7

解决了!最终答案位于此问题的底部

我正在尝试使用 CodeIgniter 制作菜单构建器,出于某种原因,我似乎无法理解这个概念,尽管它看起来很简单(我是 PHP 和 CI 的新手)。这实际上与 CodeIgniter 本身的关系应该不大,因为我实际上只是将它用于查询和 MVC 模式。

我有两张桌子:

  • 菜单:

    • ID
    • 姓名

  • 菜单页面:

    • ID
    • page_id(与 pages.id 相关)
    • menu_id(与 menus.id 相关)
    • item_name(它在菜单中的显示方式)
    • item_order(用于排序)
    • item_parent(用于在子菜单中嵌套项目)

编辑:这是我希望实现的结构:

array(  
    [0] => array(
        [menu_id]    => 1,
        [menu_name]  => 'Menu 1',
        [menu_pages] => array(
            [0] => array(
                [id]         => 1,
                [page_id]    => 1,
                [menu_id]    => 1,
                [item_name]  => 'Home',
                [item_order] => 0,
                [item_level] => 0,
                [parent_id]  => ''
            ),
            [1] => array(
                [id]         => 2,
                [page_id]    => 2,
                [menu_id]    => 1,
                [item_name]  => 'About',
                [item_order] => 0,
                [item_level] => 0,
                [parent_id]  => ''
            )
        )
    ),
    [1] => array(
        [menu_id]    => 2,
        [menu_name]  => 'Menu 2',
        [menu_pages] => array(
            [0] => array(
                [id]         => 3,
                [page_id]    => 3,
                [menu_id]    => 2,
                [item_name]  => 'Services',
                [item_order] => 0,
                [item_level] => 0,
                [parent_id]  => ''
            ),
            [1] => array(
                [id]         => 4,
                [page_id]    => 4,
                [menu_id]    => 2,
                [item_name]  => 'Contact',
                [item_order] => 0,
                [item_level] => 0,
                [parent_id]  => ''
            )
        )
    )
)

这是我到目前为止所得到的(更新):

function GetMenus() {
    $menus    = $this->db->get('menus');
    $menucols = $this->db->list_fields('menus');

    $pages    = $this->db->get('menu_pages');
    $pagecols = $this->db->list_fields('menu_pages');

    $arr      = array();
    $i        = 0;

    foreach($menus->result() as $menu) {
        foreach($pages->result() as $page) {
            foreach($pagecols as $col) {
                $arr[$i][$col] = $page->$col;
            }

            foreach($menucols as $cols) {
                $this->menus[$i][$cols] = $menu->$cols;

                if($arr[$i]['menu_id'] === $menu->id) {
                    $this->menus[$i]['menu_pages'] = $arr[$i];
                }
            }
        }

        $i++;
    }

    return $this->menus;
}

上面实际上输出了这个:

Array(
    [0] => Array(
        [id] => 1,
        [name] => default,
        [menu_pages] => Array(
            Array( /* missing #1, showing #2/2 */
                [id] => 2
                [page_id] => 1
                [menu_id] => 1
                [item_name] => About
                [item_order] => 0
                [item_level] => 0
                [parent_id] => 
            )
        )
    ),
    [1] => Array(
        [id] => 2,
        [name] => menu2,
        [menu_pages] => Array(
            Array( /* missing #3, showing #4/4 */
                [id] => 4
                [page_id] => 3
                [menu_id] => 2
                [item_name] => Contact
                [item_order] => 0
                [item_level] => 0
                [parent_id] => 
            )
        )
    )
)

如您所见,这非常接近我的需要,但是缺少项目,因为它们似乎在数组中被覆盖(它仅显示每个菜单的最后一个菜单项-似乎它们具有相同的键)。

感谢您的任何帮助和建议!

编辑:这是最终的解决方案,大致基于米沙的回答:

模型:

function GetMenus() {
    /* Yes, I know these can be chained, I unchained them to avoid
       horizontal scrolling on SO */
    $this->db->select('menus.name, menu_pages.*, pages.slug');
    $this->db->join('menu_pages', 'menu_pages.menu_id = menus.id');
    $this->db->join('pages', 'pages.id = menu_pages.page_id');
    $this->db->order_by('item_order', 'ASC');
    $menus  = $this->db->get('menus');
    $result = array();

    foreach($menus->result() as $menu) {
        $result[$menu->name][$menu->id] = array(
            'page_id'    => $menu->page_id,
            'menu_id'    => $menu->menu_id,
            'item_name'  => $menu->item_name,
            'item_slug'  => $menu->slug,
            'item_order' => $menu->item_order,
            'item_level' => $menu->item_level,
            'parent_id'  => $menu->parent_id
        );
    }

    return $result;
}

控制器:

$this->menu = $this->page->GetMenus();

看法:

<ul class="nav">
    <?php foreach($this->menu['default'] as $item) { ?>
        <li>
            <a href="<?php echo $item['item_slug']; ?>">
                <?php echo $item['item_name']; ?>
            </a>
        </li>
    <?php } ?>
</ul>
4

4 回答 4

3

试试这个:

function GetMenus() {
    $menus = $this->db->get('menus');
    $pages = $this->db->get('menu_pages');
    $cols  = $this->db->list_fields('menu_pages');

    foreach($menus->result() as $menu) {
        $this->menus[$menu->id] = $menu;
        foreach($pages->result() as $page) {
            if($page->menu_id === $menu->id) { 
                foreach($cols as $col) {
                    $this->menus[$menu->id][$col][] = $page->$col;
                }
            }
        }
    }

    print_r($this->menus); // for debugging to see result

    return $this->menus;
}
于 2012-08-03T06:34:57.820 回答
3

您有两个查询,但我想我会选择一个带有连接的查询。这使得代码更短、更简单。我还没有测试下面的代码,但是这样的东西应该可以工作:

function GetMenus()
{
  $this->db->select('menus.name, menu_pages.*');
  $this->db->join('menu_pages', 'menu_pages.menu_id = menus.id');
  $this->db->order_by('menus.id');
  $q = $this->db->get('menus');

  $result = array();
  $current_menu_id = NULL;
  $i = -1;

  foreach($q->result() as $row)
  {
    if($current_menu_id !== $row->menu_id)
    {
      $i++;
      $result[] = array('menu_id' => $row->menu_id,
                        'menu_name' => $row->name,
                        'menu_pages' => array()
                  );
    }

    $result[$i]['menu_pages'][] = array('id' => $row->id,
                                        'page_id' => $row->page_id,
                                        'menu_id' => $row->menu_id,
                                        'item_name' => $row->item_name,
                                        'item_order' => $row->item_order,
                                        'item_level' => $row->item_level,
                                        'parent_id' => $row->parent_id
                                  );

    $current_menu_id = $row->menu_id;
  }

  return $result;
}
于 2012-08-05T07:51:47.403 回答
0 
 $sql = "
    select 
    id , 
    name ,
    group_concat(page_id) as page_ids,
    group_concat(item_name) as item_name,
    group_concat(item_order ) as item_order ,
from menues 
left join menu_pages on menu_pages.menu_id = menues .id";

$query = $this->db->query($sql);
return $query->result();

并完成了 php 端的单元格

于 2012-08-03T04:19:34.407 回答
0

您可以将 $this->menus 声明为:

$this->menus = array()

并使用array_push()这样的功能:

array_push($this->menus,$page->$col);

我还建议在模型中进行连接操作,而不是在你的函数中循环,因为数据库会快速完成并且你的代码看起来很优雅。

于 2012-08-03T04:19:49.430 回答