Is x positive?
(1) (x - 3)2 > 0
(2) x3 - 1 > 0
Hello !! the first part is (x-3) whole square and the second part is x cube (x3). I would not like to reveal the solution. For some reason I do not agree with the solution given by MGAT in this question. I am checking to see if I have really missed something..Can you please help ??
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- kishankolli
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- Joined: Sun Jun 22, 2008 8:03 am
- tgt.ivyleague
- Students
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Re: DS !!
Hi there .....
I feel that the answer should be B alone.
Do let me know whether this is right ? If it is, then i shall explain .... else, i shall join you in your wait for the right explanation !!!
Regards ...... Sam
I feel that the answer should be B alone.
Do let me know whether this is right ? If it is, then i shall explain .... else, i shall join you in your wait for the right explanation !!!
Regards ...... Sam
- adiagr
- Students
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Re: DS !!
kishankolli Wrote:Is x positive?
(1) (x - 3)2 > 0
(2) x3 - 1 > 0
Hello !! the first part is (x-3) whole square and the second part is x cube (x3). I would not like to reveal the solution. For some reason I do not agree with the solution given by MGAT in this question. I am checking to see if I have really missed something..Can you please help ??
Hi,
From (1)
(x-3)^2 will always be positive and so we cannot get anything out of here. Insufficient.
From (2)
Given x^3 - 1 > 0
which means x^3>1
This is only possible when x>1.
Hence x is positive. Thus B is sufficient.
Alternatively
We can see that x^3 is positive from (2)
Now x^3 can be written as x^2.(x)
Now x^2 is always positive. This means that x is positive.
Sufficient.
Aditya
- kishankolli
- Posts: 5
- Joined: Sun Jun 22, 2008 8:03 am
Re: DS !!
At the first instance I got "B". But when I looked at the answer, it was D.
1>(x-3)^2>0
=x^2-6x+9
=x^2 - 3x -3x +9
=x(x-3)-3(x-3)
=(x-3)(x-3)
i.e x = +3
I am not able to find the exact explanation in MGMAT, but I made a note of the solution..
1>(x-3)^2>0
=x^2-6x+9
=x^2 - 3x -3x +9
=x(x-3)-3(x-3)
=(x-3)(x-3)
i.e x = +3
I am not able to find the exact explanation in MGMAT, but I made a note of the solution..
- mschwrtz
- ManhattanGMAT Staff
- Posts: 498
- Joined: Tue Dec 14, 2004 1:03 pm
Re: DS !!
kishankolli, if I understand your posts, you give two different versions of S1: first (x-3)^2>0, and later 1>(x-3)^2>0.
The first version is equivalent to "x does not equal 3," which is not sufficient.
For the second version, focus just on the 1>(x-3)^2. This means that sqrt1>|x-3|, or -1<x-3<1, or 2<x<4. This implies that x>0. This is sufficient.
The first version is equivalent to "x does not equal 3," which is not sufficient.
For the second version, focus just on the 1>(x-3)^2. This means that sqrt1>|x-3|, or -1<x-3<1, or 2<x<4. This implies that x>0. This is sufficient.
- yousuf_azim
- Students
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- Joined: Fri Jan 15, 2010 5:09 am
Re: DS !!
Hey guys,
Why u not give the ans straight forward?
BR
Why u not give the ans straight forward?
BR
- jnelson0612
- ManhattanGMAT Staff
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- Joined: Fri Feb 05, 2010 10:57 am
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