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I have been blogging for almost 7 years and every other day I receive questions about Querying Pattern Ranges. The most common way to solve the problem is to use Wild Cards. However, not everyone knows how to use wild card properly.
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Many people know wildcards are great for finding patterns in character data. There are also some special sequences with wildcards that can give you even more power. This series from SQL Queries 2012 Joes 2 Pros® Volume 1 will show you some of these cool tricks.
All supporting files are available with a free download from the www.Joes2Pros.com web site. This example is from the SQL 2012 series Volume 1 in the file SQLQueries2012Vol1Chapter2.2Setup.sql. If you need help setting up then look in the “Free Videos” section on Joes2Pros under “Getting Started” called “How to install your labs”
Querying Pattern Ranges
The % wildcard character represents any number of characters of any length. Let’s find all first names that end in the letter ‘A’. By using the percentage ‘%’ sign with the letter ‘A’, we achieve this goal using the code sample below:
SELECT *
FROM Employee
WHERE FirstName LIKE '%A'
To find all FirstName values beginning with the letters ‘A’ or ‘B’ we can use two predicates in our WHERE clause, by separating them with the OR statement.
Finding names beginning with an ‘A’ or ‘B’ is easy and this works fine until we want a larger range of letters as in the example below for ‘A’ thru ‘K’:
SELECT *
FROM Employee
WHERE FirstName LIKE 'A%'
OR FirstName LIKE 'B%'
OR FirstName LIKE 'C%'
OR FirstName LIKE 'D%'
OR FirstName LIKE 'E%'
OR FirstName LIKE 'F%'
OR FirstName LIKE 'G%'
OR FirstName LIKE 'H%'
OR FirstName LIKE 'I%'
OR FirstName LIKE 'J%'
OR FirstName LIKE 'K%'
The previous query does find FirstName values beginning with the letters ‘A’ thru ‘K’. However, when a query requires a large range of letters, the LIKE operator has an even better option. Since the first letter of the FirstName field can be ‘A’, ‘B’, ‘C’, ‘D’, ‘E’, ‘F’, ‘G’, ‘H’, ‘I’, ‘J’ or ‘K’, simply list all these choices inside a set of square brackets followed by the ‘%’ wildcard, as in the example below:
SELECT *
FROM Employee
WHERE FirstName LIKE '[ABCDEFGHIJK]%'
A more elegant example of this technique recognizes that all these letters are in a continuous range, so we really only need to list the first and last letter of the range inside the square brackets, followed by the ‘%’ wildcard allowing for any number of characters after the first letter in the range.
Note: A predicate that uses a range will not work with the ‘=’ operator (equals sign). It will neither raise an error, nor produce a result set.
--Bad query (will not error or return any records)
SELECT *
FROM Employee
WHERE FirstName = '[A-K]%'Question: You want to find all first names that start with the letters A-M in your Customer table and end with the letter Z. Which SQL code would you use?
a. SELECT * FROM Customer
WHERE FirstName LIKE 'm%z'
b. SELECT * FROM Customer
WHERE FirstName LIKE 'a-m%z'
c. SELECT * FROM Customer
WHERE FirstName LIKE 'a-m%z'
d. SELECT * FROM Customer
WHERE FirstName LIKE '[a-m]%z'
e. SELECT * FROM Customer
WHERE FirstName LIKE '[a-m]z%'
f. SELECT * FROM Customer
WHERE FirstName LIKE '[a-m]%z'
g. SELECT * FROM Customer
WHERE FirstName LIKE '[a-m]z%'
Contest
- Leave a valid answer before June 18, 2013 in the comment section.
- 5 winners will be selected from all the valid answers and will receive Joes 2 Pros Book #1.
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Special Note: Read all the options before you provide valid answer as there is a small trick hidden in answers.
Reference: Pinal Dave (https://blog.sqlauthority.com)
152 Comments. Leave new
SELECT * FROM table1
WHERE Name like ‘[a-m]%z’
would be the answer (not f).
SELECT * FROM Customer
WHERE FirstName like ‘[a-m]%z’
Option B and C ,D and F ,E and G are same ….But i think nothing from above will work ..
I would use..
SELECT * FROM Customer
WHERE FirstName LIKE ‘[a-m]%z’
neither of the options will work, reason (=) equals sign
None of the options will produce the desired output, as the code used equal sign…
we should use following code
SELECT * FROM Customer
WHERE FirstName like ‘[a-m]%z’
SELECT * FROM Customer
WHERE FirstName like ‘[a-m]%z’
No any option works, reason is equal sign.
Fazal Vahora(India)
None, because predicate that uses a range will not work with the ‘=’ operator.
All the above answers will not work as it uses = [equal to] operator.
The correct answer is as below:
SELECT * FROM Customer
WHERE FirstName LIKE ‘[a-m]%z’
All option is wrong, true “SELECT * FROM Customer WHERE FirstName LIKE ‘[a-m]%z’
answer is option f.
“SELECT * FROM Customer
WHERE FirstName = ‘[a-m]%z’ “
None of the queries will provide desired result. Each query will return 0 rows. The correct answer is
SELECT * FROM Customer
WHERE FirstName LIKE ‘[A-M]%Z’
Hi Sir,
All the queries has equal to sign hence none of the queries are going to work as explained in the note “A predicate that uses a range will not work with the ‘=’ operator (equals sign). It will neither raise an error, nor produce a result set.”
Hi Pinal,
None of the option is valid for the desired output. AS they will not return any values.
This will surely work:
SELECT * FROM Customer
WHERE FirstName LIKE ‘[A-M]%Z’
thanks,
Kapil Singh
Reason of equals(=) sign It will neither raise an error, nor produce a result set.
neither of options will give the answer, reason = sign instead of LIKE
Answers d and f are equal and e and g too.
I think there is a mistake in answers – there should be LIKE instead equal sign.
I think you made a couple of typos :). Options d and f are the same and so are e and g. None of the options will work since they are not using the LIKE operator.
I believe that no given option would work as the like operator only works with pattern and equal size would just compare the left and right strings
Answer is d and f
SELECT * FROM Customer
WHERE FirstName = ‘[a-m]%z’
Now I know, Everybody makes copy n paste mistakes :P
Answer should be d or f since both are same.
By the way, thanks for the post…Learnt something new :)