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I have table with weather statistics eg:

----------------------
| day | temp | falls |
|-----|------|-------|
|  1  |  12  |   30  |
|  2  |  18  |    0  |
|  3  |  13  |   10  |
----------------------

and I want to find day, which is most similar:

Today: 14°C, 0mm falls
Most similar day: 3

Is this possible to achieve it in MySQL only?

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Please define similar.. – Iswanto San Oct 31 '13 at 8:40
    
Very interesting. Any attempts so far? – Hanky Panky Oct 31 '13 at 8:41
up vote 1 down vote accepted

You can check absolute differences between both factors, add them, and search for the lowest sum possible.

But You need to define similar more precisely.

Let's say temperature is twice more important than falls, you'll give a factor 2 to temp, and a factor 1 to falls. Then use this kind of query :

SELECT day 
FROM weather 
ORDER BY (
    2 * ABS(temp - 14) 
  + 1 * ABS(falls - 0)
) ASC
LIMIT 1
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I really didn't think about factor, it's really good improvement and it works like a charm. Thank you zessx and Paul Draper – Tomasz Oct 31 '13 at 8:56
    
I feel obligated to point out that this query does not select day 3. – Paul Draper Oct 31 '13 at 8:58
    
The goal was to explain how to use factors in this situation. Settings these factors return to @Tomasz – zessx Oct 31 '13 at 9:07

I am assuming "similar" refers to similar temperature and similar falls.

 SELECT day FROM weather ORDER BY ABS(temp - 14) + .2 * ABS(falls - 0) LIMIT 1

Though ABS(temp - 14) + .2 * ABS(falls - 0) can be adjusted. Hear, the difference in falls (mm) is weighted less than the difference in temp (C).

For example, if we instead used ABS(temp - 14) + ABS(falls - 0), day two would be chosen.

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