60

I am working in SQL Server 2008. I am trying to test whether a string (varchar) has only digit characters (0-9). I know that the IS_NUMERIC function can give spurious results. (My data can possibly have $ signs, which should not pass the test.) So, I'm avoiding that function.

I already have a test to see if a string has any non-digit characters, i.e.,

some_column LIKE '%[^0123456789]%'

I would think that the only-digits test would be something similar, but I'm drawing a blank. Any ideas?

3
  • Do you care if the string can be successfully parsed into one of the numeric types on SQL Server or not? I mean, this wouldn't be parsed, too long, but only contains digits: "9834759837459837983759837598739587398573985739875938759387593875938759387598375938759387593875938759387593875938759873495837958734985743983479837938759387593875983475" Feb 6, 2015 at 16:32
  • The answer here could be adapted to suit your need: stackoverflow.com/questions/16309072/… Feb 6, 2015 at 16:39
  • If you only need the opposite result set, just negate your where predicate: some_colum NOT LIKE '%[^0-9]%'
    – ckerth
    Feb 6, 2015 at 16:49

8 Answers 8

92

Use Not Like

where some_column NOT LIKE '%[^0-9]%'

Demo

declare @str varchar(50)='50'--'asdarew345'

select 1 where @str NOT LIKE '%[^0-9]%'
4
  • 2
    You're using a double negative. (^ negates the character class). Why not just use where some_column LIKE '%[0-9]%'?
    – jpaugh
    Jun 6, 2018 at 14:07
  • 9
    @jpaugh - Because the requirement is to find if the string has ONLY digits. Your query will return alphanumeric string as well. Jun 6, 2018 at 14:32
  • You're right! I wasn't thinking too closely about the % before and after the character class.
    – jpaugh
    Jun 7, 2018 at 3:17
  • This returns empty strings too May 25, 2022 at 17:28
19

There is a system function called ISNUMERIC for SQL 2008 and up. An example:

SELECT myCol
FROM mTable
WHERE ISNUMERIC(myCol)<> 1;

I did a couple of quick tests and also looked further into the docs:

ISNUMERIC returns 1 when the input expression evaluates to a valid numeric data type; otherwise it returns 0.

Which means it is fairly predictable for example

-9879210433 would pass but 987921-0433 does not. $9879210433 would pass but 9879210$433 does not.

So using this information you can weed out based on the list of valid currency symbols and + & - characters.

4
  • Oh geez, I only now saw this from the question: IS_NUMERIC function can give spurious results. ooops
    – Bensonius
    Feb 6, 2015 at 16:33
  • Check this to restrict IS_NUMERIC only to integer values.
    – SiZiOUS
    Feb 3, 2016 at 9:16
  • BTW, IsNumeric returns 1 (i.e. true) for strings like 1,2,3,4
    – Nir
    Nov 2, 2017 at 7:06
  • 1
    And for some reason a carriage return passes the isnumeric test
    – KeithL
    Sep 18, 2019 at 13:09
3

Solution: where some_column NOT LIKE '%[^0-9]%' Is correct.

Just one important note: Add validation for when the string column = '' (empty string). This scenario will return that '' is a valid number as well.

1
  • 2
    Your formatting seems to be incorrect, would you mind fixing this?
    – Chabo
    Feb 26, 2019 at 20:26
1

Method that will work. The way it is used above will not work.

declare @str varchar(50)='79136'

select 
  case 
    when  @str LIKE replicate('[0-9]',LEN(@str)) then 1 
    else 0 
  end

declare @str2 varchar(50)='79D136'

select 
  case 
    when  @str2 LIKE replicate('[0-9]',LEN(@str)) then 1 
    else 0 
  end
0
DECLARE @x int=1
declare @exit bit=1
WHILE @x<=len('123c') AND @exit=1
BEGIN
IF ascii(SUBSTRING('123c',@x,1)) BETWEEN 48 AND 57
BEGIN
set @x=@x+1
END
ELSE
BEGIN
SET @exit=0
PRINT 'string is not all numeric  -:('
END
END
0

I was attempting to find strings with numbers ONLY, no punctuation or anything else. I finally found an answer that would work here.

Using PATINDEX('%[^0-9]%', some_column) = 0 allowed me to filter out everything but actual number strings.

0

The selected answer does not work.

declare @str varchar(50)='79D136'
select 1 where @str NOT LIKE '%[^0-9]%'

I don't have a solution but know of this potential pitfall. The same goes if you substitute the letter 'D' for 'E' which is scientific notation.

1
  • It does not return 1, at least on my sql server. It is expected behavior because 79D136 or 79E136 is not an integer Nov 12, 2020 at 10:20
0

ITS WORKS!!!

SELECT my_field FROM my_table WHERE REGEXP_LIKE(my_field, '[^0-9]') - only with char
 SELECT my_field FROM my_table WHERE REGEXP_LIKE(my_field, '[0-9]') - only numbers
1
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    Mar 27, 2023 at 20:45

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