for the function f, f''(x)=24x-18 and f'(x)=-6. how is this possible? maybe it's just late, but it doesn't seem like the slope of f could be constant if the slope of the slope isn't. it's on an old ap question so I can't imagine it's a typo.
quick calculus question
- Thread starter thirtythree
- Start date
Yeah, that doesn't make any sense. If you take the derivative of f'(x) to get f''(x) you get f''(x) = 0.
Could it be that they meant f'(x0) = -6? (x0 is x-sub-zero)
Could it be that they meant f'(x0) = -6? (x0 is x-sub-zero)
it's just an x. the questions don't make sense given the info either. e.g. find each x such that the line tangent to the graph of f at (x,f(x)) is horizontal. the slope is always -6 though
Well that doesn't make a damn bit of senseOriginally posted by: thirtythree
it's just an x. the questions don't make sense given the info either. e.g. find each x such that the line tangent to the graph of f at (x,f(x)) is horizontal. the slope is always -6 though
(But it's been a few years since I took the AP test, and it's late)
when you integrate f''(x) you get 12x^2-18x+c, so f'(1) doesn't necessarily equal -6. perhaps my teacher retyped the question rather than copying it directly and made some sort of mistake in the process. I'll ask him about it today.
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