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A)$getDetails = mysql_query("SELECT * FROM `OnlineRequests` WHERE `OSR_CODE`='".$code."'");

B)$getDetails = mysql_query("SELECT * FROM `OnlineRequests` WHERE `OSR_CODE`='oooqhqxrcglm3jn6xd2lseq43nb3cq'");    

It's PHP. B works but A doesn't. WHY? Syntax error? I feel like I've tried everything possible...

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closed as primarily opinion-based by mario, Hamish, Ram kiran, andrewsi, juergen d Mar 2 '14 at 17:53

Many good questions generate some degree of opinion based on expert experience, but answers to this question will tend to be almost entirely based on opinions, rather than facts, references, or specific expertise.If this question can be reworded to fit the rules in the help center, please edit the question.

    
what's the error being thrown? – John Woo Nov 12 '12 at 1:05
    
Lack of database escaping? Did you check mysql_error()? – mario Nov 12 '12 at 1:05
    
No error thrown! – Ishikawa Nov 12 '12 at 1:05
    
possible duplicate of Best way to prevent SQL injection? – mario Nov 12 '12 at 1:06
    
But sometimes I got "supplied argument is not a valid MySQL result resource" – Ishikawa Nov 12 '12 at 1:06
up vote 0 down vote accepted

When I do MySQL Queries I don't use OSR_CODE=".$random_variable." I use OSR_CODE='$random_variable' so just use quotes around it opposite of the containing quotes, see if that works. Just a suggestion, works for me.

Edit: Try $getDetails = mysql_query("SELECT * FROMOnlineRequestsWHEREOSR_CODE='.$code.'"); ??

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Thanks but doesn't work... – Ishikawa Nov 12 '12 at 1:20
1  
Normally in situations like this it's something obvious, this kind of stuff happens to me all the time. Check the variable name, check everything that goes into the variable. Also try to turn some error reporting on. – NardCake Nov 12 '12 at 1:27
    
Negative for the edit – Ishikawa Nov 12 '12 at 1:47
    
GASP! That was it, it was something that went into the variable, something really stupid. I feel like an idiot because I've been trying for hours... – Ishikawa Nov 12 '12 at 1:53
    
Ha! It's cool it happens to all of us! – NardCake Nov 12 '12 at 2:01

To make A work, use

$getDetails = mysql_query("SELECT * FROM `OnlineRequests` WHERE `OSR_CODE`=\"$code\"");

The problem is the single quotes.

share|improve this answer
    
Nope, single quotes are for SQL strings. MySQL also supports double quotes, but only if it runs in non-ansi mode. – mario Nov 12 '12 at 1:09
    
I think that should work.Because of the single quotes,the value of $code is not substituted. – Works On Mine Nov 12 '12 at 1:14
    
Doesn't do the trick – Ishikawa Nov 12 '12 at 1:23
    
$getDetails = mysql_query("SELECT * FROM OnlineRequests WHERE OSR_CODELIKE \"$code\""); Another Try from my side – Works On Mine Nov 12 '12 at 1:31

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