Difference between revisions of "008A Sample Final A, Question 6"

Revision as of 13:45, 28 April 2015

Question: Sketch $4x^{2}+9(y+1)^{2}=36$ . Give coordinates of each of the 4 vertices of the graph.

Foundations
1) What type of function is this? What type of graph is this?
2) What can you say about the orientation of the graph?
Answer:
1) Since both x and y are squared it must be a hyperbola or an ellipse. Since the coefficients of the $x^{2}$ and $y^{2}$ terms are both positive the graph must be an ellipse.
2) Since the coefficient of the $x^{2}$ term is smaller, when we divide both sides by 36 the X-axis will be the major axis.

Solution:

Step 1:
We start by dividing both sides by 36. This yields ${\frac {4x^{2}}{36}}+{\frac {9(y+1)^{2}}{36}}={\frac {x^{2}}{9}}+{\frac {(y+1)^{2}}{4}}=1$ .

Step 2:
Now that we have the equation that looks like an ellipse, we can read off the center of the ellipse, (0, -1).
From the center mark the two points that are 3 units left, and three units right of the center.
Then mark the two points that are 2 units up, and two units down from the center.

Final Answer:

@@ Line 31: / Line 31: @@
 |-
 |Then mark the two points that are 2 units up, and two units down from the center.
-|}
-{| class="mw-collapsible mw-collapsed" style = "text-align:left;"
-! Step 3:
-|-
-|Now draw an oval through the four points you just drew.
 |}
@@ Line 42: / Line 36: @@
 ! Final Answer:
 |-
-|Now draw an oval through the four points you just drew.
+|[[File:8A_Sample_Final,_Q_6.png]]
 |}
 [[008A Sample Final A|<u>'''Return to Sample Exam</u>''']]