0

I need to insert data to database by use foreach But my code only insert last one, Please help me to find out why?

Post Data

{
"APIPassword": "Test",
"Method": "Transfer",
"Data": [
    {
        "Account": "Test01",
        "Amount": 100,
        "TransactionNo": "Test1",
        "dbID": "Bet1"
    },
    {
        "Account": "Test02",
        "Amount": -100,
        "TransactionNo": "Test2",
        "dbID": "Bet2"
    }
]}

My Code

$apiPassword = $data['APIPassword'];
$method = $data['Method'];
$datas = $data['Data'];

$db = new db();

foreach ($datas as $data) {
    $db->userId = '1';
    $db->account = $data['Account'];
    $db->amount = (float) $data['Amount'];
    $db->transactionNo = $data['TransactionNo'];
    $db->dbID = $data['dbID'];
    $db->save();
}

Result when submit

"Account": "Test02",
    "Amount": -100,
    "TransactionNo": "Test2",
    "db": "Bet2"
  • 5
    You are setting the userId = 1 in all cases, so it overwrites – Marko Paju Apr 30 '18 at 11:38
  • @MarkoPaju What problem in userId because userId can be same data. – Nicholas Déziel Apr 30 '18 at 11:39
  • @MarkoPaju I have column "id" as primary key. "userId" is user profile id. – Nicholas Déziel Apr 30 '18 at 11:41
  • add break; after $db->save() and see if it inserts the first one – Marko Paju Apr 30 '18 at 11:42
  • @MarkoPaju Yeah, it insert first one but i need to insert it all. – Nicholas Déziel Apr 30 '18 at 11:43
1

You need to instantiate a new db object each time in the for loop, in your current code you are using the same object on each iteration of the loop.

Change your code to this:

$apiPassword = $data['APIPassword'];
$method = $data['Method'];
$datas = $data['Data'];

foreach ($datas as $data) {
    $db = new db();
    $db->userId = '1';
    $db->account = $data['Account'];
    $db->amount = (float) $data['Amount'];
    $db->transactionNo = $data['TransactionNo'];
    $db->dbID = $data['dbID'];
    $db->save();
}
  • Can you explain why that solves the problem? – Nico Haase May 1 '18 at 16:12
  • 1
    This solves the problem because the save function is context sensitive. Previously, instantiating db outside the loop created one object and save would create the object in the database on the first iteration and update the object on subsequent iterations. Instantiating inside the loop will make save perform a create operation each time because a new db object will be created each time – Shane McGough May 2 '18 at 16:33
  • Please add such context directly to your next answer, that makes it even more valuable than a simple „use this code“ – Nico Haase May 2 '18 at 16:35
0

What is $db = new db();, does db corresponds to a model? Try like this:

foreach ($datas as $data) {
    $db = new db(); // <-- Important part
    $db->userId = '1';
    $db->account = $data['Account'];
    $db->amount = (float) $data['Amount'];
    $db->transactionNo = $data['TransactionNo'];
    $db->dbID = $data['dbID'];
    $db->save();
}

Perhaps in a later stage of your app you may want to update records. If dbID is your unique record key, you will do something like:

foreach ($datas as $data) {
    $item = db::findFirst([
        'conditions' => 'dbID = :dbID:',
        'bind' => [
            'dbID' => $data['dbID']
        ]
    ]);

    // Record does not exist in our DB - skip or even create it?
    if ($item === false) {
        continue;
    }

    // Proceed with updating data
    $item->account = $data['Account'];
    $item->amount = (float) $data['Amount'];
    $item->transactionNo = $data['TransactionNo'];
    $item->save();
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.