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GRE Math Challenge #137- (x+y) and 2(x+y)

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sandy
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GRE Math Challenge #137- (x+y) and 2(x+y) [#permalink] New post   Updated on: 20 Feb 2020, 16:21
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Quantity A
Quantity B
\((x+y)\)
\(2(x+y)\)


A)The quantity in Column A is greater.
B)The quantity in Column B is greater.
C)The two quantities are equal.
D)The relationship cannot be determined from the information given.

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D

Originally posted by sandy on 15 May 2015, 11:39.
Last edited by Carcass on 20 Feb 2020, 16:21, edited 1 time in total.
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GreenlightTestPrep
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Re: GRE Math Challenge #137 [#permalink] New post   17 May 2015, 07:28
sandy wrote:
Quantity A: (x+y)
Quantity B: 2(x+y)


One of my favorite Quantitative Comparison strategies is called "Looking for Equality" (free video on this topic here: http://www.greenlighttestprep.com/modul ... on?id=1099).
In this strategy, I first look for values of x and y that make the two quantities are equal. This often involves checking some easy numbers like 0, 1, -1 etc.

Consider these two cases:
Case #1: x = 0 and y = 0
Quantity A: (x+y) = 0+0 = 0
Quantity B: 2(x+y) = 2(0+0) = 0
Since the two quantities are EQUAL, the correct answer is EITHER C or D

Now try some other values of x and y:
Case #2: x = 1 and y = 1
Quantity A: (x+y) = 1+1 = 2
Quantity B: 2(x+y) = 2(1+1) = 4
Since the two quantities are NOT EQUAL, the correct answer is D

Cheers,
Brent
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Re: GRE Math Challenge #137 [#permalink] New post   17 May 2015, 07:30
sandy wrote:
Quantity A: (x+y)
Quantity B: 2(x+y)


Another approach is to first subtract (x+y) from both quantities.
We get:
Quantity A: 0
Quantity B: (x+y)

At this point, we can see that there's no way to determine which quantity is bigger.

Answer:
Show: ::
D


Cheers,
Brent
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TAYYABGRE
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Re: GRE Math Challenge #137- (x+y) and 2(x+y) [#permalink] New post   06 Jul 2022, 09:18
What's wrong with dividing both sides by (x+y)? If we do so, Quantity B (2) will always be greater than A (1).
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Re: GRE Math Challenge #137- (x+y) and 2(x+y) [#permalink] New post   06 Jul 2022, 09:39
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TAYYABGRE wrote:
What's wrong with dividing both sides by (x+y)? If we do so, Quantity B (2) will always be greater than A (1).



Brent explained WHY we cannot beautifully above. Please read Sir

Essentially, we cannot because we DO NOT know the values of x and y
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Re: GRE Math Challenge #137- (x+y) and 2(x+y) [#permalink] New post   06 Jul 2022, 10:26
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TAYYABGRE wrote:
What's wrong with dividing both sides by (x+y)? If we do so, Quantity B (2) will always be greater than A (1).


Whenever you divide both sides by an unknown quantity such as x+y, you are risking the possibility of that x+y equals 0 or some negative value.

This video explains this concept in much greater detail: https://www.greenlighttestprep.com/modu ... video/1097
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GRE Math Challenge #137- (x+y) and 2(x+y) [#permalink] New post   06 Jul 2022, 13:49
Thank you so much.
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GRE Math Challenge #137- (x+y) and 2(x+y) [#permalink]
06 Jul 2022, 13:49
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