Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm developing a form that submits several user inputs to a database via post and handled by php. In order to do so, I'm using ajax (I know jquery is sometimes easier, but I'd prefer to get a grasp on ajax first).

However, it is not working properly - namely that it doesn't work at all. I know for a fact that the php file works fine when the form isn't passed through ajax.

Here's what I have right now - the form itself:

<table border="0" cellpadding="2" cellspacing="5">
                <th colspan="2" align="center">Check Out</th>
                <form name="checkOut" method="post" onSubmit="return(validate(this))" action=""> 
                    <tr><td>Territory Number</td><td><input type="text" name="numberOut" tabindex="1" maxlength="3" size="3" /></td>
                    </tr><tr><td>First Name of Publisher</td><td><input type="text" onKeyUp="showHint(this.value)" name="fName" tabindex="2" maxlength="15"/></td>
                    </tr><tr><td>Last Name of Publisher</td><td><input type="text" onKeyUp="showHint_l(this.value)" name="lName" tabindex="3" maxlength="15" /></td>
                    </tr><tr><td><input type ="checkbox" name="specialC" tabindex="4" value="Yes"/> Special Campaign</td>
                    </tr><tr><td><input type="button" onClick="clearForm()" value="Reset" /></td><td><input type="submit" value="Check Out" /></td>
                </form>
                <p>Suggestions: <span id="txtHint"></span></p>
            </table>

The javascript/ajax handler function:

<script type="text/javascript">
        function validate(form)
        {
            fail = validateTerrNum(document.checkOut.numberOut.value);
            fail += validateFirstName(document.checkOut.fName.value);
            fail += validateLastName(document.checkOut.lName.value);
            if (fail == "")
            {
                //Begin preparing values for submission to server
                var params = "numberOut="+document.getElementsByName("numberOut")[0].value;
                    params+="?fName="+document.getElementsByName("fName")[0].value;
                    params+="?lName="+document.getElementsByName("lName")[0].value;
                var isSc = document.getelementsByName("specialC")[0].checked;
                if(isSc)
                {
                    params+="?specialC=Yes";
                }

                //Send those values to the server
                checkOut(params);
                return true;            
            }           
            else 
            {
                alert(fail);
                return false;
            }
        }
    </script>

And finally the ajax function via post:

function checkOut(params)
{
var urlString = params;
if (window.XMLHttpRequest)
{// code for IE7+, Firefox, Chrome, Opera, Safari
    xmlhttp=new XMLHttpRequest();
}
else
{// code for IE6, IE5
    xmlhttp=new ActiveXObject("Microsoft.XMLHTTP");
}

xmlhttp.onreadystatechange=function()
{
    if (xmlhttp.readyState==4 && xmlhttp.status==200)
    {
    document.getElementById("test").innerHTML=xmlhttp.responseText; 
    }
}
//Setup for post submission 
xmlhttp.setRequestHeader("Content-type", "application/x-www-form-urlencoded");
xmlhttp.setRequestHeader("Content-length", params.length);
xmlhttp.open("POST","checkOut.php",true);
xmlhttp.send(urlString);
}

My suspicion is that I'm not submitting the post request correctly. I've had other ajax functions work with this form correctly, but it was through get - and I do want to use post because it is changing data in the database.

If anyone has some insight on this, it would be appreciated.

Edit: New Form with general button:

<table border="0" cellpadding="2" cellspacing="5">
                <th colspan="2" align="center">Check Out</th>
                <form name="checkOut" method="post" action=""> 
                    <tr><td>Territory Number</td><td><input type="text" name="numberOut" tabindex="1" maxlength="3" size="3" /></td>
                    </tr><tr><td>First Name of Publisher</td><td><input type="text" onKeyUp="showHint(this.value)" name="fName" tabindex="2" maxlength="15"/></td>
                    </tr><tr><td>Last Name of Publisher</td><td><input type="text" onKeyUp="showHint_l(this.value)" name="lName" tabindex="3" maxlength="15" /></td>
                    </tr><tr><td><input type ="checkbox" name="specialC" tabindex="4" value="Yes"/> Special Campaign</td>
                    </tr><tr><td><input type="button" onClick="clearForm()" value="Reset" /></td><td><input type="button" onClick="return(validate(this))" value="Check Out"/></td>
                </form>
                <p>Suggestions: <span id="txtHint"></span></p>
            </table>
share|improve this question

1 Answer 1

up vote 1 down vote accepted

You have to cancel the form submit if you're posting the data via ajax, otherwise the form will submit and that may cancel your ajax request.

Also you have to call setRequestHeader after you call open

share|improve this answer
    
Can you expand on that, I don't quite understand what you're saying? Are you essentially saying that instead of submitting the form, create a button that triggers the function instead with the available input? –  Mlagma Sep 25 '12 at 20:03
    
@Mlagma if you click the submit button on a form the form will submit, loading a new page which will cancel any action that was being performed on the previous page, e.g. ajax. So if your posting your data via ajax you should prevent the form itself from posting. –  Musa Sep 25 '12 at 20:07
    
Makes sense. So the javascript will still be able to grab the value via DOM even without a form submission? Other than that, though, the functions look fine? –  Mlagma Sep 25 '12 at 20:08
    
@Mlagma yes you can use javascript to get the value of the form fields without the form submitting. –  Musa Sep 25 '12 at 20:11
    
I just tried switching it from submit to a general button; it still didn't work. –  Mlagma Sep 25 '12 at 20:39

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.