Zeradin Posted December 27, 2008 Share Posted December 27, 2008 I have an area where people submit things. It used to be iframes that would load a form and submit it. It worked great, it was just fugly and annoying. I want to change over to ajax so i made the iframes divs and changed it over that way. It loads all the forms great but when i submit nothing happens. Can someone tell me why this: <input type="submit" value="Submit" name="albumsubmit" class="btn" onmouseover="this.className='btn btnhov'" onmouseout="this.className='btn'" onclick = "getData('upalbum.php', 'formload')/> doesn't submit the data? It should be handled by the if(!isset($_POST['albumsubmit'])) { } else {} right? I'm new to ajax obviously. Thanks guys. Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/ Share on other sites More sharing options...
Philip Posted December 27, 2008 Share Posted December 27, 2008 You're missing an ending a " onclick = "getData('upalbum.php', 'formload');" Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-724591 Share on other sites More sharing options...
Zeradin Posted December 29, 2008 Author Share Posted December 29, 2008 You're missing an ending a " onclick = "getData('upalbum.php', 'formload');" so i did. i changed it to <input type="submit" value="Submit" name="albumsubmit" class="btn" onmouseover="this.className='btn btnhov'" onmouseout="this.className='btn'" onclick = "getData('upalbum.php', 'formload');" /> it still just loads the default value for the div and doesn't submit anything. Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-725142 Share on other sites More sharing options...
Philip Posted December 29, 2008 Share Posted December 29, 2008 What does the rest of your js script look like? Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-725185 Share on other sites More sharing options...
Zeradin Posted December 30, 2008 Author Share Posted December 30, 2008 <!-- Standard AJAX code --> var XMLHttpRequestObject = false; if (window.XMLHttpRequest) { XMLHttpRequestObject = new XMLHttpRequest(); } else if (window.ActiveXObject){ XMLHttpRequestObject = new ActiveXObject("Microsoft.XMLHTTP"); } <!-- END Standard AJAX --> function getData(dataSource, divID) { if(XMLHttpRequestObject){ var obj = document.getElementById(divID); XMLHttpRequestObject.open("GET", dataSource); XMLHttpRequestObject.onreadystatechange = function() { if(XMLHttpRequestObject.readyState == 1 && XMLHttpRequestObject.status == 200) { obj.innerHTML = '<img src="../images/loading.gif" />'; } if(XMLHttpRequestObject.readyState == 4 && XMLHttpRequestObject.status == 200) { obj.innerHTML = XMLHttpRequestObject.responseText; } } XMLHttpRequestObject.send(null); } } </script> Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-726239 Share on other sites More sharing options...
Philip Posted December 30, 2008 Share Posted December 30, 2008 So, the backend side of it - does it require any inputs? Right now, dataSource is just upalbum.php - do you need to post any variables to get a return? Also, try putting in an alert to see if it is even sending the data XMLHttpRequestObject.onreadystatechange = function() { alert("State: "+XMLHttpRequestObject.readyState); if(XMLHttpRequestObject.readyState == 1 && XMLHttpRequestObject.status == 200) { obj.innerHTML = '<img src="../images/loading.gif" />'; } if(XMLHttpRequestObject.readyState == 4 && XMLHttpRequestObject.status == 200) { obj.innerHTML = XMLHttpRequestObject.responseText; } } Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-726443 Share on other sites More sharing options...
Zeradin Posted December 31, 2008 Author Share Posted December 31, 2008 Yeah there are inputs. I'm wondering if the problem is that there is no submit value when I do the submit button like that? Or maybe I need to make TWO ajax variables. I mean it doesn't go back to the page as if this was true: if(!isset($_POST['albumsubmit'])) { ?> the inputs are like <form method="POST" action="<?php $_SERVER['PHP_SELF']?>"> <strong>Title</strong><br /> <input type="text" name="title" size="20"><br /> with the other side of it being like else { hypsqlconnect(); $title = mysql_real_escape_string($_POST['title']); if isset($_POST['albumsubmit']) maybe it's not getting posted. i have no idea why this stuff isn't working. Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-726906 Share on other sites More sharing options...
Philip Posted December 31, 2008 Share Posted December 31, 2008 Okay I see your problem now. You're pushing GET variables (the ones in the URL: somepage.php?var1=value) and not POST variables. You can do POST in ajax, its just a little harder. http://www.openjs.com/articles/ajax_xmlhttp_using_post.php Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-726965 Share on other sites More sharing options...
Zeradin Posted January 2, 2009 Author Share Posted January 2, 2009 Okay I see your problem now. You're pushing GET variables (the ones in the URL: somepage.php?var1=value) and not POST variables. You can do POST in ajax, its just a little harder. http://www.openjs.com/articles/ajax_xmlhttp_using_post.php I don't understand what you mean I'm pushing GET variables? Why did it work when it wasn't ajax if they're different types of variables? How can I change them over to GET ones or something to get it to work? Thanks. Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-727785 Share on other sites More sharing options...
Zeradin Posted January 2, 2009 Author Share Posted January 2, 2009 Wait, I'm not using get variables? there's nothing in the url like that? Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-727787 Share on other sites More sharing options...
Philip Posted January 2, 2009 Share Posted January 2, 2009 $_POST['title'] vs $_GET['title'] are 2 different things, considering your ajax code is using GET: XMLHttpRequestObject.open("GET", dataSource); Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-727798 Share on other sites More sharing options...
Zeradin Posted January 2, 2009 Author Share Posted January 2, 2009 Ok so can I just change $title = mysql_real_escape_string($_POST['title']); to $_GET['title'] and then change the form method to SEND? sorry, i never got this part of learning php apparently Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-727882 Share on other sites More sharing options...
Zeradin Posted January 2, 2009 Author Share Posted January 2, 2009 I mean I was just thinking about it. How do normal ajax forms work? because it doesn't seem like it works like this. the usually have the state where they're waiting and show the waiting symbol. then they say submitted! this seems like it's not the same method and is probably why i'm messing it up. Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-728150 Share on other sites More sharing options...
Zeradin Posted January 4, 2009 Author Share Posted January 4, 2009 Please help. Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-729539 Share on other sites More sharing options...
Philip Posted January 5, 2009 Share Posted January 5, 2009 I'd suggest reading the working example in this forum http://www.phpfreaks.com/forums/index.php/topic,115581.0.html There are 2 different ways to send values from a form to a script. First is with GET, where the variables are in the url. Downfalls of using this are limited sending space, each browser limits how long the url can be. Nonetheless, an example: foo.com/bar.php?variable=value Second is with POST, where the variables are sent in the HTTP headers. I believe the max you can send is 2MB of data. (correct me if I'm wrong somebody.) Whichever way you decide, make sure both ends match. Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-729677 Share on other sites More sharing options...
Zeradin Posted January 8, 2009 Author Share Posted January 8, 2009 Thanks. I read that over, but it still has no submit->post/get data, so i can't really use it for forms? at least as far as my knowledge is telling me. Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732628 Share on other sites More sharing options...
Zeradin Posted January 8, 2009 Author Share Posted January 8, 2009 ok i am so annoyed right now. I found a really simple example and it makes sense and i'm trying to change just one of my forms over to it, and then i can figure out how to apply it to all my forms. it has this: <script language="javascript" type="text/javascript"> <!-- //Browser Support Code function ajaxFunction(){ [all that ajax request stuff removed for brevity] var title = document.getElementById('title').value; var typ = document.getElementById('typ').value; var story = document.getElementById('story').value; var queryString = "?title=" + title + "&typ=" + typ + "&story=" + story; ajaxRequest.open("GET", "php_ajax_input_script.php" + queryString, true); ajaxRequest.send(null); alert(queryString); } //--> </script> <title>php + Ajax + SQL Tutorial</title></head> <body> <form> Title <input id="titles" value="" name="title" size="30" style="color:#990000; font-weight:bold"><br /> <select id="typ" size="1" name="newstype"> <option>External</option> <option>Internal</option> </select><br /> <textarea id="story" rows="30" name="message" cols="80"></textarea><br /> <input class="button" onClick="ajaxFunction();" value="Enter" type="button"> </form> </body> then the file that it calls and sends all of those values to: // Retrieve data from Query String $title = $_GET['title']; $newstype = $_GET['typ']; $news = $_GET['story']; $poster = "whatever"; // Escape User Input to help prevent SQL Injection $title = mysql_real_escape_string($title); $news = mysql_real_escape_strong($title); // create query $newsquery = "INSERT INTO news (title, typ, news, poster) VALUES ('$title', '$newstype', '$news', '$poster')"; has that in it and when i click on the enter button nothing at all happens Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732708 Share on other sites More sharing options...
Philip Posted January 8, 2009 Share Posted January 8, 2009 Your input id doesnt match what Javascript is looking for. var title = document.getElementById('title').value; Should be: var title = document.getElementById('titles').value; Also, move the alert(queryString); above the line ajaxRequest.open("GET", "php_ajax_input_script.php" + queryString, true); Now after you run it - check in the database to see if anything is in there. There should be something. Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732717 Share on other sites More sharing options...
Zeradin Posted January 8, 2009 Author Share Posted January 8, 2009 ok i changed those things, ran it, got no alert go no sql insertion Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732720 Share on other sites More sharing options...
Philip Posted January 8, 2009 Share Posted January 8, 2009 Can you post the whole request code? There might be something up with it Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732723 Share on other sites More sharing options...
Zeradin Posted January 8, 2009 Author Share Posted January 8, 2009 wait i got the alert, but no insert Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732725 Share on other sites More sharing options...
Zeradin Posted January 8, 2009 Author Share Posted January 8, 2009 <html> <head> <script language="javascript" type="text/javascript"> <!-- //Browser Support Code function ajaxFunction(){ var ajaxRequest; // The variable that makes Ajax possible! try{ // Opera 8.0+, Firefox, Safari ajaxRequest = new XMLHttpRequest(); } catch (e){ // Internet Explorer Browsers try{ ajaxRequest = new ActiveXObject("Msxml2.XMLHTTP"); } catch (e) { try{ ajaxRequest = new ActiveXObject("Microsoft.XMLHTTP"); } catch (e){ // Something went wrong alert("Your browser broke!"); return false; } } } var title = document.getElementById('title').value; var typ = document.getElementById('typ').value; var story = document.getElementById('story').value; var queryString = "?title=" + title + "&typ=" + typ + "&story=" + story; alert(queryString); ajaxRequest.open("GET", "php_ajax_input_script.php" + queryString, true); ajaxRequest.send(null); alert(queryString); } //--> </script> <title>php + Ajax + SQL Tutorial</title></head> <body> <form> Title <input id="title" value="" name="title" size="30" style="color:#990000; font-weight:bold"><br /> <select id="typ" size="1" name="newstype"> <option>External</option> <option>Internal</option> </select><br /> <textarea id="story" rows="30" name="message" cols="80"></textarea><br /> <input class="button" onClick="ajaxFunction();" value="Enter" type="button"> </form> </body> </html> and <?php // set database server access variables: $host = "localhost"; $user = "**********"; $pass = "***********"; $db = "*********"; // open connection $connection = mysql_connect($host, $user, $pass) or die ("Unable to connect!"); // select database mysql_select_db($db) or die ("Unable to select database!"); // Retrieve data from Query String $title = $_GET['title']; $newstype = $_GET['typ']; $news = $_GET['story']; $poster = "whatever"; // Escape User Input to help prevent SQL Injection $title = mysql_real_escape_string($title); $news = mysql_real_escape_strong($title); // create query $newsquery = "INSERT INTO news (title, typ, news, poster) VALUES ('$title', '$newstype', '$news', '$poster')"; // execute query $newsresult = mysql_query($newsquery) or die ("Error in query: $query. ".mysql_error()); //add story to xml feed // set name of XML file $file = "../general/hyprss.xml"; // load file $xml = simplexml_load_file($file) or die ("Unable to load XML file!"); //write data // modify XML data $xml->channel->item->title = $title; $xml->channel->item->link = "http://thehyp.net"; $xml->channel->item->guid = "http://thehyp.net"; $xml->channel->item->pubDate = date('l jS \of F Y h:i:s A'); $xml->channel->item->description = substr($news, 0, 200)."\n"; // write new data to file file_put_contents($file, $xml->asXML()); ?> Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732728 Share on other sites More sharing options...
Zeradin Posted January 8, 2009 Author Share Posted January 8, 2009 caught that query error, didn't change a thing Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732735 Share on other sites More sharing options...
Philip Posted January 8, 2009 Share Posted January 8, 2009 You might want to edit out your password Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732739 Share on other sites More sharing options...
Zeradin Posted January 8, 2009 Author Share Posted January 8, 2009 can't! shit! Quote Link to comment https://forums.phpfreaks.com/topic/138577-changing-forms-over-to-ajax/#findComment-732741 Share on other sites More sharing options...
Recommended Posts
Join the conversation
You can post now and register later. If you have an account, sign in now to post with your account.