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This code below is giving me a unterminated string literal error, how can this be fixed?

below is javascript code (QandAtable.php).

$(".imageCancel").on("click", function(event) {

    var image_file_name = "<?php echo str_replace("\n", "", $image_file_name); ?>";

                  $('.upload_target').get(0).contentwindow
              $("iframe[name='upload_target']").attr("src", "javascript:'<html></html>'");

    jQuery.ajax("cancelimage.php" + image_file_name)
        .done(function(data) {

        $(".imagemsg" + _cancelimagecounter).html(data);
    });

    return stopImageUpload();

}); 

below is imagecancel.php script where the ajax links to:

...

    $image_file_name = $_GET["fileImage"]["name"];

        echo "File Upload was Canceled";

            $imagecancelsql = "DELETE FROM Image 
            WHERE ImageFile = 'ImageFiles/". mysql_real_escape_string($image_file_name)."'";

        mysql_query($imagecancelsql);

In error console it is showing it as: var image_file_name = "<br />

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Where is $image_file_name coming from? Have you tried echoing it to the page to verify that it contains the value it's supposed to contain? –  octern May 7 '12 at 2:31
    
code is updated –  user1373827 May 7 '12 at 2:41
1  
Don't dump raw text into JS like that. at least do echo json_encode(...) to ensure you're generating syntactically valid JS. –  Marc B May 7 '12 at 3:29
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2 Answers

Try this out, don't worry about the internal double quotes, it won't affect your javascript string

var image_file_name = "<?php echo str_replace("\n", "", $image_file_name); ?>";
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Hi, tried your idea but it has not got rid of the error. –  user1373827 May 7 '12 at 2:27
    
What is the exact error now? Try using my new code, I've removed replacing "\n" with '\n' and changed it to "\n" to "" –  Bryan Moyles May 7 '12 at 2:28
    
updated code and question showing current line of code and what the error is showing now. It still hasn't worked, it is displaying same error. –  user1373827 May 7 '12 at 2:31
    
What IS your image file name? Can you please view source and print the entire contents of the image file name variable? –  Bryan Moyles May 7 '12 at 2:33
    
I have updated the code to give you more info :) –  user1373827 May 7 '12 at 2:42
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I doubt if I got your question correct, but there are few issues in your code.

when you are using $_GET, I guess you are doing it wrong $_GET["fileImage"]["name"] since its the GET parameter it will be simply $_GET["fileImage"]

But even before doing this, you should be sending it in the proper $_GET parameter i.e.

jQuery.ajax("cancelimage.php?fileImage=" + image_file_name)

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