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I am trying to define variables from the results of a query, but I cannot manage to get this to work. I am trying to make my site multilangual, so I want to define a lot of text items (identifiers) that I have stored in a database. The table looks like this:

ID, Identifier, English, Dutch
1, Owned_by, "Owned by", "Eigendom van"
2, Owner_of, "Owner of", "Eigenaar van"
etc
etc

where the Column Identifier is the variable that I want to define and 1 of the 2 languages is the value that I want to give the variable. I have define a previous query from which the result is the language requested by the user, so $language_2 is the outcome from the previous query. So when $language_2 = "Dutch", I would like all the records in the table to be defined with the value in the column "Dutch".

When I use the code below the variables will be printed (echoed) but I cannot use them as an actual variable to use in my site.

$sql_3 = "SELECT Identifier, ".$language_2." as Language FROM translate";
$result_3 = mysql_query($sql_3) OR die (mysql_error());
while ($row_3 = mysql_fetch_array($result_3))
{
echo "$".$row_3['Identifier']." = '".$row_3['Language']."';<BR>";
}

How can I get them to actually become a variable that I can use in my site?

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Add brackets arround the string that is the variable name:

${$row_3['Identifier']} = $row_3['Language'];
share|improve this answer
    
you were first ;) – Tim Dev Aug 8 '12 at 10:29
    
This works like a charm. Thank you... – user1584339 Aug 8 '12 at 11:23
    
No problem! :) Don't forget to mark this as the answer to your question. – Sven van Zoelen Aug 8 '12 at 11:31

You can use mysql_fetch_assoc() to get an associated array if you must use the older mysql_* functions, then use variable variables to get what you want

$$row_3['Identifier'] = $row_3['Language'];
share|improve this answer
${$row_3['Identifier']} = $row_3['Language'];
share|improve this answer

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