English

Dynamic Sketching for Graph Optimization Problems with Applications to Cut-Preserving Sketches

Data Structures and Algorithms 2015-10-13 v1

Abstract

In this paper, we introduce a new model for sublinear algorithms called \emph{dynamic sketching}. In this model, the underlying data is partitioned into a large \emph{static} part and a small \emph{dynamic} part and the goal is to compute a summary of the static part (i.e, a \emph{sketch}) such that given any \emph{update} for the dynamic part, one can combine it with the sketch to compute a given function. We say that a sketch is \emph{compact} if its size is bounded by a polynomial function of the length of the dynamic data, (essentially) independent of the size of the static part. A graph optimization problem PP in this model is defined as follows. The input is a graph G(V,E)G(V,E) and a set TVT \subseteq V of kk terminals; the edges between the terminals are the dynamic part and the other edges in GG are the static part. The goal is to summarize the graph GG into a compact sketch (of size poly(k)(k)) such that given any set QQ of edges between the terminals, one can answer the problem PP for the graph obtained by inserting all edges in QQ to GG, using only the sketch. We study the fundamental problem of computing a maximum matching and prove tight bounds on the sketch size. In particular, we show that there exists a (compact) dynamic sketch of size O(k2)O(k^2) for the matching problem and any such sketch has to be of size Ω(k2)\Omega(k^2). Our sketch for matchings can be further used to derive compact dynamic sketches for other fundamental graph problems involving cuts and connectivities. Interestingly, our sketch for matchings can also be used to give an elementary construction of a \emph{cut-preserving vertex sparsifier} with space O(kC2)O(kC^2) for kk-terminal graphs; here CC is the total capacity of the edges incident on the terminals. Additionally, we give an improved lower bound (in terms of CC) of Ω(C/logC)\Omega(C/\log{C}) on size of cut-preserving vertex sparsifiers.

Keywords

Cite

@article{arxiv.1510.03252,
  title  = {Dynamic Sketching for Graph Optimization Problems with Applications to Cut-Preserving Sketches},
  author = {Sepehr Assadi and Sanjeev Khanna and Yang Li and Val Tannen},
  journal= {arXiv preprint arXiv:1510.03252},
  year   = {2015}
}
R2 v1 2026-06-22T11:18:03.809Z