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How can I count number of occurrences of the character - in a varchar2 string?

Example:

select XXX('123-345-566', '-') from dual;
----------------------------------------
2
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7 Answers 7

up vote 17 down vote accepted

Here you go:

select length('123-345-566') - length(replace('123-345-566','-',null)) 
from dual;
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REGEXP_COUNT should do the trick:

select REGEXP_COUNT('123-345-566', '-') from dual;
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1  
Only supported in Oracle 11. Nice solution though. –  Flukey Nov 17 '11 at 15:22
    
+1 it is good to know that there is a REGEXP_COUNT function as well. –  bpgergo Nov 17 '11 at 15:23
    
Shame. Didn't notice the OP was on 10g –  Borodin Nov 17 '11 at 15:23

Here's an idea: try replacing everything that is not a dash char with empty string. Then count how many dashes remained.

select length(regexp_replace('123-345-566', '[^-]', '')) from dual
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+1 very nice solution –  Flukey Nov 17 '11 at 15:19
SELECT {FN LENGTH('123-345-566')} - {FN LENGTH({FN REPLACE('123-345-566', '#', '')})} FROM DUAL
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You should also provide some explanation to your code. –  brimborium Oct 31 '12 at 16:36

here is a solution that will function for both characters and substrings:

select (length('a') - nvl(length(replace('a','b')),0)) / length('b') from dual

where a is the string in which you search the occurrence of b

have a nice day!

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I thought of

 SELECT LENGTH('123-345-566') - LENGTH(REPLACE('123-345-566', '-', '')) FROM DUAL;
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Both the offered regexp and replace options do wonderfully. If it is a high-volume transaction though, you might want to benchmark which works faster. In Oracle 10, replace is generally the faster option but your mileage may vary.

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