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I am trying to display data after being submitted with ajax. The ajax works so far when submitting, but I have to refresh to see it.

Here's the jquery:

$('#submit-quote').live("submit", function(){
    var formdata = $(this).serialize();
    $.post("add.php", formdata, function(data) {
        console.log("success"); 
    });
    return false;
});

The php in add.php:

require('includes/connect.php');

$quote = $_POST['quote'];
$quotes = mysql_real_escape_string($quote);

echo $quotes . "Added to database";

mysql_query("INSERT INTO entries (quote) VALUES('$quotes')")
or die(mysql_error());

Here's the HTML/PHP that I use to fetch the data and display it:

<?php 
    require("includes/connect.php");

    $result = mysql_query("SELECT * FROM entries", $link);
    while($row = mysql_fetch_array($result)){ ?>
        <div class="quote-wrap group">
            <span>Like</span>
            <div class="quote">
                <p>
                <?php echo htmlentities($row['quote']); ?>
                </p>
            </div><!-- /.quote -->
        </div><!-- /.quote-wrap -->

 <?php } ?>

If needed, here's the form:

<form id="submit-quote" method="post" >
     <h2> Submit A Quote </h2>
     <textarea name="quote">
     </textarea>
     <input type="submit" name="submit" value="Submit!">
</form>

Ajax works when submitting, but I need to display it after being sent also, how can I do this?

share|improve this question
    
What do you want to display, your success message or the data that was submitted to the database? –  dyelawn Jan 13 '12 at 20:41
    
Just so you know, live has been deprecated in jQuery 1.7.1. You should use on instead. api.jquery.com/on Older versions of jQuery should use delegate instead of live. –  David Hoerster Jan 13 '12 at 20:42
    
It looks to me like you're open to SQL injection by just inserting $quote, unless i'm wrong and that's not just string interpolation. Be careful! –  John Gibb Jan 13 '12 at 20:51
    
Thanks david and john, I'm just a beginner so I don't really know :/ Just starting to get this stuff. –  nowayyy Jan 13 '12 at 20:53

1 Answer 1

up vote 1 down vote accepted

The data variable in your success callback function stores the server response. So to add the server response to the DOM:

$(document).delegate("'#submit-quote'", "submit", function(){
    $.post("add.php", $(this).serialize(), function(data) {
        $('.inner').append('<div class="quote-wrap group"><span>Like</span><div class="quote"><p>' + data + '</p></div></div>');
    });
    return false;
});

If you need to use event delegate (e.g. the form isn't always present in the DOM) then use .delegate() instead of .live() as the latter has been depreciated as of jQuery 1.7.

Also you don't really need to cache $(this).serialize() in a variable since it is only being used once (creating the variable is unnecessary overhead).

Since your PHP code is outputting echo $quotes . "Added to database";, the server response will be the quote with "Added to database` appended to the string, which will be added to your list of quotes.

UPDATE

$(document).delegate("'#submit-quote'", "submit", function(){
    var quoteVal = $(this).find('[name="quote"]').val();
    $.post("add.php", $(this).serialize(), function() {
        $('.inner').append('<div class="quote-wrap group"><span>Like</span><div class="quote"><p>' + quoteVal+ '</p></div></div>');
    });
    return false;
});

Notice that I am no longer referencing the server response (in fact I removed the data variable all together). Instead I am saving the value of the name="quote" element within the form being submitted and using it after the AJAX request comes back (this way the quote is added to the database before being added to the DOM). You could move the .append() code outside the success callback to run it right as the form is submitted (in the submit event handler).

UPDATE

If you want to create a DOM element to append rather than concocting a string:

$(document).delegate("'#submit-quote'", "submit", function(){
    var quoteVal = $(this).find('[name="quote"]').val();
    $.post("add.php", $(this).serialize(), function() {

        //create parent div and add classes to it
        $('<div />').addClass('quote-wrap group').append(

            //append the "like" span to the parent div
            $('<span />').text('Like');
        ).append(

            //also append the .quote div to the parent div
            $('<div />').addClass('quote').append(

                //then finally append the paragraph tag with the quote text to the .quote div
                $('<p />').text(quoteVal)
            )

        //then after we're done making our DOM elements, we append them all to the .inner element
        ).appendTo('.inner');
    });
    return false;
});
share|improve this answer
    
This only returns what's echoed in add.php which is echo $quotes . "Added to database"; .. i tried $('.inner').html(data) but that removes all html from the parent and inserts whats echoed in add.php (.inner being the parent for the html the data is being displayed in) –  nowayyy Jan 13 '12 at 20:43
    
Sorry about that, I meant to use .append() instead of .html(). The former will add itself to the end of the .inner element (or if you want to add it to the beginning use .prepend(). .html(<some-html>) is the same as .empty().append(<some-html>). My answer is updated. –  Jasper Jan 13 '12 at 20:47
    
I copied and pasted in your code but it doesn't work. Refreshes page and nothing is submitted –  nowayyy Jan 13 '12 at 20:52
    
@Trippy There was an error at the end of the .append() call, there was a reference to the data variable that was not be concocted properly. Try the code again. More importantly you should be watching an error console to spot these types of errors quickly (instead of stumbling across the errors randomly). –  Jasper Jan 13 '12 at 20:56
    
Thank you. It's "kinda" working now. It submits but where it's submitted to is empty. After refreshing the page it shows the content. –  nowayyy Jan 13 '12 at 21:01

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