We know that:7^(4a+b) = 7^b(Mod 10) and 7^(4a) = 1 (Mod 10)3^(4a+b) = 3^b(Mod 10) and 3^(4a) = 1 (Mod 10)1^x = 1 (Mod 10)Thus, 11^2003 = 1 (Mod 10)7^2004 = 1( Mod 10)13^2005 = 3 Mod (10)Thus, 11^2003*7^2004*13^2005= 1*1*3(Mod 10)= 3 (Mod 10)Consequently, the required last digit is 3.
blackjack
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flooble's webmaster puzzle
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