62

I have data like this:

string 1: 003Preliminary Examination Plan   
string 2: Coordination005  
string 3: Balance1000sheet

The output I expect is

string 1: 003
string 2: 005
string 3: 1000

And I want to implement it in SQL.

  • 1
    so you want to make a select and extrac the numbers from the values after ":" ? – Teshte May 21 '13 at 10:02

14 Answers 14

119

First create this UDF

CREATE FUNCTION dbo.udf_GetNumeric
(
  @strAlphaNumeric VARCHAR(256)
)
RETURNS VARCHAR(256)
AS
BEGIN
  DECLARE @intAlpha INT
  SET @intAlpha = PATINDEX('%[^0-9]%', @strAlphaNumeric)
  BEGIN
    WHILE @intAlpha > 0
    BEGIN
      SET @strAlphaNumeric = STUFF(@strAlphaNumeric, @intAlpha, 1, '' )
      SET @intAlpha = PATINDEX('%[^0-9]%', @strAlphaNumeric )
    END
  END
  RETURN ISNULL(@strAlphaNumeric,0)
END
GO

Now use the function as

SELECT dbo.udf_GetNumeric(column_name) 
from table_name

SQL FIDDLE

I hope this solved your problem.

Reference

| improve this answer | |
  • 6
    This works, although it extracts and concatenates ALL numbers from the string, so e.g. /p-1544937/apartment-flat-6th-october.html will return 15449376, which is not always what you may be looking for – System24 Tech Jul 3 '14 at 14:03
  • 1
    Here is the source blog.sqlauthority.com/2008/10/14/… – Pரதீப் Nov 26 '15 at 15:36
  • 2
    It doesn't handle decimal numbers. For example input of '10.95' will return '1095' – stomy Jan 2 '18 at 18:18
  • 1
    It should really return an INT. RETURN CAST(ISNULL(@strAlphaNumeric, 0) AS INT) – stomy Jan 2 '18 at 18:19
  • 1
    @stomy that will blow up with a nice overflow error given an all-numeric 255-character string though (less than that too, actually). – Mathieu Guindon Jul 5 '18 at 19:22
46

Try this one -

Query:

DECLARE @temp TABLE
(
      string NVARCHAR(50)
)

INSERT INTO @temp (string)
VALUES 
    ('003Preliminary Examination Plan'),
    ('Coordination005'),
    ('Balance1000sheet')

SELECT LEFT(subsrt, PATINDEX('%[^0-9]%', subsrt + 't') - 1) 
FROM (
    SELECT subsrt = SUBSTRING(string, pos, LEN(string))
    FROM (
        SELECT string, pos = PATINDEX('%[0-9]%', string)
        FROM @temp
    ) d
) t

Output:

----------
003
005
1000
| improve this answer | |
  • 15
    While I am impressed with this answer and it perfectly addresses the OP's question, it should be noted that this solution will only work for contiguous series of numbers. For a string like Coor60nation005, it will return 60 and not the ending 005 – Baodad Aug 17 '15 at 15:49
  • 1
    +1 to this answer and to Baodad's comment, because this is precisely the behavior I was searching for but the accepted answer was not. – Matt Nov 27 '18 at 13:21
19

Query:

DECLARE @temp TABLE
(
    string NVARCHAR(50)
)

INSERT INTO @temp (string)
VALUES 
    ('003Preliminary Examination Plan'),
    ('Coordination005'),
    ('Balance1000sheet')

SELECT SUBSTRING(string, PATINDEX('%[0-9]%', string), PATINDEX('%[0-9][^0-9]%', string + 't') - PATINDEX('%[0-9]%', 
                    string) + 1) AS Number
FROM @temp
| improve this answer | |
  • 2
    this does not work with white space or separated numbers, but answers the question. – Vinicius Gonçalves Feb 19 '18 at 18:17
  • 1
    What is with the "string + 't' " ? – Vnge Jan 21 at 22:09
11

Please try:

declare @var nvarchar(max)='Balance1000sheet'

SELECT LEFT(Val,PATINDEX('%[^0-9]%', Val+'a')-1) from(
    SELECT SUBSTRING(@var, PATINDEX('%[0-9]%', @var), LEN(@var)) Val
)x
| improve this answer | |
  • 1
    declare @var nvarchar(max)='Balance1000sheet123' SELECT LEFT(Val,PATINDEX('%[^0-9]%', Val+'a')-1) from( SELECT SUBSTRING(@var, PATINDEX('%[0-9]%', @var), LEN(@var)) Val )x. What is the numeric is not in continuous. – Prahalad Gaggar May 21 '13 at 10:15
  • It will give the first numeric in the string. i.e. 1000 – TechDo May 21 '13 at 10:17
  • 1
    YES THE CASE MAY BE Balance1000sheet123 AS WELL – Avinash Mehta May 21 '13 at 10:19
4

With the previous queries I get these results:

'AAAA1234BBBB3333' >>>> Output: 1234

'-çã+0!\aº1234' >>>> Output: 0

The code below returns All numeric chars:

1st output: 12343333

2nd output: 01234

declare @StringAlphaNum varchar(255)
declare @Character varchar
declare @SizeStringAlfaNumerica int
declare @CountCharacter int

set @StringAlphaNum = 'AAAA1234BBBB3333'
set @SizeStringAlfaNumerica = len(@StringAlphaNum)
set @CountCharacter = 1

while isnumeric(@StringAlphaNum) = 0
begin
    while @CountCharacter < @SizeStringAlfaNumerica
        begin
            if substring(@StringAlphaNum,@CountCharacter,1) not like '[0-9]%'
            begin
                set @Character = substring(@StringAlphaNum,@CountCharacter,1)
                set @StringAlphaNum = replace(@StringAlphaNum, @Character, '')
            end
    set @CountCharacter = @CountCharacter + 1
    end
    set @CountCharacter = 0
end
select @StringAlphaNum
| improve this answer | |
  • Beware: Solutions iterating through each character typically have poor performance in T-SQL. Once I substituted similar loop which was doing simple replacements with built-in REPLACE() function and performance went up 5000% (processing became 50 times faster). In other words, this can make your query 50 times slower than it could be. Avoid loops using built-in text processing functions. In worst case, create custom text processing function in .NET and link it to SQL server. – miroxlav Feb 18 '16 at 8:59
  • Nuno, this doesn't quite work. In your WHILE loop, you test if the character is numeric and shorten the string if it is not; however, you neglect to update the @SizeStringAlfaNumerica. Otherwise, thanks! :) I'll let you update your code, though. – jp2code Feb 14 '17 at 15:01
1
declare @puvodni nvarchar(20)
set @puvodni = N'abc1d8e8ttr987avc'

WHILE PATINDEX('%[^0-9]%', @puvodni) > 0 SET @puvodni = REPLACE(@puvodni, SUBSTRING(@puvodni, PATINDEX('%[^0-9]%', @puvodni), 1), '' ) 

SELECT @puvodni
| improve this answer | |
1

I did not have rights to create functions but had text like

["blahblah012345679"]

And needed to extract the numbers out of the middle

Note this assumes the numbers are grouped together and not at the start and end of the string.

select substring(column_name,patindex('%[0-9]%', column_name),patindex('%[0-9][^0-9]%', column_name)-patindex('%[0-9]%', column_name)+1)
from table name
| improve this answer | |
1

Just a little modification to @Epsicron 's answer

SELECT SUBSTRING(string, PATINDEX('%[0-9]%', string), PATINDEX('%[0-9][^0-9]%', string + 't') - PATINDEX('%[0-9]%', 
                    string) + 1) AS Number
FROM (values ('003Preliminary Examination Plan'),
    ('Coordination005'),
    ('Balance1000sheet')) as a(string)

no need for a temporary variable

| improve this answer | |
1

Although this is an old thread its the first in google search, I came up with a different answer than what came before. This will allow you to pass your criteria for what to keep within a string, whatever that criteria might be. You can put it in a function to call over and over again if you want.

declare @String VARCHAR(MAX) = '-123.  a    456-78(90)'
declare @MatchExpression VARCHAR(255) = '%[0-9]%'
declare @return varchar(max)

WHILE PatIndex(@MatchExpression, @String) > 0
    begin
    set @return = CONCAT(@return, SUBSTRING(@string,patindex(@matchexpression, @string),1))
    SET @String = Stuff(@String, PatIndex(@MatchExpression, @String), 1, '')
    end
select (@return)
| improve this answer | |
1

This UDF will work for all types of strings:

CREATE FUNCTION udf_getNumbersFromString (@string varchar(max))
RETURNS varchar(max)
AS
BEGIN
    WHILE  @String like '%[^0-9]%'
    SET    @String = REPLACE(@String, SUBSTRING(@String, PATINDEX('%[^0-9]%', @String), 1), '')
    RETURN @String
END
| improve this answer | |
0

In Oracle

You can get what you want using this:

SUBSTR('ABCD1234EFGH',REGEXP_INSTR ('ABCD1234EFGH', '[[:digit:]]'),REGEXP_COUNT ('ABCD1234EFGH', '[[:digit:]]'))

Sample Query:

SELECT SUBSTR('003Preliminary Examination Plan  ',REGEXP_INSTR ('003Preliminary Examination Plan  ', '[[:digit:]]'),REGEXP_COUNT ('003Preliminary Examination Plan  ', '[[:digit:]]')) SAMPLE1,
SUBSTR('Coordination005',REGEXP_INSTR ('Coordination005', '[[:digit:]]'),REGEXP_COUNT ('Coordination005', '[[:digit:]]')) SAMPLE2,
SUBSTR('Balance1000sheet',REGEXP_INSTR ('Balance1000sheet', '[[:digit:]]'),REGEXP_COUNT ('Balance1000sheet', '[[:digit:]]')) SAMPLE3 FROM DUAL
| improve this answer | |
0

Taking other answers into account, i came up with my own: Try this :

SUBSTRING('your-string-here', PATINDEX('%[0-9]%', 'your-string-here'), LEN('your-string-here'))

NB: Only works for the first int in the string, ex: abc123vfg34 returns 123.

| improve this answer | |
0

T-SQL function to read all the integers from text and return the one at the indicated index, starting from left or right, also using a starting search term (optional):

create or alter function dbo.udf_number_from_text(
    @text nvarchar(max),
    @search_term nvarchar(1000) = N'',
    @number_position tinyint = 1,
    @rtl bit = 0
) returns int
as
    begin
        declare @result int = 0;
        declare @search_term_index int = 0;

        if @text is null or len(@text) = 0 goto exit_label;
        set @text = trim(@text);
        if len(@text) = len(@search_term) goto exit_label;

        if len(@search_term) > 0
            begin
                set @search_term_index = charindex(@search_term, @text);
                if @search_term_index = 0 goto exit_label;
            end;

        if @search_term_index > 0
            if @rtl = 0
                set @text = trim(right(@text, len(@text) - @search_term_index - len(@search_term) + 1));
            else
                set @text = trim(left(@text, @search_term_index - 1));
        if len(@text) = 0 goto exit_label;

        declare @patt_number nvarchar(10) = '%[0-9]%';
        declare @patt_not_number nvarchar(10) = '%[^0-9]%';
        declare @number_start int = 1;
        declare @number_end int;
        declare @found_numbers table (id int identity(1,1), val int);

        while @number_start > 0
        begin
            set @number_start = patindex(@patt_number, @text);
            if @number_start > 0
                begin
                    if @number_start = len(@text)
                        begin
                            insert into @found_numbers(val)
                            select cast(substring(@text, @number_start, 1) as int);

                            break;
                        end;
                    else
                        begin
                            set @text = right(@text, len(@text) - @number_start + 1);
                            set @number_end = patindex(@patt_not_number, @text);

                            if @number_end = 0
                                begin
                                    insert into @found_numbers(val)
                                    select cast(@text as int);

                                    break;
                                end;
                            else
                                begin
                                    insert into @found_numbers(val)
                                    select cast(left(@text, @number_end - 1) as int);

                                    if @number_end = len(@text)
                                        break;
                                    else
                                        begin
                                            set @text = trim(right(@text, len(@text) - @number_end));
                                            if len(@text) = 0 break;
                                        end;
                                end;
                        end;
                end;
        end;

        if @rtl = 0
            select @result = coalesce(a.val, 0)
            from (select row_number() over (order by m.id asc) as c_row, m.val
                    from @found_numbers as m) as a
            where a.c_row = @number_position;
        else
            select @result = coalesce(a.val, 0)
            from (select row_number() over (order by m.id desc) as c_row, m.val
                    from @found_numbers as m) as a
            where a.c_row = @number_position;


        exit_label:
            return @result;
    end;

Example:

select dbo.udf_number_from text(N'Text text 10 text, 25 term', N'term',2,1);

returns 10;

| improve this answer | |
-2

If you are using Postgres and you have data like '2000 - some sample text' then try substring and position combination, otherwise if in your scenario there is no delimiter, you need to write regex:

SUBSTRING(Column_name from 0 for POSITION('-' in column_name) - 1) as 
number_column_name
| improve this answer | |

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