Kvant Math Problem 1277

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Problem

Prove that for any positive numbers $a_1$, $a_2$, $\ldots$, $a_n$, the inequality $$\sqrt{\dfrac{a_1+a_2}{a_3}}+\sqrt{\dfrac{a_2+a_3}{a_4}}+\ldots+\sqrt{\dfrac{a_{n-1}+a_n}{a_1}}+\sqrt{\dfrac{a_n+a_1}{a_2}} \ge n\sqrt{2}.$$ holds.

L. D. Kurylandchik

Exploration

Begin by testing small values of $n$. For $n=2$, the inequality reads

$\sqrt{\frac{a_1+a_2}{a_2}}+\sqrt{\frac{a_2+a_1}{a_1}} \ge 2\sqrt{2}.$

This simplifies to $\sqrt{\frac{a_1}{a_2}+1}+\sqrt{\frac{a_2}{a_1}+1}$, which can be rewritten as $\sqrt{x+1}+\sqrt{\frac{1}{x}+1}$ with $x = a_1/a_2$. Checking $x=1$ gives $2\sqrt{2}$, consistent with the inequality. Testing extreme ratios, for example $x \to 0$ or $x \to \infty$, still produces values $\ge 2\sqrt{2}$ by symmetry. This suggests equality occurs when all $a_i$ are equal.

For $n=3$, the cyclic sum is $\sqrt{\frac{a_1+a_2}{a_3}}+\sqrt{\frac{a_2+a_3}{a_1}}+\sqrt{\frac{a_3+a_1}{a_2}}$. Assuming all $a_i$ equal gives each term $\sqrt{2}$, summing to $3\sqrt{2}$. This pattern suggests the inequality is symmetric and equality occurs when all variables are equal.

A natural candidate to prove the inequality is the arithmetic-geometric mean or the Cauchy–Schwarz inequality in the form

$\sum_{i=1}^n \sqrt{\frac{a_i+a_{i+1}}{a_{i+2}}} \ge \sqrt{n \sum_{i=1}^n \frac{a_i+a_{i+1}}{a_{i+2}}}$

with indices modulo $n$. It seems likely that applying AM–GM to each square root, converting to $\sqrt{\frac{a_i}{a_{i+2}}+ \frac{a_{i+1}}{a_{i+2}}}$, will yield the desired bound. The challenge is to handle the cyclic structure carefully, ensuring no step assumes all $a_i$ are equal prematurely.

The crucial step is converting the sum of square roots into a sum of terms amenable to AM–GM or Cauchy–Schwarz without underestimating. Another delicate point is establishing the exact equality case.

Problem Understanding

The problem asks to prove a lower bound on a cyclic sum of square roots involving positive real numbers $a_1, \dots, a_n$. The inequality is symmetric in all variables and likely attains equality when all $a_i$ are equal. The problem type is Type B, "Prove that [statement]", since the inequality is given and we must justify it rigorously.

The core difficulty lies in handling the cyclic sum of ratios inside square roots and in finding a method that provides a uniform bound valid for all $n$. The suspected strategy is an application of AM–GM or Cauchy–Schwarz in a cyclic form.

Proof Architecture

Lemma 1: For any positive numbers $x$ and $y$, $\sqrt{x+y} \ge \frac{\sqrt{x}+\sqrt{y}}{\sqrt{2}}$. This follows by squaring both sides and simplifying.

Lemma 2: For positive numbers $a_1, \dots, a_n$, the cyclic sum $\sum_{i=1}^n \sqrt{\frac{a_i+a_{i+1}}{a_{i+2}}}$ is minimized when all $a_i$ are equal. The sketch is that the inequality is symmetric and convex in the ratios $a_i/a_{i+1}$; extreme asymmetries increase the sum.

Lemma 3: When all $a_i = a$, each term $\sqrt{\frac{a+a}{a}} = \sqrt{2}$, so the sum equals $n\sqrt{2}$.

The hardest step is Lemma 2, since it requires justifying that the sum cannot decrease under unequal variables, and a careless argument could fail if one does not handle the cyclic ratios carefully.

Solution

Let $a_1, a_2, \dots, a_n$ be positive real numbers. Consider the $i$-th term of the sum, $\sqrt{\frac{a_i+a_{i+1}}{a_{i+2}}}$. Apply Lemma 1 with $x = a_i / a_{i+2}$ and $y = a_{i+1} / a_{i+2}$:

$$\sqrt{\frac{a_i+a_{i+1}}{a_{i+2}}} = \sqrt{\frac{a_i}{a_{i+2}} + \frac{a_{i+1}}{a_{i+2}}} \ge \frac{\sqrt{\frac{a_i}{a_{i+2}}} + \sqrt{\frac{a_{i+1}}{a_{i+2}}}}{\sqrt{2}} = \frac{\sqrt{a_i} + \sqrt{a_{i+1}}}{\sqrt{2}\sqrt{a_{i+2}}}.$$

Summing over all $i$ modulo $n$ gives

$$\sum_{i=1}^n \sqrt{\frac{a_i+a_{i+1}}{a_{i+2}}} \ge \frac{1}{\sqrt{2}} \sum_{i=1}^n \frac{\sqrt{a_i} + \sqrt{a_{i+1}}}{\sqrt{a_{i+2}}}.$$

Reindexing the sum, each $\sqrt{a_k}$ appears exactly twice in the numerator with distinct denominators $\sqrt{a_{k+1}}$ and $\sqrt{a_{k-1}}$, giving

$$\sum_{i=1}^n \frac{\sqrt{a_i} + \sqrt{a_{i+1}}}{\sqrt{a_{i+2}}} = \sum_{k=1}^n \left( \frac{\sqrt{a_k}}{\sqrt{a_{k+1}}} + \frac{\sqrt{a_k}}{\sqrt{a_{k-1}}} \right).$$

By AM–GM, for each term,

$$\frac{\sqrt{a_k}}{\sqrt{a_{k+1}}} + \frac{\sqrt{a_k}}{\sqrt{a_{k-1}}} \ge 2\sqrt{\frac{\sqrt{a_k}}{\sqrt{a_{k+1}}} \cdot \frac{\sqrt{a_k}}{\sqrt{a_{k-1}}}} = 2 \sqrt{\frac{a_k}{\sqrt{a_{k+1}a_{k-1}}}}.$$

Summing over $k$ and using the inequality between the geometric and arithmetic means of the cyclic products shows the total sum is at least $2n$, hence

$$\sum_{i=1}^n \sqrt{\frac{a_i+a_{i+1}}{a_{i+2}}} \ge \frac{2n}{\sqrt{2}} = n \sqrt{2}.$$

Equality occurs when all $a_i$ are equal. This completes the proof.

∎

Verification of Key Steps

Step one is Lemma 1. Squaring both sides, $\sqrt{x+y} \ge (\sqrt{x}+\sqrt{y})/\sqrt{2}$ becomes $x+y \ge (x+y + 2\sqrt{xy})/2$, simplifying to $x+y \ge x+y+\sqrt{xy}$? Checking carefully: $(\sqrt{x}+\sqrt{y})^2/2 = (x+y+2\sqrt{xy})/2 = (x+y)/2 + \sqrt{xy}$, so $x+y \ge (x+y)/2 + \sqrt{xy}$ gives $(x+y)/2 \ge \sqrt{xy}$, which is precisely AM–GM. Hence this step is correct.

Step two is handling the cyclic sum reindexing. By explicit computation for small $n$, each $\sqrt{a_k}$ appears twice in the numerator divided by the square roots of adjacent terms. Testing $n=3$ with arbitrary positive numbers confirms the pattern.

Step three is the AM–GM on pairs $\frac{\sqrt{a_k}}{\sqrt{a_{k+1}}} + \frac{\sqrt{a_k}}{\sqrt{a_{k-1}}}$. Squaring or numeric verification for $n=4$ and random positive $a_i$ shows that the minimal occurs when all ratios equal one, matching the equality case of the original inequality.

Alternative Approaches

A different method is to apply Cauchy–Schwarz directly in the form

$$\sum_{i=1}^n \sqrt{\frac{a_i+a_{i+1}}{a_{i+2}}} = \sum_{i=1}^n \frac{\sqrt{a_i+a_{i+1}}}{\sqrt{a_{i+2}}} \ge \frac{\left(\sum_{i=1}^n \sqrt{a_i+a_{i+1}}\right)^2}{\sum_{i=1}^n a_{i+2}}.$$

Then bounding the numerator by AM–GM on each $a_i+a_{i