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Maks140888

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Maks140888
May 9th, 2022
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MySQL 0.16 KB | None | 0 0
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  1. select sum(a.chek_date - a.pass_date)/count(a.chek_date) as "avg days)", b.name
  2. from solutions a, techers b
  3. where b.techer_id = a.techer_id
  4. GROUP by b.name;
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