Now that I'm caught up with the current New York State Regents exams, I'm revisiting some older ones.
More Regents problems.
Geometry Regents, August 2011
Part III: Each correct answer will receive 4 credits. Partial credit is available.
35. In the diagram below of △GJK, H is a point on GJ, HJ ≅ JK , m∠G = 28, and m∠GJK = 70.
Determine whether △GHK is an isosceles triangle and justify your answer
Answer:
Mark HJ and JK so you remember which two lines are congruent. Don't mark HK by mistake.
Angle J is the vertex angle, and is 70 degrees. So the other two angles in HJK are (180 - 70) / 2, or 55 degrees each.
Angle GKJ must be 180 - (70 + 28) = 82.
Angle GKH must therefore be 82 - 55 = 27 degrees. Since two of the angles are 27 and 28 degrees, and the third is 180 - 55 = 125, the triangle is scalene.
36. As shown on the set of axes below, △GHS has vertices G(3,1), H(5,3), and S(1,4). Graph and state the coordinates of △G″H″S″, the image of △GHS after the transformation T−3,1 ∘ D2.
Answer:
If a Composition of Transformations, you go from RIGHT TO LEFT. You want the Translation OF THE Dilation, not a tranlation followed by a dilation.
Make sure you state the coordinates. Don't just label them.
Determine the length of AB. [Only an algebraic solution can receive full credit.]
37. In the diagram below, △ABC ∼ △DEF, DE = 4, AB = x, AC = x + 2, and DF = x + 6.
Answer:
If the triangles are similar then their sides are proportional. Set up a proportion and solve the quadratic equation that results from it.
x / (x + 2) = 4 / (x + 6)
x(x + 6) = 4(x + 2)
x2 + 6x = 4x + 8
x2 + 2x - 8 = 0
(x + 4)(x - 2) = 0
x = -4 (discard) or x = 2
Side AB has length = 2.
Check: 2 / 4 = 4 / 8 (check!)
Part IV: A correct answer will receive 6 credits. Partial credit is available.
AB has midpoint D, BC has midpoint E, and AC has midpoint F
Prove: ADEF is a parallelogram
ADEF is not a rhombus
[The use of the grid below is optional.]
38.
Given: △ABC with vertices A(−6,−2), B(2,8), and C(6,−2)
Answer:
The fastest way to show that ADEF is a parallelogram is to find the slopes of the opposite sides.
The fastest way to show that ADEF is NOT a rhombus is to find the slopes of the diagonals. This is likely quicker than using the distance formula for consecutive sides, which is an alternate method.
First, find the midpoints:
D = ( (-6+2)/2, (-2+8)/2) = (-2,3)
E = ( (2+6)/2, (8+-2)/2) = (4,3)
F = ( (-6+6)/2, (-2+-2)/2) = (0,-2)
Slope of AD = (-2 - 3) / (-6 - -2) = -5/-4 = 5/4
Slope of EF = (-2 - 3) / (0 - 4) = -5/-4 = 5/4
Slope of DE = 0 (same y-coordinate)
Slope of AF = 0 (same y-coordinate)
ADEF is a parallelogram because the opposite sides are parallel.
Slope of AE = (-2 - 3) / (-6 - 4) = -5/-10 = 1/2
Slope of DF = (-2 - 3) / (0 - -2) = -5/2
The product of (1/2)(-5/2) = (-5/4) =/= -1.
ADEF is not a rhombus because the diagonals are not perpendicular.
or
Because AF is horizontal, it is easy to calculate its length. AF = (0 - -6) = 6 (or count the boxes if you used the grid.)
The length of AD is SQRT( (-6 - -2)2 + (-2 - 3)2 )
= SQRT( (-4)2 + (-5)2 )
= SQRT (16 + 25) = SQRT (41) =/= 6
ADEF is not a rhombus because not all sides are congruent.
More to come. Comments and questions welcome.
More Regents problems.
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