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I'm trying to fetch information (u_name and u_email) from database using AJAX into a JQuery lightbox. I'm having problems with the Ajax part. My HTML structure is:

<div class="boxes">
    <a href="#" id="showe3" class="button lfloat">Show it</a>
</div>
<div class="boxes">
    <a href="#" id="showe4" class="button lfloat">Show it</a>
</div>

So, the user clicks on one of the id, which is matched in the database table, and the result is fetched.

The Javacript code is:

$(function() {
    $('#id').ecko({  //ecko is a JQuery lightbox function which im using
        height: 200,
        holderClass: 'custom',
        template: '<p>About</p>' +
        '<div>' +
        '<a href="#" target="_blank" class="b1">u_name</a>' +
        '<a href="#" target="_blank" class="b2">u_email</a>' +
        '<a href="#" target="_blank" class="b2">More</a>' +
        '</div>'
    });
});

The Ajax will be:

 $.ajax({                                      
    url: 'functions/db.php',                        
    data: "",
    dataType: 'json',     
    success: function(data){
        var name = data[0];
        var email = data[1];

        //What should be here??

    } });

PHP code will be like:

    $result = mysql_query("SELECT * FROM $tableName WHERE `id` = " what should be written here? "); 
    $array = mysql_fetch_row($result);   

    echo json_encode($array);

I've posted everything I tried. I don't know a way of connecting the id clicked to pass it to php's line of $result = mysql_query("SELECT * FROM $tableName WHEREid= "") and then connecting Ajax and the Jquery lightbox.

share|improve this question

When someone clicks the button, pass the ID to the data option in ajax, and fetch it on the serverside:

$('.button').on('click', function() {
    $.ajax({
        type: 'POST',                              
        url: 'functions/db.php',                        
        data: {id: this.id},
        dataType: 'json'
    }).done(function(data) {
        $('#id').ecko({
            height: 200,
            holderClass: 'custom',
            template: '<p>About</p>' +
                '<div>' +
                '<a href="#" target="_blank" class="b1">'+data[0]+'</a>' +
                '<a href="#" target="_blank" class="b2">'+data[1]+'</a>' +
                '<a href="#" target="_blank" class="b2">More</a>' +
                '</div>'
        });
    });

});

Then use the data in the markup, but you can only do that once the ajax call is completed.

PHP

$id = $_POST['id'];
$result = mysql_query("SELECT * FROM $tableName WHERE `id` = " $id); 

consider moving onto PDO, as mysql is deprecated!

share|improve this answer
    
There shouldn't be a ; after </div>. – xan Jan 6 '13 at 19:16
    
@xan - That's right, changed it! – adeneo Jan 6 '13 at 19:23
    
I tried the above code. But it is not working. – xan Jan 6 '13 at 19:26
    
It's more of a "how you should do it", not "exactly like this will work", as it's a very general question with just "what to type here" stuff. The SQL query above probably does'nt work, as you'll need to insert the variable properly, and you should probably test the ajax call by just echoing a simple string to see that it works before you try more advanced stuff, and use some console.logs to check that the click() function works etc. What is commonly known as basic fault finding. – adeneo Jan 6 '13 at 19:30
    
Right. I figured out the necessary statements. Also 1 more thing I wanted to inquire: I have to click twice on the button for the first time to fetch the results. Is that normal? – xan Jan 7 '13 at 4:15

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