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I have a table named "articles". article(id,article,category,title). My table structure is as follows :

TABLE :

+----+-------------------------+---------------+
| id | article| category       | title         |
+----+-------------------------+---------------+
| 1  | a1     | a              | ta1           |
| 2  | a2     | a              | ta2           |
| 3  | b1     | b              | tb1           |
| 4  | b2     | b              | tb2           |
| 5  | b3     | b              | tb3           |
| 6  | c1     | c              | tc1           |
| 7  | c2     | c              | tc2           |
| 8  | c3     | c              | tc3           |
+----+-------------------------+---------------+

One "category" can have mutiple "article" related to it, that is number of article can belong to same category. I have to find COMPLETE record of the last entered article in each category.

SELECT id,article,category,title FROM articles
WHERE article IN(SELECT MAX(article) FROM articles GROUP BY category)

This query gives :

+----+-------------------------+-------+
| id | article| category       | title |
+----+-------------------------+-------+
| 2  | a2     | a              | ta2   |
| 5  | b3     | b              | tb3   |
| 8  | c3     | c              | tc3   |
+----+-------------------------+--------

NOW along with this OUTPUT, i have to find COUNT of articles in each category. My required OUtput is:

+----+-------------------------+-------+-------+
| id | article| category       | title | Count |
+----+-------------------------+-------+-------+
| 2  | a2     | a              | ta2   | 2     |
| 5  | b3     | b              | tb3   | 3     |
| 8  | c3     | c              | tc3   | 3     |
+----+-------------------------+----------------+

Help me with the query ????????/

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1  
how do you know if it;s the last inputted article? what is the structure of your table? –  John Woo Mar 30 '13 at 15:51

3 Answers 3

You can use a separate subquery which calculates the latest article and count the total article for each category, the result of the subquery is then joined back on the original table to get the other columns,

SELECT  a.*, b.total_article
FROM    articles a
        INNER JOIN
        (
            SELECT  category, 
                    MAX(Article) last_article, 
                    COUNT(*) total_article
            FROM    articles
            GROUP   BY category
        ) b ON  a.category = b.category AND
                a.Article = b.last_article
share|improve this answer
    
what is your desired output based on the example given? can you make it in tabular format? sample records with desired result in tabular format –  John Woo Apr 1 '13 at 6:18
    
+----+-------------------------+--------------+ | id | article| category | title | +----+-------------------------+--------------+ | 1 | a1 | a | ta1 | | 2 | a2 | a | ta2 | | 3 | b1 | b | tb1 | | 4 | b2 | b | tb2 | | 5 | b3 | b | tb3 | +----+-------------------------+--------------+ –  user2227393 Apr 1 '13 at 6:27
    
how do you know that certain record is the latest among the group? that's what i'm confused of. –  John Woo Apr 1 '13 at 6:30
    
and lastly, please post the records along with your question to make it readable. –  John Woo Apr 1 '13 at 6:31
    
i am new user of this site: I used same format to PRINT table,it reflect sytematically while ediiting. but unable to print same fomatized table after SAVING it –  user2227393 Apr 1 '13 at 8:14

I GOT My OUTPUT using :

SELECT a.id,a.title,a.article,a.category,b.LastArticle,b.TotalArticles FROM article a RIGHT JOIN ( SELECT id,title,article,category,max(article) LastArticle,count(article) TotalArticles FROM article GROUP BY category
) b ON
b.LastArticle = a.article

Thanks to those, who tried to help

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Try using MySQL GROUP BY and ORDER BY.

Try this:

SELECT id, article, category, title, COUNT(1) count
FROM articles
GROUP BY category
ORDER BY id DESC

This will return the result with the highest id value for every category as well as the number of articles for each category.

share|improve this answer
    
@user2227393 - See my edit for the addition of the COUNT() aggregate function. Misread your initial question. –  Aiias Mar 30 '13 at 16:26

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