Question

在控制器中，我有以下代码：

public function actionView($id)
{
    $query = new Query;
    $query->select('*')
        ->from('table_1 t1')
        ->innerJoin('table_2 t2', 't2.t1_id = t1.id')
        ->innerJoin('table_3 t3', 't2.t3_id = t3.id')
        ->innerJoin('table_4 t4', 't3.t4_id = t4.id')
        ->andWhere('t1.id = ' . $id);
    $rows = $query->all();
    return $this->render('view', [
        'model' => $this->findModel($id),
        'rows' => $rows,
        ]);
}

请参阅db架构：https://github.com/AntoninSlejska/yii-test/blob/master/example/sql/example-schema.png

在视图中，view.php显示来自tables_2-4的数据，这些数据与table_1：

相关

foreach($rows as $row) {
    echo $row['t2_field_1'];
    echo $row['t2_field_2'];
    ...
}

请参阅：Yii2 innerJoin() 并且：http://www.yiiframework.com/doc-2.0/yii-db-query.html

它有效，但我不确定，如果它是最正确的Yii2方式。

我试图在模型TableOne中定义关系：

public function getTableTwoRecords()
{
    return $this->hasMany(TableTwo::className(), ['t1_id' => 'id']);
}
public function getTableThreeRecords()
{
    return $this->hasMany(TableThree::className(), ['id' => 't3_id'])
    ->via('tableTwoRecords');
}
public function getTableFourRecords()
{
    return $this->hasMany(TableFour::className(), ['id' => 't4_id'])
    ->via('tableThreeRecords');
}

然后加入控制器TableOneController中的记录：

$records = TableOne::find()
    ->innerJoinWith(['tableTwoRecords'])
    ->innerJoinWith(['tableThreeRecords'])
    ->innerJoinWith(['tableFourRecords'])
    ->all();

但它不起作用。如果我只加入前三个表，那么它可以工作。如果我添加第四个表，然后我收到以下错误消息：“获取未知属性：前端\ models \ TableOne :: t3_id”

如果我以这种方式更改函数getTableFourRecords（）：

public function getTableFourRecords()
{
    return $this->hasOne(TableThree::className(), ['t4_id' => 'id']);
}

然后我收到此错误消息：“SQLSTATE [42S22]：找不到列：1054'on子句'中的未知列'table_4.t4_id' 正在执行的SQL是：SELECT table_1。* FROM table_1 INNER JOIN table_2 ON table_1。id = table_2。{{1} } INNER JOIN t1_id ON table_3。table_2 = t3_id。table_3内部加入id ON table_4。{{1} } = table_1。id“

Answer 1

您必须在关系中定义键值对，例如：

class Customer extends ActiveRecord
{
    public function getOrders()
    {
        return $this->hasMany(Order::className(), ['customer_id' => 'id']); // Always KEY => VALUE pair this relation relate to hasMany relation
    }
}

class Order extends ActiveRecord
{
    public function getCustomer()
    {
        return $this->hasOne(Customer::className(), ['id' => 'customer_id']);
// Always KEY => VALUE pair this relation relate to hasOne relation
        }
    }

现在在你的第四关系中使用：

public function getTableFourRecords()
{
    return $this->hasOne(TableThree::className(), ['id' => 't4_id']);
}

您可以在ActiveRecord here

上阅读更多内容

Answer 2

根据softark的answer，最简单的解决方案可能如下所示：

Model TableOne：

public function getTableTwoRecords()
    {
        return $this->hasMany(TableTwo::className(), ['t1_id' => 'id']);
    }

Model TableTwo：

public function getTableThreeRecord()
    {
        return $this->hasOne(TableThree::className(), ['id' => 't3_id']);
    }

Model TableThree：

public function getTableFourRecord()
{
    return $this->hasOne(TableFour::className(), ['id' => 't4_id']);
}

Controller TableOneController：

public function actionView($id)
{
    return $this->render('view', [
         'model' => $this->findModel($id),
    ]);
}

view table-one / view.php：

foreach ($model->tableTwoRecords as $record) {
    echo ' Table 2 >> ';
    echo ' ID: ' . $record->id;
    echo ' T1 ID: ' . $record->t1_id;
    echo ' T3 ID: ' . $record->t3_id;
    echo ' Table 3 >> ';
    echo ' ID: ' . $record->tableThreeRecord->id;
    echo ' T4 ID: ' . $record->tableThreeRecord->t4_id;
    echo ' Table 4 >> ';
    echo ' ID: ' . $record->tableThreeRecord->tableFourRecord->id;
    echo ' <br>';
}

也可以使用基于GridView的解决方案。

Model TableTwo：

public function getTableOneRecord()
{
    return $this->hasOne(TableOne::className(), ['id' => 't1_id']);
}
public function getTableThreeRecord()
{
    return $this->hasOne(TableThree::className(), ['id' => 't3_id']);
}
public function getTableFourRecord()
{
    return $this->hasOne(TableFour::className(), ['id' => 't4_id'])
        ->via('tableThreeRecord');
}

TableOneController中的函数actionView是用Gii为模型TableTwo生成的：

use app\models\TableTwo;
use app\models\TableTwoSearch;
...
public function actionView($id)
{
    $searchModel = new TableTwoSearch([
        't1_id' => $id, // the data have to be filtered by the id of the displayed record
    ]);
    $dataProvider = $searchModel->search(Yii::$app->request->queryParams);

    return $this->render('view', [
         'model' => $this->findModel($id),
         'searchModel' => $searchModel,
         'dataProvider' => $dataProvider,
    ]);
}

以及views / table-one / view.php：

echo GridView::widget([
    'dataProvider' => $dataProvider,
    'columns' => [
     'id',
     't1_id',
     'tableOneRecord.id',
     't3_id',
     'tableThreeRecord.id',
     'tableThreeRecord.t4_id',
     'tableFourRecord.id',
    ],
]);

请参阅code on Github。

Yii2：在多个表之间定义关系的正确方法是什么？

2 个答案: