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I'm attempting to find a way to count the end of an integer and display the trailing value. For example, I have the following table:

CREDIT
======
1051000
10000
2066
16000

I'd like to be able to count the amount of times '0' appears and end up with a result like the following

CREDIT              CntOccuranceVals
======              ======
1051000             3
10000               4
2066                0
16000               3

Now I have tried using a query that will find all of the '0', but the problem I'm facing is for the first row it returns 4 instead of three as it is searching the whole row and not the trailing. This is what I've tried using to find the occurrence count

DECLARE @LongSequence INT(MAX)
DECLARE @FindSubString INT(MAX)
SET @LongSequence = CREDIT
SET @FindSubString = '0'
SELECT (LEN(@LongSequence) - LEN(REPLACE(@LongSequence, @FindSubString, '')))     CntReplacedVals,
(LEN(@LongSequence) - LEN(REPLACE(@LongSequence, @FindSubString, '')))/LEN(@FindSubString) CntOccuranceVals

Is there a way I can find only the trailing 0's and not the ones in the middle of the value?

EDIT: typo

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1  
In your example, Why is 1 the answer to 10000? There are 4 trailing 0's. Shouldn't answer be 4? –  dcp Sep 24 '13 at 18:59
    
Sorry yes, that was a typo. It is indeed meant to be 4 –  xalx Sep 24 '13 at 19:01

1 Answer 1

up vote 7 down vote accepted

You could use Reverse and Patindex like this:

Declare @a Table (i int)
insert into @a
Select 123000
union
Select 123001
union
Select 100000
union
Select 123001

Select i, PatIndex('%[1-9]%',Reverse(Cast(i as Varchar(50)))) - 1  as  CntOccuranceVals
from @a
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1  
Can also use '%[^0]%' –  Martin Smith Sep 24 '13 at 19:07
1  
+1 beat me in a second :) - sqlfiddle.com/#!3/48e5d/5 –  Roman Pekar Sep 24 '13 at 19:08
2  
And to demostrate the point @MartinSmith has made, here is another fiddle –  GarethD Sep 24 '13 at 19:10
    
Thanks a lot guys, I believe this has pretty much got me sorted out :) –  xalx Sep 24 '13 at 19:20

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