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It checks out with no errors, but does nothing to my database.

Heres my query:

mysql_query("INSERT INTO dc_donations (transaction_id,amount,original_request) VALUES (".$randomID.",".(float)$_POST['amount'].",'demo donation')");

Also, a query below it works perfectly.. So connection is fine.

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2  
try adding or die(mysql_error()) just before ; –  genesis Jul 17 '11 at 20:25
    
wrap you values in ' '. 'value'. –  Dremation Jul 17 '11 at 20:26
3  
Or, even better than wrapping values in '', use prepared statements –  cspray Jul 17 '11 at 20:27

3 Answers 3

up vote 1 down vote accepted

Is this PHP?

mysql_query("INSERT INTO dc_donations (transaction_id,amount,original_request) VALUES (".$randomID.",".(float)$_POST['amount'].",'demo donation')");

I'd recommend not inserting from the post, but have you tried

echo mysql_error();

? that should be enlightening.

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What is the type of your variables? I presume it's int, float and char(n), respectively? Try removing the (float), because it's not necessary in PHP. Also, go with @genesis's suggestion of adding "or die(mysql_error())".

On a side note, make sure you properly escape the $_POST variables.

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Try replace your code with (it will give you answer)

mysql_query("INSERT INTO dc_donations (transaction_id,amount,original_request) VALUES (".$randomID.",".(float)$_POST['amount'].",'demo donation')") or die(mysql_error());
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