I solved it differently. In the initial equation, let u = 1/x. Then u⁵ - 2u⁴ + 4u³ - 8u² + 16u - 32 = 0. Seeing the pattern of powers of 2 gives us the idea to multiply both sides of that equation by u + 2, giving us (after much cancellation of terms), u⁶ - 64 = 0 u⁶ = 2⁶ (1/x)⁶ = 2⁶ x⁶ = (½)⁶ In the complex numbers, this can only happen when x = ε·½ where ε is a 6th root of 1. Those roots are ε = e^(n·2πi/6) for n = 0, 1, 2, 3, 4, 5. Our multiplication by u + 2 gave us an extraneous root of u = -2 (x = -½) so we remove n = 3. Using Euler's formula e^(n·2πi/6) = cos(n·2π/6) + sin(n·2π/6)i and multiplying each by ½ gives all five of the answers.

(1)^2/(x^5)^2= 1/x^25(2)^2/(x^4)^2=4/x^16 {1/x^25 ➖ 4/x^16} =3/x^9 {4x+4x ➖ }/{x^3+x^3 ➖ }=8x^2 /x^6 {3/x^9+8x^2/x^6}=11x^2/x^15 (8)^2/(x^2)^2=64/x^4 {11x^2/x^15 ➖ 64/x^4}=53x^2/x^11 {16x+16x ➖ }/{x+x ➖ } =32x^2/x^2 /{53x^2/x^11+32x^2/x^2}={85x^4/x^13}=85x^3.1 5^17x^3^1 5^17^1x^3^1 5^1^1x^3^1 5x^3^1 5^1 x^3^1 1^1x^3^1 x^3^1" (x ➖ 3x+1).

Your solution is too complicated u=1/x-2 (2 minutes) and after exponential (cos and sin).