Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am working on a form where a user have an option to upload an image , if they are not uploading the image then i will use a default image for their profile but i am having some problem with that, i want to validate image only if they are uploading it but right now even if they are not uploading the image my validation code is running and not letting save the rest of the form below is my code

if(isset($_FILES))
    {   
        $imagename = $_FILES['uploadimage']['name'];
        $imagetype = $_FILES['uploadimage']['type'];
        $imagesize = $_FILES['uploadimage']['size'];


        if($imagetype != "image/gif" || $imagetype != "image/jpg" || $imagetype == "image/png" || $imagetype == "image/jpeg")
        {
            $error = 'Please upload an image with JPG, PNG, GIF';
        }
        elseif($imagesize > 716800)
        {
            $error = 'Image Needs to be under 700kb only';      
        }
        else
        {
                     $success = 'Uploaded';
                    }

Even if they are not uploading the image the entire code is running

share|improve this question
    
Nice little upload library with some very slick jQuery functionality: github.com/blueimp/jQuery-File-Upload –  Kzqai Mar 1 '13 at 17:47
add comment

6 Answers

$_FILES is a superglobal and is ALWAYS present, regardless of how the script was invoked or if a file upload was actually attempted.

You need to check for a specific file instead, such as:

if (isset($_FILES['nameoffilefield']) && ($_FILES['nameoffilefield']['error'] == UPLOAD_ERR_OK)) {
   ... upload occured ...
}
share|improve this answer
    
:- now it is not running that piece of code at all, even i am uploading a zip file it is giving me a success message –  Henry Aug 23 '11 at 19:01
    
not running the code at all, but giving success message? Huh? –  Marc B Aug 23 '11 at 19:06
    
yes it is skipping the if statement you provided and going to a different else statement that i have written .. if i am uploading a zip file than it should say that error if it is running your if condition BAMM –  Henry Aug 23 '11 at 19:08
    
what's the html for the upload form look like? –  Marc B Aug 23 '11 at 19:11
add comment

You must first test if upload is succes, then test if file is image and work with them.

if (isset($_FILES['nameoffilefield']) && ($_FILES['nameoffilefield']['error'] == UPLOAD_ERR_OK)) {
    if($_FILES['nameoffilefield']['type'] != "image/gif" 
        && $_FILES['nameoffilefield']['type'] != "image/jpg" 
        && $_FILES['nameoffilefield']['type'] != "image/png" 
        && $_FILES['nameoffilefield']['type'] != "image/jpeg")
    {
        $error = 'Please upload an image with JPG, PNG, GIF';
    }
    elseif($imagesize > 716800)
    {
        $error = 'Image Needs to be under 700kb only';      
    }
    else
    {
       $success = 'Uploaded';
       // do something with image 
       move_uploaded_file($_FILES['nameoffilefield']['tmp_name'],$newFileWithDir);
    }
}

But it is not good idea to testing $_FILES['nameoffilefield']['type'] over "image/jpeg", because attacker can send php file with this mime type.

share|improve this answer
add comment

To be honest don't waste your time with creating your own image upload code, simply use class.upload.

share|improve this answer
add comment

You should use

if(!empty($_FILES) && array_key_exists('uploadimage', $_FILES) && $_FILES['uploadimage']['size'] > 0) 

instead of

if(isset($_FILES)).
share|improve this answer
    
Still doing the same thing , even i am not uploading the image it's running that piece of code –  Henry Aug 23 '11 at 19:00
    
@Henry try edited answer –  Andrej L Aug 23 '11 at 19:04
    
yup that make sense and is working fine but also i found an easy alternative in php 4.3 or greater we can use the function if(is_uploaded_file(['file']['tmp_name'])) but i will use yours andrej... thank u for help –  Henry Aug 23 '11 at 19:11
    
@Henry No problem. If answer is useful upvote it. –  Andrej L Aug 23 '11 at 19:59
add comment

use this image upload code .

<?php
//define a maxim size for the uploaded images in Kb
 define ("MAX_SIZE","1000"); 

//This function reads the extension of the file. It is used to determine if the file  is an image by checking the extension.
 function getExtension($str) {
         $i = strrpos($str,".");
         if (!$i) { return ""; }
         $l = strlen($str) - $i;
         $ext = substr($str,$i+1,$l);
         return $ext;
 }

//This variable is used as a flag. The value is initialized with 0 (meaning no error  found)  
//and it will be changed to 1 if an errro occures.  
//If the error occures the file will not be uploaded.
 $errors=0;
//checks if the form has been submitted
 if(isset($_POST['Submit'])) 
 {
    //reads the name of the file the user submitted for uploading
    $image=$_FILES['image']['name'];
    //if it is not empty
    if ($image) 
    {
    //get the original name of the file from the clients machine
        $filename = stripslashes($_FILES['image']['name']);
    //get the extension of the file in a lower case format
        $extension = getExtension($filename);
        $extension = strtolower($extension);
    //if it is not a known extension, we will suppose it is an error and will not  upload the file,  
    //otherwise we will do more tests
 if (($extension != "jpg") && ($extension != "jpeg") && ($extension != "png") && ($extension != "gif")) 
        {
        //print error message
            echo '<h1>Unknown extension!</h1>';
            $errors=1;
        }
        else
        {
//get the size of the image in bytes
 //$_FILES['image']['tmp_name'] is the temporary filename of the file
 //in which the uploaded file was stored on the server
 $size=filesize($_FILES['image']['tmp_name']);

//compare the size with the maxim size we defined and print error if bigger
if ($size > MAX_SIZE*1024)
{
    echo '<h1>You have exceeded the size limit!</h1>';
    $errors=1;
}

//we will give an unique name, for example the time in unix time format
$image_name=time().'.'.$extension;
//the new name will be containing the full path where will be stored (images folder)
$newname="images/".$image_name;
//we verify if the image has been uploaded, and print error instead
$copied = copy($_FILES['image']['tmp_name'], $newname);
if (!$copied) 
{
    echo '<h1>Copy unsuccessfull!</h1>';
    $errors=1;
}}}}

//If no errors registred, print the success message
 if(isset($_POST['Submit']) && !$errors) 
 {
    echo "<h1>File Uploaded Successfully! Try again!</h1>";
 }

 ?>

 <!--next comes the form, you must set the enctype to "multipart/frm-data" and use an input type "file" -->
 <form name="newad" method="post" enctype="multipart/form-data"  action="">
 <table>
    <tr><td><input type="file" name="image"></td></tr>
    <tr><td><input name="Submit" type="submit" value="Upload image"></td></tr>
 </table>   
 </form>
share|improve this answer
add comment

You can also upload image on mysql database from this code::

image.php

  <form action='image.php' method='post' enctype='multipart/form-data' >
     <input type='file' name='image'>
    <input type='submit' name='submit'>
  </form>

 <?php
     if(isset( $_POST['submit'] ) ) {
       $image = addslashes( file_get_contents( $_FILES['image']['tmp_name'] ) );

      $size = getimagesize( $_FILES['image']['tmp_name'] );
     if($size != FALSE )
          mysql_query(" INSERT INTO tableName VALUES ( '', '$image') ) or die(mysql_error());
      else
         echo "image uploading problem";
   }
 ?>
share|improve this answer
    
There's a " missing in your query. –  Jason Sturges Oct 29 '12 at 4:38
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.