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The LIKE condition allows us to use wildcards in the where clause of an SQL statement. This allows us to perform pattern matching. The LIKE condition can be used in any valid SQL statement - select, insert, update, or delete. Like this

SELECT * FROM users
WHERE user_name like 'babu%';

like the same above operation any query is available for Cassandra in CLI.

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sdolgy is right. Alternatively, look into something like solandra or DSE. – phact Apr 23 '15 at 3:25
up vote 9 down vote accepted

Simple answer: there is no equivalent of LIKE

http://www.datastax.com/docs/0.8/dml/using_cql

Here is the command reference for v0.8:

http://www.datastax.com/docs/0.8/references/cql#cql-reference

If you maintain another set of rows that hold references to a username:

row: username:bab -> col:babu1, col:babar row: username:babu -> col:babur

Effectively you are cheating by pre-populating all of the results that you would normally search with in the RDBMS world. Storage is cheap in comparison to what it was years ago ... which is why this is now an accepted approach. It's less intensive on the CPU and Memory to retrieve a pre-populated list of information.

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I know: It's a old question but there is a solution for this topic:

You can't use like operator in cassandra but you can use range operators and with the range operator you can solve this "like 'whatever%'"

An example: I have more than one product. Each product has his own partition key (first part of the primary key):

CREATE TABLE user(productId int, username text, PRIMARY KEY(productId, username));

Now i have some users:

INSERT INTO user(productId, username) VALUES (1, 'anna');
INSERT INTO user(productId, username) VALUES (1, 'alpha');
INSERT INTO user(productId, username) VALUES (1, 'andreas');
INSERT INTO user(productId, username) VALUES (1, 'alex');
INSERT INTO user(productId, username) VALUES (1, 'bernd');
INSERT INTO user(productId, username) VALUES (1, 'bob');

Now, i want to find all users which have an a at the beginning. In a SQL world i use LIKE 'a%' in Cassandra i use this:

SELECT * FROM user WHERE productId = 1 AND username > 'a' AND username < 'b';

The result:

productid | username
-----------+----------
     1 |     alex
     1 |    alpha
     1 |  andreas
     1 |     anna
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But this solution can't be used for longer strings – Mayerz Jul 21 at 7:46
    
@Mayerz how Long? – Philipp Blum Jul 21 at 8:57
    
like if I want to queru for words, how should i do it? I guess this solution is not good right? – Mayerz Jul 21 at 10:46
    
Yes, you're right. This solution is restricted in words. The question case is: WHERE user_name like 'babu%'; And you can use this solution for this cases. For querying words, you can use elastic search. – Philipp Blum 14 hours ago

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