Physics, asked by gurtejramgarhia7938, 1 year ago

The laplace transform of ei5t where i  1, is

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Answered by Anonymous

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Sin(x) = ( eix - e-ix) / 2i now you have the integral: ∫ e- st*((ei2t - e-i2t) /2i)*(ei5t - e-i5t) / 2i) d...

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