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Question

Consider three sets A,B,C such that set A contains all three digit numbers that are multiples of 4, set B contains all three digit even numbers that are multiples of 3 and set C contains all three digit numbers that are multiples of 5. Then the number of elements are present in n(ABC) is

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Solution

A={100,104,108,...,996}
={4×25,4×26,...,4×249} 225 elements
B={102,108,114,...,996}
={6×17,6×18,...,6×166} 150 elements
C={100,105,110,...,995}
={5×20,5×21,...,5×199} 180 elements

AB={108,120,132,...,996}
All 3 digit multiples of 12
75 elements.
BC={120,150,180,...,990}
All 3 digit multiples of 30
30 elements.
CA={100,120,140,160,...,980}
All 3 digit multiples of 20
45 elements.

ABC={120,180,...,960}
All 3 digit multiples of 60
15 elements.
n(ABC)=n(A)+n(B)+n(C)n(AB) n(BC)n(CA)+n(ABC)
=225+180+150753045+15 =420

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