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29 Sep 2019, 21:01
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D
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
55%
(hard)
Question Stats:
69% (02:31) correct
31%
(02:39)
wrong
based on 159
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If \(-1<x<0\), what is the median of these six numbers listed below
\(\frac{1}{x^3}\), \(\frac{1}{x^2}\), \(\frac{1}{x}\), \(x\), \(x^2\), \(x^3\)
(A) \(\frac{1}{x}\)
(B) \(x^2\)
(C) \(\frac{x^2(x+1)}{2}\)
(D) \(\frac{x(x^2+1)}{2}\)
(E) \(\frac{x^2}{2x}\)
29 Sep 2019, 21:31
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We are to find the median of the the following six numbers, 1/x^3 , 1/x^2, 1/x, x, x^2, and x^3, where -1<x<0
Let x=-1/2, Then 1/x^3 = -8
1/x^2 = 4
1/x = -2
x=-1/2
x^2 = 1/4
x^3 = -1/8
Arranging in ascending order yields: 1/x^3, 1/x, x, x^3, x^2, and 1/x^2
The median is therefore average of the third and fourth terms in the list.
=1/2(x+x^3) = x(1+x^2)/2.
The answer is therefore D.
Let x=-1/2, Then 1/x^3 = -8
1/x^2 = 4
1/x = -2
x=-1/2
x^2 = 1/4
x^3 = -1/8
Arranging in ascending order yields: 1/x^3, 1/x, x, x^3, x^2, and 1/x^2
The median is therefore average of the third and fourth terms in the list.
=1/2(x+x^3) = x(1+x^2)/2.
The answer is therefore D.
29 Sep 2019, 22:36
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take x= 0.5 (any number between -1 and 0)
then we will get 1/(x^3) <1/x<x<x^3<x^2<1/x^2
therefore median is (x+x^3)/2
i.e d
then we will get 1/(x^3) <1/x<x<x^3<x^2<1/x^2
therefore median is (x+x^3)/2
i.e d
