- #1
{???}
- 57
- 7
Hey everyone,
I was just curious about the nature of the cube root function f(x)=x^{1/3}. I know that its derivative is obviously \frac{1}{3}x^{-2/3} which has a discontinuity at x=0. However, in the non-mathematical sense, the graph of y=f(x) looks smooth - I don't see any angles or cusps like y=|x| or y=x^{2/3}.
Now, granted, the discontinuity in f'(x) is a vertical asymptote where \delta(M) can always be chosen such that:
|x|<\delta \Rightarrow f'(x)>M
So unlike the asymptotes of \frac{1}{x} for example, or the derivative of y=x^{2/3}, the function both sides of the discontinuity "goes to positive infinity" so the tangent line to x^{1/3} approaches the same slope on either side of x=0.
My question is: Is this a good enough explanation as to why an apparently smooth function has a discontinuous derivative? If not, why doesn't this violate the definition of a (mathematically) smooth function? (This may border on a philosophical question, so my apologies in advance if so)
I was just curious about the nature of the cube root function f(x)=x^{1/3}. I know that its derivative is obviously \frac{1}{3}x^{-2/3} which has a discontinuity at x=0. However, in the non-mathematical sense, the graph of y=f(x) looks smooth - I don't see any angles or cusps like y=|x| or y=x^{2/3}.
Now, granted, the discontinuity in f'(x) is a vertical asymptote where \delta(M) can always be chosen such that:
|x|<\delta \Rightarrow f'(x)>M
So unlike the asymptotes of \frac{1}{x} for example, or the derivative of y=x^{2/3}, the function both sides of the discontinuity "goes to positive infinity" so the tangent line to x^{1/3} approaches the same slope on either side of x=0.
My question is: Is this a good enough explanation as to why an apparently smooth function has a discontinuous derivative? If not, why doesn't this violate the definition of a (mathematically) smooth function? (This may border on a philosophical question, so my apologies in advance if so)
