Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

First let me show my tables data and then I will explain my problem.

MySQL Tables Structure

CREATE TABLE more_tags (
tag_id INT UNSIGNED NOT NULL AUTO_INCREMENT,
more_id INT UNSIGNED NOT NULL,
user_id INT UNSIGNED NOT NULL,
tag_name VARCHAR(255) NOT NULL,
PRIMARY KEY (tag_id),
UNIQUE KEY (more_id, user_id, tag_name)
);

CREATE TABLE tags(
tag_id INT UNSIGNED NOT NULL AUTO_INCREMENT,
another_id INT UNSIGNED NOT NULL,
user_id INT UNSIGNED NOT NULL,
tag_name VARCHAR(255) NOT NULL,
PRIMARY KEY (tag_id),
UNIQUE KEY (another_id, user_id, tag_name)
);

more_tads table data

tag_id  tag_name
10      apple 
192     apple 
197     apple 
203     apple 
207     apple 
217     news 
190     bff
196     cape

tags table data

tag_id  tag_name
1       apple 
2       time 
3       bff

Okay I asked a some what similar question earlier. But now for some reason I can't get the query to count the tags from both tables it only counts the tags from one table as in the example below

Current Ouput

tag_id  tag_name    num
1       apple       5
2       bff         1
3       cape        1
4       time        1

But I want to GROUP all similar tags and count how many times they where found in the tables as in the example below

Desired Output

tag_id  tag_name    num
1       apple       6
2       bff         2
3       cape        1
4       time        1

Current MySQL QUERY

SELECT *
FROM(SELECT `more_tags`.`tag_id`, `more_tags`.`tag_name`, COUNT(`more_tags`.`tag_name`) as 'num' 
FROM `more_tags` 
INNER JOIN `users` ON `more_tags`.`user_id` = `users`.`user_id` 
WHERE `users`.`active` IS NULL 
AND `users`.`deletion` = '0' 
GROUP BY `more_tags`.`tag_name`
UNION(
SELECT `tags`.`tag_id`, `tags`.`tag_name`, COUNT(`tags`.`tag_name`) as 'num' 
FROM `tags` 
INNER JOIN `users` ON `tags`.`user_id` = `users`.`user_id` 
WHERE `users`.`active` IS NULL 
AND `users`.`deletion` = '0' 
GROUP BY `tags`.`tag_name`))
AS table_1 
GROUP BY `tag_name`  
ORDER BY `tag_name` ASC
share|improve this question
    
Can you try after removing () for 2nd brackets ? –  Bhavik Shah Feb 7 '13 at 5:09
    
@Bhavik Shah, Nothing still trying to find a solution. –  Pattern Jobs Feb 7 '13 at 5:12

3 Answers 3

Considering that you are counting on both parts of the union, you can sum both of these. You group by tag_name, which you already do.

SELECT *, SUM('num') as 'big_num'
FROM(
SELECT `more_tags`.`tag_id`, `more_tags`.`tag_name`, COUNT(`more_tags`.`tag_name`) as 'num' 
...same...
GROUP BY `more_tags`.`tag_name`
UNION(
SELECT `tags`.`tag_id`, `tags`.`tag_name`, COUNT(`tags`.`tag_name`) as 'num' 
...same...
GROUP BY `tags`.`tag_name`
)# UNION 2nd Part
)# UNION table 
AS table_1 
GROUP BY `tag_name`  # you were doing this already
ORDER BY `tag_name` ASC
share|improve this answer

This will output the results you want. Just add the user joins in the Sub queries.

SELECT a.tag_id, a.tag_name, SUM(a.num)
FROM (
     SELECT tag_id, tag_name, SUM(1) as num  FROM tags
        GROUP BY tag_name
     UNION
     SELECT tag_id, tag_name, SUM(1) as num  FROM more_tags
        GROUP BY tag_name
      ) a
GROUP BY a.tag_name
share|improve this answer

The tag_id in your desired output doesn't really make sense to me. Without that here is how you get what you are asking:

SELECT tag_name, SUM(num)
FROM(SELECT `more_tags`.`tag_name`, COUNT(*) as 'num' 
FROM `more_tags` 
INNER JOIN `users` ON `more_tags`.`user_id` = `users`.`user_id` 
WHERE `users`.`active` IS NULL 
AND `users`.`deletion` = '0' 
GROUP BY `more_tags`.`tag_name`
UNION ALL
SELECT `tags`.`tag_name`, COUNT(*) as 'num' 
FROM `tags` 
INNER JOIN `users` ON `tags`.`user_id` = `users`.`user_id` 
WHERE `users`.`active` IS NULL 
AND `users`.`deletion` = '0' 
GROUP BY `tags`.`tag_name`)
AS table_1 
GROUP BY `tag_name`  
ORDER BY `tag_name` ASC

SQL Fiddle with the user logic removed to demonstrate the key point: http://sqlfiddle.com/#!2/ea44d/2

Also Don't forget the UNION ALL and SUM which are the key parts missing in your question. Without UNION ALL you could have some rows rejected as duplicates when they are not in an example like the one I gave in the fiddle.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.