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I have an sql column that is a string of 100 'Y' or 'N' characters. For example:

YYNYNYYNNNYYNY...

What is the easiest way to get the count of all 'Y' symbols in each row.

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Can you specify the platform? MySQL, MSSQl, Oracle? – Vincent Ramdhanie Dec 7 '09 at 14:58
up vote 57 down vote accepted

if ms sql

SELECT LEN(REPLACE(myColumn, 'N', '')) FROM ...
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2  
Very clever solution! – cindi Dec 7 '09 at 14:58
9  
Just be aware that if there are more than "N" or "Y" in the string then this could be inaccurate. See nickf's solution for a more robust method. – Tom H Dec 7 '09 at 15:28
    
i really appreciate your solution :) – efatihan Jan 4 '15 at 21:02

This snippet works in the specific situation where you have a boolean: it answers "how many non-Ns are there?".

SELECT LEN(REPLACE(`col`, 'N', ''))

If, in a different situation, you were actually trying to count the occurrences of a certain character (for example 'Y') in any given string, use this:

SELECT LEN(col) - LEN(REPLACE(col, 'Y', ''))
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11  
The second one is the best answer here. All the rest rely on the peculiar situation of the string containing only two different characters. – Steve Bennett Jan 17 '13 at 1:05
5  
Just a note: in T-SQL, you'll need to use LEN rather than LENGTH. – Luke Jul 30 '13 at 15:51
    
@Luke - I edited nickf's original to fix it. – jasonk Jan 27 '14 at 19:48
1  
@nickf SQL len function trims trailing spaces so if you were looking for how many occurrences of a space within a string let's say 'Hello ' you would get 0. Easiest way would be to add a trailing character to the string before and adjust len like so. SELECT LEN(col + '~') - LEN(REPLACE(col, 'Y', '') + '~') – domenicr Sep 23 '15 at 18:10
    
If you're concerned about trailing spaces, use the DATALENGTH function instead. – StevenWhite Nov 10 '15 at 17:02
DECLARE @StringToFind VARCHAR(100) = "Text To Count"

SELECT (LEN([Field To Search]) - LEN(REPLACE([Field To Search],@StringToFind,'')))/COALESCE(NULLIF(LEN(@StringToFind), 0), 1) --protect division from zero
FROM [Table To Search]
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+1 This enhances the second suggestion by @nickf so that it will actually tell you the number of instances of a string even if the string you're looking for is more than 1 character – Kevin Heidt Mar 6 '14 at 15:29
    
@domenicr's edit has broken this answer and my edit was rejected. The division should be by LEN(@StringToFind). – Jamie Kitson Nov 19 '15 at 12:34
    
@jamiek apologies I have submitted corrected code, but don't know why your edit was rejected. – domenicr Nov 20 '15 at 20:39
    
@domenicr You should revert to the original code, your edit complicates the code to no purpose, @StringToFind is never going to be null or empty. – Jamie Kitson Nov 25 '15 at 12:43
    
@JamieKitson I see otherwise. Checking for a division by zero is a principle of best practices. Also, counting the number of spaces in Field To Search would get a division by zero because Len(' ') returns zero. – domenicr Nov 25 '15 at 19:11

This gave me accurate results every time...

This is in my Stripes field... Yellow,Yellow,Yellow,Yellow,Yellow,Yellow,Black,Yellow,Yellow,Red,Yellow,Yellow,Yellow,Black

  • 11 Yellows
  • 2 Black
  • 1 Red
SELECT (LEN(Stripes) - LEN(REPLACE(Stripes, 'Red', ''))) / LEN('Red') 
  FROM t_Contacts
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Maybe something like this...

SELECT
    LEN(REPLACE(ColumnName, 'N', '')) as NumberOfYs
FROM
    SomeTable
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The easiest way is by using Oracle function:

SELECT REGEXP_COUNT(COLUMN_NAME,'CONDITION') FROM TABLE_NAME
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try this

declare @v varchar(250) = 'test.a,1  ;hheuw-20;'
-- LF   ;
select len(replace(@v,';','11'))-len(@v)
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Here's what I used in Oracle SQL to see if someone was passing a correctly formatted phone number:

WHERE REPLACE(TRANSLATE('555-555-1212','0123456789-','00000000000'),'0','') IS NULL AND
LENGTH(REPLACE(TRANSLATE('555-555-1212','0123456789','0000000000'),'0','')) = 2

The first part checks to see if the phone number has only numbers and the hyphen and the second part checks to see that the phone number has only two hyphens.

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What does this question have to do with phone numbers? It's also asking for a T-SQL solution... – Ben Feb 5 '15 at 20:59

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