267

I have a table with the following columns in a MySQL database

[id, url]

And the urls are like:

 http://domain1.com/images/img1.jpg

I want to update all the urls to another domain

 http://domain2.com/otherfolder/img1.jpg

keeping the name of the file as is.

What's the query must I run?

555
UPDATE urls
SET url = REPLACE(url, 'domain1.com/images/', 'domain2.com/otherfolder/')
  • 2
    Very useful, worked on 2000 queries with out fail, very quickly. – Andy Dec 14 '16 at 18:05
  • 4
    REPLACE also works on SELECTs, quite useful :) – Arda Apr 19 '17 at 10:20
141
UPDATE yourtable
SET url = REPLACE(url, 'http://domain1.com/images/', 'http://domain2.com/otherfolder/')
WHERE url LIKE ('http://domain1.com/images/%');

relevant docs: http://dev.mysql.com/doc/refman/5.5/en/string-functions.html#function_replace

  • +1 for the reference to the documentation... – Phil DD Aug 14 '14 at 16:19
  • 13
    Hi there- why do I need the where ? – Guy Cohen Oct 7 '14 at 14:21
  • 13
    @GuyCohen Because otherwise the query will modify every single row in the table. The WHERE clause optimizes the query to only modify the rows with certain URL. Logically, the result will be the same, but the addition of WHERE will make the operation faster. – Dmytro Shevchenko Aug 14 '15 at 14:34
  • 3
    The WHERE also ensures that you're only replacing parts of strings that begin with http://etc/etc/ or string_to_be_replaced. For example, in the given answer, http://domain1.com/images/this/is/a/test would be affected, but foobar/http://domain1.com/images/ would not. – Kyle Challis Jan 29 '16 at 19:03
24

Try using the REPLACE function:

mysql> SELECT REPLACE('www.mysql.com', 'w', 'Ww');
        -> 'WwWwWw.mysql.com'

Note that it is case sensitive.

9

You need the WHERE clause to replace ONLY the records that complies with the condition in the WHERE clause (as opposed to all records). You use % sign to indicate partial string: I.E.

LIKE ('...//domain1.com/images/%'); means all records that BEGIN with "...//domain1.com/images/" and have anything AFTER (that's the % for...)

Another example:

LIKE ('%http://domain1.com/images/%') which means all records that contains "http://domain1.com/images/" in any part of the string...

2

Try this...

update [table_name] set [field_name] = 
replace([field_name],'[string_to_find]','[string_to_replace]');

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