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This is my code:

     echo $arraysize=sizeof($_FILES['productimage']['name']);

Here, I can't upload any image, but it shows size is 1.

So is it creating an empty file?

What is the exact problem? How can I fix this?

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what you tying to do? – user3462511 Apr 8 '14 at 6:50
You should check for $_FILES['productimage']['error'] and that value must be 0. Btw, what's the form you're submitting? – Ja͢ck Apr 8 '14 at 6:52
what do you want to do with your product name? – Drixson Oseña Apr 8 '14 at 6:52
Why don't you try if (file_exists ( $_FILES ['productimage'] ['tmp_name'] )) { // yes file is uploaded} – Ravi Dhoriya ツ Apr 8 '14 at 6:53
@Log1c At the very least that should be is_uploaded_file($_FILES['productimage']['tmp_name']). – Ja͢ck Apr 8 '14 at 6:54

2 Answers 2

When a form containing <input type=file> is submitted, PHP will populate the $_FILES array, even if the file was not uploaded.

This means that the array keys will be set (isset will return true) but they will (or will not) contain meaningful values. Best way to check if a file was actually uploaded is to check the error code associated with the file.

if (isset($_FILES["productimage"]) && $_FILES["productimage"]["error"] === UPLOAD_ERR_OK) {
    // handle uploaded file

In the above example isset($_FILES["productimage"]) is added to ensure that the array key is set; whether or not the file was uploaded.

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you can debug this way to to figure out where's the problem:

if ($_FILES["productimage"]["error"] > 0) {
    echo "Error: " . $_FILES["productimage"]["error"] . "<br>";
} else {
    echo "Upload: " . $_FILES["productimage"]["name"] . "<br>";
    echo "Type: " . $_FILES["productimage"]["type"] . "<br>";
    echo "Size: " . ($_FILES["productimage"]["size"] / 1024) . " kB<br>";
    echo "Stored in: " . $_FILES["productimage"]["tmp_name"];
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