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Re: pqr < 0 < pqs, andpr > ps [#permalink]
GreenlightTestPrep wrote:
\(pqr < 0 < pqs\), and \(pr > ps\)

Quantity A
Quantity B
q
0




Since the relationship between pr and ps flips when both are multiplied by q, we must conclude that q is a negative number. Therefore Quantity B will always be greater.
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Re: pqr < 0 < pqs, andpr > ps [#permalink]
We are told
(1) pqr<0<pqs and
(2)pr>ps

We rewrite (1) as
q(pr)<0<q(ps)

if q(pr)<0 and q(ps)>0 then
(3) q<0, pr>0, ps<0 or
(4) q>0, pr<0, ps>0

From (2) we get that (4) cannot be the case. So we have (3)

therefore since q<0
We choose option B

Final Answer: B
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Re: pqr < 0 < pqs, andpr > ps [#permalink]
1
pqr< 0 < pqs pr > ps
- - - - - + yes
+ + - + + + no
- + + - + - no
+ - + + - - yes

Every scenario that works is when q < 0. Choice B is the answer.
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Re: pqr < 0 < pqs, andpr > ps [#permalink]
Hello from the GRE Prep Club BumpBot!

Thanks to another GRE Prep Club member, I have just discovered this valuable topic, yet it had no discussion for over a year. I am now bumping it up - doing my job. I think you may find it valuable (esp those replies with Kudos).

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Re: pqr < 0 < pqs, andpr > ps [#permalink]
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