aisha
Dec8-04, 11:27 PM
state the vertical asymptote(s), x-intercept(s), y-intercept(s), domain and range of f(x)=(1)/(4x^2)-1
ok I factored the denominator and got (2x+1) (2x-1) I solved for x, so the x-intercepts are x=-1/2, and x=1/2 for only (4x^2)-1 the reciprocal function has no x-intercepts.
Sub in x=0 to get y intercept, I got y=-1 for (4x^2)-1
that means for f(x)=(1)/(4x^2)-1 it must be the same since -1 is an invariant point.
Ok I think the vertex is (0,-1) for (4x^2)-1 this is also the vertex of f(x)=(1)/(4x^2)-1 but this function has a maximum instead of minimum.
I gather the vertical asymptotes are x=-0.5, and x=0.5 for f(x)=(1)/(4x^2)-1
The Range for f(x)=(1)/(4x^2)-1 {y:y does not equal 0 but is YER} if this is correct what is the proper notation.
The Domain for f(x)=(1)/(4x^2)-1 {x:does not equal -1/2 or 1/2, but is XER}
if this is correct what is the proper notation?
Ok um I dont know if all that I have said is correct, can someone please Help me out?
I have a sketch of the graph but the forum wont let me attach it it is saying it is too big....
it sort of looks like JUL
n
a parabola with a min is the original and then the reciprocal is a parabola with a max and in the top two quadrants a backwards L and L .
I DONT KNOW IF THIS MAKES ANY SENSE, but I TRIED. :redface:
ok I factored the denominator and got (2x+1) (2x-1) I solved for x, so the x-intercepts are x=-1/2, and x=1/2 for only (4x^2)-1 the reciprocal function has no x-intercepts.
Sub in x=0 to get y intercept, I got y=-1 for (4x^2)-1
that means for f(x)=(1)/(4x^2)-1 it must be the same since -1 is an invariant point.
Ok I think the vertex is (0,-1) for (4x^2)-1 this is also the vertex of f(x)=(1)/(4x^2)-1 but this function has a maximum instead of minimum.
I gather the vertical asymptotes are x=-0.5, and x=0.5 for f(x)=(1)/(4x^2)-1
The Range for f(x)=(1)/(4x^2)-1 {y:y does not equal 0 but is YER} if this is correct what is the proper notation.
The Domain for f(x)=(1)/(4x^2)-1 {x:does not equal -1/2 or 1/2, but is XER}
if this is correct what is the proper notation?
Ok um I dont know if all that I have said is correct, can someone please Help me out?
I have a sketch of the graph but the forum wont let me attach it it is saying it is too big....
it sort of looks like JUL
n
a parabola with a min is the original and then the reciprocal is a parabola with a max and in the top two quadrants a backwards L and L .
I DONT KNOW IF THIS MAKES ANY SENSE, but I TRIED. :redface: