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I'm pretty new to Joins so hope this all makes sense.

I'm joining 4 tables and want to create a while loop that spits out results nested under different categories.

My Tables

categories
id | category_name

pages
id | page_name | category

*page_content*
id | page_id | image_id

images
id | thumb_path

My current SQL join

<?php $all_photos = mysql_query("
    SELECT * FROM categories JOIN pages ON pages.category = categories.id
    JOIN image_pages ON image_pages.page_id = pages.id
    JOIN images ON images.id = image_pages.image_id
");?>

The result I want from a while loop

I would like to get something like this....

Category 1
page 1
Image 1, image 2, image 3

page 2
Image 2, image 4

Category 2
page 3
image 1

page 4
image 1, image 2, image 3

I hope that makes sense.

Each image can fall under multiple pages and each page can fall under multiple categories.

at the moment I have 2 solutions, one which lists each category several times according to the the amount of pages inside them:

eg. category 1, page 1, image 1 - category 1, page 1, image 2 etc

One that uses a while loop inside another while loop inside another while loop, resulting in 3 sql queries.

    <?php 
        while($all_page = mysql_fetch_array($all_pages)) {
        ?>
            <p><?=$all_page['page_name']?></p>


            <?php $all_images = mysql_query("SELECT * FROM images JOIN image_pages ON image_pages.page_id  = " . $all_page['id'] . " AND image_pages.image_id = images.id");

            ?>

            <div class="admin-images-block clearfix">

            <?php

            while($all_image = mysql_fetch_array($all_images)) {
            ?>


                <img src="<?=$all_image['thumb_path']?>" alt="<?=$all_image['title']?>"/>


            <?php
            }

            ?>
            </div>
            <?php


        }



}

?>

share|improve this question

1 Answer 1

up vote 1 down vote accepted

I think second solution is better and straight forward. You can do this like:

Update:

  <?php
$all_cats=mysql_query("select * from categories");
while($all_cat = mysql_fetch_array($all_cats)){
    //print your cat title 
    $check = mysql_query("select * from images i, pages p, page_content pc categories c where c.id = p.category and p.id = pc.page_id and pc.image_id=i.id");

    if(mysql_num_rows($check) > 0){

    $all_pages=mysql_query("select * from pages where category=".$all_cat['id']);
    while($all_page = mysql_fetch_array($all_pages)){
        //print your page
        echo "<p>".$all_page['page_name']."</p>";
        ?>
        <div class="admin-images-block clearfix">
            <?php

            $all_images=mysql_query("select * from images where id=".$all_page['image_id']);
            while($all_image = mysql_fetch_array($all_images)) {
            //print your img
            ?>
                <img src="<?=$all_image['thumb_path']?>" alt="<?=$all_image['title']?>"/>
            <?php}?>
         </div>
    <?php
    }

    }
}
?>

Best of luck :)

share|improve this answer
    
Cheers dude. It is simpler, i just wanted to try something a bit more compact. With this method I can't seem to get it to register a 'count' properly. I would like to be able to display an error message when there are no images on a page. Or in fact not display the page at all. –  Hob Nov 18 '12 at 13:14
    
Yes you can do it by just checking count of images for each category. If count is > 0 then display page, otherwise not. I have updated the answer. –  Prakash Pala Nov 19 '12 at 6:44

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