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Let's say I want to retrieve 100 records from a table called messages, and I want to obtain them the following way:

1st message
100th message
2nd message
99th message
3rd message
98th message
(...)

Is there any way to do this efficiently? What would be the appropriate query? Or should I make a query to select the first 50, a query to select the last 50 and then merge the results?

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This is one case where I would probably make two queries and merge them in application code. It can probably be done in one query by creating row numbers and using a very clever conditional ORDER BY, but would be a lot easier to do in application code. –  Michael Berkowski Dec 3 '11 at 22:56
    
Yeah, I thought the same... Probably it's easier/more efficient to do it with two different queries and merge their results in the code –  fedeetz Dec 3 '11 at 23:00
    
I would definitely wait to see if someone here can produce an ingenious solution. There are some pretty clever folks around here. –  Michael Berkowski Dec 3 '11 at 23:06
    
do you know the number of records that you want to retrieve in advance ? is it always 100 ? –  A.J. Dec 3 '11 at 23:30
    
please include the ORDER logic, always order by add_date desc? –  ajreal Dec 3 '11 at 23:58

3 Answers 3

up vote 2 down vote accepted

Try if your ID is a sequence of numbers:

First

SET @half = (SELECT MAX(id) FROM messages)/2;

Then

SELECT * FROM `messages` ORDER BY (IF(id<@half,@half*2-id,id-1)) DESC,id ASC;
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for the limit of 100, trivial LIMIT 100 at end of query... –  Paulo H. Dec 3 '11 at 23:48
    
The ASC at the end, should be DESC. Aside from that, this works perfectly and it's the simplest solution of all these. Thanks! –  fedeetz Dec 4 '11 at 17:43
    
A bit too late to ask... but what if, instead of orderning by id I'm ordering by timestamp (using UNIX_TIMESTAMP(timestamp))? –  fedeetz Dec 5 '11 at 6:43
    
Will not work, the order are based on even and odd ID numbers and the timestamp not is linear to adapt it... –  Paulo H. Dec 5 '11 at 12:12

The point is to create two virtual columns "serie_order" (variant) and "serie" (constant) you'll use on both parts of your data (you'll have to split your data in two).

SELECT * FROM (
  SELECT 1 as serie, message_id AS serie_order , *  FROM
   (SELECT message_id FROM messages ) as part_up
UNION 
  SELECT 2 as serie, 101-message_id  as serie_order, * FROM
   (SELECT message_id FROM messages) as part_down
) AS world

ORDER BY serie_order ASC, serie ASC
LIMIT 100
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Sadly MySQL lacks a generate_series() function. –  pilcrow Dec 3 '11 at 23:44
    
That was just used as virtual data, i edited using the op "messages" table –  131 Dec 3 '11 at 23:46
    
This is the right idea but not quite correct. The bare "*" needs to come first in SELECTs, otherwise it's a syntax error. Separately, what if "messages" has, say, 200 rows? As an aside, you don't need the innermost derived tables, as you could simply SELECT 1 AS serie, message_id AS serie_order, message_id FROM messages. –  pilcrow Dec 4 '11 at 17:57
    
You're totally right (and i should have been tired to write that :p) SELECT * FROM ( SELECT 1 as serie, message_id AS serie_order , * FROM messages ) as part_up UNION SELECT 2 as serie, - message_id as serie_order, * FROM messages ) as part_down ) AS world ORDER BY serie_order ASC, serie ASC –  131 Jul 30 '12 at 21:35
    
Should i edit my answer ? –  131 Jul 30 '12 at 21:36
set @rank:=0; 

select id from 
(select id, @rank:=(coalesce(@rank, 0)+1) as new_order 
 from a_table 
 order by some_column limit 100) as ordering
order by if (new_order<=50, new_order-1, abs(100-new_order)) asc;
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1  
Almost! "new_order" 1 and "new_order" 100 both become 0 in your ORDER BY clause, and 2 and 99 become 1, etc. How does MySQL know which record to put first? You need a second ORDER BY criteria, as in this answer, to guarantee the proper output. –  pilcrow Dec 4 '11 at 4:35

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