5

i am trying to store 2 images in my database . when i upload 2 images then both are storing successfully but when in try to upload single image then its giving undefined error for un-uploaded image. where i am wrong ?

My code is:

         <label for="certificate">Upload Scaned Document:</label>
         <input type="file" id="uploadImage" name="image" />
         <label for="certificate">Upload Scaned QR Code</label>
         <input type="file" name="QRimage" id="File2" />

And php code is

if((!empty($_FILES["image"])) && ($_FILES['image']['error'] == 0))   {
    $imageName = mysql_real_escape_string($_FILES["image"]["name"]);
    $imageData = mysql_real_escape_string(file_get_contents($_FILES["image"]["tmp_name"]));
    $imageType = mysql_real_escape_string($_FILES["image"]["type"]);

}
if((!empty($_FILES["QRimage"])) && ($_FILES['QRimage']['error'] == 0)) {
    $QRimageName = mysql_real_escape_string($_FILES["QRimage"]["name"]);
    $QRimageData = mysql_real_escape_string(file_get_contents($_FILES["QRimage"]["tmp_name"])); 
}
3
  • @RakeshSharma OP says when upload two image it working fine that means no need to check enctype.
    – Sadikhasan
    Commented Feb 9, 2015 at 7:06
  • can you show your upload code Commented Feb 9, 2015 at 7:08
  • i am uploading the file using html form . input type="file" @Sharma Vikram
    – Nayana
    Commented Feb 9, 2015 at 7:20

3 Answers 3

1

Try this

$imageName = "";
$imageData = "";
$QRimageName = "";
$QRimageData = "";
if(!empty($_FILES["image"]["name"])){ 
 $imageName = mysql_real_escape_string($_FILES["image"]["name"]);
 $imageData = mysql_real_escape_string(file_get_contents($_FILES["image"]["tmp_name"]));
 }
 if(!empty($_FILES["QRimage"]["name"])){
 $QRimageName = mysql_real_escape_string($_FILES["QRimage"]["name"]);
  $QRimageData = mysql_real_escape_string(file_get_contents($_FILES["QRimage"]["tmp_name"]));
     }
0
1

Check with isset() like

if((isset($_FILES["image"]["size"]) && 
    ($_FILES["image"]["size"] > 0))
 {
 }

if((isset($_FILES["QRimage"]["size"]) && 
    ($_FILES["QRimage"]["size"] > 0))
{
   $QRimageName = mysql_real_escape_string($_FILES["QRimage"]["name"]);     
   $QRimageData = mysql_real_escape_string(file_get_contents($_FILES["QRimage"]["tmp_name"]));
}
11
  • new error (Undefined variable: QRimageName) and (QRimageData)
    – Nayana
    Commented Feb 9, 2015 at 7:14
  • The problem is you set the variables inside a conditional statement. If that conditional statement doesn't pass then those variables essentially dont exist within the application for use later on. Try initializing the QRimageName variable before the if statements.
    – Jeemusu
    Commented Feb 9, 2015 at 7:22
  • where are you used variable QRimageName and QRimageData?
    – Sadikhasan
    Commented Feb 9, 2015 at 7:34
  • then the error is (Warning: file_get_contents() [<a href='function.file-get-contents'>function.file-get-contents</a>]: Filename cannot be empty )
    – Nayana
    Commented Feb 9, 2015 at 7:34
  • Your warning message display <a> tag with function.file-get-contents.
    – Sadikhasan
    Commented Feb 9, 2015 at 7:54
1

Add check of isset for both if condition..because when you are uploading both images then $_FILES getting image and its giving true in if condition but when uploading one image then other image if case not getting image in $_FILES so its giving error of undefined...variable should set before any operation..

if(isset($_FILES["image"]) && (!empty($_FILES["image"])) && ($_FILES['image']['error'] == 0))   {

if(isset($_FILES["QRimage"]) && (!empty($_FILES[" QRimage "])) && ($_FILES[' QRimage ']['error'] == 0))   {
2
  • new error (Undefined variable: QRimageName) and (QRimageData)
    – Nayana
    Commented Feb 9, 2015 at 7:16
  • Notice: Undefined variable: QRimageName in C:\wamp\www\print\main.php on line 56
    – Nayana
    Commented Feb 9, 2015 at 7:18

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