Math, asked by somnathchavan9099, 17 days ago

Fourier expansion of sinx

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Answered by Anonymous
2

f(x) = |sinx| on (-π, π) with L = π: f(x) is an even function so bn = 0. On [0,π] we have |sinx| = sinx. sinx dx = 4/π where cosnπ = (-1)n.

Answered by psupriya789
2

hope that helps  

THANKS.

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