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I have a mysql table like

 Speed   Lat  Lon       TimeStamp
  12      1    22    2012-02-03 00:00:05
  13      2    23    2012-02-03 00:00:10
  0       3    24    2012-02-03 00:00:15
  0       3    24    2012-02-03 00:00:20
  14      4    25    2012-02-03 00:00:25
  0       5    26    2012-02-03 00:00:30
  0       5    26    2012-02-03 00:00:35
  0       5    26    2012-02-03 00:00:40
  5       6    27    2012-02-03 00:00:45
  0       6    27    2012-02-03 00:00:50

I need to select (all the records with speed != 0) + (one record from a series of records where speed == 0 ). ie i will be expecting something like

 Speed  Lat1  Lat2     Timestamp
  12      1    22    2012-02-03 00:00:05
  13      2    23    2012-02-03 00:00:10
  0       3    24    2012-02-03 00:00:15
  14      4    25    2012-02-03 00:00:25
  0       5    26    2012-02-03 00:00:30
  5       6    27    2012-02-03 00:00:45
  0       6    27    2012-02-03 00:00:45

I tried using distinct and group by for different columns.. Not working.. Please help me with a query..

Edited:

I have added time stamp field and one more record which i use for ORDER BY If i am using a group by with Lat,Lon last record wont be selected. But i need it. (The thing is if the vehicle comes back to the same latitude and longitude in another time whether it is moving or Idle) Any help will be appreciated..

share|improve this question
    
Why isn't DISTINCT working? It will give you the desired result with this example. Please give an example where DISTINCT doesn't do the trick. –  Jasny - Arnold Daniels Feb 8 '13 at 12:06
    
can you update the examples? –  John Woo Feb 8 '13 at 12:08
    
distinct does work with the sample test data given, but would not work if the test data included rows (0, 3, 24) & (0, 4, 25) rather than (0, 3, 24) & (0, 3, 24). The OP does not state clearly the problem domain. If (as one might assume) these rows are sequential and describe the speed and position of a moving object then it might also be safe to assume that sequential rows with a speed of 0 will maintain the same position. This is an assumption though, and if it were the case merely poses the problem to one of 'how do I get these rows in the correct order' –  paul Feb 8 '13 at 12:09
1  
@lintu: You say you have "a series of records" but I see no column that can be used for ordering. –  ypercube Feb 8 '13 at 12:18
    
@ypercube .. Series of same values(when speed is 0).. In the example there are two series. My mistake if it mislead u.. –  lintu Feb 8 '13 at 12:56

2 Answers 2

up vote 2 down vote accepted

Not sure what you want if you have speed non zero but duplicate rows (ie; two rows of 13, 2, 23) ? Without considering above point, you can get the expected results using a UNION DEMO (thanks @echo_me for the fiddle)

Select Speed , lat as Lat1 , Lon as Lon1 
From Table1 where speed <> 0
UNION
Select Speed , lat as Lat1 , Lon as Lon1 
From Table1 where speed = 0
Order by lat1

Or if you want duplicated non zero records you could UINON ALL with Grouped Zero records DEMO

Select Speed , lat as Lat1 , Lon as Lon1 
From Table1 where speed <> 0
UNION ALL
Select Speed , lat as Lat1 , Lon as Lon1 
From Table1 where speed = 0
Group by speed,lat1,lon1
Order by lat1
share|improve this answer
    
This is almost identical to SELECT DISTINCT Speed , lat as Lat1 , Lon as Lon1 from Table1. The only difference would be your query wouldn't include rows where speed was NULL (if there were ones). –  Andriy M Feb 8 '13 at 12:45
    
@AndriyM: OP said he tried using DISTINCT and Group By, Without seen all his data, this is a different approach, yes I understand UNION does what DISTINCT does after all... –  Kaf Feb 8 '13 at 12:49
    
This one is good information. Thanks –  lintu Feb 8 '13 at 13:20

you can try this

   SELECT Speed , lat as Lat1 , Lon as Lon1 
   FROM Table1
   GROUP BY Lat

SQL DEMO HERE

share|improve this answer
    
This one solved the issue.. Obviously i wasnt trying with the same data. I dont know what i was doing wrong.. Thanks for the reply.. –  lintu Feb 8 '13 at 13:07
    
nice that i could solve your issue –  echo_Me Feb 8 '13 at 13:08

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