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Please help, try and be quick this is due soon

Please help, try and be quick this is due soon
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1 vote
Please help, try and be quick this is due soon

Please help, try and be quick this is due soon-example-1
User Mark Baker
by
8.4k points

1 Answer

4 votes

Given the equation of the circle.


(x-3)^2+y^2=1

To find: Plot the center. Then plot a point on the circle.

Solution:

The general expression of the circle is


(x-h)^2+(y-k)^2=a^2

Here, the center of the circle is at (3,0) and the radius of the circle is


\begin{gathered} a^2=1 \\ a=1 \end{gathered}

Hence, the graph is

Please help, try and be quick this is due soon-example-1
User Ray Burgemeestre
by
8.4k points
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