Поделитесь своими знаниями, ответьте на вопрос:
F(x) =(3x в 5 степени - 5x в кубе + 1на отрезке [-2;2]
∠ACB = ∠ADB = x
∠BAC = ∠BDC = y
∠CAD = ∠CBD = z
x:y:z = 5:7:13
∠ABC = ∠ABD + ∠CAD = 50° + z
∠BCD = ∠ACB + ∠ABD = x + 50°
∠CDA = ∠BDC + ∠ADB = y + x
∠DAB = ∠CAD + ∠BAC = z + y
∠ABC + ∠BCD + ∠CDA + ∠BAD = 50 + z + x + 50 + y + x + z + y = 360°
100 + 2z + 2x + 2y = 360
x + z + y = 130
x/y = 5/7
x/z = 5/13
x + 7x/5 + 13x/5 = 130
5x = 130
x = 26
y = 36.4
z = 67.6
∠ABC = 50° + z = 50° + 67.6° = 117.6°
∠BCD = x + 50° = 26° + 50° = 76°
∠CDA = y + x = 36.4° + 26° = 62.4°
∠DAB = z + y = 67.6° + 36.4° = 104°