4

Can someone help me to handle this error? I don't know what method or way to get rid of this error. Im new to php and starting to learn it. Can someone give me ideas?

here is the error : enter image description here

here is my php code.

<?php

include_once('connection.php');

 $newsid = $_GET['news_id'];

    if(isset($_POST['esubmit'])){
        /* create a prepared statement */
        if ($stmt = mysqli_prepare($con, "SELECT * FROM news WHERE news_id = ? LIMIT 1")) {
            /* bind parameters */
            mysqli_stmt_bind_param($stmt, "s", $newsid);

            /* execute query */
            mysqli_stmt_execute($stmt);

            /* get the result set */
            $result = mysqli_stmt_get_result($stmt);

            /* fetch row from the result set */
            $row = mysqli_fetch_array($result);
        }

    }


    if(isset($_POST['update'])){

        if(isset($_FILES['image'])){
          $file=$_FILES['image']['tmp_name'];
          /* Below is the line 30 causing the error*/
          $image = addslashes(file_get_contents($_FILES['image']['tmp_name']));
          $image_name= addslashes($_FILES['image']['name']);
          move_uploaded_file($_FILES["image"]["tmp_name"],"img/" . $_FILES["image"]["name"]);
          $newsimage="img/" . $_FILES["image"]["name"];

          $title = $_POST['titles'];
          $date = $_POST['dates'];
          $content = $_POST['contents'];

          $sql ="UPDATE news SET news_title ='$title', news_date ='$date', news_content = '$content', news_image ='$newsimage' WHERE news_id = '$newsid'";
          mysqli_query($con, $sql);
          echo "oh it worked ";
        }
        else{
          $title = $_POST['titles'];
          $date = $_POST['dates'];
          $content = $_POST['contents'];
          $sql ="UPDATE news SET news_title ='$title', news_date ='$date', news_content = '$content' WHERE news_id = '$newsid'";
          mysqli_query($con, $sql);
          echo "oh it worked again ";
        }

    }
?>
<!DOCTYPE HTML>
<html>
<head>
</head>
<body>

<?php

    if(isset($_POST['esubmit'])){
        ?>

        <form method="post" action ="edit2.php?news_id=<?php echo $row['news_id']; ?>" enctype="multipart/form-data">
            Title<input type ="text" name ="titles" value="<?php echo $row['news_title']; ?>"/><br>
            Date<input type ="text" name="dates" value="<?php echo $row['news_date']; ?>" /><br>
            Content<textarea name="contents"><?php echo $row['news_content']; ?></textarea>
            <input class="form-control" id="image" name="image" type="file" accept="image/*" onchange='AlertFilesize();'/>
            <img id="blah" src="<?php echo $row['news_image']; ?>" alt="your image" style="width:200px; height:140px;"/>

            <input type="submit" name="update" value="Update" />
        </form>

        <?php
    }

?>

<script src="js/jquery-1.12.4.min.js"></script>
<script src="js/bootstrap.min.js"></script>
<script type="text/javascript">
    function readURL(input) {
        if (input.files && input.files[0]) {
            var reader = new FileReader();

            reader.onload = function (e) {
                $('#blah').attr('src', e.target.result);
            }

            reader.readAsDataURL(input.files[0]);
        }
    }

    $("#image").change(function(){
        readURL(this);
    });
    </script>
</body>
</html>
  • $_FILES['image']['tmp_name'] returns a temporary file, echo it out to see the kind of data it returns and it'll be clear what the error means. Also, why are you attempting to get the contents when you're not using $image again? – Jamie Bicknell Jul 1 '16 at 13:18
  • You're using mysqli_stmt_bind_param() in your first query... why oh why aren't you using it for your other queries??? Your other queries are just adding the POST vars directly to the query string, making you wide open to SQL injection attack. – Simba Jul 1 '16 at 13:19
  • 1
    You should also check the length of $_FILES['image'] array in the condition if(isset($_FILES['image'])){ – ADreNaLiNe-DJ Jul 1 '16 at 13:21
  • why are you adding slashes? – Martin Jul 1 '16 at 13:21
  • @Martin i already edit it my questions sir. Please check again thanks. – nethken Jul 1 '16 at 13:21
6

Why are you adding slahes to your (temporary) filename?

your line 30:

$image= addslashes(file_get_contents($_FILES['image']['tmp_name']));

So to remove the error warning:

if(!empty($_FILES['image']['tmp_name']) 
     && file_exists($_FILES['image']['tmp_name'])) {
    $image= addslashes(file_get_contents($_FILES['image']['tmp_name']));
}
  • There is a LOT of other things you can / should do with this code but I can't go over it in too much detail with you, but basically you should check that $_FILES['image']['error'] == 0 to ensure that code only runs if the file has been successfully uploaded.

  • Replace

      if(isset($_FILES['image'])){
    

With an error check:

   if($_FILES['image']['error'] == 0){

Which will mean that only an OK uploaded file will then run the IF statement contents

  • Stop adding slashes, it's not needed.

  • Use prepared statements for your SQL queries.

  • Move_uploaded_file should in a perfect world be given an absolute path rather than a relative path.

  • Do you realise that you're file_get_contents is getting the data in a file, not a referece but the actual binary file data. This looks like it's not what you need to be doing at this stage. Your $image value isn't clearly used in the code you provide and as rightly pointed out by apokryfos, you're actually adding slashes to the retrieved filedata of the image. This is going to simply make your $image a garbled mess.

  • 2
    He's not adding slashes to the temporary filename he's adding slashes to the contents of the temporary file. Why is still a mystery, since it will break the image probably. – apokryfos Jul 1 '16 at 13:27
  • That behaviour by the OP's actually more confusing! haha – Martin Jul 1 '16 at 13:29
  • It worked already sir no errors. But where do i put the if($_FILES['image']['error'] == 0)? – nethken Jul 1 '16 at 13:33
  • before the query? – nethken Jul 1 '16 at 13:34
  • @nethken you replace the quoted if statement with the one using the error array feedback – Martin Jul 1 '16 at 13:34
0

For the file_get_contents($_FILES['image']['tmp_name']) to give you an error of cannot be empty it means that it has has no file or nothing has been attached to it in the html part of the code. So check if first of all you have attached anything to it by echoing the value file_get_contents($_FILES['image']['tmp_name']).

0
<?php 
ini_set( 'display_errors', 0 );
error_reporting( E_ALL );
?>
  • 1
    Can you explain what that code does? How does it solve the given error message? – Nico Haase Jul 3 at 15:18

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