论文标题

最稀有的概率模式支持

Rarest-First with Probabilistic-Mode-Suppression

论文作者

Khan, Nouman, Moharrami, Mehrdad, Subramanian, Vijay

论文摘要

最近的研究表明,由于其支持工作的性质,Bittorrent的最稀有的第一个协议在存在非持久用户的情况下可能变得不稳定。因此,对于任何可证明的稳定协议,在某个时候,许多同行都必须被迫迫使其降低档案活动。在这项工作中,我们提出了一项可调的零件选择政策,该政策通过将(工作支持但不稳定)最稀有的方案与仅适当的(非工作保存和稳定)模式抑制协议相结合来最大程度地减少此(不希望的)必要条件。我们将此策略称为````最稀有的'',ting概率模式抑制'或简单的rfwpms。我们使用Bittorrent网络的随机抽象研究RFWPM,该网络足以捕获多个非持久用户的群体设置 - 每个群都有自己的利他偏好,可能会或可能不会与其他群体重叠。使用Lyapunov漂移分析,我们表明,对于各种舒适间的行为和所有到达率配置,RFWPMS稳定。然后,使用Kingman的瞬间界技术,我们进一步表明,RFWPM的预期稳态寄居时间与单人体案例中的到达率无关(在轻度的额外假设下)。最后,我们的基于模拟的性能评估证实了我们的理论发现,并表明,稳态预期的周时间是线性的(与我们对6度6的多项式估计的宽松估计相比,相比之下)。总体而言,与先前提出的稳定方案(如模式抑制(MS))相比,观察到了改善的性能。

Recent studies suggested that the BitTorrent's rarest-first protocol, owing to its work-conserving nature, can become unstable in the presence of non-persistent users. Consequently, for any provably stable protocol, many peers, at some point, would have to be endogenously forced to hold off their file-download activity. In this work, we propose a tunable piece-selection policy that minimizes this (undesirable) requisite by combining the (work-conserving but not stabilizing) rarest-first protocol with only an appropriate share of the (non-work conserving and stabilizing) mode-suppression protocol. We refer to this policy as ``Rarest-First with Probabilistic Mode-Suppression'' or simply RFwPMS. We study RFwPMS using a stochastic abstraction of the BitTorrent network that is general enough to capture a multiple swarm setting of non-persistent users -- each swarm having its own altruistic preferences that may or may not overlap with those of other swarms. Using Lyapunov drift analysis, we show that for all kinds of inter-swarm behaviors and all arrival-rate configurations, RFwPMS is stable. Then, using the Kingman's moment bound technique, we further show that the expected steady-state sojourn time of RFwPMS is independent of the arrival-rate in the single-swarm case (under a mild additional assumption). Finally, our simulation-based performance evaluation confirms our theoretical findings and shows that the steady-state expected sojourn time is linear in the file-size (compared to our loose estimate of a polynomial with degree 6). Overall, an improved performance is observed in comparison to previously proposed stabilizing schemes like mode-suppression (MS).

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