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.

Trying to add content to my database using a form and JSON. My query runs fine through phpmyadmin, but for some reason my PHP file is unable to receive the information from my form.

(Please save me the typical "Don't use mysql functions".)

Chrome's Network Preview shows me this:

      data: null
      debug: "SQL query was: INSERT INTO linktb (catName, title, desc, URL) VALUES ('1', '', '', '');<br>SQL query failed <br>Other output: "
      retval: 2

Debugging of my update.php:

      {"retval":2,"data":null,"debug":"SQL query was: INSERT INTO linktb (catName, title, desc, URL) VALUES ('', '', '', '');
      SQL query failed 
      Other output: "}

HTML & JS:

      <form method="post" id="addURL" name="addURL" method="post">
            <select id="catList" name="catList">
            <option value="1">Milk</option>
            <option value="2">Coffee</option>
            <option value="3">Tea</option>
            </select><br />
            <input id="title" name="title" type="text" placeholder="Title"><br />
            <input id="desc" name="desc" type="text" placeholder="Description"><br />                
            <input id="URL" name="URL" type="text" placeholder="URL"><br />
            <input id="key" name="key" type="text" placeholder="Key"><br />
            <input type="submit" value="Submit">
      </form>


<script type="text/javascript">
$(document).ready(function(){   
    $("#addURL").submit(function(e) {
        e.preventDefault();
        var action = $("#addURL").attr('action');
        var form_data = {
            catList: $("#catList").val(),
            title: $("#title").val(),
            desc: $("#desc").val(),
            URL: $("#URL").val(),
            key: $("#key").val(),
        };
    $.getJSON("update.php",form_data,function(data){
        switch(data.retval){
            case 0: $("#status").html("Unable to update!");
                    $("#status").css("background-color","red");
            break;
            case 1: $("#status").html("Update successful!");
                    $("#status").css("background-color","green");
            break;
            default: $("#status").html("Database error, please try again.");
                    $("#status").css("background-color","red");
            break;
        }
    });
});         
});

PHP:

$json = array("retval" => 2, "data" => NULL, "debug" => "");

$catList = mysql_real_escape_string($_REQUEST['catList']);
$title = mysql_real_escape_string($_REQUEST['title']);
$desc = mysql_real_escape_string($_REQUEST['desc']);
$URL = mysql_real_escape_string($_REQUEST['URL']);
$key = mysql_real_escape_string($_REQUEST['key']);


$sql = "INSERT INTO linktb (catName, title, desc, URL) VALUES ('".$catList."', '".$title."', '".$desc."', '".$URL."');";

$json['debug'] .= "SQL query was: ".$sql."<br>";
$result=mysql_query($sql);
if (!$result) {
    $json['debug'] .= "SQL query failed <br>";
    $json['debug'] .= "Other output: ". ob_get_contents();
    ob_end_clean();
    die(json_encode($json));
}
$count=mysql_num_rows($result);

if($count==1){
    $json['retval'] = 0;
    $json['data'] = mysql_fetch_assoc($result);
} else {
    $json['retval'] = 1;
}
$json['debug'] .= "Other output: ". ob_get_contents();
ob_end_clean();
echo json_encode($json);
share|improve this question
    
You prevent the submission of the form with preventDefault - so the data never gets sent. Where is the code that sends the data? –  mrtsherman Nov 3 '12 at 4:56
2  
It's true though, you shouldn't use them. People don't just say that for the heck of it, there's just absolutely no reason to use mysql anymore. –  Asad Nov 3 '12 at 4:57
1  
You can use jQuery's serialize instead of manually gathering your form data together. Might save you some time. api.jquery.com/serialize –  mrtsherman Nov 3 '12 at 4:59

2 Answers 2

Well taking a stab here. It doesn't seem that you are ever submitting your form. I assume you want to do this via ajax.

 $("#addURL").submit(function(e) {
    e.preventDefault();
    //now what? try serializing your form and sending it via json
    $formData = $(this).serialize()
    $.ajax(url, {
        data : JSON.stringify($formData),
        dataType: 'json',
        contentType : 'application/json',
        type : 'POST'}
    );
 };
share|improve this answer
    
That gives me an error: Uncaught ReferenceError: url is not defined –  Black Bird Nov 3 '12 at 14:38
    
It sounds like you cut and pasted the code without bothering to try and understand it. There is a variable called url. Did you try defining it with your website address? –  mrtsherman Nov 4 '12 at 4:07
up vote 0 down vote accepted

Javascript & HTML I was using was fine, turned out I used the word "desc" in MYSQL which represented descending instead of the var that I wanted to use it as.

share|improve this answer

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.