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Maks140888
May 9th, 2022
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MySQL
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select
sum
(
a.chek_date
-
a.pass_date
)
/
count
(
a.chek_date
)
as
"avg days)"
,
b.name
from
solutions a
,
techers b
where
b.techer_id
=
a.techer_id
GROUP by
b.name
;
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