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I have read a thread on this but when I tried it I can`t manage to make it work. I want to count all the male and females from a table like so:

Select 
count(case when substr(id,1, 1) in (1,2) then 1 else 0 end) as M, 
count(case when substr(id,1, 1) in (3,4) then 1 else 0 end) as F 
from users where activated=1

The ideea is that a user having an id starting with 1 or 2 is male
My table has 3 male entries and 2 are activated and it returns (the case statement doesn`t work)

M,F
2,2

Any input would be appreciated

id    activated
123   1
234   0
154   1
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1  
could you show some id samples, telling which are males and which females ? –  Raphaël Althaus Oct 12 '12 at 8:13
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3 Answers 3

up vote 4 down vote accepted

You should use SUM instead. COUNT will count all non null values.

Select 
SUM(case when substr(id,1, 1) in (1,2) then 1 else 0 end) as M, 
SUM(case when substr(id,1, 1) in (3,4) then 1 else 0 end) as F 
from users where activated=1
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I have to wait to mark as accepted answer thanks –  KA_lin Oct 12 '12 at 8:17
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COUNT will give you the number of non-null values, whatever they are. Try SUM instead.

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Thank you as well –  KA_lin Oct 12 '12 at 8:18
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If your Oracle version is 10g or later, as an alternative, you can use regexp_count function. I assume that the ID column is of number data type, so in the example it explicitly converted to varchar2 data type using TO_CHAR function. If the data type of the ID column is varchar2 or char then there is no need of any type of data type conversion.

Here is an example:

SQL> create table M_F(id, activated) as(
  2    select 123,   1 from dual union all
  3    select 234,   0 from dual union all
  4    select 434,   1 from dual union all
  5    select 154,   1 from dual
  6  );

Table created

SQL> select sum(regexp_count(to_char(id), '^[12]')) as M
  2      ,  sum(regexp_count(to_char(id), '^[34]')) as F
  3    from M_F
  4   where activated = 1
  5  ;

         M          F
---------- ----------
         2          1

Demo

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Thank you for you`r input on this matter, I choose xdazz's answer (too bad one can`t choose multiple )because I am a man of my word, also I didn`t knew the regexp_count() function, verry nice :) –  KA_lin Oct 12 '12 at 10:20
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