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Quasi-Polynomial Time Approximation Schemes for Packing and Covering Problems in Planar Graphs

Quasi-polynomial time approximation schemes for packing and covering problems in planar graphs
Authors: Michał Pilipczuk; Erik Jan van Leeuwen; Andreas Wiese;

Quasi-Polynomial Time Approximation Schemes for Packing and Covering Problems in Planar Graphs

Abstract

We consider two optimization problems in planar graphs. In Maximum Weight Independent Set of Objects we are given a graph $G$ and a family $\mathcal{D}$ of objects, each being a connected subgraph of $G$ with a prescribed weight, and the task is to find a maximum-weight subfamily of $\mathcal{D}$ consisting of pairwise disjoint objects. In Minimum Weight Distance Set Cover we are given an edge-weighted graph $G$, two sets $\mathcal{D},\mathcal{C}$ of vertices of $G$, where vertices of $\mathcal{D}$ have prescribed weights, and a nonnegative radius $r$. The task is to find a minimum-weight subset of $\mathcal{D}$ such that every vertex of $\mathcal{C}$ is at distance at most $r$ from some selected vertex. Via simple reductions, these two problems generalize a number of geometric optimization tasks, notably Maximum Weight Independent Set for polygons in the plane and Weighted Geometric Set Cover for unit disks and unit squares. We present quasi-polynomial time approximation schemes (QPTASs) for both of the above problems in planar graphs: given an accuracy parameter $��>0$ we can compute a solution whose weight is within multiplicative factor of $(1+��)$ from the optimum in time $2^{\mathrm{poly}(1/��,\log |\mathcal{D}|)}\cdot n^{\mathcal{O}(1)}$, where $n$ is the number of vertices of the input graph. Our main technical contribution is to transfer the techniques used for recursive approximation schemes for geometric problems due to Adamaszek, Har-Peled, and Wiese to the setting of planar graphs. In particular, this yields a purely combinatorial viewpoint on these methods.

31 pages, 5 figures, accepted at ESA 2018

Keywords

Approximation schemes, FOS: Computer and information sciences, approximation schemes, Planar graphs, Approximation algorithms, planar graphs, independent set of objects, 004, Planar graphs; geometric and topological aspects of graph theory, Geometric set cover, Vertex subsets with special properties (dominating sets, independent sets, cliques, etc.), Independent set of objects, Edge subsets with special properties (factorization, matching, partitioning, covering and packing, etc.), 68W25 (Approximation algorithms), Graph theory (including graph drawing) in computer science, Graph algorithms (graph-theoretic aspects), Taverne, Computer graphics; computational geometry (digital and algorithmic aspects), Computer Science - Data Structures and Algorithms, QPTAS, Data Structures and Algorithms (cs.DS), Voronoi diagram, geometric set cover, ddc: ddc:004

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This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Citations provided by BIP!
popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
BIP!Popularity provided by BIP!
influence
This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Influence provided by BIP!
impulse
This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
BIP!Impulse provided by BIP!
3
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