如何求解下列积分:∫(sin)^2dx
2022-10-31
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∫(sinx)^4dx
=∫[(1/2)(1-cos2x]^2dx
=(1/4)∫[1-2cos2x+(cos2x)^2]dx
=(1/4)∫[1-2cos2x+(1/2)(1+cos4x)]dx
=(3/8)∫dx-(1/2)∫cos2xdx+(1/8)∫cos4xdx
=(3/8)∫dx-(1/4)∫cos2xd2x+(1/32)∫cos4xd4x
=(3/8)x-(1/4)sin2x+(1/32)sin4x+C
=∫[(1/2)(1-cos2x]^2dx
=(1/4)∫[1-2cos2x+(cos2x)^2]dx
=(1/4)∫[1-2cos2x+(1/2)(1+cos4x)]dx
=(3/8)∫dx-(1/2)∫cos2xdx+(1/8)∫cos4xdx
=(3/8)∫dx-(1/4)∫cos2xd2x+(1/32)∫cos4xd4x
=(3/8)x-(1/4)sin2x+(1/32)sin4x+C
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