What is the vertex of $y=x^2-4$ ?

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Answer 1 · 2018-03-04T01:13:41

$Vertex(0,-4)$

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$y=x^2-4$

If the equation of a parabola is in the form:

$y=ax^2+bx+c$

we can find the $x$ -coordinate of its vertex using the following formula:

$x_(vertex)=-b/(2a)$

Comparing the problem equation with the form above, we see:

$a=1, b=0, c=-4$

$x_(vertex)=-0/(2(1))=0$

Now, we can plug this into the equation to find the $y$ -coordinate:

$y_(vertex)=(0)^2-4=0-4=-4$

Therefore,

$Vertex(0,-4)$

You can see the graph of this parabola below:

graph{x^2-4 [-10, 10, -5, 5]}

What is the vertex of y=x^2-4 y=x^2-4 ?