32

I have these queries :

SELECT COUNT(*) FROM t_table WHERE color = 'YELLOW';
SELECT COUNT(*) FROM t_table WHERE color = 'BLUE';
SELECT COUNT(*) FROM t_table WHERE color = 'RED';

Is there any way to get these results in one query?

1
54
SELECT color, COUNT(*) FROM t_table GROUP BY color
3
  • 3
    if the table has more colors, query above returns all colors, not just the 3 selected – AdrianBR Sep 27 '13 at 10:06
  • 16
    @AdrianBR: That's taking the question rather literally, and failing to see through to the actual underlying problem. – eggyal Sep 27 '13 at 10:16
  • 8
    @eggyal SELECT color, COUNT(*) FROM t_table WHERE color IN ('YELLOW', 'BLUE', 'RED') GROUP BY color – josephdpurcell Dec 10 '13 at 19:21
49

If you want the result to be in one row you can use:

SELECT
    SUM(IF(color = 'YELLOW', 1, 0)) AS YELLOW,
    SUM(IF(color = 'BLUE', 1, 0)) AS BLUE,
    SUM(IF(color = 'RED', 1, 0)) AS RED
FROM t_table

Working example

7
  • 7
    Or just SUM(color='YELLOW') etc. – eggyal Sep 27 '13 at 9:37
  • 1
    @eggyal Yes, but it is hard to see what is going on here and you cannot choose to count with weights like SUM(IF(color = 'YELLOW', 0.75, 0)). – eisberg Sep 27 '13 at 9:39
  • Thanks for this one. And the weight thing can be useful also. – TrtG Sep 27 '13 at 10:00
  • Actually, if you want to return an array with counts for each color, this solution is a better fit. – man Oct 14 '14 at 10:53
  • Great answer. This is better than the accepted one because sometimes you do not have something that can be grouped. (like when query with different time ranges.) – Yang Hu Oct 26 '15 at 17:57
9
SELECT 'yellow' as color ,COUNT(*) FROM t_table WHERE color = 'YELLOW'
union
SELECT 'blue' , COUNT(*) FROM t_table WHERE color = 'BLUE'
union
SELECT 'red',COUNT(*) FROM t_table WHERE color = 'RED';

or

select color, count(*) from table where color in ('red', 'blue', 'yellow') group by 1
1
  • 2
    you accepted the only incorrect answer as to your request. your accepted answer returns all colors, not just the 3 you selected. – AdrianBR Sep 27 '13 at 10:07
1

I think this can also works for you

select count(*) as anc,(select count(*) from Patient where sex='F')as 
        patientF,(select count(*) from Patient where sex='M') as patientM from anc

you can also even select and count related tables like this

select count(*) as anc,(select count(*) from Patient where 
    Patient.Id=anc.PatientId)as patientF,(select count(*) from Patient where
    sex='M') as patientM from anc
0

You can do this using subquery.

SELECT(
    SELECT COUNT(*) FROM t_table WHERE color = 'YELLOW',
    SELECT COUNT(*) FROM t_table WHERE color = 'BLUE',
    SELECT COUNT(*) FROM t_table WHERE color = 'RED'
);
4
  • 1
    It appears you need parenthesis around the nested SELECT statements, at least in PostgreSQL. – Paul Go May 19 '17 at 16:09
  • 2
    are you sure this is one query?!! – Ali Sherafat Sep 6 '17 at 7:49
  • yeah @AliSherafat – Faisal Sep 6 '17 at 17:31
  • @Faisal If I need to write similar query to update the 1 table from another table with when then, how it can be done. – Anirudha Gupta Jun 2 '18 at 5:47
0

This is my answer: Este Ejemplo SQL Indica la cantidad de un Grupo y Suma los encontrado con S y N por separado. Se que no es la Respuesta pero puede ser usado para otros casos. Bendito sea Israel.

SELECT sm_med_t_servicios.id as identidad, count(sm_adm_t_admision.id) as cantidad , 
SUM(IF(sm_adm_t_admision.atendido = 'S', 1, 0)) AS atendidos,
SUM(IF(sm_adm_t_admision.atendido = 'N', 1, 0)) AS por_ver

FROM sm_med_t_servicios 
LEFT JOIN sm_adm_t_admision ON sm_med_t_servicios.id = sm_adm_t_admision.sm_med_t_servicios_id
WHERE sm_med_t_servicios.m_empresas_id = '2'
GROUP BY sm_med_t_servicios.id

I hope this helps you.

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