13

I have html content in the post_content column.

I want to search and replace A with B but only the first time A appears in the record as it may appear more than once.

The below query would obviously replace all instances of A with B

UPDATE wp_posts SET post_content = REPLACE (post_content, 'A', 'B');

2
  • mysql database @gjreda thanks for that explanation.
    – stemie
    Aug 25, 2012 at 16:23
  • Im using a mysql database. @gjreda thanks, I tried that query but get an error. #1064 - You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'UPDATE wp_posts SET post_content = REPLACE(SUBSTRING_INDEX(post_content, 'A',' at line 1
    – stemie
    Aug 25, 2012 at 16:27

10 Answers 10

15

This should actually be what you want in MySQL:

UPDATE wp_post
SET post_content = CONCAT(REPLACE(LEFT(post_content, INSTR(post_content, 'A')), 'A', 'B'), SUBSTRING(post_content, INSTR(post_content, 'A') + 1));

It's slightly more complicated than my earlier answer - You need to find the first instance of the 'A' (using the INSTR function), then use LEFT in combination with REPLACE to replace just that instance, than use SUBSTRING and INSTR to find that same 'A' you're replacing and CONCAT it with the previous string.

See my test below:

SET @string = 'this is A string with A replace and An Answer';
SELECT @string as actual_string
, CONCAT(REPLACE(LEFT(@string, INSTR(@string, 'A')), 'A', 'B'), SUBSTRING(@string, INSTR(@string, 'A') + 1)) as new_string;

Produces:

actual_string                                  new_string
---------------------------------------------  ---------------------------------------------
this is A string with A replace and An Answer  this is B string with A replace and An Answer
1
  • 8
    this seems not to be working for strings longer than one char :(
    – Radek
    Apr 7, 2015 at 9:54
13

Alternatively, you could use the functions LOCATE(), INSERT() and CHAR_LENGTH() like this:

INSERT(originalvalue, LOCATE('A', originalvalue), CHAR_LENGTH('A'), 'B')

Full query:

UPDATE wp_posts
SET post_content = INSERT(originalvalue, LOCATE('A', originalvalue), CHAR_LENGTH('A'), 'B');
0
2

With reference to https://dba.stackexchange.com/a/43919/200937 here is another solution:

UPDATE wp_posts 
SET post_content = CONCAT( LEFT(post_content , INSTR(post_content , 'A') -1),
                           'B',
                           SUBSTRING(post_content, INSTR(post_content , 'A') +1))
WHERE INSTR(post_content , 'A') > 0;

If you have another string, e.g. testing then you need to change the +1 above to the according string length. We can use LENGTH() for this purpose. By the way, leave the -1 untouched.

Example: Replace "testing" with "whatever":

UPDATE wp_posts 
SET post_content = CONCAT( LEFT(post_content , INSTR(post_content , 'testing') -1),
                           'whatever',
                           SUBSTRING(post_content, INSTR(post_content , 'testing') + LENGTH("testing"))
WHERE INSTR(post_content , 'testing') > 0;


By the way, helpful to see how many rows will be effected:

SELECT COUNT(*)
FROM post_content 
WHERE INSTR(post_content, 'A') > 0;
1

If you are using an Oracle DB, you should be able to write something like :

UPDATE wp_posts SET post_content = regexp_replace(post_content,'A','B',1,1)

See here for more informations : http://docs.oracle.com/cd/B19306_01/server.102/b14200/functions130.htm

Note : you really should take care of post_content regarding security issue since it seems to be an user input.

1

Greg Reda's solution did not work for me on strings longer than 1 character because of how the REPLACE() was written (only replacing the first character of the string to be replaced). Here is a solution that I believe is more complete and covers every use case of the problem when defined as How do I replace the first occurrence of "String A" with "String B" in "String C"?

CONCAT(LEFT(buycraft, INSTR(buycraft, 'blah') - 1), '', SUBSTRING(buycraft FROM INSTR(buycraft, 'blah') + CHAR_LENGTH('blah')))

This assumes that you are sure that the entry ALREADY CONTAINS THE STRING TO BE REPLACED! If you try replacing 'dog' with 'cat' in the string 'pupper', it will give you 'per', which is not what you want. Here is a query that handles that by first checking to see if the string to be replaced exists in the full string:

IF(INSTR(buycraft, 'blah') <> 0, CONCAT(LEFT(buycraft, INSTR(buycraft, 'blah') - 1), '', SUBSTRING(buycraft FROM INSTR(buycraft, 'blah') + CHAR_LENGTH('blah'))), buycraft)

The specific use case here is replacing the first instance of 'blah' inside column 'buycraft' with an empty string ''. I think a pretty intuitive and natural solution:

  1. Find the index of the first occurrence of the string that is to be replaced.
  2. Get everything to the left of that, not including the index itself (thus '-1').
  3. Concatenate that with whatever you are replacing the original string with.
  4. Calculate the ending index of the part of the string that is being replaced. This is easily done by finding the index of the first occurrence again, and adding the length of the replaced string. This will give you the index of the first char after the original string
  5. Concatenate the substring starting at the ending index of the string

An example walkthrough of replacing "pupper" in "lil_puppers_yay" with 'dog':

  1. Index of 'pupper' is 5.
  2. Get left of 5-1 = 4. So indexes 1-4, which is 'lil_'
  3. Concatenate 'dog' for 'lil_dog'
  4. Calculate the ending index. Start index is 5, and 5 + length of 'pupper' = 11. Note that index 11 refers to 's'.
  5. Concatenate the substring starting at the ending index, which is 's_yay', to get 'lil_dogs_yay'.

All done!

Note: SQL has 1-indexed strings (as an SQL beginner, I didn't know this before I figured this problem out). Also, SQL LEFT and SUBSTRING seem to work with invalid indexes the ideal way (adjusting it to either the beginning or end of the string), which is super convenient for a beginner SQLer like me :P

Another Note: I'm a total beginner at SQL and this is pretty much the hardest query I've ever written, so there may be some inefficiencies. It gets the job done accurately though.

1
  • In your first query. Where is string A, B, and C? Which one is for the main string, the search for to replace string, and to the new replacement string? May 28, 2018 at 16:10
1

I made the following little function and got it:

CREATE DEFINER=`virtueyes_adm1`@`%` FUNCTION `replace_first`(
    `p_text` TEXT,
    `p_old_text` TEXT,
    `p_new_text` TEXT

)
RETURNS text CHARSET latin1
LANGUAGE SQL
NOT DETERMINISTIC
CONTAINS SQL
SQL SECURITY DEFINER
COMMENT 'troca a primeira ocorrencia apenas no texto'
BEGIN
    SET @str = p_text;
    SET @STR2 = p_old_text;
    SET @STR3 = p_new_text;
    SET @retorno = '';

    SELECT CONCAT(SUBSTRING(@STR, 1 , (INSTR(@STR, @STR2)-1 ))
                ,@str3
                  ,SUBSTRING(@STR, (INSTR(@str, @str2)-1 )+LENGTH(@str2)+1 , LENGTH(@STR)))
    INTO @retorno;

    RETURN @retorno;    
END
0

It's simpler

UPDATE table_name SET column_name = CONCAT('A',SUBSTRING(column_name, INSTR(column_name, 'B') + LENGTH('A')));
0

Years have passed since this question was asked, and MySQL 8 has introduced REGEX_REPLACE:

REGEXP_REPLACE(expr, pat, repl[, pos[, occurrence[, match_type]]])

Replaces occurrences in the string expr that match the regular expression specified by the pattern pat with the replacement string repl, and returns the resulting string. If expr, pat, or repl is NULL, the return value is NULL.

REGEXP_REPLACE() takes these optional arguments:

pos: The position in expr at which to start the search. If omitted, the default is 1.
occurrence: Which occurrence of a match to replace. If omitted, the default is 0 (which means “replace all occurrences”).
match_type: A string that specifies how to perform matching. The meaning is as described for REGEXP_LIKE().

So, assuming you can use regular expressions in your case:

UPDATE wp_posts SET post_content = REGEXP_REPLACE (post_content, 'A', 'B', 1, 1);

Unfortunately for those of us on MariaDB, its REGEXP_REPLACE flavor is missing the occurrence parameter. Here's a regex-aware version of Andriy M's solution, conveniently stored as a reusable function as suggested by Luciano Seibel:

DELIMITER //
DROP FUNCTION IF EXISTS replace_first //
CREATE FUNCTION `replace_first`(
    `i` TEXT,
    `s` TEXT,
    `r` TEXT
)
RETURNS text CHARSET utf8mb4
BEGIN
    SELECT REGEXP_INSTR(i, s) INTO @pos;
    IF @pos = 0 THEN RETURN i; END IF;
    RETURN INSERT(i, @pos, CHAR_LENGTH(REGEXP_SUBSTR(i, s)), r);
END;
//
DELIMITER ;
0

For MYSQL version pre-5.6 and 8.0, I've used this pattern to fix my issue, it's a bit gross, but I hope it helps some of you guys:

SET @string = 'I love shop it is a terrific shop, I love eveything about it';
SET @shop_code = 'shop';

SET @shop_date = CONCAT(@shop_code, '__', DATE_FORMAT(NOW(), '%Y_%m_%d__%Hh%im%ss'));

SET @part1 = SUBSTRING_INDEX(@string, @shop_code, 1);

SET @shop_nb = ROUND( (LENGTH(@string) - LENGTH(REPLACE(@string, @shop_code,''))) / LENGTH(@shop_code) );

SET @part2 = SUBSTRING_INDEX(@string, @shop_code, -@shop_nb);

SET @string = CONCAT(@part1, @shop_date, @part2);

SELECT @string;

1
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    – Community Bot
    Jun 1 at 16:14
-1

To keep the sample of gjreda a bit more simple use this:

UPDATE wp_post
    SET post_content =
            CONCAT(
                REPLACE(LEFT(post_content, 1), 'A', 'B'),
                SUBSTRING(post_content, 2)
            ) 
    WHERE post_content LIKE 'A%';

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