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I am having trouble getting an sql request to work. Without giving more details than needed,

$db_query = mysql_query(" select years,avg,best,win,top10,champs from `profile` where PLAYERID = '$monkey_id'");

works fine. However,

$db_query = mysql_query(" select * from `profile` where PLAYERID = '$monkey_id'");

doesn't return any results. The only change is that I'm trying to pull all fields instead of just those few. I'm at a loss to explain this. I taught myself all this stuff, so it's always possible I'm doing something dumb.

Edit: Here's the rest of the surrounding code:

$db_query_inside = mysql_query(" select * from `profile` where PLAYERID = $monkey_id");
$db_query = mysql_fetch_array($db_query_inside);
$years_prev = $db_query['years'];
$avg_prev = $db_query['avg'];
$best_prev = $db_query['best'];
$win_prev = $db_query['win'];
$top10_prev = $db_query['top10'];
$champs_prev = $db_query['champs'];

Edit again: Still don't know why it wouldn't work with *, but I just got what I needed done by listing the specific fields. It doesn't end up with any sort of error that can be gleaned from

die(mysql_error())

so I'm just giving up and working on stuff that reacts rationally.

share|improve this question
    
query seems fine. How do you fetch result from query result? –  Gaurav Mar 30 '11 at 1:22
    
If the only thing you changed is replace fields to * then it is not possible. –  zerkms Mar 30 '11 at 1:23
    
Show some more code, it's probably the way you're building the array. –  luckytaxi Mar 30 '11 at 1:24
2  
That's funny, the first query shouldn't work, because you have a field "avg" which should be quoted(it's a function-name). –  Dr.Molle Mar 30 '11 at 1:27
    
is $monkey_id an integer or string? –  luckytaxi Mar 30 '11 at 1:28

2 Answers 2

Why not try:

$db_query = mysql_query(" select `profile` where PLAYERID = '$monkey_id'");
share|improve this answer
    
Or: $db_query = mysql_query(" select profile where PLAYERID = '$monkey_id'"); –  catsgirl008 Mar 30 '11 at 1:27
    
Don't you need to ask for some fields? I don't know what's going on, because literally all I need to do to make it work is replace the * with field names. –  Daniel Mar 30 '11 at 3:08
    
That's mistaken. It's missing the field list and the FROM keyword. –  Jared Farrish Mar 30 '11 at 3:20

Let's do this, modify the following line to reflect below. See what the error says, if any. I tried it myself (your code) and it seems to work fine.

$db_query_inside = mysql_query(" select * from `profile` where PLAYERID = $monkey_id") or die(mysql_error());
share|improve this answer
    
This is the weird thing - it doesn't show an error. It just doesn't come up with anything. I guess it sees the result as just a null resource result or something. –  Daniel Mar 31 '11 at 0:48

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