Let R a1 b1 x x an bn C and let f R rightarrow R be a cont
Solution
Solution: To prove the result first we prove the following result:
A continuous function f : [a, b] R on a compact interval is Riemann integrable.
Proof: A continuous function on a compact set is bounded, so we just need to
verify the Cauchy condition.
Let \\epsilon > 0. A continuous function on a compact set is uniformly continuous, so
there exists > 0 such that
|f(x) f(y)| < \\epsilon/(b a) for all x, y [a, b] such that |x y| < .
Choose a partition P = {I1, I2, . . . , In} of [a, b] such that |Ik| < for every k; for
instance, we can take n intervals of equal length (b a)/n with n > (b a)/.
Since f is continuous, it attains its maximum and minimum values Mk and
mk on the compact interval Ik at points xk and yk in Ik. These points satisfy
|xk yk| < , so
Mk mk = f(xk) f(yk) < \\epsilon/(b a).
Theerefore upper and lower sums of f satisfy
U(f; P) L(f; P) = \\sigma_{k=1}^{n}Mk|Ik| \\sigma_{k=1}^{n} mk|Ik|
= \\sigma_{k=1}^{n}(Mk mk)|Ik|
= \\epsilon/(b a) \\sigma_{k=1}^{n}|Ik| < \\epsilon
and by The Cauchy criterion for integrability, we have f is integrable in [a,b].
Since [a1,b1], [a2,b2], ..., [an, bn] all are compact, so their cartesian product is also cmpact.
Hence R = [a1,b1]X [a2,b2]X ... X [an, bn] is compact.
Therefore by above result , we can say that f is Riemann integrable on R, (Proved}
![Let R = [a_1, b_1] x ... x [a_n, b_n] C and let f: R rightarrow R be a continuous function. Prove that f is Riemann integrable on R. Recall that remans integra Let R = [a_1, b_1] x ... x [a_n, b_n] C and let f: R rightarrow R be a continuous function. Prove that f is Riemann integrable on R. Recall that remans integra](/WebImages/26/let-r-a1-b1-x-x-an-bn-c-and-let-f-r-rightarrow-r-be-a-cont-1070278-1761560532-0.webp)