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2024 AMC 12B Problems/Problem 14

Revision as of 01:09, 14 November 2024 by Mitsuihisashi14 (talk | contribs) (Created page with "We split the cases into: 1. If x is not a multiple of 5: we get x^100 \equiv 1 (mod 125) 2. If x is a multiple of 125: Clearly the only remainder provides 0 Therefore, the rem...")
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We split the cases into: 1. If x is not a multiple of 5: we get x^100 \equiv 1 (mod 125) 2. If x is a multiple of 125: Clearly the only remainder provides 0 Therefore, the remainders can only be 1 and 2, which gives the answer (B)2

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