嵌套集模型,计算类别中的项目
[英]Nested Set Model, count items in categories
问题描述
我有一个嵌套集模型为我的网站工作,子类别中的项目等等。 除了一个我无法解决的问题之外,它的工作效果很好。
+---------+-----------------------------+
| item_id | item_name |
+---------+-----------------------------+
| 1 | Laptop |
| 2 | iPod Classic 80GB |
| 3 | iPod Classic 160GB |
+---------+-----------------------------+
+---------+-------------+
| item_id | category_id |
+---------+-------------+
| 1 | 4 |
| 2 | 2 |
| 3 | 2 |
+---------+-------------+
+-------------+--------------------+-----+-----+
| category_id | name | lft | rgt |
+-------------+--------------------+-----+-----+
| 1 | iPod | 1 | 6 |
| 2 | Classic | 2 | 3 |
| 3 | Nano | 4 | 5 |
| 4 | Computers | 7 | 8 |
+-------------+--------------------+-----+-----+
使用以下查询:
SELECT parent.name, COUNT(product.item_id)
FROM Category AS node, Category AS parent, Item_Category AS product
WHERE node.lft BETWEEN parent.lft AND parent.rgt
AND node.category_id = product.category_id
GROUP BY parent.name
ORDER BY node.lft;
给出以下输出:
+-----------------+------------------------+
| name | COUNT(product.item_id) |
+-----------------+------------------------+
| iPod | 2 |
| Classic | 2 |
| Computers | 1 |
+-----------------+------------------------+
换句话说,将不会显示其中没有产品的所有字段。 现在问题,我想用COUNT()result = 0显示它们。我的查询将如何实现这一点? :)
1 个解决方案
解决方案1
3 已采纳 2009-11-19 14:07:03
听起来像LEFT OUTER JOIN的任务给我,就像这样:
SELECT parent.name, COUNT(product.item_id),
(select count(*) from Category parent2
where parent.lft > parent2.lft
and parent.rgt < parent2.rgt) as depth
FROM Category parent
LEFT OUTER JOIN Category node
ON node.lft BETWEEN parent.lft AND parent.rgt
LEFT OUTER JOIN Item_Category product
ON node.category_id = product.category_id
GROUP BY parent.name
ORDER by node.lft
因此,您可以确保显示所有类别。 请注意,我不是100%肯定。
编辑:添加了深度的子选择,试一试。
编辑:删除逗号
SQL查询使用嵌套集模型对辅助表中的项目数进行计数
[英]SQL query to count number of items in secondary table using Nested Set model
如何从此结果集创建数组(使用遍历模型存储在数据库中的嵌套类别)?
[英]How to create an array from this result set (nested categories stored in databased with traversal model)?
SQL: COUNT() + JOIN() 计算每个类别的项目,包括空类别
[英]SQL: COUNT() + JOIN() to count items per category INCLUDING empty categories
如何获得每个类别中存在但其他类别中不存在的项目的计数?
[英]How to get count of items present in each category but not present in other categories?
声明:本站的技术帖子网页,遵循CC BY-SA 4.0协议,如果您需要转载,请注明本站网址或者原文地址。任何问题请咨询:yoyou2525@163.com.