-
De meest efficiënte (met over()).
select Grade, count(*) * 100.0 / sum(count(*)) over() from MyTable group by Grade -
Universeel (elke SQL-versie).
select Grade, count(*) * 100.0 / (select count(*) from MyTable) from MyTable group by Grade; -
Met CTE, de minst efficiënte.
with t(Grade, GradeCount) as ( select Grade, count(*) from MyTable group by Grade ) select Grade, GradeCount * 100.0/(select sum(GradeCount) from t) from t;
