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	A1xyz5 + B1x + C1y + D1 = 0 A2xyz5 + B2x + C2y + D2 = 0 A3xyz5 + B3x + C3y + D3 = 0 is equivalent to z5 = a,     x = b,     y = c,         (some a, b, c) which has 5 solutions.
	A1x + B1y + C1(z) = 0 A2x + B2y + C2(z) = 0         (deg(Ci(z))=5) A3x + B3y + C3(z) = 0 is equivalent to a system f(z) = 0,   x = g(z),   y = h(z),       (deg(f)=5) which has 5 solutions.

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