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コードに問題があります。n サブカテゴリを持つすべてのカテゴリを表示する最良の方法は何ですか?

私のMySQLデータベースは次のようになります:

CREATE TABLE categories ( 
category_id INT UNSIGNED NOT NULL AUTO_INCREMENT, 
parent_id INT UNSIGNED NOT NULL DEFAULT 0, 
name TEXT NOT NULL, 
user INT NOT NULL, 
PRIMARY KEY (category_id), 
INDEX parent (parent_id)
);

user別のテーブルの id はどこにありますか (カテゴリに がuser = '2'ある場合、 を持つユーザーid = '2'はそのカテゴリを見ることができます)

category_id   parent_id   name                   user
1             0           Main category 1        2
2             1           Subcategory 1          2
3             1           Subcategory 2          2
4             3           SubSubcategory 1       2

私のphpコード:

<?php 
    include('config.php'); //Mysql connect file
//get id from user

 if($_GET['id'] != $user_id) {

    $id = $_GET['id'];

//check to make sure the user is an admin, who can change mysql

$result = mysql_query("SELECT * FROM users WHERE username = '$username' AND admin = '1'");

$rowCheck = mysql_result($result, 0);



//if the query returns a number, we know the user is an admin. And here we can VIEW our categories

if($rowCheck > 0) { 

$user_result = mysql_query("SELECT * FROM users, categories WHERE id = '$id'");

     while($row = mysql_fetch_array($user_result)) { ?>     

        <ol>
        <li><a href=""><?php echo $row['name']; ?></a></li>
        </ol>

    <?php }

    } else {

        echo "You are not admin";
     }    
//bla bla bla etc.
...
 }

次のようなカテゴリを表示するにはどうすればよいですか

<ol>
 <li>
 <a href="">Main category 1</a>
      <ol>
      <li><a href="">Subcategory 1</a></li>
      <li><a href="">Subcategory 2</a>
          <ol>
              <li><a href="">Subsubcategory 1</a></li>
          </ol>
      </li>
      </ol>
 </li>
</ol>
4

2 に答える 2

3

これを試して

$result = mysql_query("SELECT * FROM users WHERE username = '$username' AND admin = '1'");

$rowCheck = mysql_result($result, 0);   

//if the query returns a number, we know the user is an admin. And here we can VIEW our categories

if($rowCheck > 0) { 

//First fetch only parent categories
$first_level_cats = mysql_query("SELECT * FROM categories WHERE user = '$id' AND parent_id = 0");
     echo '<ol>';
     while($row = mysql_fetch_array($first_level-cats)) { ?>     

        <li><a href=""><?php echo $row['name']; ?></a></li>

        <?php
         $second_level_cats = mysql_query("SELECT * FROM categories WHERE user = '$id' AND parent_id = $row['id']");
     echo '<ol>';
     while($row = mysql_fetch_array($second_level-cats)) { ?>     

        <li><a href=""><?php echo $row['name']; ?></a></li>              
        <?php 
          $third_level_cats = mysql_query("SELECT * FROM categories WHERE user = '$id' AND parent_id = $row['id']");
     echo '<ol>';
     while($row = mysql_fetch_array($sthird_level-cats)) { ?>     

        <li><a href=""><?php echo $row['name']; ?></a></li>              
        <?php
            }
          echo '</ol>'; //third level close
        ?>
          } 
         echo '</ol>'; // second level close
        ?>    
    <?php }
   echo '</ol>';  // first level close
    } else {

        echo "You are not admin";
     }    
//bla bla bla etc.
...
 }

私はあなたのクエリを解決するために最善を尽くしましtable name and columnsschema.

Mysqlの代わりにMysqli拡張機能を使用してみてください

于 2013-06-18T09:16:57.233 に答える