- #1
carlosbgois
- 68
- 0
Homework Statement
Prove that if x < y, and n is odd, then x[itex]^{n}[/itex]< y[itex]^{n}[/itex]
The Attempt at a Solution
My attempt was to solve three different cases:
Case 1: If 0 [itex]\leq[/itex] x < y, we have
y-x > 0
y*y*...*y > 0 (closure of the positive numbers under multiplication)
x*x*...*x [itex]\geq[/itex] 0
y[itex]^{n}[/itex]-x[itex]^{n}[/itex] = (y-x)(y[itex]^{n-1}[/itex] + y[itex]^{n-2}[/itex]x +...+ yx[itex]^{n-2}[/itex] + x[itex]^{n-1}[/itex])
So, as every piece of the second member of this last equation is positive, their sums and multiplications are also positive, hence proving that y[itex]^{n}[/itex] > x[itex]^{n}[/itex]
Case 2: If x[itex]\leq[/itex] 0 < y, we have: x[itex]^{j}[/itex] [itex]\leq[/itex] 0 (j is odd), and also y[itex]^{j}[/itex] > 0, which is the same as -y[itex]^{j}[/itex] < 0. Now, as we have closure under sum, then x[itex]^{n}[/itex] + (-y[itex]^{n}[/itex]) < 0, so y[itex]^{n}[/itex] > x[itex]^{n}[/itex]
Case 3: If x < y [itex]\leq[/itex] 0 ... ?
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Are my proofs of case 1 and 2 ok? What should I do in case 3?
Thanks