我想知道在Doctrine2中处理多对多关系最好、最干净、最简单的方法是什么。
让我们假设我们有一张像Metallica的Master of Puppets这样的专辑,里面有几首歌。但请注意,这首歌可能会出现在不止一张专辑中,就像金属乐队的《Battery》——三张专辑都有这首歌。
因此,我需要的是专辑和曲目之间的多对多关系,使用带有一些附加列的第三个表(如指定专辑中的曲目位置)。实际上,正如Doctrine文档所建议的那样,我必须使用双一对多关系来实现该功能。
/** @Entity() */
class Album {
/** @Id @Column(type="integer") */
protected $id;
/** @Column() */
protected $title;
/** @OneToMany(targetEntity="AlbumTrackReference", mappedBy="album") */
protected $tracklist;
public function __construct() {
$this->tracklist = new \Doctrine\Common\Collections\ArrayCollection();
}
public function getTitle() {
return $this->title;
}
public function getTracklist() {
return $this->tracklist->toArray();
}
}
/** @Entity() */
class Track {
/** @Id @Column(type="integer") */
protected $id;
/** @Column() */
protected $title;
/** @Column(type="time") */
protected $duration;
/** @OneToMany(targetEntity="AlbumTrackReference", mappedBy="track") */
protected $albumsFeaturingThisTrack; // btw: any idea how to name this relation? :)
public function getTitle() {
return $this->title;
}
public function getDuration() {
return $this->duration;
}
}
/** @Entity() */
class AlbumTrackReference {
/** @Id @Column(type="integer") */
protected $id;
/** @ManyToOne(targetEntity="Album", inversedBy="tracklist") */
protected $album;
/** @ManyToOne(targetEntity="Track", inversedBy="albumsFeaturingThisTrack") */
protected $track;
/** @Column(type="integer") */
protected $position;
/** @Column(type="boolean") */
protected $isPromoted;
public function getPosition() {
return $this->position;
}
public function isPromoted() {
return $this->isPromoted;
}
public function getAlbum() {
return $this->album;
}
public function getTrack() {
return $this->track;
}
}
样本数据:
Album
+----+--------------------------+
| id | title |
+----+--------------------------+
| 1 | Master of Puppets |
| 2 | The Metallica Collection |
+----+--------------------------+
Track
+----+----------------------+----------+
| id | title | duration |
+----+----------------------+----------+
| 1 | Battery | 00:05:13 |
| 2 | Nothing Else Matters | 00:06:29 |
| 3 | Damage Inc. | 00:05:33 |
+----+----------------------+----------+
AlbumTrackReference
+----+----------+----------+----------+------------+
| id | album_id | track_id | position | isPromoted |
+----+----------+----------+----------+------------+
| 1 | 1 | 2 | 2 | 1 |
| 2 | 1 | 3 | 1 | 0 |
| 3 | 1 | 1 | 3 | 0 |
| 4 | 2 | 2 | 1 | 0 |
+----+----------+----------+----------+------------+
现在我可以显示一个与它们相关的专辑和曲目列表:
$dql = '
SELECT a, tl, t
FROM Entity\Album a
JOIN a.tracklist tl
JOIN tl.track t
ORDER BY tl.position ASC
';
$albums = $em->createQuery($dql)->getResult();
foreach ($albums as $album) {
echo $album->getTitle() . PHP_EOL;
foreach ($album->getTracklist() as $track) {
echo sprintf("\t#%d - %-20s (%s) %s\n",
$track->getPosition(),
$track->getTrack()->getTitle(),
$track->getTrack()->getDuration()->format('H:i:s'),
$track->isPromoted() ? ' - PROMOTED!' : ''
);
}
}
结果正如我所期待的,即:一个专辑列表,其中的歌曲按适当的顺序排列,推广的歌曲被标记为推广。
The Metallica Collection
#1 - Nothing Else Matters (00:06:29)
Master of Puppets
#1 - Damage Inc. (00:05:33)
#2 - Nothing Else Matters (00:06:29) - PROMOTED!
#3 - Battery (00:05:13)
怎么了?
这段代码说明了哪里出了问题:
foreach ($album->getTracklist() as $track) {
echo $track->getTrack()->getTitle();
}
Album::getTracklist()返回一个AlbumTrackReference对象数组,而不是Track对象。我不能创建代理方法因为如果专辑和轨道都有getTitle()方法呢?我可以在Album::getTracklist()方法中做一些额外的处理,但最简单的方法是什么?我有必要写这样的东西吗?
public function getTracklist() {
$tracklist = array();
foreach ($this->tracklist as $key => $trackReference) {
$tracklist[$key] = $trackReference->getTrack();
$tracklist[$key]->setPosition($trackReference->getPosition());
$tracklist[$key]->setPromoted($trackReference->isPromoted());
}
return $tracklist;
}
// And some extra getters/setters in Track class
EDIT
@beberlei建议使用代理方法:
class AlbumTrackReference {
public function getTitle() {
return $this->getTrack()->getTitle()
}
}
这将是一个好主意,但我使用的“引用对象”从双方:$album->getTracklist()[12]->getTitle()和$track->getAlbums()[1]->getTitle(),所以getTitle()方法应该根据调用的上下文返回不同的数据。
我将不得不做一些类似的事情:
getTracklist() {
foreach ($this->tracklist as $trackRef) { $trackRef->setContext($this); }
}
// ....
getAlbums() {
foreach ($this->tracklist as $trackRef) { $trackRef->setContext($this); }
}
// ...
AlbumTrackRef::getTitle() {
return $this->{$this->context}->getTitle();
}
这不是一个很干净的方法。