Chebyshev's sum inequality: Difference between revisions

Latest revision as of 10:08, 31 December 2024

In mathematics, Chebyshev's sum inequality, named after Pafnuty Chebyshev, states that if

a_{1} \geq a_{2} \geq \dots \geq a_{n}

and

b_{1} \geq b_{2} \geq \dots \geq b_{n},

then

\frac{1}{n} \sum_{k = 1}^{n} a_{k} b_{k} \geq (\frac{1}{n} \sum_{k = 1}^{n} a_{k}) (\frac{1}{n} \sum_{k = 1}^{n} b_{k}) .

Similarly, if

a_{1} \leq a_{2} \leq \dots \leq a_{n}

and

b_{1} \geq b_{2} \geq \dots \geq b_{n},

then

\frac{1}{n} \sum_{k = 1}^{n} a_{k} b_{k} \leq (\frac{1}{n} \sum_{k = 1}^{n} a_{k}) (\frac{1}{n} \sum_{k = 1}^{n} b_{k}) .

^[1]

Consider the sum

S = \sum_{j = 1}^{n} \sum_{k = 1}^{n} (a_{j} - a_{k}) (b_{j} - b_{k}) .

Opening the brackets, we deduce:

0 \leq 2 n \sum_{j = 1}^{n} a_{j} b_{j} - 2 \sum_{j = 1}^{n} a_{j} \sum_{j = 1}^{n} b_{j},

hence

\frac{1}{n} \sum_{j = 1}^{n} a_{j} b_{j} \geq (\frac{1}{n} \sum_{j = 1}^{n} a_{j}) (\frac{1}{n} \sum_{j = 1}^{n} b_{j}) .

An alternative proof is simply obtained with the rearrangement inequality, writing that

\sum_{i = 0}^{n - 1} a_{i} \sum_{j = 0}^{n - 1} b_{j} = \sum_{i = 0}^{n - 1} \sum_{j = 0}^{n - 1} a_{i} b_{j} = \sum_{i = 0}^{n - 1} \sum_{k = 0}^{n - 1} a_{i} b_{i + k mod n} = \sum_{k = 0}^{n - 1} \sum_{i = 0}^{n - 1} a_{i} b_{i + k mod n} \leq \sum_{k = 0}^{n - 1} \sum_{i = 0}^{n - 1} a_{i} b_{i} = n \sum_{i} a_{i} b_{i} .

There is also a continuous version of Chebyshev's sum inequality:

If f and g are real-valued, integrable functions over [a, b], both non-increasing or both non-decreasing, then

\frac{1}{b - a} \int_{a}^{b} f (x) g (x) d x \geq (\frac{1}{b - a} \int_{a}^{b} f (x) d x) (\frac{1}{b - a} \int_{a}^{b} g (x) d x)

with the inequality reversed if one is non-increasing and the other is non-decreasing.