1

I have a simple log in and I cannot get the validation to work at all. I was wondering if someone could help.

HTML:

<div class="login">
        <h2>Sign In</h2>

        <form id="frmLogin" method="post">

            Username: <input id="txtUsername" name="txtUsername" type="text" /><br/>
            Password: <input name="txtPassword" type="password" /> <br/>
            <button onClick="validateLogin()">Log In</button>
        </form>
    </div><!-- End of Login Section -->

Javascript:

<script>
function validateLogin()
{
    var userName = document.getElementsByID('txtUsername').value;

    var invalidForm = 0;

    if(userName == "")
    {
        alert("Username cannot be blank!");
        invalidForm = 1;                
    }//end if

    if(invalidForm == 0)
    {
        alert("Form validated, no errors");
    }//end if 

}
</script>

At the moment I'm just testing for an empty username, once I can get this working I'll continue on with the rest. Thank you!

5

To get and element by ID the function name is getElementById and not getElementsByID, besides, javascript is case sensitive so getElementByID does not work.

function validateLogin()
{
    var userName = document.getElementById('txtUsername').value;

    var invalidForm = 0;

    if(userName == "")
    {
        alert("Username cannot be blank!");
        invalidForm = 1;                
    }//end if

    if(invalidForm == 0)
    {
        alert("Form validated, no errors");
    }//end if 

}
0

Do your jquery code something like these :-

<script>
function validateLogin()
{
    var userName = document.getElementById('txtUsername').value;

    var invalidForm = 0;
    var errMessage = ""

    if(userName === "")
    {
        errMessage = "Username cannot be blank!";
        invalidForm = 1;                
    }//end if

    if(invalidForm == 0)
    {
        alert("Form validated, no errors");
    }
    else if (invalidForm == 1)
    {
       alert(errMessage);
       return false;
    }
}
</script>

It may help you.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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