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− | In square <math>ABCD</math>, points <math>E</math> and <math>H</math> lie on <math>\overline{AB}</math> and <math>\overline{DA}</math>, respectively, so that <math>AE=AH.</math> Points <math>F</math> and <math>G</math> lie on <math>\overline{BC}</math> and <math>\overline{CD}</math>, respectively, and points <math>I</math> and <math>J</math> lie on <math>\overline{EH}</math> so that <math>\overline{FI} \perp \overline{EH}</math> and <math>\overline{GJ} \perp \overline{EH}</math>. See the figure below. Triangle <math>AEH</math>, quadrilateral <math>BFIE</math>, quadrilateral <math>DHJG</math>, and pentagon <math>FCGJI</math> each has area <math>1.</math> What is <math>FI^2</math>?
| + | #redirect [[2020 AMC 10B Problems/Problem 21]] |
− | <asy>
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− | real x=2sqrt(2);
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− | real y=2sqrt(16-8sqrt(2))-4+2sqrt(2);
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− | real z=2sqrt(8-4sqrt(2));
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− | pair A, B, C, D, E, F, G, H, I, J;
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− | A = (0,0);
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− | B = (4,0);
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− | C = (4,4);
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− | D = (0,4);
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− | E = (x,0);
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− | F = (4,y);
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− | G = (y,4);
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− | H = (0,x);
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− | I = F + z * dir(225);
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− | J = G + z * dir(225);
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− | draw(A--B--C--D--A);
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− | draw(H--E);
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− | draw(J--G^^F--I);
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− | draw(rightanglemark(G, J, I), linewidth(.5));
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− | draw(rightanglemark(F, I, E), linewidth(.5));
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− | dot("$A$", A, S);
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− | dot("$B$", B, S);
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− | dot("$C$", C, dir(90));
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− | dot("$D$", D, dir(90));
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− | dot("$E$", E, S);
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− | dot("$F$", F, dir(0));
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− | dot("$G$", G, N);
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− | dot("$H$", H, W);
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− | dot("$I$", I, SW);
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− | dot("$J$", J, SW);
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− | </asy>
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− | <math>\textbf{(A) } \frac{7}{3} \qquad \textbf{(B) } 8-4\sqrt2 \qquad \textbf{(C) } 1+\sqrt2 \qquad \textbf{(D) } \frac{7}{4}\sqrt2 \qquad \textbf{(E) } 2\sqrt2</math>
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− | ==Solution 1==
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− | Plot a point <math>F'</math> such that <math>F'</math> and <math>I</math> are collinear and extend line <math>FB</math> to point <math>B'</math> such that <math>FIB'F'</math> forms a square. Extend line <math>AE</math> to meet line <math>F'B'</math> and point <math>E'</math> is the intersection of the two. The area of this square is equivalent to <math>FI^2</math>. We see that the area of square <math>ABCD</math> is <math>4</math>, meaning each side is of length 2. The area of the pentagon <math>EIFF'E'</math> is <math>2</math>. Length <math>AE=\sqrt{2}</math>, thus <math>EB=2-\sqrt{2}</math>. Triangle <math>EB'E'</math> is isosceles, and the area of this triangle is <math>\frac{1}{2}(4-2\sqrt{2})(2-\sqrt{2})=6-4\sqrt{2}</math>. Adding these two areas, we get <cmath>2+6-4\sqrt{2}=8-4\sqrt{2}\rightarrow \boxed{\mathrm{(B)}}</cmath>. --OGBooger
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− | ==Solution 2==
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− | Draw the auxiliary line <math>AC</math>. Denote by <math>M</math> the point it intersects with <math>HE</math>, and by <math>N</math> the point it intersects with <math>GF</math>. Last, denote by <math>x</math> the segment <math>FN</math>, and by <math>y</math> the segment <math>FI</math>. We will find two equations for <math>x</math> and <math>y</math>, and then solve for <math>y^2</math>.
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− | Since the overall area of <math>ABCD</math> is <math>4 \;\; \Longrightarrow \;\; AB=2</math>, and <math>AC=2\sqrt{2}</math>. In addition, the area of <math>\bigtriangleup AME = \frac{1}{2} \;\; \Longrightarrow \;\; AM=1</math>.
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− | The two equations for <math>x</math> and <math>y</math> are then:
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− | <math>\bullet</math> Length of <math>AC</math>: <math>1+y+x = 2\sqrt{2} \;\; \Longrightarrow \;\; x = (2\sqrt{2}-1) - y</math>
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− | <math>\bullet</math> Area of CMIF: <math>\frac{1}{2}x^2+xy = \frac{1}{2} \;\; \Longrightarrow \;\; x(x+2y)=1</math>.
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− | Substituting the first into the second, yields
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− | <math>\left[\left(2\sqrt{2}-1\right)-y\right]\cdot \left[\left(2\sqrt{2}-1\right)+y\right]=1</math>
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− | Solving for <math>y^2</math> gives <math>\boxed{\textbf{(B)}\ 8-4\sqrt{2}}</math> ~DrB
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− | {{AMC12 box|year=2020|ab=B|num-b=17|num-a=19}}
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− | {{MAA Notice}}
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