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I have a form that allows uploads of images. The user can select which gallery to upload the image to based on a radio button.

In the upload php script, the images are uploaded to a directory then then directory location is added to a MYSQL database. The upload and directory addition works fine.

I'm trying to add the name of the radio button that was pressed to another column in the image database so that I can see which image was uploaded to which gallery as my images are in a separate table.

My form looks like

<form enctype="multipart/form-data" action="upload-image.php" method="POST">
<h3>Select Gallery To Upload To</h3>
<?php
    $results = mysql_query("SELECT * FROM users");
    while ($row = mysql_fetch_assoc($results)) 
    {
        echo'<br>';
        echo '<input type="radio" name="'. $row["username"].'"value="'.$row["username"].'">' . $row["username"];
    }
?>
<input type="hidden" name="MAX_FILE_SIZE" value="10000000" />
Choose a file to upload: <input name="uploadedfile" type="file" /><br />
<input type="submit" value="Upload File" />
</form>

The section of the upload script that handles the adding to the MYSQL database is as follows:

mysql_query("INSERT INTO images (image, gallery_name) VALUES('".$target_path, $_POST["$row["name"]"]."')")

This is giving me a few errors: Notice: Undefined index: name

Warning: mysql_query() expects parameter 2 to be resource, string given

How might I fix this?

share|improve this question
    
Don't use mysql_* functions! They're in the process of being deprecated. –  esqew Jan 15 '13 at 5:55
1  
Print $_POST array and the query also. The value $_POST["$row["name"]"] will not be available in the query . –  cartina Jan 15 '13 at 5:57
    
Please, don't use mysql_* functions to write new code. They are no longer maintained and the community has begun deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide which, this article will help you. If you pick PDO, here is good tutorial. Also see Why shouldn't I use mysql functions in PHP? –  Daedalus Jan 15 '13 at 5:59
    
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2 Answers

up vote 2 down vote accepted

Your query's double quotes are a bit awry. You also need to feed mysql_query a resource created by mysql_connect (in the following example, it's represented by $mysql).

mysql_query("INSERT INTO images (image, gallery_name) VALUES('".$target_path."', '". $_POST[$row["name"]]."')", $mysql);
share|improve this answer
    
I've only used this to view items from a database before, EG $results = mysql_query("SELECT * FROM users"); So I'm not 100% sure on whats actually happening here. –  Michael N Jan 15 '13 at 6:19
    
@MichaelN what in particular is confusing to you? –  esqew Jan 15 '13 at 16:02
    
If I have say $mysql ("INSERT INTO image etc") then doesn't something have to be done with $mysql afterwards? The only time I've used something like this is to get a row of results, and then echo it out, so after doing $mysql("SELECT* FROM users etc") id then echo $mysql so something was being done with the variable. I hope this makes sense. –  Michael N Jan 15 '13 at 21:56
    
For INSERTs mysql_query returns a boolean value based on the success of the query. –  esqew Jan 16 '13 at 4:54
    
Thanks, I got it working now. –  Michael N Jan 16 '13 at 22:19
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the string is not concatnated (joined) properly.

change

mysql_query("INSERT INTO images (image, gallery_name) VALUES('".$target_path, $_POST["$row["name"]"]."')")

to

$row_data = $row["name"];
mysql_query("INSERT INTO images (image, gallery_name) VALUES('".$target_path."', '".$_POST[$row_data]."')");
share|improve this answer
    
You're almost there, but not quite. –  Daedalus Jan 15 '13 at 5:59
    
@Daedalus - fine now, sorry, m not a php coder! –  AppDeveloper Jan 15 '13 at 6:01
    
Hmm this seems to give me more errors. Notice: Undefined variable: row Notice: Undefined index: –  Michael N Jan 15 '13 at 6:12
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