How do you find the center and vertices and sketch the hyperbola $y^2/1-x^2/4=1$ ?

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How do you find the center and vertices and sketch the hyperbola $y^2/1-x^2/4=1$ ?

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Answer 1 · 2018-03-28T12:45:11

Write your equation in form: $(y-y_c)^2/a^2 -(x-x_c)^2/b^2=1$
where the center is $C=(x_c,y_c)$

Explanation:

Your equation is already in the right form.
You just read it:
Center: $C=(0,0)$ , $a=1$ , $b=2$
Draw a rectangle $2b$ width and $2a$ length.
[Alternative: draw $x=-2$ , $x=2$ , $y=1$ , $y=-1$ (green lines)]
through opposite rectangle's vertices [or intersection of green lines] (red points) draw a line- this 2 lines are hyperbola asymptotes.

So you know hyperbola have the vertices at $(0,-2)$ and $(0,2)$ and is "going towards" the asymtotes.

Asiptote is a line such that the distance between the curve and the line approaches zero as one or both of the x or y coordinates tends to infinity
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How do you find the center and vertices and sketch the hyperbola $y^2/1-x^2/4=1$ ?

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Science

Math

Humanities

... and beyond

How do you find the center and vertices and sketch the hyperbola y^2/1-x^2/4=1y^2/1-x^2/4=1?

1 Answer

Explanation:

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Impact of this question

How do you find the center and vertices and sketch the hyperbola $y^2/1-x^2/4=1$ ?