Usually I use manual find to replace text in a MySQL database using phpmyadmin. I'm tired of it now, how can I run a query to find and replace a text with new text in the entire table in phpmyadmin?

Example: find keyword domain.com, replace with www.domain.com.

up vote 467 down vote accepted

For a single table update

 UPDATE `table_name`
 SET `field_name` = replace(same_field_name, 'unwanted_text', 'wanted_text')

From multiple tables-

If you want to edit from all tables, best way is to take the dump and then find/replace and upload it back.

  • 3
    Does this replace an entire field, or with it do a substring match within a field? – Randy Greencorn Nov 14 '13 at 21:09
  • 2
    It will replace a substring within the field @RandyGreencorn . It's also case-sensitive. – Andrew Aug 15 '16 at 20:34
  • 5
    and it will replace 'domain.com' with 'www.domain.com' and 'www.domain.com' with 'www.www.domain.com' – michelek Dec 16 '16 at 0:59
  • 2
    More on this: If you want to edit from all tables, best way is to take the dump and then find/replace and upload it back. Use sed on the dump for the find/replace: sed "s:unwanted_text:wanted_text:g" dump.sql – kakoma Sep 2 '17 at 13:01
  • 1
    Works great. As others have stated, sometimes I have to mess with the quotes to get it to work in phpMyAdmin. I used it to replace only the text "http:" with "https:" in a column containing full web addresses. The rest of the web addresses were untouched. – Heres2u Mar 20 at 14:34

The easiest way I have found is to dump the database to a text file, run a sed command to do the replace, and reload the database back into MySQL.

All commands are bash on Linux, from memory.

Dump database to text file

mysqldump -u user -p databasename > ./db.sql

Run sed command to find/replace target string

sed -i 's/oldString/newString/g' ./db.sql

Reload the database into MySQL

mysql -u user -p databasename < ./db.sql

Easy peasy.

  • 1
    This works amazingly fast. I love this solution. I had to do some url replacements and instead of using slashes as my delimiters I used pipes instead (read this up grymoire.com/Unix/Sed.html). Example: sed -i 's|olddomain.com|http://newdomain.com|g'; ./db.sql – Mike Kormendy Feb 9 '15 at 4:49
  • 1
    It was so fast i thought it didn't work. But it did! Also, you can just escape slashes like this: \/\/domain.com – m.cichacz Aug 25 '16 at 8:52
  • 1
    Just a reminder that in OS X, the sed -i command may throw out unterminated substitute pattern error. You can use sed -i '' -e 's/oldString/newString/g' ./db.sql instead. – afterglowlee Jan 31 '17 at 22:05
  • 1
    this one suits my need, thank you! – budiantoip Aug 1 '17 at 5:01

Put this in a php file and run it and it should do what you want it to do.

// Connect to your MySQL database.
$hostname = "localhost";
$username = "db_username";
$password = "db_password";
$database = "db_name";

mysql_connect($hostname, $username, $password);

// The find and replace strings.
$find = "find_this_text";
$replace = "replace_with_this_text";

$loop = mysql_query("
    SELECT
        concat('UPDATE ',table_schema,'.',table_name, ' SET ',column_name, '=replace(',column_name,', ''{$find}'', ''{$replace}'');') AS s
    FROM
        information_schema.columns
    WHERE
        table_schema = '{$database}'")
or die ('Cant loop through dbfields: ' . mysql_error());

while ($query = mysql_fetch_assoc($loop))
{
        mysql_query($query['s']);
}

Running an SQL query in PHPmyadmin to find and replace text in all wordpress blog posts, such as finding mysite.com/wordpress and replacing that with mysite.com/news Table in this example is tj_posts

UPDATE `tj_posts`
SET `post_content` = replace(post_content, 'mysite.com/wordpress', 'mysite.com/news')
  • Thanks for the query. For my WordPress site the column name is wp_posts so the query looks UPDATE `wp_posts` SET `post_content` = replace(post_content, 'mysite.com/wordpress', 'mysite.com/news') – Maris B. Jul 25 at 12:39
 UPDATE table SET field = replace(field, text_needs_to_be_replaced, text_required);

Like for example, if I want to replace all occurrences of John by Mark I will use below,

UPDATE student SET student_name = replace(student_name, 'John', 'Mark');

Another option is to generate the statements for each column in the database:

SELECT CONCAT(
    'update ', table_name , 
    ' set ', column_name, ' = replace(', column_name,', ''www.oldDomain.com'', ''www.newDomain.com'');'
) AS statement
FROM information_schema.columns
WHERE table_schema = 'mySchema' AND table_name LIKE 'yourPrefix_%';

This should generate a list of update statements that you can then execute.

  • 2
    Slower than dumping, but for people that don't feel comfortable with the command line, this answer is creative and effective. – Stephane Aug 14 '16 at 13:36
  • 2
    This is by far the best approach, if you have a lot of data and cannot dump/reload it. – Kariem Mar 20 '17 at 8:57
  • Oh man this worked great! I will share my scripts based on this idea – Andy Nov 3 '17 at 17:40

I believe "swapnesh" answer to be the best ! Unfortunately I couldn't execute it in phpMyAdmin (4.5.0.2) who although illogical (and tried several things) it kept saying that a new statement was found and that no delimiter was found…

Thus I came with the following solution that might be usefull if you exeprience the same issue and have no other access to the database than PMA…

UPDATE `wp_posts` AS `toUpdate`,
(SELECT `ID`,REPLACE(`guid`,'http://old.tld','http://new.tld') AS `guid` 
 FROM `wp_posts` WHERE `guid` LIKE 'http://old.tld%') AS `updated`
SET `toUpdate`.`guid`=`updated`.`guid`
WHERE `toUpdate`.`ID`=`updated`.`ID`;

To test the expected result you may want to use :

SELECT `toUpdate`.`guid` AS `old guid`,`updated`.`guid` AS `new guid`
FROM `wp_posts` AS `toUpdate`,
(SELECT `ID`,REPLACE(`guid`,'http://old.tld','http://new.tld') AS `guid`
 FROM `wp_posts` WHERE `guid` LIKE 'http://old.tld%') AS `updated`
WHERE `toUpdate`.`ID`=`updated`.`ID`;

Generate change SQL queries (FAST)

mysql -e "SELECT CONCAT( 'update ', table_name , ' set ', column_name, ' = replace(', column_name,', ''www.oldsite.com'', ''www.newsite.com'');' ) AS statement FROM information_schema.columns WHERE table_name LIKE 'wp_%'" -u root -p your_db_name_here > upgrade_script.sql

Remove any garbage at the start of the file. I had some.

nano upgrade_script.sql

Run generated script with --force options to skip errors. (SLOW - grab a coffee if big DB)

mysql -u root -p your_db_name_here --force < upgrade_script.sql

protected by Community May 29 '14 at 19:25

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