High-precision Estimation of Random Walks in Small Space

被引:16
|
作者
Ahmadinejad, AmirMahdi [1 ]
Kelner, Jonathan [2 ]
Murtagh, Jack [3 ]
Peebles, John [4 ]
Sidford, Aaron [1 ]
Vadhan, Salil [3 ]
机构
[1] Stanford Univ, Dept Management Sci & Engn, Stanford, CA 94305 USA
[2] MIT, Dept Math, Cambridge, MA 02139 USA
[3] Harvard Univ, Sch Engn & Appl Sci, Cambridge, MA 02138 USA
[4] Yale Univ, Dept Comp Sci, POB 2158, New Haven, CT 06520 USA
来源
2020 IEEE 61ST ANNUAL SYMPOSIUM ON FOUNDATIONS OF COMPUTER SCIENCE (FOCS 2020) | 2020年
基金
瑞士国家科学基金会; 美国国家科学基金会;
关键词
derandomization; space complexity; random walks; Markov chains; Laplacian systems; spectral sparsification; Eulerian graphs; SPECTRAL SPARSIFICATION;
D O I
10.1109/FOCS46700.2020.00123
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
In this paper, we provide a deterministic (O) over tilde (log N)-space algorithm for estimating random walk probabilities on undirected graphs, and more generally Eulerian directed graphs, to within inverse polynomial additive error (epsilon = 1/poly(N)) where N is the length of the input. Previously, this problem was known to be solvable by a randomized algorithm using space O(log N) (following Aleliunas et al., FOCS '79) and by a deterministic algorithm using space O(log(3/2) N) (Saks and Zhou, FOCS '95 and JCSS '99), both of which held for arbitrary directed graphs but had not been improved even for undirected graphs. We also give improvements on the space complexity of both of these previous algorithms for non-Eulerian directed graphs when the error is negligible (epsilon = 1/N-omega(1)), generalizing what Hoza and Zuckerman (FOCS '18) recently showed for the special case of distinguishing whether a random walk probability is 0 or greater than epsilon. We achieve these results by giving new reductions between powering Eulerian random-walk matrices and inverting Eulerian Laplacian matrices, providing a new notion of spectral approximation for Eulerian graphs that is preserved under powering, and giving the first deterministic (O) over tilde (log N)-space algorithm for inverting Eulerian Laplacian matrices. The latter algorithm builds on the work of Murtagh et al. (FOCS '17) that gave a deterministic (O) over tilde (log N)-space algorithm for inverting undirected Laplacian matrices, and the work of Cohen et al. (FOCS '19) that gave a randomized (O) over tilde (N)-time algorithm for inverting Eulerian Laplacian matrices. A running theme throughout these contributions is an analysis of "cycle-lifted graphs," where we take a graph and "lift" it to a new graph whose adjacency matrix is the tensor product of the original adjacency matrix and a directed cycle (or variants of one).
引用
收藏
页码:1295 / 1306
页数:12
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