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I'm using Wordpress and trying to create a view to make reviewing and analyzing my resort data a little easier. Resort data is stored in the post_meta table in Wordpress and referenced in a custom post type known as "resorts". The following query gives me the result set I want to parse:

SELECT a.id, a.post_type, a.post_title, b.post_id, b.meta_key, b.meta_value
FROM alpinezone_postmeta b
INNER JOIN alpinezone_posts a ON a.id = b.post_id
WHERE a.post_type = "resorts" 

What I want to do with this result set is have each unique meta_key of a set I define become a column and then each row should be a unique b.post_id (or a.id), which corresponds to an individual resort's record.

So ultimately I end up with:

post_title |   phone_num      | state         |
resort1    |   800-200-1111   | Vermont       |
resort2    |   800-200-2222   | New Hampshire |
resort 3   |   800-200-2323   | Maine         |

Basically ...... I'm not that great at MySQL so trying to figure out the best way to handle this. I do have a list of all the meta_key I want to place into columns, there are 36 of them capturing a range of information.

EDIT: Some more detail.

Current Structure - shows what table it comes from as well

*alpinezone_posts   alpinezone_postmeta alpinezone_postmeta*
post_title          meta_key            meta_value
----------------------------------------------------------------
sugarloaf           snow_phone          888-234-2222
sugarloaf           vertical_feet       2300
sugarloaf           site_url            sugarloaf.com
wachusett           snow_phone          888-111-2222
wachusett           vertical_feet       1000
wachusett           site_url            wachusett.com

These two tables are joined on post_id from table alpinezone_postmeta and id from table alpinezone_posts.

Only want results where the post_type in table alpinezone_posts is = "resorts"

How I want it to look in new view

post_title  snow_phone      vertical_feet   site_url
-------------------------------------------------------
sugarloaf   888-234-2222    2300            sugarloaf.com
wachusett   888-111-2222    1000            wachusett.com
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2 Answers 2

up vote 2 down vote accepted

You want to use is a cross-tabulated table or pivot table with "GROUP BY" like this example here: http://en.wikibooks.org/wiki/MySQL/Pivot_table

You need to use something other then SUM() for strings though... like MAX(): http://forums.mysql.com/read.php?20,75357,75367#msg-75367

    SELECT p.post_title AS post_title,
         MAX(IF(m.meta_key='phone_num',m.meta_value,0)) AS phone_num,
         MAX(IF(m.meta_key='state',m.meta_value,0)) AS state
    FROM alpinezone_postmeta m
    INNER JOIN alpinezone_posts p ON m.post_id = p.id
    WHERE p.post_type = 'resorts'
    GROUP BY m.post_id`
share|improve this answer
    
you are a genius –  Nick Jul 26 '12 at 23:29
1  
The story's awesome, I wish more howtos would be written that way :-) –  Simon Jul 27 '12 at 8:47

I understand you have one post for each resort, each with a more or less complete set of metadata. If that's correct, then here's how you can build a query that produces the table you describe. It's not really elegant, but it works without using another programming language or Excel (Excel might be able to make what you want from an export of the post_meta table, but my Excel-fu is not good enough...)

SELECT posts.title,
    m1.meta_value as <your meta key 1>,
    m2.meta_value as <your meta key 2>,
    m3.meta_value as <your meta key 3>,
    ...
FROM alpinezone_posts
    LEFT OUTER JOIN alpinezone_postmeta AS m1 ON alpinezone_posts.id = m1.post_id,
    LEFT OUTER JOIN alpinezone_postmeta AS m2 ON alpinezone_posts.id = m2.post_id,
    LEFT OUTER JOIN alpinezone_postmeta AS m3 ON alpinezone_posts.id = m3.post_id,
    ...
WHERE 
    m1.meta_key = <your meta key 1>
    AND m2.meta_key = <your meta key 2>
    AND m3.meta_key = <your meta key 3>
    ...

Using LEFT OUTER JOIN instead of INNER JOIN makes sure you get a result row for each resort even if you don't have a value for every meta_key.

If you can use PHP and an HTML table would help you, you could also loop all posts and use the get_post_custom() function.

share|improve this answer
    
Simon, thanks so much! I'm very close I think but I have two query issues. The first is that i have a meta_key field called "long" which threw an error. I'm guessing it's because it's somehow reserved for mysql? The other error I get when attempting to run in PHPMyAdmin is #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 'FROM alpinezone_posts LEFT OUTER JOIN alpinezone_postmeta AS m1 ON alpinezon' at line 37. I can't see what the issue is though.... –  Nick Jul 26 '12 at 14:14
1  
Yeah, long is a reserved word. You'll need to quote it in backticks, `long`. The syntax error might be a comma right before the FROM keyword, you'd have to remove that. If it wasn't that, post your query. –  Simon Jul 27 '12 at 8:35
    
Simon thanks as well! Don't know what I would do without resources like Stack Overflow!! –  Nick Jul 27 '12 at 13:17

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