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Efficient Computation in Congested Anonymous Dynamic Networks

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arxiv 2301.07849 v5 pith:OIKGXU5P submitted 2023-01-19 cs.DC cs.DM

classification cs.DCcs.DM
keywords networkscongesteddynamicanonymousnetworkprocessesroundscommunication
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

An anonymous dynamic network is a network of indistinguishable processes whose communication links may appear or disappear unpredictably over time. Previous research has shown that deterministically computing an arbitrary function of a multiset of input values given to these processes takes only a linear number of communication rounds (Di Luna-Viglietta, FOCS 2022). However, fast algorithms for anonymous dynamic networks rely on the construction and transmission of large data structures called "history trees", whose size is polynomial in the number of processes. This approach is unfeasible if the network is congested, and only messages of logarithmic size can be sent through its links. Observe that sending a large message piece by piece over several rounds is not in itself a solution, due to the anonymity of the processes combined with the dynamic nature of the network. Moreover, it is known that certain basic tasks such as all-to-all token dissemination (by means of single-token forwarding) require $\Omega(n^2/\log n)$ rounds in congested networks (Dutta et al., SODA 2013). In this work, we develop a series of practical and efficient techniques that make it possible to use history trees in congested anonymous dynamic networks. Among other applications, we show how to compute arbitrary functions in such networks in $O(n^3)$ communication rounds, greatly improving upon previous state-of-the-art algorithms for congested networks.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Computing in Anonymous Dynamic Networks with One-Bit Communications

    cs.DC 2026-07 accept novelty 7.0 of 10

    One-bit broadcast-counting in anonymous dynamic networks supports general multiset computation in O(n³ log² n) rounds, nearly matching the congested O(n³) bound, with a matching Ω(n³) lower bound for large input universes.

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