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y^2/x^12 is an integer , y>x > 1
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29 Jan 2020, 10:17
29 Jan 2020, 10:17
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\(\frac{y^2}{x^{12}}\) is an integer , \(y>x > 1\)
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.
Kudos for the right answer and explanation
Quantity A |
Quantity B |
\(x^2\) |
\(\sqrt{y }\) |
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.
Kudos for the right answer and explanation
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Re: y^2/y^12 is an integer , y>x > 1
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29 Jan 2020, 12:04
29 Jan 2020, 12:04
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Carcass wrote:
\(\frac{y^2}{x^{12}}\) is an integer , \(y>x > 1\)
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.
Kudos for the right answer and explanation
Quantity A |
Quantity B |
\(x^2\) |
\(\sqrt{y }\) |
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.
Kudos for the right answer and explanation
We know that:
\(\frac{y^2}{x^{12}}\) is an integer
\(=> \frac{y^2}{x^{12}} ≥ 1\)
\(=> y^2 ≥ x^12\)
\(=> y ≥ x^6\) (since x and y are both greater than 1, i.e. they are both positive, we can take the square root without changing the signs)
Taking square root on both sides (ignoring the negative part since x and y are positive):
\(\sqrt{y}\) \(≥ x^3\)
However, since \(x > 1\), we must have: \(x^3 > x^2\)
Thus, we can conclude that:
\(\sqrt{y} ≥ x^3 > x^2\)
\(=> \sqrt{y} > x^2\)
Thus, Quantity B is greater than Quantity A
Answer B
General Discussion
Re: y^2/x^12 is an integer , y>x > 1
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18 May 2023, 05:27
18 May 2023, 05:27
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