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Database: tennis, ie a tennis club.

Table discussed: penalties

Columns: paymentno, amount, playerno

Task:

  • Classify the penalty amounts as high, medium, low - Done !
  • Then, count the number of penalties in low category - Need help.

How do I do part 2 without using a count function ? Is this possible ?

SQL query for 1:

use tennis;

select tennis.penalties.paymentno, 
       tennis.penalties.amount, 
       tennis.penalties.playerno,
       case 
         when playerno >= 0 and  playerno <= 40 then 'low'
         when playerno > 40 and  playerno < 80 then 'medium'
         when playerno > 80 then 'high'
       end
from tennis.penalties;

Thanks.

share|improve this question
1  
OK. I ask because "don't use COUNT()" looks like a stupid professor trick to me. Why in the name of Dennis Ritchie and Jon Postel would you try to do something the hard way in SQL when the easy way is, well, easy? –  Ollie Jones Jul 4 '12 at 0:21
    
@Ollie Jones: what is the easy way with count()? I'm sure it's not easier than the solution with sum() –  zerkms Jul 4 '12 at 0:23

1 Answer 1

SUM(playerno >= 0 and playerno <= 40) AS count_penalties_in_low

or

SUM(CASE WHEN playerno >= 0 and playerno <= 40 THEN 1 ELSE 0 END) AS count_penalties_in_low

So technically you summarize 1s, which in fact equals to count

PS:

playerno >= 0 and  playerno <= 40

can be rewritten to

playerno BETWEEN 0 AND 40

PPS:

playerno = 80 isn't covered by any condition

PPPS: I'd write that case in this way:

   case 
     when playerno <= 40 then 'low'
     when playerno <= 80 then 'medium'
                         else 'high'
   end

PPPPS: the solution without functions (concept)

SELECT @I:=@I+1, other_columns FROM table, (SELECT @I:=0) x

and having @I you can count what you want

But it is terrible solution in this case

share|improve this answer
    
I will try this soon. But my textbook has not mentioned any functions yet. So, is there a way to do it without any functions ? –  Master Jul 4 '12 at 0:24
    
@user1499832: yep, there is a way –  zerkms Jul 4 '12 at 0:25
    
wow ! can you explain the last solution ? Its new to me. I know that the @XXXX is a user varibale. –  Master Jul 4 '12 at 0:33
1  
@user1499832: (SELECT @I:=0) x is a nested query, which returns one line and joins to the table. After that on each row expression @I:=@I+1 is evaluated. Which: a) increments the value b) returns the new value –  zerkms Jul 4 '12 at 0:38

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