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Re: In the figure above, if the area of the larger square region [#permalink]
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excellent question, checks you ability and flexibility working with geometric concepts as well as fractions and ratios, especially the last part when you get square root 2 - 1 divided by square root 2 and you should multiply both numerator and denominator with \sqrt{2} to get a satisfactory A as an answer.
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Re: In the figure above, if the area of the larger square region [#permalink]
Still don't really understand this, even with the answers. Could anyone illustrate it better/differently?
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Re: In the figure above, if the area of the larger square region [#permalink]
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esonrev wrote:
Still don't really understand this, even with the answers. Could anyone illustrate it better/differently?


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Here, see the diag. above

Now let the smaller square be ABCD, where it is mentioned the diagonal = 1 foot

Now , if a figure is square and all angles are 90 degree, hence the sides can be divided

as \(1: 1: \sqrt2\) (45-45-90 \(\triangle\))

Let us divide the square in 2 equal triangles ABC and ADC

For \(\triangle\) ABC

we have AC = 1 ( as it is a diagonal)

since the sides are in \(1: 1: \sqrt2\)

i.e diagonal AC has to be the largest side and should be equal = \(\sqrt2\)

but how to make this possible?

we can divide\(1:1:\sqrt2\) by\(\sqrt2\)

i.e\(\frac{1}{{\sqrt2}} : \frac{1}{{\sqrt2}} : 1\)

Now, the largest side (diagonal) is 1 and the other two sides in the \(\triangle\) ABC are AB = BC =\(\frac{1}{{\sqrt2 }}\)

Now we have figure out the side of the smaller square ABCD

Hence, the Area of the smaller square =\({side}^2\) = \(({\frac{1}{\sqrt2} })^2 = \frac{1}{2}\)

Now,

Larger Square = 2 * Area of the smaller square = \(2 * \frac{1}{2}= 1\)

i.e the side of the larger square = \(1\)

Ok, now we have the side of the Larger square as well as for the smaller square

Length of the side of the Larger square =\(1\)

and length of the side of the smaller square = \(\frac{1}{{\sqrt2}}\)

Then the side of the length of the larger square greater than that of the smaller square = \(1 - \frac{1}{\sqrt2} = \frac{{\sqrt2 -1}}{\sqrt2} * \frac{{\sqrt2}}{{\sqrt2}}\) = \(\frac{{(2-\sqrt2)}}{2}\)
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Re: In the figure above, if the area of the larger square region [#permalink]
pranab01 wrote:
esonrev wrote:
Still don't really understand this, even with the answers. Could anyone illustrate it better/differently?


You're great. Thanks so much.
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Re: In the figure above, if the area of the larger square region [#permalink]
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Re: In the figure above, if the area of the larger square region [#permalink]
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