sentence1 stringlengths 16 4.31k | sentence2 stringlengths 29 6.77k | label stringclasses 1
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A cube has edges of length 1 cm and has a dot marked in the centre of the top face. The cube is sitting on a flat table. The cube is rolled, without lifting or slipping, in one direction so that at least two of its vertices are always touching the table. The cube is rolled until the dot is again on the top face. Th... | Suppose the cube rolls first over edge $AB$.
Consider the cube as being made up of two half-cubes (each of dimensions $1 \times 1 \times \frac{1}{2}$) glued together at square $PQMN$. (Note that $PQMN$ lies on a vertical plane.)
Since dot $D$ is in the centre of the top face, then $D$ lies on square $PQMN$. [asy]
//... | entailment |
A rectangular prism measures 10-inches by 20-inches by 10-inches. What is the length, in inches, of the diagonal connecting point A and point B? Express your answer in simplest radical form. [asy]
unitsize(0.75cm);
defaultpen(linewidth(0.7pt)+fontsize(10pt));
dotfactor=4;
draw((0,1)--(1,1)--(1,0)--(0,0)--(0,1)--(1,2)-... | Let $D$ be the vertex opposite $B$ on the bottom face, and let $C$ be one of the other two vertices on the bottom face. Because $BCD$ is a right triangle, we can use the Pythagorean theorem to get $BD=\sqrt{10^2+20^2}$. Then applying the Pythagorean theorem to right triangle $BDA$, we find \begin{align*} AB&=\sqrt{10... | entailment |
The lengths of the sides of a non-degenerate triangle are $x$, 13 and 37 units. How many integer values of $x$ are possible? | By the triangle inequality, \begin{align*}
x + 13 &> 37, \\
x + 37 &> 13, \\
13 + 37 &> x,
\end{align*} which tell us that $x > 24$, $x > -24$, and $x < 50$. Hence, the possible values of $x$ are $25, 26, \dots, 49$, for a total of $49 - 25 + 1 = \boxed{25}$. | entailment |
Faces $ABC$ and $BCD$ of tetrahedron $ABCD$ meet at an angle of $30^\circ$. The area of face $ABC$ is $120$, the area of face $BCD$ is $80$, and $BC=10$. Find the volume of the tetrahedron.
| Since the area $BCD=80=\frac{1}{2}\cdot10\cdot16$, the perpendicular from $D$ to $BC$ has length $16$.
The perpendicular from $D$ to $ABC$ is $16 \cdot \sin 30^\circ=8$. Therefore, the volume is $\frac{8\cdot120}{3}=\boxed{320}$. | entailment |
Triangles $\triangle ABC$ and $\triangle A'B'C'$ lie in the coordinate plane with vertices $A(0,0)$, $B(0,12)$, $C(16,0)$, $A'(24,18)$, $B'(36,18)$, $C'(24,2)$. A rotation of $m$ degrees clockwise around the point $(x,y)$ where $0<m<180$, will transform $\triangle ABC$ to $\triangle A'B'C'$. Find $m+x+y$.
| After sketching, it is clear a $90^{\circ}$ rotation is done about $(x,y)$. Looking between $A$ and $A'$, $x+y=18$ and $x-y=24$. Solving gives $(x,y)\implies(21,-3)$. Thus $90+21-3=\boxed{108}$. | entailment |
Square $ABCD$ has side length $13$, and points $E$ and $F$ are exterior to the square such that $BE=DF=5$ and $AE=CF=12$. Find $EF^{2}$.[asy]unitsize(0.2 cm); pair A, B, C, D, E, F; A = (0,13); B = (13,13); C = (13,0); D = (0,0); E = A + (12*12/13,5*12/13); F = D + (5*5/13,-5*12/13); draw(A--B--C--D--cycle); draw(A-... | Let $\angle FCD = \alpha$, so that $FB = \sqrt{12^2 + 13^2 + 2\cdot12\cdot13\sin(\alpha)} = \sqrt{433}$. By the diagonal, $DB = 13\sqrt{2}, DB^2 = 338$.
The sum of the squares of the sides of a parallelogram is the sum of the squares of the diagonals.\[EF^2 = 2\cdot(5^2 + 433) - 338 = \boxed{578}.\] | entailment |
What is the ratio of the area of a square inscribed in a semicircle with radius $r$ to the area of a square inscribed in a circle with radius $r$? Express your answer as a common fraction. | Let $s_1$ be the side length of the square inscribed in the semicircle of radius $r$. Applying the Pythagorean theorem to the right triangle shown in the diagram, we have $(s_1/2)^2+s_1^2=r^2$, which implies $s_1^2=\frac{4}{5}r^2$. Let $s_2$ be the side length of the square inscribed in the circle of radius $r$. App... | entailment |
A line with slope of $-2$ intersects the positive $x$-axis at $A$ and the positive $y$-axis at $B$. A second line intersects the $x$-axis at $C(8,0)$ and the $y$-axis at $D$. The lines intersect at $E(4,4)$. What is the area of the shaded quadrilateral $OBEC$? [asy]
draw((0,-1)--(0,13));
draw((-1,0)--(10,0));
fill((0,... | First, we can create a square with the points $O$ and $E$ as opposite corners. Label the other two points as $X$ and $Y$ with $X$ on $OC$ and $Y$ on $OB$. We get that $X$ is $(4,0)$ and $Y$ is $(0,4)$.
We can find the area of the figure by finding the area of the square and the two triangles created.
The area of the ... | entailment |
Triangle $ABC$ with vertices of $A(6,2)$, $B(2,5)$, and $C(2,2)$ is reflected over the x-axis to triangle $A'B'C'$. This triangle is reflected over the y-axis to triangle $A''B''C''$. What are the coordinates of point $C''$? | A reflection over the $x$-axis negates the $y$-coordinate, while a reflection over the $y$-axis negates the $x$-coordinate. So reflecting $C$ over the $x$-axis and the $y$-axis means we negate both coordinates to get $\boxed{(-2, -2)}$ as the coordinates of point $C''$. | entailment |
$ABC$ is a triangle: $A=(0,0), B=(36,15)$ and both the coordinates of $C$ are integers. What is the minimum area $\triangle ABC$ can have?
$\textbf{(A)}\ \frac{1}{2} \qquad \textbf{(B)}\ 1 \qquad \textbf{(C)}\ \frac{3}{2} \qquad \textbf{(D)}\ \frac{13}{2}\qquad \textbf{(E)}\ \text{there is no minimum}$
| Let $C$ have coordinates $(p, q)$. Then by the Shoelace Formula, the area of $\triangle ABC$ is $\frac{3}{2} \lvert {12q-5p} \rvert$. Since $p$ and $q$ are integers, $\lvert {12q-5p} \rvert$ is a positive integer, and by Bezout's Lemma, it can equal $1$ (e.g. with $q = 2, p = 5$), so the minimum area is $\frac{3}{2} \t... | entailment |
In the triangle shown, $n$ is a positive integer, and $\angle A > \angle B > \angle C$. How many possible values of $n$ are there? [asy]
draw((0,0)--(1,0)--(.4,.5)--cycle);
label("$A$",(.4,.5),N); label("$B$",(1,0),SE); label("$C$",(0,0),SW);
label("$2n + 12$",(.5,0),S); label("$3n - 3$",(.7,.25),NE); label("$2n + 7$"... | The sides of the triangle must satisfy the triangle inequality, so $AB + AC > BC$, $AB + BC > AC$, and $AC + BC > AB$. Substituting the side lengths, these inequalities turn into \begin{align*}
(3n - 3) + (2n + 7) &> 2n + 12, \\
(3n - 3) + (2n + 12) &> 2n + 7, \\
(2n + 7) + (2n + 12) &> 3n - 3,
\end{align*} which give... | entailment |
An octagon is inscribed in a square so that the vertices of the octagon trisect the sides of the square. The perimeter of the square is 108 centimeters. What is the number of square centimeters in the area of the octagon? | Each side of the square has length $27$. Each trisected segment therefore has length $9$. We can form the octagon by taking away four triangles, each of which has area $\frac{(9)(9)}{2}$, for a total of $(2)(9)(9) = 162$. The total area of the square is $27^2=729$, so the area of the octagon is $729-162=\boxed{567}$. | entailment |
Medians $\overline{DP}$ and $\overline{EQ}$ of $\triangle DEF$ are perpendicular. If $DP= 18$ and $EQ = 24$, then what is ${DF}$? | [asy]
pair D,EE,F,P,Q,G;
G = (0,0);
D = (1.2,0);
P= (-0.6,0);
EE = (0,1.6);
Q = (0,-0.8);
F = 2*Q - D;
draw(P--D--EE--F--D);
draw(EE--Q);
label("$D$",D,E);
label("$P$",P,NW);
label("$Q$",Q,SE);
label("$E$",EE,N);
label("$F$",F,SW);
draw(rightanglemark(Q,G,D,3.5));
label("$G$",G,SW);
[/asy]
Point $G$ is the centroid o... | entailment |
Let $ABCD$ and $BCFG$ be two faces of a cube with $AB=12$. A beam of light emanates from vertex $A$ and reflects off face $BCFG$ at point $P$, which is 7 units from $\overline{BG}$ and 5 units from $\overline{BC}$. The beam continues to be reflected off the faces of the cube. The length of the light path from the time ... | When a light beam reflects off a surface, the path is like that of a ball bouncing. Picture that, and also imagine X, Y, and Z coordinates for the cube vertices. The coordinates will all involve 0's and 12's only, so that means that the X, Y, and Z distance traveled by the light must all be divisible by 12. Since the l... | entailment |
What is the smallest possible perimeter, in units, of a triangle whose side-length measures are consecutive integer values? | The smallest such triangle has lengths 1, 2, and 3. However, this triangle doesn't work since the sum of any two side lengths must be greater than the third side length (by the Triangle Inequality). The next smallest triangle has lengths 2, 3, and 4, which works. Thus, the smallest possible perimeter is $2+3+4=\boxed{9... | entailment |
A can is in the shape of a right circular cylinder. The circumference of the base of the can is 12 inches, and the height of the can is 5 inches. A spiral strip is painted on the can in such a way that it winds around the can exactly once as it reaches from the bottom of the can to the top. It reaches the top of the ca... | We look at the lateral area of the cylinder as a rectangle (imagine a peeling the label off of a soup can and laying it flat). The length of the rectangle is the circumference of the base, $12$ inches in this case, and the width of the rectangle is the height of the cylinder, $5$ inches. The spiral strip goes from one ... | entailment |
In $\triangle ABC$ lines $CE$ and $AD$ are drawn so that $\dfrac{CD}{DB}=\dfrac{3}{1}$ and $\dfrac{AE}{EB}=\dfrac{3}{2}$. Let $r=\dfrac{CP}{PE}$ where $P$ is the intersection point of $CE$ and $AD$. Then $r$ equals:
[asy] size(8cm); pair A = (0, 0), B = (9, 0), C = (3, 6); pair D = (7.5, 1.5), E = (6.5, 0); pair P = in... | [asy] size(8cm); pair A = (0, 0), B = (9, 0), C = (3, 6); pair D = (7.5, 1.5), E = (6.5, 0); pair P = intersectionpoints(A--D, C--E)[0]; draw(A--B--C--cycle); draw(A--D); draw(C--E); label("$A$", A, SW); label("$B$", B, SE); label("$C$", C, N); label("$D$", D, NE); label("$E$", E, S); label("$P$", P, S); draw(P--B,dott... | entailment |
Ten unit cubes are glued together as shown. How many square units are in the surface area of the resulting solid?
[asy]
draw((0,0)--(30,0)--(30,10)--(0,10)--cycle);
draw((10,0)--(10,10));
draw((20,0)--(20,10));
draw((5,15)--(35,15));
draw((0,10)--(5,15));
draw((10,10)--(15,15));
draw((20,10)--(25,15));
draw((35,15)-... | There are 10 cubes, thus, there are 10 sq. units in each of the faces facing towards us and away from us. The figure has a height of 3, so there 6 sq. units total in each of the vertical sides. And the figure has a total width of 4 cubes, so despite the fact that there is overlap, there is still a horizontal width of... | entailment |
Given a triangle, its midpoint triangle is obtained by joining the midpoints of its sides. A sequence of polyhedra $P_{i}$ is defined recursively as follows: $P_{0}$ is a regular tetrahedron whose volume is 1. To obtain $P_{i + 1}$, replace the midpoint triangle of every face of $P_{i}$ by an outward-pointing regular t... | On the first construction, $P_1$, four new tetrahedra will be constructed with side lengths $\frac 12$ of the original one. Since the ratio of the volume of similar polygons is the cube of the ratio of their corresponding lengths, it follows that each of these new tetrahedra will have volume $\left(\frac 12\right)^3 = ... | entailment |
The line $y=-\frac{3}{4}x+9$ crosses the $x$-axis at $P$ and the $y$-axis at $Q$. Point $T(r,s)$ is on line segment $PQ$. If the area of $\triangle POQ$ is three times the area of $\triangle TOP$, then what is the value of $r+s$? [asy]
// draw axes
draw((-3, 0)--(15, 0), Arrow); draw((0, -3)--(0, 15), Arrow);
label(... | The $y$-intercept of the line $y = -\frac{3}{4}x+9$ is $y=9$, so $Q$ has coordinates $(0, 9)$.
To determine the $x$-intercept, we set $y=0$, and so obtain $0 = -\frac{3}{4}x+9$ or $\frac{3}{4}x=9$ or $x=12$. Thus, $P$ has coordinates $(12, 0)$.
Therefore, the area of $\triangle POQ$ is $\frac{1}{2}(12)(9) = 54$, sin... | entailment |
Let $\overline{AB}$ be a diameter of circle $\omega$. Extend $\overline{AB}$ through $A$ to $C$. Point $T$ lies on $\omega$ so that line $CT$ is tangent to $\omega$. Point $P$ is the foot of the perpendicular from $A$ to line $CT$. Suppose $\overline{AB} = 18$, and let $m$ denote the maximum possible length of segment ... | [asy] size(250); defaultpen(0.70 + fontsize(10)); import olympiad; pair O = (0,0), B = O - (9,0), A= O + (9,0), C=A+(18,0), T = 9 * expi(-1.2309594), P = foot(A,C,T); draw(Circle(O,9)); draw(B--C--T--O); draw(A--P); dot(A); dot(B); dot(C); dot(O); dot(T); dot(P); draw(rightanglemark(O,T,C,30)); draw(rightanglemark(A,P,... | entailment |
The center of a circle has coordinates $(6,-5)$. The circle is reflected about the line $y=x$. What are the $x,y$ coordinates of the center of the image circle? State the $x$ coordinate first. | The center of the image circle is simply the center of the original circle reflected over the line $y=x$. When reflecting over this line, we swap the $x$ and $y$ coordinates. Thus, the image center is the point $\boxed{(-5, 6)}$. | entailment |
A pentagon is formed by cutting a triangular corner from a rectangular piece of paper. The five sides of the pentagon have lengths $13,$ $19,$ $20,$ $25$ and $31,$ in some order. Find the area of the pentagon. | Let the sides of the pentagon be $a,$ $b,$ $c,$ $d$ and $e,$ and let $r$ and $s$ be the legs of the triangular region cut off, as shown.[asy]
size(6cm);
pair A=(0,0),B=(0,5),C=(8,5),D=(8,0),E=(8,2),F=(5.5,5);
draw(A--B--C--D--A^^E--F);
label("$c$",A--B,W);
label("$d$",B--F,N);
label("$e$",E--F,SW);
label("$a$",E--D,dir... | entailment |
In isosceles triangle $\triangle ABC$ we have $AB=AC=4$. The altitude from $B$ meets $\overline{AC}$ at $H$. If $AH=3(HC)$ then determine $BC$. | [asy]
import olympiad; import geometry; size(100); defaultpen(linewidth(0.8)); dotfactor=4;
draw((0,0)--(sqrt(8),0)--(sqrt(2),sqrt(14))--cycle);
dot("$B$",(0,0),W); dot("$A$",(sqrt(2),sqrt(14)),N); dot("$C$",(sqrt(8),0),E);
pair footB = foot((0,0),(sqrt(2),sqrt(14)),(sqrt(8),0));
draw((0,0)--footB);
dot("$H$",(footB),E... | entailment |
Compute $\sin(-60^\circ)$. | Rotating $60^\circ$ clockwise is the same as rotating $360^\circ - 60^\circ = 300^\circ$ counterclockwise, so $\sin(-60^\circ) = \sin (360^\circ - 60^\circ) = \sin 300^\circ$.
Let $P$ be the point on the unit circle that is $300^\circ$ counterclockwise from $(1,0)$, and let $D$ be the foot of the altitude from $P$ to ... | entailment |
The second hand on the clock pictured below is 6 cm long. How far in centimeters does the tip of this second hand travel during a period of 30 minutes? Express your answer in terms of $\pi$.
[asy]
draw(Circle((0,0),20));
label("12",(0,20),S);
label("9",(-20,0),E);
label("6",(0,-20),N);
label("3",(20,0),W);
dot((0,0))... | In 30 minutes, the tip of the second hand travels 30 times around the circumference of a circle of radius 6cm. Since the circumference is $2\pi \cdot6 = 12\pi$, the tip of the second hand travels $12\pi \cdot 30 = \boxed{360\pi}$ centimeters. | entailment |
In convex quadrilateral $ABCD$, $AB=BC=13$, $CD=DA=24$, and $\angle D=60^\circ$. Points $X$ and $Y$ are the midpoints of $\overline{BC}$ and $\overline{DA}$ respectively. Compute $XY^2$ (the square of the length of $XY$). | We begin by drawing a diagram: [asy]
pair A,B,C,D,X,Y,H;
A=(-12,12*sqrt(3)); D=(0,0); C=(12,12*sqrt(3)); B=(0,5+12*sqrt(3)); X=(B+C)/2; Y=(A+D)/2; H=(A+C)/2;
draw(A--B--C--D--cycle); draw(X--Y);
label("$A$",A,W); label("$B$",B,N); label("$C$",C,E); label("$D$",D,S); label("$X$",X,NE); label("$Y$",Y,SW);
label("$24$",... | entailment |
In the diagram, $P$ is on $RS$ so that $QP$ bisects $\angle SQR$. Also, $PQ=PR$, $\angle RSQ=2y^\circ$, and $\angle RPQ=3y^\circ$. What is the measure, in degrees, of $\angle RPQ$? [asy]
// C14
import olympiad;
size(7cm);
real x = 50; real y = 20;
pair q = (1, 0);
pair r = (0, 0);
pair p = intersectionpoints((10 * ... | Since $RPS$ is a straight line, then $\angle SPQ = 180^\circ - \angle RPQ = 180^\circ - 3y^\circ$.
Using the angles in $\triangle PQS$, we have $\angle PQS + \angle QSP + \angle SPQ = 180^\circ$. Thus, $x^\circ+2y^\circ + (180^\circ - 3y^\circ) = 180^\circ$ or $x-y+180 = 180$ or $x=y$.
(We could have instead looked a... | entailment |
Point $D$ lies on side $AC$ of equilateral triangle $ABC$ such that the measure of angle $DBC$ is $45$ degrees. What is the ratio of the area of triangle $ADB$ to the area of triangle $CDB$? Express your answer as a common fraction in simplest radical form. | [asy] size(100); defaultpen(linewidth(0.7)); pen f = fontsize(10);
pair A=(0,0),B=(0.5,0.5*3^.5),C=(1,0),D=(1/(2+3^.5),0),E=foot(D,B,C);
draw(A--B--C--cycle); draw(B--D--E);
draw(rightanglemark(D,E,B,2));
label("$A$",A,S,f); label("$B$",B,N,f); label("$C$",C,S,f); label("$D$",D,S,f); label("$E$",E,NE,f); label("$60^{\... | entailment |
Triangle $ABC$ has side lengths $AB=120,BC=220$, and $AC=180$. Lines $\ell_A,\ell_B$, and $\ell_C$ are drawn parallel to $\overline{BC},\overline{AC}$, and $\overline{AB}$, respectively, such that the intersections of $\ell_A,\ell_B$, and $\ell_C$ with the interior of $\triangle ABC$ are segments of lengths $55,45$, an... | Let the points of intersection of $\ell_a, \ell_b,\ell_c$ with $\triangle ABC$ divide the sides into consecutive segments $BD,DE,EC,CF,FG,GA,AH,HI,IB$. Furthermore, let the desired triangle be $\triangle XYZ$, with $X$ closest to side $BC$, $Y$ closest to side $AC$, and $Z$ closest to side $AB$. Hence, the desired peri... | entailment |
Triangle $ABC$ has vertices at $A(5,8)$, $B(3,-2)$, and $C(6,1)$. The point $D$ with coordinates $(m,n)$ is chosen inside the triangle so that the three small triangles $ABD$, $ACD$ and $BCD$ all have equal areas. What is the value of $10m + n$? | If $D$ is the centroid of triangle $ABC$, then $ABD$, $ACD$, and $BCD$ would all have equal areas (to see this, remember that the medians of a triangle divide the triangle into 6 equal areas). There is only one point with this property (if we move around $D$, the area of one of the small triangles will increase and wil... | entailment |
A spiral staircase turns $270^\circ$ as it rises 10 feet. The radius of the staircase is 3 feet. What is the number of feet in the length of the handrail? Express your answer as a decimal to the nearest tenth. | The handrail encases a right circular cylinder with radius 3 feet and height 10 feet. Its lateral area is a rectangle with height 10 feet and width equal to its base circumference, or $2\pi\cdot 3 = 6\pi$ feet. A staircase that turns $360^\circ$ would, when unrolled and lain flat, span the diagonal of this rectangle.... | entailment |
In the diagram, $RSP$ is a straight line and $\angle QSP = 80^\circ$. What is the measure of $\angle PQR$, in degrees?
[asy]
draw((.48,-.05)--(.48,.05)); draw((.52,-.05)--(.52,.05)); draw((1.48,-.05)--(1.48,.05)); draw((1.52,-.05)--(1.52,.05));
draw((1.04,.51)--(1.14,.49)); draw((1.03,.47)--(1.13,.45));
draw((0,0)--... | Since $RSP$ is a straight line, we have $\angle RSQ+\angle QSP = 180^\circ$, so $\angle RSQ=180^\circ - 80^\circ = 100^\circ$. $\triangle RSQ$ is isosceles with $RS=SQ$, so \[ \angle RQS = \frac{1}{2}(180^\circ - \angle RSQ) = \frac{1}{2}(180^\circ - 100^\circ)=40^\circ . \]Similarly, since $\triangle PSQ$ is isosceles... | entailment |
What is the area, in square units, of a triangle with vertices at $A(1, 1), B(6, 1), C(3, 7)$? | Note that $AB$ has length 5 and is parallel to the $x$-axis. Therefore, the height of the triangle is the difference in the $y$-coordinates of $A$ and $C$, or $7-1 = 6$. Therefore, the area of the triangle is $\frac{6 \times 5}{2} = \boxed{15}$. | entailment |
A cylindrical barrel with radius $4$ feet and height $10$ feet is full of water. A solid cube with side length $8$ feet is set into the barrel so that the diagonal of the cube is vertical. The volume of water thus displaced is $v$ cubic feet. Find $v^2$.
[asy] import three; import solids; size(5cm); currentprojection=o... | Our aim is to find the volume of the part of the cube submerged in the cylinder. In the problem, since three edges emanate from each vertex, the boundary of the cylinder touches the cube at three points. Because the space diagonal of the cube is vertical, by the symmetry of the cube, the three points form an equilatera... | entailment |
Each edge length of a rectangular solid is a prime number. If the volume of the rectangular solid is 385 cubic units, what is the total surface area, in square units, of the rectangular solid? | Prime factorize $385$ as $5\cdot7\cdot 11$. The surface area of a rectangular solid having side lengths of 5, 7, and 11 units is $2(5\cdot7+7\cdot11+11\cdot5)=\boxed{334}$ square units. | entailment |
Triangle $ABC$ lies in the cartesian plane and has an area of $70$. The coordinates of $B$ and $C$ are $(12,19)$ and $(23,20),$ respectively, and the coordinates of $A$ are $(p,q).$ The line containing the median to side $BC$ has slope $-5.$ Find the largest possible value of $p+q.$
[asy]defaultpen(fontsize(8)); size(1... | The midpoint $M$ of line segment $\overline{BC}$ is $\left(\frac{35}{2}, \frac{39}{2}\right)$. The equation of the median can be found by $-5 = \frac{q - \frac{39}{2}}{p - \frac{35}{2}}$. Cross multiply and simplify to yield that $-5p + \frac{35 \cdot 5}{2} = q - \frac{39}{2}$, so $q = -5p + 107$.
Use determinants to f... | entailment |
Let $AB$ be a diameter of a circle centered at $O$. Let $E$ be a point on the circle, and let the tangent at $B$ intersect the tangent at $E$ and $AE$ at $C$ and $D$, respectively. If $\angle BAE = 43^\circ$, find $\angle CED$, in degrees.
[asy]
import graph;
unitsize(2 cm);
pair O, A, B, C, D, E;
O = (0,0);
A = ... | Both angles $\angle BAD$ and $\angle CBE$ subtend arc $BE$, so $\angle CBE = \angle BAE = 43^\circ$. Triangle $BCE$ is isosceles with $BC = CE$, since these are tangent from the same point to the same circle, so $\angle CEB = \angle CBE = 43^\circ$.
Finally, $\angle AEB = 90^\circ$ since $AB$ is a diameter, so $\angl... | entailment |
The convex pentagon $ABCDE$ has $\angle A = \angle B = 120^\circ$, $EA = AB = BC = 2$ and $CD = DE = 4$. What is the area of $ABCDE$?
[asy]
unitsize(1 cm);
pair A, B, C, D, E;
A = (0,0);
B = (1,0);
C = B + dir(60);
D = C + 2*dir(120);
E = dir(120);
draw(A--B--C--D--E--cycle);
label("$A$", A, SW);
label("$B$... | We can divide the pentagon into 7 equilateral triangles of side length 2.
[asy]
unitsize(1 cm);
pair A, B, C, D, E;
A = (0,0);
B = (1,0);
C = B + dir(60);
D = C + 2*dir(120);
E = dir(120);
draw(A--B--C--D--E--cycle);
draw(C--E);
draw((C + D)/2--(D + E)/2);
draw(A--(C + D)/2);
draw(B--(D + E)/2);
label("$A$", A, SW... | entailment |
The graph of the equation $9x+223y=2007$ is drawn on graph paper with each square representing one unit in each direction. How many of the $1$ by $1$ graph paper squares have interiors lying entirely below the graph and entirely in the first quadrant?
| There are $223 \cdot 9 = 2007$ squares in total formed by the rectangle with edges on the x and y axes and with vertices on the intercepts of the equation, since the intercepts of the lines are $(223,0),\ (0,9)$.
Count the number of squares that the diagonal of the rectangle passes through. Since the two diagonals of a... | entailment |
The shaded region consists of 16 congruent squares. If $PQ = 6$ cm, what is the area of the entire shaded region?
[asy]
for(int i = 0; i < 5; ++i)
{
for(int j = 0; j < 2; ++j)
{
filldraw((i,j)--(i+1,j)--(i+1,j+1)--(i,j+1)--(i,j)--cycle,gray,linewidth(2));
}
}
for(int i = 0; i < 2; ++i)
{
for(int j = 0; j < 5; ++... | Imagine the square whose diagonal would be PQ. Clearly, that square would be formed of 9 of the shaded squares. The formula for the area of a square from its diagonal is $A = \frac{d^2}{2}$, therefore, the area of that imaginary square is 18. Thus, each smaller shaded square has area 2, making for a total of $\boxed... | entailment |
$\triangle ABC\sim\triangle DBE$, $BC=20\text{ cm}.$ How many centimeters long is $DE$? Express your answer as a decimal to the nearest tenth. [asy]
draw((0,0)--(20,0)--(20,12)--cycle);
draw((13,0)--(13,7.8));
label("$B$",(0,0),SW);
label("$E$",(13,0),S);
label("$D$",(13,7.8),NW);
label("$A$",(20,12),NE);
label("$C$",(... | From our similarity, we have that: \begin{align*}
\frac{DE}{AC} &= \frac{BE}{BC} \\
DE &= \frac{BE \cdot AC}{BC}\\
&= \frac{13\text{ cm} \cdot 12\text{ cm}}{20\text{ cm}} = \boxed{7.8}\text{ cm}.
\end{align*} | entailment |
A square with sides 6 inches is shown. If $P$ is a point such that the segment $\overline{PA}$, $\overline{PB}$, $\overline{PC}$ are equal in length, and segment $\overline{PC}$ is perpendicular to segment $\overline{FD}$, what is the area, in square inches, of triangle $APB$? [asy]
pair A, B, C, D, F, P;
A = (0,0); B=... | We first extend line segment $\overline{CP}$ so that it intersects $\overline{AB}$. We'll call this point of intersection point $E$, so $\overline{CE}$ is a perpendicular bisector to segment $\overline{AB}$ and $AE=EB=3$. We also let $x =$ the lengths of segments $\overline{PA}$, $\overline{PB}$, and $\overline{PC}$, s... | entailment |
Square ABCD has its center at $(8,-8)$ and has an area of 4 square units. The top side of the square is horizontal. The square is then dilated with the dilation center at (0,0) and a scale factor of 2. What are the coordinates of the vertex of the image of square ABCD that is farthest from the origin? Give your answer ... | With the center of dilation at the origin and a scale factor of 2, all the coordinates of square $ABCD$ are twice the coordinates of its preimage. The preimage has an area of 4 square units, so its side length is 2 units. Since the center of the preimage is at $(8, -8)$, the four vertices of the preimage are at $(7, -9... | entailment |
A plane intersects a right circular cylinder of radius $1$ forming an ellipse. If the major axis of the ellipse of $50\%$ longer than the minor axis, the length of the major axis is
$\textbf{(A)}\ 1\qquad \textbf{(B)}\ \frac{3}{2}\qquad \textbf{(C)}\ 2\qquad \textbf{(D)}\ \frac{9}{4}\qquad \textbf{(E)}\ 3$
| We note that we can draw the minor axis to see that because the minor axis is the minimum distance between two opposite points on the ellipse, we can draw a line through two opposite points of the cylinder, and so the minor axis is $2(1) = 2$. Therefore, our answer is $2(1.5) = \boxed{3}$. | entailment |
Euler's formula states that for a convex polyhedron with $V$ vertices, $E$ edges, and $F$ faces, $V-E+F=2$. A particular convex polyhedron has 32 faces, each of which is either a triangle or a pentagon. At each of its $V$ vertices, $T$ triangular faces and $P$ pentagonal faces meet. What is the value of $100P+10T+V$?
| The convex polyhedron of the problem can be easily visualized; it corresponds to a dodecahedron (a regular solid with $12$ equilateral pentagons) in which the $20$ vertices have all been truncated to form $20$ equilateral triangles with common vertices. The resulting solid has then $p=12$ smaller equilateral pentagons ... | entailment |
A cube has a surface area of 216 square centimeters. What is the volume of the cube, in cubic centimeters? | There are 6 faces to a cube, meaning that each face has area 36, and the edge has length 6, for a total volume of $6^3 = \boxed{216}$ for the cube. | entailment |
Consider the parallelogram with vertices $(10,45)$, $(10,114)$, $(28,153)$, and $(28,84)$. A line through the origin cuts this figure into two congruent polygons. The slope of the line is $m/n,$ where $m$ and $n$ are relatively prime positive integers. Find $m+n$.
| Let the first point on the line $x=10$ be $(10,45+a)$ where a is the height above $(10,45)$. Let the second point on the line $x=28$ be $(28, 153-a)$. For two given points, the line will pass the origin if the coordinates are proportional (such that $\frac{y_1}{x_1} = \frac{y_2}{x_2}$). Then, we can write that $\frac{4... | entailment |
Let $n$ equal the number of sides in a regular polygon. For $3\leq n < 10$, how many values of $n$ result in a regular polygon where the common degree measure of the interior angles is not an integer? | The number of degrees is the sum of the interior angles of an $n$-gon is $180(n-2)$. If the $n$-gon is regular, then each angle measures $\frac{180(n-2)}{n}$ degrees. If $n=3$, 4, 5, 6, or 9, then $n$ divides evenly into 180, so the number of degrees in each angle is an integer. If $n=7$, then the number of degrees ... | entailment |
In parallelogram $ABCD$, $AB = 38$ cm, $BC = 3y^3$ cm, $CD = 2x +4$ cm, and $AD = 24$ cm. What is the product of $x$ and $y$? | Since opposite sides of a parallelogram have the same length, we have the equations $$AB=CD\qquad\Rightarrow \qquad38=2x+4\qquad\Rightarrow \qquad x=17$$and $$BC=AD\qquad\Rightarrow \qquad3y^3=24\qquad\Rightarrow\qquad y=2.$$The product of $x$ and $y$ is then $17\cdot2=\boxed{34}$. | entailment |
The field shown has been planted uniformly with wheat. [asy]
draw((0,0)--(1/2,sqrt(3)/2)--(3/2,sqrt(3)/2)--(2,0)--(0,0),linewidth(0.8));
label("$60^\circ$",(0.06,0.1),E);
label("$120^\circ$",(1/2-0.05,sqrt(3)/2-0.1),E);
label("$120^\circ$",(3/2+0.05,sqrt(3)/2-0.1),W);
label("$60^\circ$",(2-0.05,0.1),W);
label("100 m",(... | We first note that the given quadrilateral is a trapezoid, because $60^\circ+120^\circ=180^\circ,$ and so the top and bottom sides are parallel. We need to determine the total area of the trapezoid and then what fraction of that area is closest to the longest side.
DETERMINATION OF REGION CLOSEST TO $AD$
Next, we nee... | entailment |
Let $\triangle ABC$ be a right triangle such that $B$ is a right angle. A circle with diameter of $BC$ meets side $AC$ at $D.$ If $AD = 1$ and $BD = 4,$ then what is $CD$? | We might try sketching a diagram: [asy]
pair pA, pB, pC, pO, pD;
pA = (-5, 0);
pB = (0, 0);
pC = (0, 20);
pO = (0, 10);
pD = (-80/17, 20/17);
draw(pA--pB--pC--pA);
draw(pD--pB);
draw(circle(pO, 10));
label("$A$", pA, SW);
label("$B$", pB, S);
label("$C$", pC, N);
label("$D$", pD, NE);
[/asy] Since $BC$ is a diameter of... | entailment |
In acute triangle $ABC$ points $P$ and $Q$ are the feet of the perpendiculars from $C$ to $\overline{AB}$ and from $B$ to $\overline{AC}$, respectively. Line $PQ$ intersects the circumcircle of $\triangle ABC$ in two distinct points, $X$ and $Y$. Suppose $XP=10$, $PQ=25$, and $QY=15$. The value of $AB\cdot AC$ can be w... | Let $AP=a, AQ=b, \cos\angle A = k$
Therefore $AB= \frac{b}{k} , AC= \frac{a}{k}$
By power of point, we have $AP\cdot BP=XP\cdot YP , AQ\cdot CQ=YQ\cdot XQ$ Which are simplified to
$400= \frac{ab}{k} - a^2$
$525= \frac{ab}{k} - b^2$
Or
$a^2= \frac{ab}{k} - 400$
$b^2= \frac{ab}{k} - 525$
(1)
Or
$k= \frac{ab}{a^2+400} = \... | entailment |
A cylindrical log has diameter $12$ inches. A wedge is cut from the log by making two planar cuts that go entirely through the log. The first is perpendicular to the axis of the cylinder, and the plane of the second cut forms a $45^\circ$ angle with the plane of the first cut. The intersection of these two planes has e... | The volume of the wedge is half the volume of a cylinder with height $12$ and radius $6$. (Imagine taking another identical wedge and sticking it to the existing one). Thus, $V=\dfrac{6^2\cdot 12\pi}{2}=216\pi$, so $n=\boxed{216}$. | entailment |
Polygon $ABCDEF$ is a regular hexagon. What is the measure in degrees of angle $ABF$? | In triangle $ABF$, the two acute angles are equal since $AB=AF$. Also, the measure of $\angle A$ is $180^\circ(6-2)/6=120^\circ$. Letting $x$ be the measure of $\angle ABF$, we have \[
120^\circ+x+x=180^\circ \implies x=\boxed{30}\text{ degrees}.
\] [asy]
size(5cm);
defaultpen(linewidth(0.7));
int i;
pair A=dir(0), B=... | entailment |
[asy] draw((0,0)--(0,3)--(4,0)--cycle,dot); draw((4,0)--(7,0)--(7,10)--cycle,dot); draw((0,3)--(7,10),dot); MP("C",(0,0),SW);MP("A",(0,3),NW);MP("B",(4,0),S);MP("E",(7,0),SE);MP("D",(7,10),NE); [/asy]
Triangle $ABC$ has a right angle at $C, AC=3$ and $BC=4$. Triangle $ABD$ has a right angle at $A$ and $AD=12$. Points $... | Let $F$ be the point such that $DF$ and $CF$ are parallel to $CE$ and $DE$, respectively, and let $DE = x$ and $BE^2 = 169-x^2$. Then, $[FDEC] = x(4+\sqrt{169-x^2}) = [ABC] + [BED] + [ABD] + [AFD] = 6 + \dfrac{x\sqrt{169-x^2}}{2} + 30 + \dfrac{(x-3)(4+\sqrt{169-x^2})}{2}$. So, $4x+x\sqrt{169-x^2} = 60 + x\sqrt{169-x^2}... | entailment |
The diameter, in inches, of a sphere with twice the volume of a sphere of radius 9 inches can be expressed in the form $a\sqrt[3]{b}$ where $a$ and $b$ are positive integers and $b$ contains no perfect cube factors. Compute $a+b$. | A sphere with radius 9 inches has volume $\frac{4}{3}\pi(9^3)=4\cdot 9^2 \cdot 3\pi$ cubic inches; twice this is $8\cdot 9^2\cdot 3 \pi$ cubic inches. Let the radius of the larger sphere be $r$, so we have \[\frac{4}{3}\pi r^3= 8\cdot 9^2\cdot 3\pi .\] Solving for $r$ yields \[r^3 =2\cdot 9^3 \Rightarrow r = 9\sqrt[3]... | entailment |
Equilateral triangle $T$ is inscribed in circle $A$, which has radius $10$. Circle $B$ with radius $3$ is internally tangent to circle $A$ at one vertex of $T$. Circles $C$ and $D$, both with radius $2$, are internally tangent to circle $A$ at the other two vertices of $T$. Circles $B$, $C$, and $D$ are all externally ... | Let $X$ be the intersection of the circles with centers $B$ and $E$, and $Y$ be the intersection of the circles with centers $C$ and $E$. Since the radius of $B$ is $3$, $AX =4$. Assume $AE$ = $p$. Then $EX$ and $EY$ are radii of circle $E$ and have length $4+p$. $AC = 8$, and angle $CAE = 60$ degrees because we are gi... | entailment |
Let $P$ be a point outside of circle $O.$ A segment is drawn from $P$ such that it is tangent to circle $O$ at point $T.$ Meanwhile, a secant from $P$ intersects $O$ at $A$ and $B,$ such that $PA < PB.$ If $PA = 3$ and $PT = AB - PA,$ then what is $PB$? | First of all, we see that $PB = PA + AB = 3 + AB.$ By Power of a Point, we know that $(PA)(PB) = (PT)^2,$ so we have $3(PB) = (AB - 3)^2.$
[asy]
unitsize(2 cm);
pair A, B, O, P, T;
T = dir(70);
P = T + dir(-20);
B = dir(150);
O = (0,0);
A = intersectionpoint(P--interp(P,B,0.9),Circle(O,1));
draw(Circle(O,1));
draw(... | entailment |
In $\Delta ABC$, $AC = BC$, $m\angle DCB = 40^{\circ}$, and $CD \parallel AB$. What is the number of degrees in $m\angle ECD$?
[asy] pair A,B,C,D,E; B = dir(-40); A = dir(-140); D = (.5,0); E = .4 * dir(40);
draw(C--B--A--E,EndArrow); draw(C--D,EndArrow);
label("$A$",A,W); label("$C$",C,NW);label("$B$",B,E);label("$D$... | Angles $\angle DCB$ and $\angle B$ are alternate interior angles, so they are congruent. Therefore, $m\angle B=40^\circ$.
Since $AC=BC$, triangle $\triangle ABC$ is isosceles with equal angles at $A$ and $B$. Therefore, $m\angle A=40^\circ$.
Finally, $\angle A$ and $\angle ECD$ are corresponding angles, so $m\angle E... | entailment |
A circle with center $O$ has radius 25. Chord $\overline{AB}$ of length 30 and chord $\overline{CD}$ of length 14 intersect at point $P$. The distance between the midpoints of the two chords is 12. The quantity $OP^2$ can be represented as $\frac{m}{n}$, where $m$ and $n$ are relatively prime positive integers. Find th... | Let $E$ and $F$ be the midpoints of $\overline{AB}$ and $\overline{CD}$, respectively, such that $\overline{BE}$ intersects $\overline{CF}$.
Since $E$ and $F$ are midpoints, $BE = 15$ and $CF = 7$.
$B$ and $C$ are located on the circumference of the circle, so $OB = OC = 25$.
The line through the midpoint of a chord of... | entailment |
In quadrilateral $ABCD$, sides $\overline{AB}$ and $\overline{BC}$ both have length 10, sides $\overline{CD}$ and $\overline{DA}$ both have length 17, and the measure of angle $ADC$ is $60^\circ$. What is the length of diagonal $\overline{AC}$? [asy]
draw((0,0)--(17,0));
draw(rotate(301, (17,0))*(0,0)--(17,0));
picture... | Triangle $ACD$ is an isosceles triangle with a $60^\circ$ angle, so it is also equilateral. Therefore, the length of $\overline{AC}$ is $\boxed{17}$. | entailment |
An ice cream cone has radius 1 inch and height 4 inches, What is the number of inches in the radius of a sphere of ice cream which has the same volume as the cone? | A cone with radius $r$ and height $h$ has volume $\frac{1}{3}\pi r^2 h$; here, our cone has volume $\frac{1}{3}\pi (1^2)(4)=\frac{4}{3}\pi$. A sphere with radius $r$ has volume $\frac{4}{3}\pi r^3$, so we set up the equation \[\frac{4}{3}\pi r^3=\frac{4}{3}\pi.\] Solving for $r$ yields $r^3=1$, so $r = 1$. The sphere... | entailment |
A frustum of a right circular cone is formed by cutting a small cone off of the top of a larger cone. If a particular frustum has an altitude of $24$ centimeters, the area of its lower base is $225\pi$ sq cm and the area of its upper base is $25\pi$ sq cm, what is the altitude of the small cone that was cut off? [asy]s... | The two bases are circles, and the area of a circle is $\pi r^2$. If the area of the upper base (which is also the base of the small cone) is $25\pi$ sq cm, then its radius is $5$ cm, and the radius of the lower base is $15$ cm. The upper base, therefore, has a radius that is $\frac{1}{3}$ the size of the radius of t... | entailment |
Two congruent cones with radius 12 cm and height 12 cm are enclosed within a cylinder. The base of each cone is a base of the cylinder, and the height of the cylinder is 24 cm. What is the number of cubic centimeters in the volume of the cylinder not occupied by the cones? Express your answer in terms of $\pi$. | The cylinder has volume $\pi (12)^2 (24)$ cubic cm. Each cone has volume $(1/3)\pi (12)^2(12)$ cubic cm. Hence the volume of the space in the cylinder not occupied by the cones is \begin{align*}
\pi (12)^2 (24) - (2)(1/3)\pi (12)^2(12) &= 12^3\pi(2-2/3)\\
&=12^3\pi(4/3)\\
&=\boxed{2304\pi} \text{ cubic cm}.
\end{ali... | entailment |
If a triangle has two sides of lengths 5 and 7 units, then how many different integer lengths can the third side be? | Let $n$ be the length of the third side. Then by the triangle inequality, \begin{align*}
n + 5 &> 7, \\
n + 7 &> 5, \\
5 + 7 &> n,
\end{align*} which tell us that $n > 2$, $n > -2$, and $n < 12$. Hence, the possible values of $n$ are 3, 4, 5, 6, 7, 8, 9, 10, and 11, for a total of $\boxed{9}$. | entailment |
The figure shows a square in the interior of a regular hexagon. The square and regular hexagon share a common side. What is the degree measure of $\angle ABC$? [asy]
size(150);
pair A, B, C, D, E, F, G, H;
A=(0,.866);
B=(.5,1.732);
C=(1.5,1.732);
D=(2,.866);
E=(1.5,0);
F=(.5,0);
G=(.5,1);
H=(1.5,1);
draw(A--B);
draw(B... | Label the lower right corner of the square point $D$ and the lower left corner $E$. The interior angles of a regular hexagon are 120 degrees and the interior angles of a square are 90 degrees. Thus, $m\angle BDC=m \angle BDE - m\angle CDE=120^\circ - 90^\circ = 30^\circ$. In addition, because the square and regular hex... | entailment |
Circle $T$ has its center at point $T(-2,6)$. Circle $T$ is reflected across the $y$-axis and then translated 8 units down. What are the coordinates of the image of the center of circle $T$? | Since the image is reflected across the $y$-axis first, we will just change the sign of the $x$-coordinate, which will give us $(2, 6)$. Next the image is shifted down 8 units so we will subtract 8 from the $y$-coordinate, giving our image a final center of $\boxed{(2, -2)}$. | entailment |
In rectangle $ABCD$, $P$ is a point on $BC$ so that $\angle APD=90^{\circ}$. $TS$ is perpendicular to $BC$ with $BP=PT$, as shown. $PD$ intersects $TS$ at $Q$. Point $R$ is on $CD$ such that $RA$ passes through $Q$. In $\triangle PQA$, $PA=20$, $AQ=25$ and $QP=15$. [asy]
size(7cm);defaultpen(fontsize(9));
real sd = ... | Since $\angle ABP=90^{\circ}$, $\triangle ABP$ is a right-angled triangle. By the Pythagorean Theorem, $$BP^2=AP^2-AB^2=20^2-16^2=144$$ and so $BP=12$, since $BP>0$.
Since $\angle QTP=90^{\circ}$, $\triangle QTP$ is a right-angled triangle with $PT=12$. Since $PT=BP=12$, then by the Pythagorean Theorem, $$QT^2=QP^2-PT... | entailment |
What is the smallest possible area, in square units, of a right triangle with two sides measuring $4$ units and $5$ units? | Since $5>4$, $4$ cannot be the length of the hypotenuse. Thus either $4$ and $5$ are the lengths of the two smaller sides, or $5$ is the hypotenuse, meaning the two smaller sides are $4$ and $3$. In this latter case, the area will be smaller, so the area is $\frac{(3)(4)}{2} = \boxed{6}$. | entailment |
What is the perimeter of pentagon $ABCDE$ in this diagram? [asy]
pair cis(real r,real t) { return (r*cos(t),r*sin(t)); }
pair a=(0,0);
pair b=cis(1,-pi/2);
pair c=cis(sqrt(2),-pi/4);
pair d=cis(sqrt(3),-pi/4+atan(1/sqrt(2)));
pair e=cis(2,-pi/4+atan(1/sqrt(2))+atan(1/sqrt(3)));
dot(a); dot(b); dot(c); dot(d); dot(e);
d... | By the Pythagorean theorem, we have: \begin{align*}
AC^2 &= AB^2 + BC^2 = 1+1 = 2; \\
AD^2 &= AC^2 + CD^2 = 2+1 = 3; \\
AE^2 &= AD^2 + DE^2 = 3+1 = 4.
\end{align*}Thus $AE=\sqrt 4=2,$ and the perimeter of pentagon $ABCDE$ is $1+1+1+1+2 = \boxed{6}$. | entailment |
Triangle $ABC$ is inscribed in circle $\omega$ with $AB=5$, $BC=7$, and $AC=3$. The bisector of angle $A$ meets side $\overline{BC}$ at $D$ and circle $\omega$ at a second point $E$. Let $\gamma$ be the circle with diameter $\overline{DE}$. Circles $\omega$ and $\gamma$ meet at $E$ and a second point $F$. Then $AF^2 = ... | Use the angle bisector theorem to find $CD=\frac{21}{8}$, $BD=\frac{35}{8}$, and use Stewart's Theorem to find $AD=\frac{15}{8}$. Use Power of the Point to find $DE=\frac{49}{8}$, and so $AE=8$. Use law of cosines to find $\angle CAD = \frac{\pi} {3}$, hence $\angle BAD = \frac{\pi}{3}$ as well, and $\triangle BCE$ is ... | entailment |
Triangle $ABC$ has a perimeter of 2007 units. The sides have lengths that are all integer values with $AB< BC \leq AC$. What is the smallest possible value of $BC - AB$? | Since $AB$ and $BC$ are positive integers and $AB < BC$, $BC - AB$ must be at least 1.
The triangle with side lengths $AB = 650$, $BC = 651$, and $AC = 706$ satisfies the given conditions, and for this triangle $BC - AB = 1$.
Therefore, the smallest possible value of $BC - AB$ is $\boxed{1}$. | entailment |
Let $ABCD$ be an isosceles trapezoid with bases $AB=92$ and $CD=19$. Suppose $AD=BC=x$ and a circle with center on $\overline{AB}$ is tangent to segments $\overline{AD}$ and $\overline{BC}$. If $m$ is the smallest possible value of $x$, then $m^2$=
$\text{(A) } 1369\quad \text{(B) } 1679\quad \text{(C) } 1748\quad \tex... | Note that the center of the circle is the midpoint of $AB$, call it $M$. When we decrease $x$, the limiting condition is that the circle will eventually be tangent to segment $AD$ at $D$ and segment $BC$ at $C$. That is, $MD\perp AD$ and $MC\perp BC$.
From here, we drop the altitude from $D$ to $AM$; call the base $N$.... | entailment |
Suppose that we are given 40 points equally spaced around the perimeter of a square, so that four of them are located at the vertices and the remaining points divide each side into ten congruent segments. If $P$, $Q$, and $R$ are chosen to be any three of these points which are not collinear, then how many different p... | Without loss of generality, assume that our square has vertices at $(0,0)$, $(10,0)$, $(10,10)$, and $(0,10)$ in the coordinate plane, so that the 40 equally spaced points are exactly those points along the perimeter of this square with integral coordinates. We first note that if $P$, $Q$, and $R$ are three of these p... | entailment |
In convex quadrilateral $ABCD, \angle A \cong \angle C, AB = CD = 180,$ and $AD \neq BC.$ The perimeter of $ABCD$ is $640$. Find $\lfloor 1000 \cos A \rfloor.$ (The notation $\lfloor x \rfloor$ means the greatest integer that is less than or equal to $x.$)
| [asy] real x = 1.60; /* arbitrary */ pointpen = black; pathpen = black+linewidth(0.7); size(180); real BD = x*x + 1.80*1.80 - 2 * 1.80 * x * 7 / 9; pair A=(0,0),B=(1.8,0),D=IP(CR(A,x),CR(B,BD)),C=OP(CR(D,1.8),CR(B,2.80 - x)); D(MP("A",A)--MP("B",B)--MP("C",C)--MP("D",D,N)--B--A--D); MP("180",(A+B)/2); MP("180",(C+D)/2... | entailment |
Triangle $ABC$ is isosceles with $AC = BC$ and $\angle ACB = 106^\circ.$ Point $M$ is in the interior of the triangle so that $\angle MAC = 7^\circ$ and $\angle MCA = 23^\circ.$ Find the number of degrees in $\angle CMB.$
[asy] pointpen = black; pathpen = black+linewidth(0.7); size(220); /* We will WLOG AB = 2 to draw... | [asy] pointpen = black; pathpen = black+linewidth(0.7); size(220); /* We will WLOG AB = 2 to draw following */ pair A=(0,0), B=(2,0), C=(1,Tan(37)), M=IP(A--(2Cos(30),2Sin(30)),B--B+(-2,2Tan(23))), N=(2-M.x,M.y); D(MP("A",A)--MP("B",B)--MP("C",C,N)--cycle); D(A--D(MP("M",M))--B); D(C--M); D(C--D(MP("N",N))--B--N--M,... | entailment |
Triangle $ABC$ is isosceles with angle $A$ congruent to angle $B$. The measure of angle $C$ is 30 degrees more than the measure of angle $A$. What is the number of degrees in the measure of angle $C$? | Let $x$ be the number of degrees in the measure of angle $A$. Then angle $B$ measures $x$ degrees as well and angle $C$ measures $x+30$ degrees. Since the sum of the interior angles in a triangle sum to 180 degrees, we solve $x+x+x+30=180$ to find $x=50$. Therefore, angle $C$ measures $x+30=50+30=\boxed{80}$ degrees... | entailment |
The measures of angles $A$ and $B$ are both positive, integer numbers of degrees. The measure of angle $A$ is a multiple of the measure of angle $B$, and angles $A$ and $B$ are complementary angles. How many measures are possible for angle $A$? | The given information tells us that $A = 90^\circ -B$ and $A=kB$ for some $k\ge1$. Therefore, we have $kB = 90^\circ - B$. This simplifies to $(k+1)B=90^\circ$. $k+1$ can be any factor of $90$ except one, since $k+1\ge2$. $90=2\cdot3^2\cdot5$ has $2\cdot3\cdot2=12$ factors, so there are 11 possible values of $k$. Each... | entailment |
What is the ratio of the volume of cone $A$ to the volume of cone $B$? Express your answer as a common fraction. [asy]
size(260);
draw(ellipse((0,0),14.8,6),S);
label("Cone $A$", (0,-6), S);
draw((0,28.3)--(0,0),dashed);
label("$28.3$",(0,14),SW);
draw((-14.8,0)--(0,28.3)--(14.8,0));
draw("$14.8$",(-14.8,0)--(0,0),N,da... | Let $x = 14.8$ and $y = 28.3$. Then the volume of cone $A$ is \[\frac{1}{3} \pi x^2 y,\] and the volume of cone $B$ is \[\frac{1}{3} \pi y^2 x,\] so the desired ratio is \[\frac{\frac{1}{3} \pi x^2 y}{\frac{1}{3} \pi xy^2} = \frac{x}{y} = \frac{14.8}{28.3} = \boxed{\frac{148}{283}}.\] | entailment |
What is the height of Jack's house, in feet, if the house casts a shadow 56 feet long at the same time a 21-foot tree casts a shadow that is 24 feet long? Express your answer to the nearest whole number. | The ratio of shadow lengths is $\frac{56}{24}=\frac{7}{3}$.
This is the same as the ratio of actual heights, so if $h$ is the height of the house,
$$\frac{h}{21}=\frac{7}{3}\Rightarrow h=\boxed{49}$$ | entailment |
A unicorn is tethered by a $20$-foot silver rope to the base of a magician's cylindrical tower whose radius is $8$ feet. The rope is attached to the tower at ground level and to the unicorn at a height of $4$ feet. The unicorn has pulled the rope taut, the end of the rope is $4$ feet from the nearest point on the tower... | [asy] /* Settings */ import three; defaultpen(fontsize(10)+linewidth(0.62)); currentprojection = perspective(-2,-50,15); size(200); /* Variables */ real x = 20 - ((750)^.5)/3, CE = 8*(6^.5) - 4*(5^.5), CD = 8*(6^.5), h = 4*CE/CD; pair Cxy = 8*expi((3*pi)/2-CE/8); triple Oxy = (0,0,0), A=(4*5^.5,-8,4), B=(0,-8,h)... | entailment |
What is the number of centimeters in the length of $EF$ if $AB\parallel CD\parallel EF$?
[asy]
size(4cm,4cm);
pair A,B,C,D,E,F,X;
A=(0,1);
B=(1,1);
C=(1,0);
X=(0,0);
D=(1/3)*C+(2/3)*X;
draw (A--B--C--D);
draw(D--B);
draw(A--C);
E=(0.6,0.4);
F=(1,0.4);
draw(E--F);
label("$A$",A,NW);
label("$B$",B,NE);
label("$C$"... | Since $AB\parallel EF,$ we know that $\angle BAC = \angle FEC$ and $\angle ABC = \angle EFC.$ Therefore, we see that $\triangle ABC \sim \triangle EFC$ by AA Similarity. Likewise, $\triangle BDC \sim \triangle BEF.$
From our similarities, we can come up with two equations: $\dfrac{BF}{BC} = \dfrac{EF}{DC}$ and $\dfrac... | entailment |
In the figure, $\angle ABC$ and $\angle ADB$ are each right angles. Additionally, $AC = 17.8$ units and $AD = 5$ units. What is the length of segment $DB$? [asy]
import olympiad; import geometry; size(150); defaultpen(linewidth(0.8));
triangle t = triangle((0,0),(sqrt(89),0),(sqrt(89),-8/5*sqrt(89)));
draw((sqrt(89),0)... | First of all, we calculate that the length of $\overline{DC}$ is $17.8 - 5 = 12.8$. Since triangles $ADB$ and $BDC$ are similar, $BD/AD$ is equal to $CD/BD$, giving us the equation $x/5 = 12.8/x$. Multiplying both sides by $5x$, we get $x^2 = 64$, so $x = \boxed{8}$ units. | entailment |
The formula for the total surface area of a cylinder is $SA = 2\pi r^2 + 2\pi rh,$ where $r$ is the radius and $h$ is the height. A particular solid right cylinder of radius 2 feet has a total surface area of $12\pi$ square feet. What is the height of this cylinder? | Let the height of the cylinder be $h$; we then have \[SA = 2\pi (2^2)+2\pi (2)(h) = 12\pi.\]Solving yields $4\pi h = 4 \pi$ so $h = \boxed{1}$ foot. | entailment |
The radius of a cylinder is doubled and its height is tripled. If its original volume was 10 cubic feet, what is its volume now, in cubic feet? | Let the cylinder's original radius and height be $r$ and $h$, respectively. The new cylinder has volume \[
\pi (2r)^2(3h)=12\pi r^2 h,
\] which is 12 times larger than the original volume. Since the original volume was 10 cubic feet, the new volume is $\boxed{120}$ cubic feet. | entailment |
The lengths of two sides of a triangle are 33 units and 42 units. The third side also has an integral length. What is the least possible number of units in the perimeter of the triangle? | The sum of the smaller two sides must exceed the greatest side, so if $x$ is the missing side then $x+33>42\implies x>9$. The smallest integer greater than 9 is 10, so the least perimeter is $10+33+42=\boxed{85}$ units. | entailment |
Let $A=(0,9)$ and $B=(0,12)$. Points $A'$ and $B'$ are on the line $y=x$, and $\overline{AA'}$ and $\overline{BB'}$ intersect at $C=(2,8)$. What is the length of $\overline{A'B'}$? | Line $AC$ has slope $-\frac{1}{2}$ and $y$-intercept (0,9), so its equation is \[
y=-\frac{1}{2}x+9.
\]Since the coordinates of $A'$ satisfy both this equation and $y=x$, it follows that $A'=(6,6)$. Similarly, line $BC$ has equation $y=-2x+12$, and $B'=(4,4)$. Thus \[
A'B'= \sqrt{(6-4)^{2}+(6-4)^{2}}= \boxed{2\sqrt{2}}... | entailment |
Three faces of a right rectangular prism have areas of 48, 49 and 50 square units. What is the volume of the prism, in cubic units? Express your answer to the nearest whole number. | If the length, width, and height of the rectangular prism are $a$, $b$, and $c$, then we are given $ab=48$, $bc=49$, and $ac=50$. Since we are looking for $abc$, the volume of the rectangular prism, we multiply these three equations to find \begin{align*}
(ab)(bc)(ac)&=48\cdot49\cdot50 \implies \\
a^2b^2c^2&=48\cdot49... | entailment |
In the figure below, the smaller circle has a radius of two feet and the larger circle has a radius of four feet. What is the total area of the four shaded regions? Express your answer as a decimal to the nearest tenth.
[asy]
fill((0,0)--(12,0)--(12,-4)--(4,-4)--(4,-2)--(0,-2)--cycle,gray(0.7));
draw((0,0)--(12,0),lin... | Draw horizontal diameters of both circles to form two rectangles, both surrounding shaded regions. The height of each rectangle is a radius and the length is a diameter, so the left rectangle is 2 ft $\times$ 4 ft and the right rectangle is 4 ft $\times$ 8 ft. The shaded region is obtained by subtracting respective sem... | entailment |
In the diagram, $ABCD$ and $EFGD$ are squares each of area 16. If $H$ is the midpoint of both $BC$ and $EF$, find the total area of polygon $ABHFGD$.
[asy]
unitsize(3 cm);
pair A, B, C, D, E, F, G, H;
F = (0,0);
G = (1,0);
D = (1,1);
E = (0,1);
H = (E + F)/2;
A = reflect(D,H)*(G);
B = reflect(D,H)*(F);
C = reflect(... | Draw $DH$.
[asy]
unitsize(3 cm);
pair A, B, C, D, E, F, G, H;
F = (0,0);
G = (1,0);
D = (1,1);
E = (0,1);
H = (E + F)/2;
A = reflect(D,H)*(G);
B = reflect(D,H)*(F);
C = reflect(D,H)*(E);
draw(A--B--C--D--cycle);
draw(D--E--F--G--cycle);
draw(D--H,dashed);
label("$A$", A, N);
label("$B$", B, W);
label("$C$", C, S);... | entailment |
Given a point $P$ on a triangular piece of paper $ABC,\,$ consider the creases that are formed in the paper when $A, B,\,$ and $C\,$ are folded onto $P.\,$ Let us call $P$ a fold point of $\triangle ABC\,$ if these creases, which number three unless $P$ is one of the vertices, do not intersect. Suppose that $AB=36, AC=... | Let $O_{AB}$ be the intersection of the perpendicular bisectors (in other words, the intersections of the creases) of $\overline{PA}$ and $\overline{PB}$, and so forth. Then $O_{AB}, O_{BC}, O_{CA}$ are, respectively, the circumcenters of $\triangle PAB, PBC, PCA$. According to the problem statement, the circumcenters ... | entailment |
A cube has eight vertices (corners) and twelve edges. A segment, such as $x$, which joins two vertices not joined by an edge is called a diagonal. Segment $y$ is also a diagonal. How many diagonals does a cube have? [asy]
/* AMC8 1998 #17 Problem */
pair A=(0,48), B=(0,0), C=(48,0), D=(48,48);
pair E=(24,72), F=(24,24)... | There are two diagonals, such as $x$, in each of the six faces for a total of twelve face diagonals. There are also four space diagonals, such as $y$, which are within the cube. This makes a total of $\boxed{16}$. | entailment |
$\triangle ABC$ and $\triangle DBC$ share $BC$. $AB = 5\ \text{cm}$, $AC = 12\ \text{cm}$, $DC = 8\ \text{cm}$, and $BD = 20\ \text{cm}$. What is the least possible integral number of centimeters in $BC$?
[asy]
size(100); import graph; currentpen = fontsize(10pt);
pair B = (0,0), C = (13,0), A = (-5,7), D = (16,10);
... | By the triangle inequality on triangle $ABC$, $BC > AC - AB = 12 - 5 = 7$, and by the triangle inequality on triangle $BCD$, $BC > BD - CD = 20 - 8 = 12$. Hence, $BC$ must be at least $\boxed{13}$ centimeters. (And it is easy to verify that it is possible for $BC$ to be 13 centimeters. | entailment |
Points $A$ and $B$ are selected on the graph of $y = -\frac{1}{2}x^2$ so that triangle $ABO$ is equilateral. Find the length of one side of triangle $ABO$. [asy]
size(150);
draw( (-4, -8) -- (-3.4641, -6)-- (-3, -9/2)-- (-5/2, -25/8)-- (-2,-2)-- (-3/2, -9/8) -- (-1, -1/2) -- (-3/4, -9/32) -- (-1/2, -1/8) -- (-1/4, -1/3... | Let the coordinates of $A$ be $(a_1,a_2)$. Then since $A$ is on the graph of $y=-\frac{1}{2}x^2$, we know that $a_2 = -\frac{1}{2}a_1^2$. We can also use our knowledge of special right triangles to write $a_2$ in terms of $a_1$. Let $C$ be the midpoint of $A$ and $B$ and let $O$ be the origin. Then $OCA$ is a 30-60-90 ... | entailment |
Suppose that there are two congruent triangles $\triangle ABC$ and $\triangle ACD$ such that $AB = AC = AD,$ as shown in the following diagram. If $\angle BAC = 20^\circ,$ then what is $\angle BDC$? [asy]
pair pA, pB, pC, pD;
pA = (0, 0);
pB = pA + dir(240);
pC = pA + dir(260);
pD = pA + dir(280);
draw(pA--pB--pC--pA);... | First we draw $BD$: [asy]
pair pA, pB, pC, pD;
pA = (0, 0);
pB = pA + dir(240);
pC = pA + dir(260);
pD = pA + dir(280);
draw(pA--pB--pC--pA);
draw(pA--pC--pD--pA);
draw(pB--pD,red);
label("$A$", pA, N);
label("$B$", pB, SW);
label("$C$", pC, S);
label("$D$", pD, E);
[/asy] First, we see that $\triangle ABC$ is isoscele... | entailment |
The point $A$ $(3,4)$ is reflected over the $x$-axis to $B$. Then $B$ is reflected over the line $y=x$ to $C$. What is the area of triangle $ABC$? | When point $A$ is reflected over the $x$-axis, we get point B, which is $(3,-4)$. Reflecting point $B$ over the line $y=x$, we get that point $C$ is $(-4,3)$. The distance between $A$ and $B$ is 8. The distance from point $C$ to the line connecting $A$ and $B$ is 7. Now we can draw the following diagram: [asy]
draw((0,... | entailment |
A ball was floating in a lake when the lake froze. The ball was removed (without breaking the ice), leaving a hole $24$ cm across as the top and $8$ cm deep. What was the radius of the ball (in centimeters)?
$\textbf{(A)}\ 8 \qquad \textbf{(B)}\ 12 \qquad \textbf{(C)}\ 13 \qquad \textbf{(D)}\ 8\sqrt{3} \qquad \textbf{(... | Consider a cross-section of this problem in which a circle lies with its center somewhere above a line. A line segment of $8$ cm can be drawn from the line to the bottom of the ball. Denote the distance between the center of the circle and the line as $x$. We can construct a right triangle by dragging the center of the... | entailment |
Suppose $\cos R = \frac{4}{9}$ in the diagram below. What is $QS$?
[asy]
pair Q,R,S;
S = (0,0);
Q = (sqrt(65),0);
R = (sqrt(65),-4);
draw(S--Q--R--S);
draw(rightanglemark(S,Q,R,13));
label("$S$",S,NW);
label("$Q$",Q,NE);
label("$R$",R,SE);
label("$9$",(R+S)/2,SW);
[/asy] | Since $\cos R = \frac{4}{9}$ and $\cos R = \frac{QR}{RS}=\frac{QR}{9}$, we have $\frac{QR}{9} = \frac{4}{9}$, so $QR = 4$. Then, by the Pythagorean Theorem, $QS = \sqrt{RS^2 - QR^2} = \sqrt{81-16} = \boxed{\sqrt{65}}$. | entailment |
In triangle $ABC$, $BC = 23$, $CA = 27$, and $AB = 30$. Points $V$ and $W$ are on $\overline{AC}$ with $V$ on $\overline{AW}$, points $X$ and $Y$ are on $\overline{BC}$ with $X$ on $\overline{CY}$, and points $Z$ and $U$ are on $\overline{AB}$ with $Z$ on $\overline{BU}$. In addition, the points are positioned so that ... | Note that the area is given by Heron's formula and it is $20\sqrt{221}$. Let $h_i$ denote the length of the altitude dropped from vertex i. It follows that $h_b = \frac{40\sqrt{221}}{27}, h_c = \frac{40\sqrt{221}}{30}, h_a = \frac{40\sqrt{221}}{23}$. From similar triangles we can see that $\frac{27h}{h_a}+\frac{27h}{h... | entailment |
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