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Given the following table

  grp |   ind |   val
----------------------
    a |     1 |     1
    a |     2 |     1
    a |     3 |     1
    a |     4 |     2
    a |     5 |     2
    a |     6 |     4
    a |     7 |     2
    b |     1 |     1
    b |     2 |     1
    b |     3 |     1
    b |     4 |     3
    b |     5 |     3
    b |     6 |     4

I need to select the following:

  grp |   ind |   val
----------------------
    a |     1 |     1
    a |     4 |     2
    a |     6 |     4
    a |     7 |     2
    b |     1 |     1
    b |     4 |     3
    b |     6 |     4

That is for each 'grp', each record where the 'val' is different to the proceeding 'val' (ordered by 'index') So each record where the 'value' "steps".

what would be the most efficient way to achieve this?

thanks.

Here is a script to create the test case:

create temp table test_table
(
    grp character varying,
    ind numeric,
    val numeric
);
insert into test_table values
    ('a', 1 , 1),
    ('a', 2 , 1),
    ('a', 3 , 1),
    ('a', 4 , 2),
    ('a', 5 , 2),
    ('a', 6 , 4),
    ('a', 7 , 2),
    ('b', 1 , 1),
    ('b', 2 , 1),
    ('b', 3 , 1),
    ('b', 4 , 3),
    ('b', 5 , 3),
    ('b', 6 , 4);
share|improve this question
1  
"group" and "index" both are keywords in SQL. Better avoid them as table or column names. –  wildplasser Jul 18 '12 at 10:26
    
pseudo code above ;) –  pstanton Jul 18 '12 at 10:27
    
That's better, But I already invented my own table and columns names. –  wildplasser Jul 18 '12 at 10:51

3 Answers 3

up vote 2 down vote accepted
select grp,
       ind,
       val
from (
   select grp, 
          ind, 
          val,
          lag(val,1,0::numeric) over (partition by grp order by ind) - val as diff
   from test_table
) t
where diff <> 0;
share|improve this answer
    
Lag() is cleaner than my self-join. –  wildplasser Jul 18 '12 at 10:56
    
beautiful. thank you. –  pstanton Jul 18 '12 at 11:05
DROP SCHEMA tmp CASCADE;
CREATE SCHEMA tmp ;
SET search_path=tmp;

CREATE TABLE ztable
        ( zgroup CHAR(1)
        , zindex int
        , zvalue INTEGER
        );
INSERT INTO ztable(zgroup,zindex,zvalue) VALUES
    ('a',     1,      1)
    ,('a',     2,      1)
    ,('a',     3,      1)
    ,('a',     4,      2)
    ,('a',     5,      2)
    ,('a',     6,      4)
    ,('b',     1,      1)
    ,('b',     2,      1)
    ,('b',     3,      1)
    ,('b',     4,      3)
    ,('b',     5,      3)
    ,('b',     6,      4)
        ;

WITH agg AS (
        SELECT zgroup
        , zindex
        , zvalue
        , row_number() OVER (PARTITION BY zgroup ORDER BY zindex) AS zrank
        FROM ztable
        )
SELECT t1.zgroup,t1.zindex,t1.zvalue
FROM agg t1
LEFT JOIN agg t0 ON t0.zgroup = t1.zgroup AND 1+t0.zrank = t1.zrank
WHERE t0.zvalue <> t1.zvalue OR t0.zrank IS NULL
        ;
share|improve this answer
    
thanks for the answer, i figured i would need to use sliding windows (partition) however when i run your example the result is all rows returned (ie the full table). does it actually work for you? –  pstanton Jul 18 '12 at 10:55
    
The lag() thing by @a_horse_with_no_name above is more elegant. –  wildplasser Jul 18 '12 at 10:58
    
It works. Did you try? –  Madhivanan Jul 18 '12 at 10:59
    
Try what? I tested my own script. –  wildplasser Jul 18 '12 at 11:01
    
@wildplasser +1 thanks, maybe i did something to break it.. –  pstanton Jul 18 '12 at 11:05
select group,min(index) as index,value from table
group by group,value
share|improve this answer
    
that actually works fine .. for how i described the problem .. allow me to change the problem!! sorry i didn't include the case which makes this difficult, which is if the value decreases after it increases, i need to capture both the increase and the decrease. please see edit for more details, thanks for your answer and sorry to be confusing! –  pstanton Jul 18 '12 at 10:45
    
i gave you an vote for being correct. i still need help though so leaving this open... –  pstanton Jul 18 '12 at 10:48
    
It is not correct; it only works if value is unique or ascending wrt "index". Try adding records with index 7 and value 2 (for both a and b)to see what I mean. –  wildplasser Jul 18 '12 at 10:49
    
@wildplasser .. it was correct at the time, i edited the question to make it incorrect (apologies again) - i had mis-described my problem. –  pstanton Jul 18 '12 at 11:03

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