TY - JOUR
T1 - Efficient algorithms for constructing very sparse spanners and emulators
AU - Elkin, Michael
AU - Neiman, Ofer
N1 - Publisher Copyright:
© 2018 Association for Computing Machinery.
PY - 2018/1/1
Y1 - 2018/1/1
N2 - Miller et al. [48] devised a distributed1 algorithm in the CONGEST model that, given a parameter k = 1, 2, . . . , constructs an O(k)-spanner of an input unweighted n-vertex graph with O(n1+1/k ) expected edges in O(k) rounds of communication. In this article, we improve the result of Reference [48] by showing a k-round distributed algorithm in the same model that constructs a (2k - 1)-spanner with O(n1+1/k /∈ ) edges, with probability 1 - ∈ for any ∈ > 0. Moreover, when k = ω(logn), our algorithm produces (still in k rounds) ultrasparse spanners, i.e., spanners of size n(1 + o(1)), with probability 1 - o(1). To our knowledge, this is the first distributed algorithm in the CONGEST or in the PRAM models that constructs spanners or skeletons (i.e., connected spanning subgraphs) that are sparse. Our algorithm can also be implemented in linear time in the standard centralized model, and for large k, it provides spanners that are sparser than any other spanner given by a known (near-)linear time algorithm. We also devise improved bounds (and algorithms realizing these bounds) for (1 + ∈, β)-spanners and emulators. In particular, we show that for any unweighted n-vertex graph and any ∈ > 0, there exists a (1 + ∈, ( log log n/∈)log log n )-emulator withO(n) edges. All previous constructions of (1 + ∈, β)-spanners and emulators employ a superlinear number of edges for all choices of parameters. Finally, we provide some applications of our results to approximate shortest paths' computation in unweighted graphs.
AB - Miller et al. [48] devised a distributed1 algorithm in the CONGEST model that, given a parameter k = 1, 2, . . . , constructs an O(k)-spanner of an input unweighted n-vertex graph with O(n1+1/k ) expected edges in O(k) rounds of communication. In this article, we improve the result of Reference [48] by showing a k-round distributed algorithm in the same model that constructs a (2k - 1)-spanner with O(n1+1/k /∈ ) edges, with probability 1 - ∈ for any ∈ > 0. Moreover, when k = ω(logn), our algorithm produces (still in k rounds) ultrasparse spanners, i.e., spanners of size n(1 + o(1)), with probability 1 - o(1). To our knowledge, this is the first distributed algorithm in the CONGEST or in the PRAM models that constructs spanners or skeletons (i.e., connected spanning subgraphs) that are sparse. Our algorithm can also be implemented in linear time in the standard centralized model, and for large k, it provides spanners that are sparser than any other spanner given by a known (near-)linear time algorithm. We also devise improved bounds (and algorithms realizing these bounds) for (1 + ∈, β)-spanners and emulators. In particular, we show that for any unweighted n-vertex graph and any ∈ > 0, there exists a (1 + ∈, ( log log n/∈)log log n )-emulator withO(n) edges. All previous constructions of (1 + ∈, β)-spanners and emulators employ a superlinear number of edges for all choices of parameters. Finally, we provide some applications of our results to approximate shortest paths' computation in unweighted graphs.
KW - CONGEST
KW - Shortest path
KW - Spanners
UR - https://www.scopus.com/pages/publications/85058350417
U2 - 10.1145/3274651
DO - 10.1145/3274651
M3 - Article
AN - SCOPUS:85058350417
SN - 1549-6325
VL - 15
JO - ACM Transactions on Algorithms
JF - ACM Transactions on Algorithms
IS - 1
M1 - 4
ER -