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I have 5M records in eus table and 121 records in es table. I am doing a left join but the COUNT query is making my query very slow. How can I optimize this?

public static function getAllActiveEvaluationSymptomsWithNameForDataTable(){
    $queryBuilder = new Builder();

    $queryBuilder
        ->from(array('es' =>  static::class))
        ->leftJoin('EvaluationUserSymptom',  'es.id = eus.eb_evaluation_symptom_id','eus')
        ->columns('es.id, es.title, COUNT(eus.eb_evaluation_symptom_id) AS counts')
        ->groupBy('eus.eb_evaluation_symptom_id')
        ->where('es.is_active = 1');

    return  $queryBuilder;
}

Raw query with Explain:

EXPLAIN SELECT es.id AS id, es.title AS title, COUNT(eus.eb_evaluation_symptom_id) AS counts, eus.date_created AS date_created FROM eb_evaluation_symptom AS es LEFT JOIN eb_evaluation_user_symptom AS eus ON es.id = eus.eb_evaluation_symptom_id WHERE es.is_active = 1 GROUP BY eus.eb_evaluation_symptom_id;

Output of Explain:

enter image description here

Explain Visual View:

enter image description here

This full table scan of count is making the problem.

Note: All JOINs and necessary columns fields are having proper indexes.

  • That GROUP BY is invalid, and should raise an error. – jarlh Nov 22 at 9:17
  • Your count and group by is weird, SELECT columns should match GROUP BY columns but your are doing GROUP BY on the same column you are doing COUNT. What is the purpose of that? – Joakim Danielson Nov 22 at 9:18
  • 1
    You should look into the setting ONLY_FULL_GROUP_BY for MySql, most (all?) other RDBMS doesn't have this setting and forces you to do a proper GROUP BY – Joakim Danielson Nov 22 at 9:22
  • 1
    Then you will run into trouble when upgrading. – jarlh Nov 22 at 9:22
  • 1
    If you want to count per user then you should group by user. I suggest you read up on aggregate functions and how to use ORDER BY properly and first concentrate on getting the right query for your requirements. For starters you could change your GROUP BY to groupby('es.id, es.title') – Joakim Danielson Nov 22 at 9:24
2

A correlated subquery can be a fast method:

SELECT es.id, es.title,
      (select count(*)
       from eb_evaluation_user_symptom eus
       where es.id = eus.eb_evaluation_symptom_id
      ) as cnt
FROM eb_evaluation_symptom es  
WHERE es.is_active = 1 ;

For performance, you want an index on eb_evaluation_user_symptom(eb_evaluation_symptom_id).

An index on eb_evaluation_symptom won't be of much help, because that table is so small.

  • eb_evaluation_symptom_id is alrady indexed. Your query looks much faster than others. – Iftikhar uddin Nov 22 at 12:53
  • just curious how did your query fetched the correct results without using GROUP BY? – Iftikhar uddin Nov 22 at 12:54
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    The correlated subquery is an aggregation query . . . but without GROUP BY. Such a query aggregates all matching records. If none match the condition, then the count() returns 0. – Gordon Linoff Nov 22 at 13:13
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Try to aggregate before the join:

SELECT es.id AS id, es.title AS title
  , coalesce(eus.counts, 0) as counts
  , eus.date_created
FROM eb_evaluation_symptom AS es 
LEFT JOIN 
 ( select eb_evaluation_symptom_id  
     , COUNT(*) AS counts
     , min(date_created) AS date_created -- or MAX?
   from eb_evaluation_user_symptom 
   GROUP BY eb_evaluation_symptom_id
 ) AS eus 
ON es.id = eus.eb_evaluation_symptom_id 
WHERE es.is_active = 1 ;
  • Thanks this query seems to be faster than my old one. I will have to convert this to phalcon query builder – Iftikhar uddin Nov 22 at 10:09

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