4:09

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