2

I am currently working on a php project. I need to post two values, a username and password value to a php script to check that a user account exists.

I have it working fine posting the username only but don't know how to post multiple values to it.

Below is the code that I currently have

function checkAccount()
        {
            var username = $(\'#txtUsername\').val();
            var password = $(\'#txtPassword\').val();

            $.post("phpHandler/login.php"), {username: username},
                function(result)
                {
                    if (result == "unknownUser")
                    {
                        $(\'#msg\').html("Unknown username and password").addClass(\'formError\');
                        $(\'#msg\').fadeIn("slow");
                    }
                }
        }

For the line

$.post("phpHandler/login.php"), {username: username},

I tried to do

$.post("phpHandler/login.php"), {username: username, password: password}, but this doesn't seem to work.

Thanks for any help you can provide

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  • 2
    Why are you escaping the quotes in your $() calls? That turns the quotes into "part-of-the-string" so jquery is looking for some element literally named '#txtPassword', and not an element with id #txtPassword. – Marc B Oct 27 '11 at 21:57
  • its because its within a php script and the html/javascript is surrounded with ' that's why its escaped so its not actually looking for '#txtPassword' – Boardy Oct 27 '11 at 22:05
3

You have syntax errors all over the place between your escaped quotes and the early closing parens on your .post call. This code will work assuming no other issues exist in your supporting code:

function checkAccount()
{
    $.post(
        'phpHandler/login.php',
        {
            username: $( '#txtUsername' ).val(),
            password: $( '#txtPassword' ).val()
        },
        function( result )
        {
            if( result === 'unknownUser' )
            {
                $( '#msg' )
                    .html( 'Unknown username and password' )
                    .addClass( 'formError' )
                    .fadeIn("slow");
            }
        }
    );
}
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2

Try something like:

$.post("phpHandler/login.php", {username: username, password: password}, function(){
  // success code goes here
});

You are closing the parenthesis of post function before passing the parameters.

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  • This doesn't seem to work either, i'm not sure that it`s calling the underneath function where it checks the result of the post statement – Boardy Oct 27 '11 at 22:02
  • 1
    @Boardy - When using the .ajax shortcuts (such as .post), if anything goes wrong it fails silently. Your success function never runs and no error occurs. If this is a possibility, you should switch to .ajax while developing and provide an error method which lets you know something went wrong. – JAAulde Oct 27 '11 at 22:11

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