The mean value theorem

microsheva · New Member Offline Joined: 02 Mar 2004 Posts: 5

We already know the mean value theorem :"Let I=[a,b] ,K=(a,b) , f:I-->I f is continuous on I and differentiable on K . Then exists c in K s.t. f(b)-f(a)=f'(c)(b-a) ". If we replace I by open intevals such as (a,b) , [a,b),(a,b] , is the conclusion still true now ?

**Posted:** Sat Mar 06, 2004 7:07 pm

_________________
gladiolous

Lelia

It can't be I an open interval!
Razz

Because then it will not exist c so that f(b)-f(a)=f'(c)(b-a), because the function is not deffinate on a close interval I, so will not takes the a and b value!
It has to be an closed interval! Mr. Green

**Posted:** Sat Apr 24, 2004 2:09 pm

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God is a mathematician!

Fibonacci

Specific counterexample:
[itex]f(x)=0[/itex] if [itex]x=a[/itex] or [itex]b[/itex], and [itex]f(x)=x[/itex] if not.

**Posted:** Sat Apr 24, 2004 8:59 pm

stevem

Specific counterexample:
$f(x)=0$ if $x=a$ or $b$ , and $f(x)=x$ if not.

There was a change to the latex code since the above message was posted, making it incomprehensible so I have redone it

**Posted:** Sun Apr 25, 2004 6:26 am

fredbel6

it can be pushed a little further

if f is continuous on [a,b] and differentiable on ]a,b[ it has a point f'(c)=(f(b)-f(a)/(b-a)

example : sqrt(1-x*x) is continuous on [-1,1] and differentiable on ]-1,1[ and
f'(0)=0

so this theorem has an obvious analogue for open intervals :

suppose f is continuous and differentiable on ]a,b[ (the latter implies the first) and has a one sided limit near both border points, there exists such point
(it is obvious because you can extend it to a function on [a,b])

**Posted:** Sun Apr 25, 2004 9:27 am