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Question

The option(s) with the value of a and L that satisfy the following equation is(are)
4π0et(sin6at+cos4at)dtπ0et(sin6at+cos4at)dt=L?

A
a=2, L=e4π1eπ1
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B
a=2, L=e4π+1eπ+1
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C
a=4, L=e4π1eπ1
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D
a=4, L=e4π+1eπ+1
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Solution

The correct option is C a=4, L=e4π1eπ1
f(t)=et(sin6at+cos4at)f(kπ+t)=ekπ+t(sin6(akπ+at)+cos4(akπ+at))f(kπ+t)=ekπf(t)
4π0f(t)dt=π0f(t)dt+2ππf(t)dt+3π2πf(t)dt+4π3πf(t)dt=(e0+eπ+e2π+e3π)π0f(t)dt
4π0et(sin6at+cos4at)dtπ0et(sin6at+cos4at)dt=(e0+eπ+e2π+e3π)π0f(t)dtπ0f(t)dt=LL=(1+eπ+e2π+e3π)=e4π1eπ1 for even value of 'a' i.e. a=2,4

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