Тригонометрия. Упростите. Cpoчно! 1) (sin^2x - cos^2x)^2 + sin^2*2x 2)((1/1-tgx) - (1/1+tgx))*(cos^2*x) 3) (tg^3*x-tg^3*y)/((1+tgxtgy)(tg^2*x+tgxtgy+tg^2*y))
Тригонометрия. Упростите. Cpoчно!
1) (sin^2x - cos^2x)^2 + sin^2*2x
2)((1/1-tgx) - (1/1+tgx))*(cos^2*x)
3) (tg^3*x-tg^3*y)/((1+tgxtgy)(tg^2*x+tgxtgy+tg^2*y))
Гость
Ответ(ы) на вопрос:
Гость[latex]( sin^{2} x - cos^{2} x)^{2} + sin^{2} 2 x= cos^{2} 2x + sin^{2} 2x= 1[/latex]
[latex] \frac{1}{1-tgx} - \frac{1}{1+tgx} * cos2x = \frac{1+tgx-1+tgx}{(1-tgx)(1+tgx)} *cos2x = \frac{2 tgx}{1-tg^{2}x} * cos2x = tg2x* cos2x = \frac{sin2x * cos2x}{cos2x} = sin2x [/latex]
[latex] \frac{tg^{3} x-tg^{3}y}{(1+tgx tgy)*(tg^{2}+tgx tgy+tg^{2})} = \frac{(tgx-tgy)*(tg^{2}+tgx tgy+tg^{2})}{(1+tgx tgy)*(tg^{2}+tgx tgy+tg^{2})} = \frac{(tg x-tg y)}{(1+tg x tg y)} = tg (x-y)[/latex]
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