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We can find the index of the first occurrence of a given substring in MySQL using the INSTR() function as follows.

SELECT instr('Have_a_good_day', '_') AS index_position

It would display 5, the first occurrence of the specified substring which is in this case an underscore _.

I need to obtain the last occurrence of a given character (or a substring) something like the Java lastIndexOf(String str) method of the String class but I can't find any built-in function in MySQL.

Is there any built-in functionality to achieve this in MySQL?

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If someone has a solution, then please add it as an answer. –  Tiny Jun 13 '13 at 19:50

4 Answers 4

up vote 18 down vote accepted

@Marc B was close. In MySQL, following statement returns 12:

SELECT LENGTH("Have_a_good_day") - LOCATE('_', REVERSE("Have_a_good_day"))+1;

Anticipating a possible use of the value, the following statement extracts the left part of the string before the last underscore(i.e., _):

SELECT LEFT("first_middle_last", LENGTH("first_middle_last") - LOCATE('_', REVERSE("first_middle_last")));

The result is "first_middle". If you want to include the delimiter, use:

SELECT LEFT("first_middle_last", LENGTH("first_middle_last") - LOCATE('_', REVERSE("first_middle_last"))+1);

It would be nice if they enhanced LOCATE to have an option to start the search from the right.

If you want the right part of the string after the last space a better solution is:

SELECT SUBSTRING_INDEX("first_middle_last", '_', -1);

This returns "last".

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@Tiny, I'm sure you probably figure out an answer by now. I had the same problem and wanted to post a solution. –  curt Aug 24 '13 at 20:18
    
Sure my solution was the first one in your answer. Thanks for the answer. –  Tiny Aug 25 '13 at 16:15

If you don't want the overhead of REVERSE use the following:

LEFT
(
   'Have_a_good_day', 
   LENGTH('Have_a_good_day') - LENGTH(SUBSTRING_INDEX('Have_a_good_day','_',-1))-1
)
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This is exactly what i have and i think is better than using reverse –  Fr0zenFyr Oct 24 '13 at 11:39
    
This differs from the accepted answer in the way that a string without the delimiter, such as Have, becomes an empty string instead of Have. –  l33t Jan 6 at 13:59

I think you can use substring_index in this way:

select substring_index(string, delimiter,-1)

-1 will start at the end of the string.

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Sure I know I can but it displays the substring itself (after the extraction has been made) and not the index position of that substring. In this case, it would display day but I need to display 12 the index of the substring specified. –  Tiny Oct 8 '12 at 4:38
    
How long is your text? Can you reverse it and then use instr or locate functions? I know its not the most ideal way but it would work. –  rizalp1 Oct 8 '12 at 4:43
    
In any case, I can't think of reversing the string because I need to extract other text within the string based on the last index found. –  Tiny Oct 8 '12 at 4:47

Combo of reverse/indexof?

SELECT LENGTH(string) - SUBSTRING_INDEX(REVERSE(string), delimiter) + 1

breaking it down, given your Have_a_good_day:

REVERSE('Have_a_good_day') -> yad_doog_a_evaH
SUBSTRING_INDEX('yad_doog_a_evah', '_') -> 4
LENGTH('Have_a_good_day') -> 15
15 - 4 + 1 -> 12

Have_a_good_day
123456789012345
           ^
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SUBSTRING_INDEX('yad_doog_a_evah', '_') issues an error Incorrect parameter count in the call to native function 'SUBSTRING_INDEX'. It requires a third parameter like SUBSTRING_INDEX('yad_doog_a_evah', '_', 1) which produces a substring yad and not the first index of _ which is 4 in this case. Thanks for the reply. –  Tiny Oct 8 '12 at 5:50
    
Do you have a solution. I could do it but in an ugly way which is hateful and avoidable. Thank you. –  Tiny Nov 4 '12 at 19:59

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