Find cars that passed all tests from the test list
This task requires identifying cars from the "cars" table that have successfully passed all tests listed in the "passedtest" table. While a simple IN statement can retrieve cars that pass any single test, the requirement is to ensure that each car passes all tests in the list.
To achieve this, we can use a combination of aggregation (GROUP BY, HAVING) and set theory.
Solution:
SELECT carname FROM PassedTest GROUP BY carname HAVING COUNT(DISTINCT testtype) = (SELECT COUNT(*) FROM PassedTest GROUP BY carname);
Explanation:
- Subquery (SELECT COUNT(*) FROM PassedTest GROUP BY carname) returns the total number of unique tests per car.
- HAVING COUNT(DISTINCT testtype) = (SELECT COUNT(*) FROM PassedTest GROUP BY carname) condition checks whether the count of different test types of a car is equal to the total number of tests, ensuring that the car has passed all tests.
To include data from the "cars" table, you can use the inner statement:
SELECT *
FROM cars
WHERE carname IN (
SELECT carname
FROM PassedTest
GROUP BY carname
HAVING COUNT(DISTINCT testtype) = (SELECT COUNT(*) FROM PassedTest GROUP BY carname)
);
Alternative:
Another option is to use the JOIN operation:
SELECT DISTINCT c.carname FROM cars c JOIN PassedTest pt ON c.carname = pt.carname GROUP BY c.carname HAVING COUNT(*) = (SELECT COUNT(*) FROM PassedTest GROUP BY carname);
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