e^f(x) graph (1 Viewer)

Beaconite · Sep 6, 2012

iv) Please

TheProfessional · Sep 6, 2012

lolcakes52 · Sep 6, 2012

TheProfessional said:
$e^{-\infty } \to 0$
$e^{0} = 1$
$e^{1} = e$
$e^{\infty } \to \infty$

Not exactly. The Left hand side is easy, the zeros of f(x) get the y value of one. Concavity stays the same. The asymptote is infinity from the left and is an open circle at zero from the right. We observe that f(x) approaches to 1 as x approaches to infinity. So e^f(x) approaches e^1, or e.

TheProfessional · Sep 6, 2012

lolcakes52 said:
Not exactly. The Left hand side is easy, the zeros of f(x) get the y value of one. Concavity stays the same. The asymptote is infinity from the left and is an open circle at zero from the right. We observe that f(x) approaches to 1 as x approaches to infinity. So e^f(x) approaches e^1, or e.

$e^{-\infty } \to 0$ means an open circle in this situation...

barbernator · Sep 6, 2012

TheProfessional said:
$e^{-\infty } \to 0$ means an open circle in this situation...

That is correct, except u need to put in the asymptote at x=1 as well

TheProfessional · Sep 7, 2012

barbernator said:
That is correct, except u need to put in the asymptote at x=1 as well

haha makings a vertical dotted line with paint is a bit hard

but yeah there should be a VA at x=1

e^f(x) graph (1 Viewer)

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