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(13!)^16-(13!)^8 [#permalink]
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MarieteC wrote:
How do you know NOTE: 13!=(13)(12)(11)(10)(9).....(1)13!=(13)(12)(11)(10)(9).....(1), has units digit as 00 only?


MarieteC
I did not say it would be \(00\) rather I said it would be \(0\)
Since, \(13!\) has \(10\) in it or \((2)(5)\) - any number multiplied by \(10\) would end in \(0\) only
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Re: (13!)^16-(13!)^8 [#permalink]
can you please explain how did you derive to this (x^8-x^1) = (x^4-1)(x^4+1)
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(13!)^16-(13!)^8 [#permalink]
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\(a^2 – b^2= (a + b) (a – b)\)

\((x^4+1)(x^4-1)\)

\(x^4*x^4=x^8
\)

\(x^4-1=-x^4\)

\(1*x^4=x^4\)

\(1*-1=-1\)

\(-x^4\) and \(x^4\) drop out

you are left with

\((x^8-1)\)
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(13!)^16-(13!)^8 [#permalink]
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