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how can i get the result in just one query instead of this one:

SELECT SUM(`quantity`) as type0 FROM `fruits_delivery` 
    WHERE `fid`='1001' AND `type`=0;

result_1 = type0 ;

SELECT SUM(`quantity`) as type1 FROM `fruits_delivery`  
    WHERE `fid`='1001' AND `type`=1;

result_2 = type1 ;

final_result = result_1 - result_2;

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2 Answers 2

up vote 8 down vote accepted

You should use this

SELECT sum(IF(`type`=0, `quantity`, 0))-sum(IF(`type`=1, `quantity`, 0)) 
        AS    `final_result` 
        FROM   `fruits_delivery` 
        WHERE  `fid` = '1001' 

sqlfiddle


Old Answer

SELECT T1.result - T2.result AS `final_result` 
FROM   (SELECT Sum(`quantity`) AS result, 
               `fid` 
        FROM   `fruits_delivery` 
        WHERE  `fid` = '1001' 
               AND `type` = 0 
        LIMIT  1) AS T1 
       JOIN (SELECT Sum(`quantity`) AS result, 
                    `fid` 
             FROM   `fruits_delivery` 
             WHERE  `fid` = '1001' 
                    AND `type` = 1 
             LIMIT  1) AS T2 
         ON ( T1.fid = T2.fid ) 

SQLFiddle

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hi, thanks for the reply but i get the #1054 - Unknown column 'T1.result' in 'field list' error.. –  alisongaleon Dec 31 '12 at 3:32
    
@alisongaleon, Yeah. the SQL formatter changed it. I have updated. Try again –  shiplu.mokadd.im Dec 31 '12 at 3:34
    
it now works..,thank you so much :D –  alisongaleon Dec 31 '12 at 3:36
    
this can be simply done using CASE, not by using two subqueries and joining them. –  John Woo Dec 31 '12 at 3:37
    
Thanks @JW. I have added an IF version which is even shorter and appropriated. –  shiplu.mokadd.im Dec 31 '12 at 3:39

Alternatively, you can also do it using CASE

SELECT  SUM(CASE WHEN type = 0 THEN quantity ELSE 0 END) -
        SUM(CASE WHEN type = 1 THEN quantity ELSE 0 END)
          AS final_result
FROM    fruits_delivery
WHERE   fid = '1001'
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2  
+1. for answering the shorter version first before the update made by the accepted answer! –  Pedigree Dec 31 '12 at 3:48

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