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I've read all the questions with the same problem but no success.
I've tried trigger(), unbind('click'), on('click', function()), live('click'), etc

My problem is that I have to click twice on the save button to validate and submit the data to the database and return a message of 'success' or 'fail' to display error message.

JQUERY

$('.save').click(function (event) {
    // GET CATEGORIA
    var category_change = 0;
    if (!$('#new_category').val()) {
        category = $('#categoria_id').val();
    } else {
        category = $('#new_category').val();
        category_change = 1;
    }

    // GET TITLE
    var title = $('input#title').val();

    // GET IMAGE
    var target = $('#parent');
    html2canvas(target, {
        onrendered: function (canvas) {
            image = canvas.toDataURL();
        }
    });

    // GET FORMATED CODE
    var array = ["n", "e", "s", "w"];
    var format = $('#parent').html();
    var strrep = '<div class="close">X</div>';
    var strrep2 = '<div class="ui-resizable-handle ui-resizable-se ui-icon ui-icon-gripsmall-diagonal-se" style="z-index: 1000;"></div>';

    var aux2 = 0;
    while (aux2 < 5) {
        $.each(array, function () {
            format = format.replace('<div class="ui-resizable-handle ui-resizable-' + this + '" style="z-index: 1000;"></div>', '');
        });
        format = format.replace(strrep, '');
        format = format.replace(strrep2, '');
        aux2++;
    }
    var code = '<div id="parent">' + format + '</div>';


    if (title != '' && $('.child').length != 0) {
        $('.db_result').html('<img src="images/loader.gif" />');
        $.post("db_prox.php", {
            category: category,
            title: title,
            image: image,
            code: code,
            category_change: category_change
        }, function (post_result) {
            alert('2');
            if (post_result == 'success') {
                $('.db_result').text('O template foi guardado com sucesso!');
                $('.continue').prop("disabled", false);
            } else {
                $('.db_result').text('Ocorreu um erro na gravação do template!');
            }
        });
    }

    // INSERIR NA BASE DE DADOS CLOSE
});

PHP db_prox.php

<?php
require_once 'includes/functions.php';

$categoria = $_POST['category'];
$title = $_POST['title'];
$image = $_POST['image'];
$code = $_POST['code'];
$nova_categoria = $_POST['category_change'];

if($nova_categoria == 1){

    $result = get_cat_last_created();
    $cat_id = mysqli_fetch_assoc($result);
    $aux_id = $cat_id['categoria_id'] + 1;
    $query = "INSERT INTO categorias (categoria_id, name) VALUES ('$aux_id', '$categoria')";
    if(mysqli_query($connection, $query)) {
        $query2 = "INSERT INTO templates (categoria_id, title, image, code) VALUES ('$aux_id', '$title', '$image', '$code')";

        if(mysqli_query($connection, $query2)) {
            echo "success";
        }
        else {
            echo "fail";
        }
    }
}else{
    $query = "INSERT INTO templates (categoria_id, title, image, code) VALUES ('$categoria', '$title', '$image', '$code')";
    if(mysqli_query($connection, $query)) {
        echo "success";
    }
    else {
        echo "fail";
    }
}
mysqli_close($connection);
?>
share|improve this question
1  
Why don't you try reducing the code to a bare minimum example and see what happens? –  j08691 Aug 13 '13 at 15:26
    
Yes, if I do that it will let me click once to execute. But I need all the GET's to happen after the save button is clicked. –  CIRCLE Aug 13 '13 at 15:30
1  
you should you worry about security of your code, sql Injection is almost predictible –  Zach dev Aug 13 '13 at 15:33
    
how can I avoid sql injection in the above code? –  CIRCLE Aug 13 '13 at 15:34
3  
@circle73 This takes time, but it will end up being faster than waiting for someone else to figure it out: reduce your code to what works, then add back the rest one step at a time. –  gibberish Aug 13 '13 at 15:37

1 Answer 1

up vote 1 down vote accepted

The onrendered function is asynchronous in

 html2canvas(target, {
    onrendered: function (canvas) {
        image = canvas.toDataURL();
    }
});

meaning that whatever code that is synchronously run right after that doesn't have the image variable assigned yet.

Moving your ajax post inside the onrendered function will make it send the request once the image has been created, i.e:

 html2canvas(target, {
    onrendered: function (canvas) {
        image = canvas.toDataURL();
        $.post("db_prox.php", {
          category: category,
          title: title,
          image: image,
          code: code,
          category_change: category_change
        }, function (post_result) {
          alert('2');
          if (post_result == 'success') {
            $('.db_result').text('O template foi guardado com sucesso!');
            $('.continue').prop("disabled", false);
          } else {
            $('.db_result').text('Ocorreu um erro na gravação do template!');
          }
        });
    }
});
share|improve this answer
    
Hi Niklas! Great great plugin you have here. I was about to try to contact you. This solution worked great for the issue above. But now I have another problem. I don't know if there is a limit of size this plugin can output in image jpeg but now when I'm running it, all the images come rendered just until half of the div #parent. Is there a way to extend the size limit so the image is outputed in it's totality? –  CIRCLE Aug 13 '13 at 19:42
    
@circle73 By default, toDataURL returns a png image. Does the div #parent have overflow scroll set? –  Niklas Aug 14 '13 at 12:39
    
I'm using this method to return the image as a jpeg image = canvas.toDataURL("image/jpeg"); this are the css for #parent : #parent{ width: 800px; height: 600px; position: absolute; top: 0; left: 0; border: solid 2px gray; padding: 0; overflow: scroll; } –  CIRCLE Aug 14 '13 at 14:41

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