5
$\begingroup$

What is the common sense explanation behind that fact that MC integration is free of "curse of dimensionality" in contrast to deterministic integration rules (e.g. trapezoidal rule)?

  • 4
    This is because the normalization $1/\sqrt{n}$ of the central limit theorem does not depend on the dimension.2011-12-04

1 Answers 1

4

There do exist deterministic integration rules that don't suffer the "curse of dimensionality", see sparse grid for example. What you are referring to when you say "deterministic integration rules" is probably the tensor product approach for constructing multi-dimensional integration rules from one dimensional integration rules.

To see what goes wrong, let's look at the tensor product of two linear one dimensional functions. We will get a bilinear function, but this function won't be linear unless the coefficient of the $xy$ term is zero. In general, a $n$-linear function $f: \mathbb{R}^n\to\mathbb{R}$ will have $2^n$ degrees of freedom whereas a linear function $l: \mathbb{R}^n\to\mathbb{R}$ just has $n+1$ degrees of freedom. I should add that what I mean by "linear function" here is a polynomial of degree $1$ or $0$. The "correct" meaning of "linear function" would be something like $l(a+b)=l(a)+l(b)$ and $l(\alpha a)=\alpha l(a)$.