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I've recently started working with Yii, so forgive the ignorance :)

I have an SQL query which returns multiple rows (array of arrays), i then want to insert those rows to DB:

$queryResults = $command->queryAll();
$model=new Campaigns();
foreach ($queryResults as $CActive) {
    $model->setIsNewRecord(true);
    $model->attributes=$CActive;

if($model->save($CActive)) {
    echo "Good!";
}

the problem is even though i'm setting the model with new record it has a record of the previous PK (since it's the same model).

do i need to create a new model for each row? (doesnt seem likely...)

Thanks as always, Danny

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2 Answers 2

up vote 6 down vote accepted

You have to create a new instance at every insert, like this, otherwise you are just updating one model over and over.

$queryResults = $command->queryAll();

foreach ($queryResults as $CActive) {
    $model=new Campaigns;  
    $model->attributes=$CActive;

    if($model->save($CActive))  echo "Good!";
}
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Thanks!! that is what i thought... isnt this very resource consuming? –  Danny Valariola Jun 5 '12 at 7:59
    
The instance creation isn't, but the inserts will definitely take their toll. –  adamors Jun 5 '12 at 8:01

Try this..

 $queryResults = $command->queryAll();

         foreach ($queryResults as $CActive) {

            $model=new Campaigns;  

            $model->attributes=$CActive;

            if($model->save($CActive)) {
    echo "Good!";
}

Well you must need to create instance for every row..its Yii core requirement.. }

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This is what he originally had. –  adamors Jun 5 '12 at 7:54
    
your answer is exactly like Örs', so either you add some valuable info(an alternate method maybe), or delete this answer. –  bool.dev Jun 5 '12 at 17:10

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