40

i want information from one table and if there is matched info from another table that as well.

this my code

 $scoreObject = DB::table('responses')
        ->select('responses.id', 'responses.questions_id', 'responses.answer_id', 'responses.open_answer', 'responses.user_id',  'responses.scan_id',
             'questions.question', 'questions.question_nr', 'questions.type', 'questions.totalsection_id',
            'answers.id as answerID', 'answers.answer', 'answers.questions_id', 'answers.points'
        )
        ->Join('answers as answers', 'responses.answer_id', '=', 'answers.id')
        ->Join('questions as questions', 'answers.questions_id', '=', 'questions.id')
        ->orderBy('questions.id', 'ASC')
        ->where('responses.scan_id', $scanid)
        ->where('responses.user_id', $userid)
        ->groupBy('questions.id')
        ->get();

It returns all responses that have matches with answers (answers.questions_id questions.id'). some responses don't have matched (because there is no responses.answer_id) but i still want the responses info then.

how can i get such a left outer join in laravel ?

4
  • 3
    You could try specifying the join as being an left outer join: ->join('answers as answers', 'responses.answer_id', '=', 'answers.id', 'left outer'). The last (optional) parameter of the join method is $type, which when not specified, defaults to the value inner.
    – Bogdan
    Feb 12, 2015 at 15:48
  • @Bogdan This should work. Write it as an answer ;) Feb 12, 2015 at 17:03
  • @Bogdan, indeed that works! if you put it as answer i can mark it as a correct. weird that it's not better documented here laravel.com/docs/4.2/queries#joins. Feb 12, 2015 at 20:48
  • There are some missing (albeit not essential) pieces from the Laravel documentation. But if you like to get your hands dirty there's always the possibility to dive into Laravel's source to get a better understanding on how it works. I'll post the solution as an answer for future reference.
    – Bogdan
    Feb 12, 2015 at 20:53

1 Answer 1

74

You could try specifying the join as being a left outer join:

->join('answers as answers', 'responses.answer_id', '=', 'answers.id', 'left outer')

The fourth parameter of the join method is $type, which when not specified, defaults to the value inner. But since left join and left outer join are the same thing, you could just use the leftJoin method instead, to make it more readable:

->leftJoin('answers as answers', 'responses.answer_id', '=', 'answers.id')
1
  • 2
    In a normal join, the '=' is redundant, but when specifying the $type it isn't
    – Halfacht
    Oct 18, 2019 at 7:25

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.