Ham*_*ite 66
示例场景:大学的学生和课程.给定的学生可能会参加几门课程,自然一门课程通常会有很多学生.
示例表,简单设计:
CREATE TABLE `Student` (
`StudentID` INT UNSIGNED NOT NULL AUTO_INCREMENT,
`FirstName` VARCHAR(25),
`LastName` VARCHAR(25) NOT NULL,
PRIMARY KEY (`StudentID`)
) ENGINE=INNODB CHARACTER SET utf8 COLLATE utf8_general_ci
CREATE TABLE `Course` (
`CourseID` SMALLINT UNSIGNED NOT NULL AUTO_INCREMENT,
`Code` VARCHAR(10) CHARACTER SET ascii COLLATE ascii_general_ci NOT NULL,
`Name` VARCHAR(100) NOT NULL,
PRIMARY KEY (`CourseID`)
) ENGINE=INNODB CHARACTER SET utf8 COLLATE utf8_general_ci
CREATE TABLE `CourseMembership` (
`Student` INT UNSIGNED NOT NULL,
`Course` SMALLINT UNSIGNED NOT NULL,
PRIMARY KEY (`Student`, `Course`),
CONSTRAINT `Constr_CourseMembership_Student_fk`
FOREIGN KEY `Student_fk` (`Student`) REFERENCES `Student` (`StudentID`)
ON DELETE CASCADE ON UPDATE CASCADE,
CONSTRAINT `Constr_CourseMembership_Course_fk`
FOREIGN KEY `Course_fk` (`Course`) REFERENCES `Course` (`CourseID`)
ON DELETE CASCADE ON UPDATE CASCADE
) ENGINE=INNODB CHARACTER SET ascii COLLATE ascii_general_ci
查找所有注册课程的学生:
SELECT
`Student`.*
FROM
`Student`
JOIN `CourseMembership` ON `Student`.`StudentID` = `CourseMembership`.`Student`
WHERE
`CourseMembership`.`Course` = 1234
查找特定学生的所有课程:
SELECT
`Course`.*
FROM
`Course`
JOIN `CourseMembership` ON `Course`.`CourseID` = `CourseMembership`.`Course`
WHERE
`CourseMembership`.`Student` = 5678
Syn*_*ror 10
这是一个涉及SQL的快速而肮脏的例子.我认为没有必要用php搞砸这个概念.只需像检测其他任何内容一样检索集合.
在此示例中,有许多名称和许多颜色.允许人们拥有多种喜欢的颜色,许多人可以拥有相同的喜欢颜色.因此很多甚至很多.
***** Tables **********
person
--------
id - int
name - varchar
favColor
-------------
id - int
color - varchar
person_color
------------
person_id - int (matches an id from person)
color_id - int (matches an id from favColor)
****** Sample Query ******
SELECT name, color
FROM person
LEFT JOIN person_color ON (person.id=person_id)
LEFT JOIN favColor ON (favColor.id=color_id)
****** Results From Sample Query *******
Name - Color
---------------
John - Blue
John - Red
Mary - Yellow
Timmy - Yellow
Suzie - Green
Suzie - Blue
etc...
这有帮助吗?
mysql> SELECT * FROm products;
+----+-----------+------------+
| id | name | company_id |
+----+-----------+------------+
| 1 | grechka | 1 |
| 2 | rus | 1 |
| 3 | makaronu | 2 |
| 4 | yachna | 3 |
| 5 | svuniacha | 3 |
| 6 | manka | 4 |
+----+-----------+------------+
6 rows in set (0.00 sec)
mysql> SELECT * FROm company;
+----+----------+
| id | name |
+----+----------+
| 1 | LVIV |
| 2 | KIEV |
| 3 | KHarkiv |
| 4 | MADRID |
| 5 | MaLIN |
| 6 | KOROSTEN |
+----+----------+
6 rows in set (0.00 sec)
mysql> SELECT * FROm many_many;
+------------+---------+
| product_id | city_id |
+------------+---------+
| 1 | 1 |
| 1 | 3 |
| 2 | 3 |
| 1 | 2 |
| 1 | 4 |
| 2 | 4 |
| 2 | 1 |
| 3 | 1 |
+------------+---------+
8 rows in set (0.00 sec)
mysql> SELECT products.name,company.name FROM products JOIN many_many ON many_
ny.product_id =products.id JOIN company ON company.id= many_many.city_id;
+----------+---------+
| name | name |
+----------+---------+
| grechka | LVIV |
| grechka | KHarkiv |
| grechka | KIEV |
| grechka | MADRID |
| rus | KHarkiv |
| rus | MADRID |
| rus | LVIV |
| makaronu | LVIV |
+----------+---------+
8 rows in set (0.00 sec)