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I have a search query which yields a resultset based on input parameters and the result can be sorted (ASC/DESC) based on different parameters: price, duration etc (with pagination in place and limit of 10 records)

I now have a requirement wherein, if I have an id passed in, I'd like the corresponding record to be made to sticky at the top in the given resultset.

Lets say we have a package table like this:

Package
 - id
 - name
 - mPrice
 - vPrice
 - duration

// Searching pkg based on Price (in DESC order) where name = Thailand
sqlQuery = 
"SELECT p.id, p.name, p.mPrice, p.vPrice FROM package p 
WHERE p.name = LOWER('Thailand') 
ORDER BY (p.mPrice + p.vPrice) DESC 
LIMIT 10"

Let's assume the complete resultset is 20 records with ids 1 to 20. I'm now required to return record with id 14 to always be at the top. I came up with the following query, but this isn't working:

sqlQuery = 
"SELECT p.id, p.name, p.mPrice, p.vPrice FROM package p 
WHERE p.name = LOWER('Thailand') or p.id = 14
ORDER BY CASE 
WHEN p.id=14 then 0 
else (p.mPrice + p.vPrice) 
end DESC 
LIMIT 10"

My guess as to why this is not working: After order by clause, the resultset is sorted in descending order, which is then truncated at 10 records. The record with id=14 may not be a part of this truncated set. Is this correct ?

How do I get record with id=14 to stick at the top ?

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3 Answers 3

up vote 8 down vote accepted
ORDER BY (p.id=14) DESC, (p.mPrice = p.vPrice) DESC

Using p.id=14 as first sort-criteria should bring it to the top.

I find this easier to read than the UNION, and it might perform better.

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Very cool! Should've thought of this. However, this did not work when I tried sorting it with ASC and I'm not sure why. ORDER BY (p.id=14) ASC, (p.mPrice = p.vPrice) ASC –  brainydexter Aug 6 '12 at 7:24
1  
p.id=14 returns 1 if the condition is true, 0 otherwise. Sorting ascending puts the 0 first, so the one you want comes last... –  Peter Lang Aug 6 '12 at 7:25
    
Aha! Great. I'll just flip equality operator to id based on ASC/DESC . Do you have any ideas if this might perform better than UNION ? –  brainydexter Aug 6 '12 at 7:29
    
Also, with your suggestion, I don't need to use the OR condition in my where clause, WHERE p.name = LOWER('Thailand') or p.id = 14 => WHERE p.name = LOWER('Thailand'), correct ? –  brainydexter Aug 6 '12 at 7:31
1  
I would expect this to perform better than the UNION, but you should try this with your data. If you always want to show the record with p.id=14 even if its name is not thailand, then the OR is required to make sure the record is in the list. If you only want it on top if it is thailand, then remove the OR. The ORDER BY clause can only sort the data returned by your query, it won't produce additional records. –  Peter Lang Aug 6 '12 at 7:38

Use a union to always have your package at top:

SELECT id, name, mPrice, vPrice FROM package WHERE id = 14
UNION
SELECT p.id, p.name, p.mPrice, p.vPrice FROM package p 
WHERE p.name = LOWER('Thailand') or p.id = 14
ORDER BY (p.mPrice = p.vPrice) DESC
LIMIT 9
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1  
UNION ALL is faster than UNION operation. –  Omesh Aug 6 '12 at 7:17
    
But you don't want to have the id 14 at top and once more in the "body" –  Matten Aug 6 '12 at 7:19

try this:

order by 
 case when p.id=14 then then (select MAX(mPrice)+1 from package ) else
(p.mPrice = p.vPrice)  end desc
LIMIT 10

Instead of (select MAX(p.mPrice)+1 from package ) you can give a constant value which would be always a maximun value, something like this

 order by 
 case when p.id=14 then then 1000000 else
(p.mPrice = p.vPrice)  end desc
LIMIT 10

which would be more effitient

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Can you please explain what you are doing in that expression ? –  brainydexter Aug 6 '12 at 7:06
    
@brainydexter: I am just getting the maximum value+1 for price , so that it will always be at the top –  Joe G Joseph Aug 6 '12 at 7:08

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