38

From the laravel documentation: Database Transaction. It says that:

DB::transaction(function() {
    DB::table('users')->update(array('votes' => 1));
    DB::table('posts')->delete();
});

Here, 1 is explicitly entered to update the users... I tried this using a variable,

$id = 3;
DB::transaction(function() {
    DB::table('users')->where('id','=',$id)->get();
});

It throws an error:

Undefined variable: id

I also tried to place to $id as a parameter like this:

$id = 3;
DB::transaction(function($id) {
    DB::table('users')->where('id', '=', $id)->get();
});

Still, an error:

Object of class Illuminate\Database\MySqlConnection could not be converted to string

Have I done anything wrong? Please advise. Thanks...

3 Answers 3

81

The use keyword is what you need:

$id = 3;
DB::transaction(function($id) use ($id) {
    DB::table('users')->where('id', '=', $id)->get();
});

For PHP 7 (untested, edited as requested by the answer below):

$id = 3;
DB::transaction(function() use ($id) {
    DB::table('users')->where('id', '=', $id)->get();
});
5
  • 9
    Recommended lecture: Anonymous Functions: Closures & Scoping Jun 13, 2013 at 15:28
  • If you alter $id inside the closure, will it affect the $id outside? Jun 24, 2015 at 0:39
  • 3
    @CaptainHypertext Not necessarily, if you want to alter the outside $id, you can just reference it like so: DB::transaction(function($id) use (&$id) {
    – S.A
    May 6, 2016 at 3:21
  • @Alexandre Danault It would be worth editing this answer reflecting the changes made in PHP 7 (mentioned in the other answer below.) Dec 24, 2018 at 1:06
  • In PHP 7 you do not need $id to be placed inside function(). Instead simply pass it inside use() closure. That should be good enough to make the variable available inside the code block. Oct 21, 2019 at 21:32
20

In PHP 7 the syntax has changed:

$id = 3;
DB::transaction(function () use ($id) {
    DB::table('users')->where('id', '=', $id)->get();
});
2
  • This is clutch.
    – niczak
    Jun 26, 2018 at 20:55
  • 1
    This is the new correct answer. I had the following error "Cannot use lexical variable $varName as a parameter name" and this answer did the trick. I even updated my composer to update the guzzle to see if it was the issue.
    – xWaZzo
    Feb 10, 2019 at 19:36
1

To answer @CaptainHypertext question of

If you alter $id inside the closure, will it affect the $id outside?

This method worked for me:

$id = 3;
$transactionResult = DB::transaction(function($id) use ($id) {
 $request_id = DB::table('requests')->insertGetId([
                          'company_id' => $company->$id,
                         ]);
return  $request_id ;
});

echo($transactionResult);

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