Mr. Kerai's Advanced Geometry and Trigonometry Class: Exam Review Discussion Post

Friday, December 12, 2008

Exam Review Discussion Post

Please comments on this post for addressing your queries or thoughts about Geometry before the exam.

11 comments:

Anonymous said...: Can anyone help me find a starting point for number 1 on page 94? I know it has to do with congruence of triangles, but I'm not able to visualize it yet.; December 14, 2008 at 1:18 AM
Anonymous said...: Steven, I started by proving traingle AQP is congruent to AGB. Since they are congruent, AB=AP. Then there is one more set of triangles you can prove congruent which will give you AP=BS. Hope this helps.; December 14, 2008 at 11:57 PM
Anonymous said...: Could anyone help me with number 10 on page 82 and number 10 on page 83? I am at a loss at where to start.; December 18, 2008 at 12:12 AM
Anonymous said...: Victoria, if you haven't already proved it start by drawing auxilery lines from F to B, C, and D. You know that angle ABF= angle AFB, and you can do the rest with congruence of triangles.; December 18, 2008 at 8:45 AM
Anonymous said...: Can anyone help me with 9 on 83? I don't know where to start.; December 19, 2008 at 1:29 AM
Anonymous said...: Virginia, triangles ADC and ABC are congruent by the hypotenuse leg theorem. Angle DAC=BAC. Then traingles ADO (o is the center point) =ABO. The rest is proved by two adjacent angles that are equal make a straight line.; December 19, 2008 at 2:07 AM
Anonymous said...: I know we've proven that two triangles are congruent if they have two corresponding angles and one side, but do we know that they are congruent if they have two corresponding sides and one of the angles? (other than in a right triangle that is); December 19, 2008 at 2:24 AM
Anonymous said...: Can someone refresh my memory on how to draw a square?; December 19, 2008 at 2:30 AM
Anonymous said...: Slaughter- i think you first make the perpendicular bisector of a line. then draw an arc with the point of the compass at the intersection to get 2 equal sides. then draw an arc of the same radius from each new intersection point. where those 2 intersect will be the 4th vertex of the square.; December 19, 2008 at 3:39 AM
Anonymous said...: Thanks Virginia; December 19, 2008 at 4:05 AM
Anonymous said...: sam, I don't think we have proven two sides and an angle make a case for congruence, unless in a right triangle.; December 19, 2008 at 5:15 AM