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If anyone could recommend a good book for learning mySQL as well, that would be great :).

I have two tables, tags, codes_tags

CREATE TABLE `tags` (
 `id` int(11) unsigned NOT NULL AUTO_INCREMENT,
 `name` varchar(40) CHARACTER SET utf8 COLLATE utf8_bin NOT NULL,
 PRIMARY KEY (`id`),
 UNIQUE KEY `name` (`name`)
) ENGINE=InnoDB AUTO_INCREMENT=190 DEFAULT CHARSET=utf8


CREATE TABLE `codes_tags` (
 `code_id` int(11) unsigned NOT NULL,
 `tag_id` int(11) unsigned NOT NULL,
 KEY `sourcecode_id` (`code_id`),
 KEY `tag_id` (`tag_id`)
) ENGINE=InnoDB DEFAULT CHARSET=utf8

What I am trying to do is select the name from 'tags', and how many of that tag_id there are in 'codes_tags', and order them by that count. If there is no records in codes_tags for that tag_id, 'count' should be equal to 0 or NULL (preferably 0).

This is the closest I have come so far:

SELECT tags.name, COUNT( codes_tags.tag_id ) AS count
FROM tags
LEFT JOIN codes_tags ON tags.id = codes_tags.tag_id
GROUP BY tag_id
ORDER BY count DESC
LIMIT 0 , 30

It seems to do what I am wanting, however it is only returning four rows when it should return 30.

What am I doing wrong here? Thanks.

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3 Answers 3

up vote 0 down vote accepted

I think if you change your COUNT(codes_tags.tag_id) to COUNT(*) in the SELECT, that NULLs will also be included. (If it's nulls or 0 counts that you're missing. Otherwise, the query looks fine).

EDIT: On second thought, I missed the LEFT JOIN. That would mean you want all of the tags even if they're not related to something in the codes_tags table. Is that what you want?

I would probably do something like the following:

SELECT tags.name, COUNT(*) AS count
FROM tags
INNER JOIN codes_tags ON tags.id = codes_tags.tag_id
GROUP BY tags.id
ORDER BY count(*) DESC

It can be inferred from the items not in the list which tags are not also included in codes_tags. However, if you wanted to explicitly do that as well:

SELECT tags.name, COUNT(*) AS count
FROM tags
INNER JOIN codes_tags ON tags.id = codes_tags.tag_id
GROUP BY tags.id
UNION
SELECT tags.name, '0'
from tags
where tags.name not in 
   (SELECT tags.name
   FROM tags
   INNER JOIN codes_tags ON tags.id = codes_tags.tag_id)
ORDER BY count(*) DESC

(I don't have access to a SQL box at the moment, so take the queries with a grain of salt; they're untested.)

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Sorry but I've already tried that. What it returns is a bit weird, the first record has a count of 185, and then there are three after it with the correct count of 1. But it still only returns 4 rows. –  james Sep 1 '09 at 5:12
    
Your second SQL query was exactly what I was after. Could you explain what it does? –  james Sep 1 '09 at 5:23
    
The first SELECT grabs the names and counts for all of those names that exist in both the tags and codes_tags table. The UNION says I want to add more rows (note that the column type and count must be the same in both queries). The second SELECT grabs the names and a zero (to represent the count), but only for those items NOT in the first SELECT. The WHERE clause limits the results to names that were not included in the first query. –  Michael Todd Sep 1 '09 at 12:56

I've tested this out on MySQL with some dummy data and the query appears to return more than 4 rows for me. I ran your create table statements and then populated them with the following statements:

insert into tags (name) values ('java'), ('mysql'), ('php'), ('ruby'), ('.net'), ('python');
insert into codes_tags (code_id, tag_id) values (1,194), (2,194), (3,194), (1,191), (2,191), (3,191), (4,191), (5,191), (1,192), (1,195), (1,193);

When I run your query on that data, it returns 6 rows. In order to help further debug this, can you post the results of the following 2 queries:

select count(*) from tags;
select * from tags limit 10;

Also, in order to make sure you have proper data integrity, can you add the following foreign key and see if it succeeds?

alter table codes_tags add foreign key codes_tags_tag_id_key(tag_id) references tags(id);
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Change the LEFT JOIN to LEFT OUTER JOIN

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