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Question

Soham took a 3 digit number and formed two other 3 digit numbers using the digits of the original number in different places. He then added the three resulting numbers and divided their sum by 37 . He concluded that the result was exactly divisible by 37, no matter what number he chose. Is Soham's statement true or false?


A

True

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B

False

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Solution

The correct option is A

True


Let the number be abc.

abc = 100a + 10b + c.

By rearranging the digits, let us say the two other numbers formed are cab and bca.

Expressing these two numbers in the expanded form,

cab = 100c + 10a + b

bca = 100b + 10c + a

abc + cab + bca
= (100a + 10b + c) + (100c + 10a + b) + (100b + 10c + a)
= 111(a + b + c)
= 37 × 3 × (a + b + c), since 111 is the product of 37 and 3.

Hence the sum is divisible by 37 and his statement is true.


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