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I'm making a script where the user can upload an image of his pet. I have this code:

<?php
    session_start();
    $name = $_SESSION['myusername'];
    $petName = $_POST['picup']; // a pet name picked by a dropdown list

    $con = mysql_connect( "localhost", "lalala", "blabla" );
    mysql_select_db( "lalal_animal", $con );
    if ( @$_POST ['submit'] ) {
      $file = $_FILES ['file'];
      $name1 = $file ['name'];
      $type = $file ['type'];
      $size = $file ['size'];
      $tmppath = $file ['tmp_name'];
      if ( $name1 != "" ) {
        if ( move_uploaded_file( $tmppath, 'upload/' . $name1 ) ) {
          $query = "insert into pics(animalName,username,image) VALUES('$petName','$name','$name1')";
          mysql_query( $query ) or die( 'could not updated:' . mysql_error() );
          echo "Your image upload successfully !!";
        }
      }
    }
    ?>

    <html >
      <head>
        <title>Image Upload</title>
      </head>
      <body>
        <form name="form" action="" method="post" enctype="multipart/form-data">
          Photo <input type="file" name="file" />
          <input type="submit" name="submit" value="submit" /> 
        </form>
      </body>
    </html>

After running this the tabele column named: "animalName" is blank.

When I run this SQL command inside of phpmyadmin:

insert into pics(animalName,username,image) VALUES('Sparky','tester','sparky.jpg')

The tables are ok and the animalName column contains the right value. The pet name is showing, if I do:

echo $petName;

The pet name is comming from another form. The user 1st have to choose the pet and then he's redirected to the uload form. Here is the dropdown you requested:

<table width="480" border="0" align="center" cellpadding="0" cellspacing="1" bgcolor="#CCCCCC">
<tr>
<form name="upload" method="post" action="upload_form.php">
<td>
<table width="100%" border="0" cellpadding="3" cellspacing="1" bgcolor="#FFFFFF">
<tr>
<td colspan="3"><strong>Upload image</strong></td>
</tr>
<td>Select a pet</td>
<td>:</td>
<td>

<?php
mysql_connect('localhost', 'blabla', 'lalal');
mysql_select_db('lalala_animal');

$sql = "SELECT name FROM animal where username='$name'";
$result = mysql_query($sql);

echo "<select name='picup'>";
while ($row = mysql_fetch_array($result)) {
    echo "<option value='" . $row['name'] . "'>" . $row['name'] . "</option>";
}
echo "</select>";
?>
</td>
</tr>
<tr>
<td>&nbsp;</td>
<td>&nbsp;</td>
<td><input type="submit" name="Submit" value="Upload"></td>
</tr>
</table>
</td>
</form>
</tr>
</table>

I suspect that there is somthing wrong with the HTML form below of the php code, but I can't understand what.

share|improve this question
1  
also show your drop down list?? –  jogesh_pi Sep 8 '12 at 8:57
    
@jogesh_p Just added it to the original post –  Code Beast Sep 8 '12 at 9:05
1  
It is getting confusing now. You are changing code in a way the it is impossible to give a good answer in the first place. Think your question over before posting! –  JvdBerg Sep 8 '12 at 9:06
    
There will not be any changes. I just added the dropdown. :) –  Code Beast Sep 8 '12 at 9:09
    
@CodeBeast try the answer and let us know if work.. –  jogesh_pi Sep 8 '12 at 9:17

3 Answers 3

up vote 1 down vote accepted

As you said that you pass the $_POST['picup'] from the first submit, just simply modify your second form and put the $_POST['picup'] value in the hidden field. Modify your form like this..

<form name="form" action="" method="post" enctype="multipart/form-data">
      Photo <input type="file" name="file" />
      <input type="hidden" name="picup" value="<?php echo $petName; ?>" /> 
      <input type="submit" name="submit" value="submit" /> 
    </form>

Hope this will work..

Because when you submit second, that time your first post values not working.

share|improve this answer
    
Worked! THANK YOU!!!! :) –  Code Beast Sep 8 '12 at 9:18
    
i think now you understand where were the problem ;) –  jogesh_pi Sep 8 '12 at 9:19
    
yip. :) You saved me sooo many time! Thanks again! –  Code Beast Sep 8 '12 at 9:19
    
happy to help enjoy ;) –  jogesh_pi Sep 8 '12 at 9:21

In your comment you mention that $petName comes from a select in the form.

However, in the form, the select is missing, so $petName ($_POST['picup']) is empty.

    <html >
      <head>
        <title>Image Upload</title>
      </head>
      <body>
        <select name="picup">
          <option>Sparky</option>
          <option>Lucky</option>
        </select>
        <form name="form" action="" method="post" enctype="multipart/form-data">
          Photo <input type="file" name="file" />
          <input type="submit" name="submit" value="submit" /> 
        </form>
      </body>
    </html>
share|improve this answer
    
The pet name is comming from another form. The user 1st have to choose the pet and then he's redirected to the uload form. If I do: echo $petName it's showing the name of the pet –  Code Beast Sep 8 '12 at 9:01
    
Can be, but $petName = $_POST['picup']; will overwrite the original $petName !! –  JvdBerg Sep 8 '12 at 9:03
    
What I need is: $_POST['picup']; I can show it using echo, but it can't be inserted into the table. :( –  Code Beast Sep 8 '12 at 9:07

Maybe your data type of animalName is not varchar in phpmyadmin check that

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