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Can someone help me with listing items by category in PHP?

I'm trying to create a simple list of books by category:

JavaScript
JavaScript Patterns
Object-Oriented JavaScript

Ajax
Ajax Definitive Guide
Bulletproof Ajax

jQuery
jQuery Cookbook
Learning jQuery 1.3

I have no problems with the data structure or SQL query:

BOOK:     book_id, book_title, fk_category_id  
CATEGORY: category_id, category_name

SELECT category.category_name, book.book_title
FROM category LEFT OUTER JOIN book
ON category.category_id = book.fk_category_id;

My problem is that I don't know how to write the PHP script to list the books under each category header.

I know enough to get the result set into an array, but then I'm stumped on using that array to group the items as shown.

Another Stack question addresses almost the same thing, but the responses stop short of solving the PHP code: List items by category

Thanks!

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i think i see what to do, but it would help to see a sample results array. can you try to post? –  jon_darkstar May 6 '11 at 1:34
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2 Answers

up vote 5 down vote accepted

Add an ORDER BY category.category_name clause to your query so that as you loop through the resulting rows, the items in each category will be grouped together. Then, each time the category is different from the previous one seen, print out the category as the heading before printing the title.

$category = null;
foreach ($rows as $row) {
    if ($row['category_name'] != $category) {
        $category = $row['category_name'];
        print "<h1>".$category."</h1>\n";
    }
    print $row['book_title']."<br/>\n";
}
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+1 ............ =D –  jon_darkstar May 6 '11 at 1:48
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Order the results by category and then just iterate thru, putting a category header whenever the category name changes.

The ordering is most easily done in the SQL query. You don't even need an intermediate array.

SELECT category.category_name, book.book_title
FROM category LEFT OUTER JOIN book
               ON category.category_id = book.fk_category_id
ORDER BY category.category_name

And then for the PHP

$res = mysql_query($query);
$lastCategory = '';
while ($row = mysql_fetch_assoc($res))
{
    if($row['category_name'] != $lastCategory)
    {
       $lastCategory = $row['category_name'];
       echo "<br /><strong>$lastCategory</strong>";
    }        
    echo $row['book_title'] . ' <br />';
}

You do not need to put all your results into an array first. You can just fetch them as you go.

share|improve this answer
    
Nice answer. :-) I guess we were both typing at the same time. –  Adam Franco May 6 '11 at 1:41
    
lovely answer indeed. and no respect from the crowd tsk tsk –  jon_darkstar May 6 '11 at 1:48
    
Thanks for the lightning fast response. I'm new to the syntax for skipping the array step, so just taking some time to work through your solution. Will post back momentarily. Thanks again to you both, jon and adam –  cantera May 6 '11 at 1:54
    
you can build the array if you prefer, but its an unneeded iteration. plus for larger tables the memory becomes an issue. (imagine a different situation where you have 100,000+ rows) –  jon_darkstar May 6 '11 at 1:57
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