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I want to count number between say 56,80,95 and 108 from a column of my table where i have stored digits seperated with a ",". Now, I want to count the primary id's of the columns which contains any of the above number using like or some other way. I tried using like as below:

SELECT COUNT(DISTINCT(ID)) FROM TABLE_NAME WHERE COL_NAME LIKE "%56%" OR '%80%'

SELECT COUNT(DISTINCT(ID)) FROM TABLE_NAME WHERE COL_NAME LIKE ("%56%" OR '%80%')

NON OF THIS WORKS

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Can you elaborate your question? and from your query I am guessing you have stored the column name with numbers? –  ThinkingMonkey Jan 3 '12 at 10:46
2  
NON OF THIS WORKS --- BREAKING NEWS!!! –  zerkms Jan 3 '12 at 10:46
    
Don't guess, just run select "%56%" OR '%80%'. You'll see it's zero (boolean false). The LIKE operator expects a string, not a boolean. –  Álvaro G. Vicario Jan 3 '12 at 11:02

3 Answers 3

up vote 3 down vote accepted

you can do

SELECT COUNT(DISTINCT(ID)) FROM TABLE_NAME WHERE COL_NAME LIKE "%56%" OR COL_NAME LIKE '%80%'

refer example queries

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an d what if have have lot of digits to compare say 50 different digit to compare?? den should i write all the digits as above?? –  user1045373 Jan 3 '12 at 10:51
SELECT COUNT(ID) FROM TABLE_NAME WHERE COL_NAME LIKE "%56%" OR COL_NAME LIKE '%80%'

Maybe?

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ups... answered already while I type this? :) –  sverdianto Jan 3 '12 at 10:51
SELECT count(*) 
FROM  `table` 
WHERE FIND_IN_SET( col_name,  '56,80,95' ); 
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