Ответ: (1-сos2x)²/4+(1+cos2x)²/4-cos²2x-1/4=0
1-2cos2x+cos²2x+1+2cos2x+cos²2x-4cos²2x-1=0
1-2cos²2x=0
cos²2x=1/2
cos2x=-1/2⇒2x=+-2π/3+2πk⇒x=+-π/3+πk,k∈z
cos2x=1/2⇒2x=+-π/3+2πk⇒x=+-π/6+πk,k∈z
Объяснение:
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Ответ: (1-сos2x)²/4+(1+cos2x)²/4-cos²2x-1/4=0
1-2cos2x+cos²2x+1+2cos2x+cos²2x-4cos²2x-1=0
1-2cos²2x=0
cos²2x=1/2
cos2x=-1/2⇒2x=+-2π/3+2πk⇒x=+-π/3+πk,k∈z
cos2x=1/2⇒2x=+-π/3+2πk⇒x=+-π/6+πk,k∈z
Объяснение: