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PHP: “Notice: Undefined variable” and “Notice: Undefined index”

I am new to PHP and mySQL and this is a section of my program, but what happens is that it doesn't return the value of the column 'Text' from the database, rather, it says 'Undefined index 'Text''. I am 100% sure that it exists in the database. Can someone please help me?

$method_get_article = "SELECT TEXT FROM ARTICLE WHERE UID = '$user_id' LIMIT 1";
$get_article = mysql_query($method_get_article, $conn) or die (mysql_error());
$article = mysql_fetch_array($get_article);**strong text**
$text = $article['Text'];
//$row = mysql_fetch_assoc($get_article);
//$text = $row['Text'];
echo $text;
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marked as duplicate by hakre, Second Rikudo, Jocelyn, Michael Berkowski, dreamcrash Dec 15 '12 at 3:59

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3  
It may not help answer your question, but you should stop using mysql_* functions. They're being deprecated. Instead use PDO (supported as of PHP 5.1) or mysqli (supported as of PHP 4.1). If you're not sure which one to use, read this article. –  Matt Aug 16 '12 at 15:13
3  
dont use reserved words for fields BUT if you must use ` quotes around them –  Waygood Aug 16 '12 at 15:13
2  
umm TEXT != Text –  Loz Cherone ツ Aug 16 '12 at 15:14
    
perform a var_dump() on $article and see what it produces. –  Matt Aug 16 '12 at 15:14
    
try $text = $article['TEXT']; –  John Woo Aug 16 '12 at 15:15
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1 Answer 1

up vote 2 down vote accepted

The error explains the problem very clearly : 'Undefined index 'Text'

In the beginning you write:

$method_get_article = "SELECT TEXT FROM ARTICLE WHERE UID = '$user_id' LIMIT 1";

which means you select the column called "TEXT", and then later you write:

$text = $article['Text'];

which gets the column called "Text".

Change them so that they are identical.

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