noo*_*php 53 php doctrine-orm zend-framework2
这是我的功能,我试图显示用户历史记录.为此,我需要显示用户的当前信用以及他的信用记录.
这就是我想要做的:
public function getHistory($users) {
$qb = $this->entityManager->createQueryBuilder();
$qb->select(array('a','u'))
->from('Credit\Entity\UserCreditHistory', 'a')
->leftJoin('User\Entity\User', 'u', \Doctrine\ORM\Query\Expr\Join::WITH, 'a.user = u.id')
->where("a.user = $users ")
->orderBy('a.created_at', 'DESC');
$query = $qb->getQuery();
$results = $query->getResult();
return $results;
}
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但是,我收到此错误:
[语法错误]第0行,第98行:错误:预期的Doctrine\ORM\Query\Lexer :: T_WITH,"开启"
编辑:我在join子句中用'WITH'替换'ON',现在我看到的只是加入列中的1个值.
Ocr*_*ius 106
如果你在一个指向用户的属性上有一个关联(比方说Credit\Entity\UserCreditHistory#user,从你的例子中选择),那么语法很简单:
public function getHistory($users) {
$qb = $this->entityManager->createQueryBuilder();
$qb
->select('a', 'u')
->from('Credit\Entity\UserCreditHistory', 'a')
->leftJoin('a.user', 'u')
->where('u = :user')
->setParameter('user', $users)
->orderBy('a.created_at', 'DESC');
return $qb->getQuery()->getResult();
}
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由于您在此处对连接结果应用条件,因此使用LEFT JOIN或仅使用JOIN相同的条件.
如果没有可用的关联,则查询如下所示
public function getHistory($users) {
$qb = $this->entityManager->createQueryBuilder();
$qb
->select('a', 'u')
->from('Credit\Entity\UserCreditHistory', 'a')
->leftJoin(
'User\Entity\User',
'u',
\Doctrine\ORM\Query\Expr\Join::WITH,
'a.user = u.id'
)
->where('u = :user')
->setParameter('user', $users)
->orderBy('a.created_at', 'DESC');
return $qb->getQuery()->getResult();
}
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这将生成如下结果集:
array(
array(
0 => UserCreditHistory instance,
1 => Userinstance,
),
array(
0 => UserCreditHistory instance,
1 => Userinstance,
),
// ...
)
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