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I have tried this for almost two days, and it doesn't work, i have a simple input file (in php)

echo '<input id="files" type="file" name="ufile[]" multiple="multiple"/>';

That it suppose to send multiple files at the same time to another page, my code to receive the files is as below:

for($i=0; $i<count($_FILES['ufile']['name']); $i++) {
  //Get the temp file path
  $tmpFilePath = $_FILES['ufile']['tmp_name'][$i];

  //Make sure we have a filepath
  if ($tmpFilePath != ""){
    //Setup our new file path
    $newFilePath = 'upload/'. $_FILES['ufile']['name'][$i];

    //Upload the file into the temp dir
    if(move_uploaded_file($tmpFilePath, $newFilePath)) {

      //Handle other code here

    }
  }
}

but it can only receive one file, I've also tried to use copy, it gives the same result, I've tried tried to count the number of files using both count method, the print_r and var_dump:

$a=count($_FILES['ufile']['name']);
print_r($a);
var_dump($a);

and they all also show only file.about the browser compatibility, I've been tried it with few browsers, including latest versions of Firefox,chrome and ...

Thanks in Advance I edit this post, to include the outputs (var_dump) and add the html form The below is the javascript code, in which preview the images that i choose with my input, file. window.onload = function(){

    if(window.File && window.FileList && window.FileReader)
    {
        var filesInput = document.getElementById("files");

        filesInput.addEventListener("change", function(event){

            var files = event.target.files; //FileList object
            var output = document.getElementById("result");

            for(var i = 0; i< files.length; i++)
            {
                var file = files[i];

                if(!file.type.match('image'))
                  continue;

                var picReader = new FileReader();

                picReader.addEventListener("load",function(event){

                    var picFile = event.target;

                    var div = document.createElement("div");

                    div.innerHTML = "<img class='thumbnail' src='" + picFile.result + "'" +
                            "title='" + picFile.name + "'/>";

                    output.insertBefore(div,null);            

                });

                picReader.readAsDataURL(file);
            }                               

        });
    }
    else
    {
        console.log("not supported");
    }
}

    </script>

and this is my html form :

echo '<form action="Data.php" method="post" enctype="multipart/form-data" name="form1" id="form1">';


echo'
<label for="files">Add image: </label>';

echo    '<input id="files" type="file" name="ufile[]" multiple/>';
    echo '
    <output id="result" />';

echo '<input type="submit" name="submit" value="Submit"id="newbutton" style="width:100px;height:30px" />';


</form> 

And lastly the results of vardump

Array ( [ufile] => Array ( [name] => Array ( [0] => Awesoem-Arrow-Facebook-Timeline-Cover_02-@-GenCept.jpg ) [type] => Array ( [0] => image/jpeg ) [tmp_name] => Array ( [0] => C:\xampp\tmp\php6BDF.tmp ) [error] => Array ( [0] => 0 ) [size] => Array ( [0] => 120664 ) ) ) 
share|improve this question
    
Can you show the output of your last block of code? print_r($a), etc. –  user985189 Jan 9 '13 at 3:46
    
Can you show the full HTML for your form? –  DeeDee Jan 9 '13 at 4:30
    
I would also like to see the output of print_r($_FILES); when you attempt to upload one or more files. –  DeeDee Jan 9 '13 at 4:34
    
Array ( [ufile] => Array ( [name] => Array ( [0] => Awesoem-Arrow-Facebook-Timeline-Cover_02-@-GenCept.jpg ) [type] => Array ( [0] => image/jpeg ) [tmp_name] => Array ( [0] => C:\xampp\tmp\php6BDF.tmp ) [error] => Array ( [0] => 0 ) [size] => Array ( [0] => 120664 ) ) ) –  Mohammad Jan 9 '13 at 7:14
    
@DeeDee@Nicarus, i have updated my post and add everything you've asked for! –  Mohammad Jan 9 '13 at 7:21

2 Answers 2

up vote 1 down vote accepted

Here, stripped down to the essentials, is how I have handled this same task in PHP in the past:

if (isset($_FILES['name'])){
    $maxFiles = 4; 
    $counter = 0;
         while (is_uploaded_file($_FILES['name']['tmp_name'][$counter])){
              /*
                      do your magic with each file here
                  */
                  //remove the temp file after you're done with it
                  unlink ($_FILES['name']['tmp_name'][$counter]);
                  $counter++;
            }
}

So instead of counting the total files uploaded beforehand, you just keep going through the files array until there are no more files. Let me know if that doesn't work for you.

share|improve this answer

One input field as "file" type can contain only one file. Do you use only one input field?

share|improve this answer
    
you mean even if its been defines as ufile[], and multiple? –  Mohammad Jan 9 '13 at 7:39
    
sorry, I confuse, you use the multiple attribute –  Igor Ladela Jan 9 '13 at 8:07
    
in your last code you use '<input id="files" type="file" name="ufile[]" multiple/>', try '<input id="files" type="file" name="ufile[]" multiple="multiple"/>' –  Igor Ladela Jan 9 '13 at 8:13
    
Still the same result. –  Mohammad Jan 9 '13 at 8:18
    
hmmm..., for me work your code :) –  Igor Ladela Jan 9 '13 at 8:26

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