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I have troubles with doing such sql query for mysql db: I need to update field A in my db, but also i have B field, which contains much data, for example:

ASIAN HORSE 70з рус 600A (261x175x220)

or

Бэрен polar 55/59з (555112) 480A (242x175x190) 

i must fetch 70з and set it in field A, and 55/59з same (but for another record).

But how can i search in B field something what end's with з but is word (not all data as % before з)

I know, that it could sound like homework... but i real don't know ho to select only word with some end...

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up vote 1 down vote accepted

The MySQL function substring_index can be used to select pieces of a string delimited by something. For example this picks out the third "word" from MyColumn:

select substring_index(substring_index(MyColumn, ' ', 3), ' ', -1) from MyTable

(70з is the third "word" in ASIAN HORSE 70з рус 600A (261x175x220).)

Update If instead of the third word you are looking for the "word" that ends with 'з', you can use:

select substring_index(substring_index(MyColumn, 'з', 1), ' ', -1) from MyTable

This will consider 'з' as the delimiter though, and removes it from the result. You can add it back with concat:

select concat(substring_index(substring_index(MyColumn, 'з', 1), ' ', -1), 'з') from MyTable
share|improve this answer
    
but what, when it is not third? it could be third-fifth – PavelBY Dec 8 '12 at 18:08
    
Then use 'з' in the inner substring_index instead of a space, or does that vary as well? Then concatenate 'з' to the result. – Joni Dec 8 '12 at 18:28
    
em, what)) write in code what you mean – PavelBY Dec 8 '12 at 19:47
    
See update. (this comment is long enough for stackoverflow) – Joni Dec 9 '12 at 0:59

If you are trying to parse the field so the third value always goes into a particular field, then you have a hard problem and probably want to create a user-defined function.

However, if you just want to see if 70з is present and set another field, then this should work:

update t
    set B = '70з'
    where A like '% 70з' or A like '% 70з %' or A like '70з %' or A = '70з'

This uses spaces to define the word boundaries and considers whether the string is at the beginning, in the middle, at the end, or the entire value in A.

share|improve this answer
    
also it is not only 70з... it could be other values... also not on the third position... but field must contain for example 70з – PavelBY Dec 7 '12 at 19:26

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