SUBSTRING (Transact-SQL)
Returns part of a character, binary, text, or image expression. For more information about the valid SQL Server data types that can be used with this function, see Data Types (Transact-SQL).
Syntax
SUBSTRING ( value_expression , start_expression , length_expression )
Arguments
value_expression
Is a character, binary, text, ntext, or imageexpression.start_expression
Is an integer or bigint expression that specifies where the returned characters start. If start_expression is less than 1, the returned expression will begin at the first character that is specified in value_expression. In this case, the number of characters that are returned is the largest value of either the sum of start_expression + length_expression – 1 or 0. If start_expression is greater than the number of characters in the value expression, a zero-length expression is returned.length_expression
Is a positive integer or bigint expression that specifies how many characters of the value_expression will be returned. If length_expression is negative, an error is generated and the statement is terminated. If the sum of start_expression and length_expression is greater than the number of characters in value_expression, the whole value expression beginning at start_expression is returned.
Return Types
Returns character data if expression is one of the supported character data types. Returns binary data if expression is one of the supported binary data types. The returned string is the same type as the specified expression with the exceptions shown in the table.
Specified expression |
Return type |
---|---|
char/varchar/text |
varchar |
nchar/nvarchar/ntext |
nvarchar |
binary/varbinary/image |
varbinary |
Remarks
The values for start_expression and length_expression must be specified in number of characters for ntext, char, or varchar data types and bytes for text, image, binary, or varbinary data types.
The value_expression must be varchar(max) or varbinary(max) when the start_expression or length_expression contains a value larger than 2147483647.
Note
Compatibility levels can affect return values. For more information about compatibility levels, see ALTER DATABASE Compatibility Level (Transact-SQL).
Examples
A. Using SUBSTRING with a character string
The following example shows how to return only a part of a character string. From the Person table, this query returns the last name in one column with only the first initial in the second column.
USE AdventureWorks2008R2;
GO
SELECT LastName, SUBSTRING(FirstName, 1, 1) AS Initial
FROM Person.Person
WHERE LastName like 'Barl%'
ORDER BY LastName;
Here is the result set.
LastName Initial
-------------- -------
Barley R
Barlow B
(2 row(s) affected)
Here is how to display the second, third, and fourth characters of the string constant abcdef.
SELECT x = SUBSTRING('abcdef', 2, 3);
Here is the result set.
x
----------
bcd
(1 row(s) affected)
B. Using SUBSTRING with text, ntext, and image data
Note
To run the following examples, you must install the pubs database. For information about how to install the pubs database, see Downloading Northwind and pubs Sample Databases.
The following example shows how to return the first 10 characters from each of a text and image data column in the pub_info table of the pubs database. text data is returned as varchar, and image data is returned as varbinary.
USE pubs;
SELECT pub_id, SUBSTRING(logo, 1, 10) AS logo,
SUBSTRING(pr_info, 1, 10) AS pr_info
FROM pub_info
WHERE pub_id = '1756';
Here is the result set.
pub_id logo pr_info
------ ---------------------- ----------
1756 0x474946383961E3002500 This is sa
(1 row(s) affected)
The following example shows the effect of SUBSTRING on both text and ntext data. First, this example creates a new table in the pubs database named npub_info. Second, the example creates the pr_info column in the npub_info table from the first 80 characters of the pub_info.pr_info column and adds an ü as the first character. Lastly, an INNER JOIN retrieves all publisher identification numbers and the SUBSTRING of both the text and ntext publisher information columns.
IF EXISTS (SELECT table_name FROM INFORMATION_SCHEMA.TABLES
WHERE table_name = 'npub_info')
DROP TABLE npub_info;
GO
-- Create npub_info table in pubs database. Borrowed from instpubs.sql.
USE pubs;
GO
CREATE TABLE npub_info
(
pub_id char(4) NOT NULL
REFERENCES publishers(pub_id)
CONSTRAINT UPKCL_npubinfo PRIMARY KEY CLUSTERED,
pr_info ntext NULL
);
GO
-- Fill the pr_info column in npub_info with international data.
RAISERROR('Now at the inserts to pub_info...',0,1);
GO
INSERT npub_info VALUES('0736', N'üThis is sample text data for New Moon Books, publisher 0736 in the pubs database')
,('0877', N'üThis is sample text data for Binnet & Hardley, publisher 0877 in the pubs databa')
,('1389', N'üThis is sample text data for Algodata Infosystems, publisher 1389 in the pubs da')
,('9952', N'üThis is sample text data for Scootney Books, publisher 9952 in the pubs database')
,('1622', N'üThis is sample text data for Five Lakes Publishing, publisher 1622 in the pubs d')
,('1756', N'üThis is sample text data for Ramona Publishers, publisher 1756 in the pubs datab')
,('9901', N'üThis is sample text data for GGG&G, publisher 9901 in the pubs database. GGG&G i')
,('9999', N'üThis is sample text data for Lucerne Publishing, publisher 9999 in the pubs data')
GO
-- Join between npub_info and pub_info on pub_id.
SELECT pr.pub_id, SUBSTRING(pr.pr_info, 1, 35) AS pr_info,
SUBSTRING(npr.pr_info, 1, 35) AS npr_info
FROM pub_info pr INNER JOIN npub_info npr
ON pr.pub_id = npr.pub_id
ORDER BY pr.pub_id ASC;