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In the figure above, ABCD is a rectangle, and each of AP and CQ is per
[#permalink]
02 Aug 2021, 01:28
02 Aug 2021, 01:28
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In the figure above, ABCD is a rectangle, and each of AP and CQ is perpendicular to BD. If DP = PQ = QB, what is the ratio of AB to AD?
(A) \(\sqrt{2}\) to 1
(B) \(\sqrt{3}\) to 1
(C) \(\sqrt{3}\) to \(\sqrt{2}\)
(D) 2 to 1
(E) 2 to \(\sqrt{3}\)
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In the figure above, ABCD is a rectangle, and each of AP and CQ is per
[#permalink]
03 Aug 2021, 08:25
03 Aug 2021, 08:25
3
GeminiHeat wrote:
In the figure above, ABCD is a rectangle, and each of AP and CQ is perpendicular to BD. If DP = PQ = QB, what is the ratio of AB to AD?
(A) \(\sqrt{2}\) to 1
(B) \(\sqrt{3}\) to 1
(C) \(\sqrt{3}\) to \(\sqrt{2}\)
(D) 2 to 1
(E) 2 to \(\sqrt{3}\)
Let DP = PQ = QB = \(x\)
Also, let the length of the rectangle be \(L\) and width be \(B\)
We know, diagonal of a rectangle = \(\sqrt{L^2 + B^2}\)
i.e. \(3x = \sqrt{L^2 + B^2}\)
\(L^2 + B^2 = 9x^2\)..........(1)
Now, In triangle APD;
\(B^2 = AP^2 + x^2\)
\(AP^2 = B^2 - x^2\)
And, In triangle APB;
\(L^2 = AP^2 + (2x)^2\)
\(AP^2 = L^2 - 4x^2\)
Equating \(AP^2\);
\(B^2 - x^2 = L^2 - 4x^2\)
\(L^2 - B^2 = 3x^2\).........(2)
Adding (1) and (2);
\(2L^2 = 12x^2\)
\(L^2 = 6x^2\)
So, \(B^2 = 3x^2\)
\(\frac{AB}{AD} = \frac{L}{B} = \sqrt{\frac{6x^2}{3x^2}} = \sqrt{2}\)
Hence, option A
Re: In the figure above, ABCD is a rectangle, and each of AP and CQ is per
[#permalink]
05 Aug 2021, 03:33
05 Aug 2021, 03:33
consider AB=5 so Triangle APB= 3-4-5 right angled triangle hence, AP=3 PB=PQ+QB=4 so PQ=QB=DP=2
Now in triangle APD, AP=3,DP=2 So AD= sqrt13 SO, AB:AD= 5:SQRT13 = 1.4 so option A
Now in triangle APD, AP=3,DP=2 So AD= sqrt13 SO, AB:AD= 5:SQRT13 = 1.4 so option A
