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A weighted cycle-localization inequality

Jiangdong Ai, Bin Chen, Ming Chen, Tianxiao Zhao

Abstract

In 1959, Erdős and Gallai showed that every $2$-connected graph $G$ contains a cycle of length at least $\frac{2|E(G)|}{|V(G)|-1}$. This result was subsequently extended to weighted graphs by Bondy and Fan in 1991. A natural local variant of this problem arises by considering, for each edge $e\in E(G)$, the quantity $c(e)$, defined as the length of the longest cycle in $G$ containing $e$ (with $c(e)=2$ if $e$ is a bridge). Zhao and Zhang recently proved that for every graph $G$ on $n$ vertices satisfies $\sum_{e\in E(G)}\frac{1}{c(e)}\le \frac{n-1}{2}.$ In this note, we establish a weighted generalization of this inequality. For a weighted graph $(G,w)$ with positive edge weights, let $C_w(e)$ denote the maximum weight of a cycle containing $e$ (setting $C_w(e)=2w(e)$ if $e$ is a bridge). We prove that $$ \sum_{e\in E(G)}\frac{w(e)}{C_w(e)}\le \frac{n-1}{2}. $$ Our result can be viewed as a weighted local analogue of the Bondy-Fan theorem, thereby establishing a correspondence between the global and local perspectives. Furthermore, we present a broad class of graphs attaining equality and derive necessary conditions for equality.

A weighted cycle-localization inequality

Abstract

In 1959, Erdős and Gallai showed that every -connected graph contains a cycle of length at least . This result was subsequently extended to weighted graphs by Bondy and Fan in 1991. A natural local variant of this problem arises by considering, for each edge , the quantity , defined as the length of the longest cycle in containing (with if is a bridge). Zhao and Zhang recently proved that for every graph on vertices satisfies In this note, we establish a weighted generalization of this inequality. For a weighted graph with positive edge weights, let denote the maximum weight of a cycle containing (setting if is a bridge). We prove that Our result can be viewed as a weighted local analogue of the Bondy-Fan theorem, thereby establishing a correspondence between the global and local perspectives. Furthermore, we present a broad class of graphs attaining equality and derive necessary conditions for equality.
Paper Structure (7 sections, 16 theorems, 31 equations)

This paper contains 7 sections, 16 theorems, 31 equations.

Key Result

Theorem 1

Every $2$-edge-connected graph with $n$ vertices and $m$ edges contains a cycle of length at least $\frac{2m}{n-1}$.

Theorems & Definitions (33)

  • Theorem 1: EG
  • Theorem 2: BF
  • Theorem 3: ZZ
  • Definition 4
  • Definition 5
  • Theorem 6
  • proof
  • Definition 7
  • Proposition 8
  • proof
  • ...and 23 more