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$QRTT$ : Stateful Round Trip Time Estimation for Wireless Embedded Systems Using $Q$-Learning

机译: $ QRTT $ :使用 $ Q $ -学习

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摘要

Wireless embedded systems such as sensor nodes and smartphones highlight the importance of reliable data transmission in their advanced applications. Such reliable transmission frequently exhibits a performance below expectation due to inherent resource constraints of the systems. Accurate estimation of round trip time, an important parameter of reliable data transmission, has the potential to significantly improve the performance withstanding the resource constraints. However, contemporary round trip time estimation schemes cannot significantly improve the performance using their stateless estimation schemes as two different states of transmission, success and failure, are equally prominent over wireless mediums. To address this key fact, we propose a novel stateful round trip time estimation scheme for wireless embedded systems, incorporating a light-weight artificial intelligence method. We apply the proposed scheme in a retransmission timeout mechanism of TCP and compare the efficacy of the scheme against that of contemporary estimation schemes. Exhaustive simulation and a testbed experiment reveal that our scheme significantly improves network throughput and average energy per bit compared to other schemes.
机译:无线嵌入式系统(例如传感器节点和智能手机)突显了在其高级应用程序中可靠的数据传输的重要性。由于系统固有的资源限制,这种可靠的传输经常表现出低于预期的性能。往返时间的准确估计是可靠数据传输的重要参数,在资源有限的情况下,有可能显着提高性能。但是,现代往返时间估计方案无法使用其无状态估计方案来显着提高性能,因为两种不同的传输状态(成功和失败)在无线介质上同样突出。为了解决这个关键事实,我们提出了一种新的有状态的往返时间估计方案,该方案用于无线嵌入式系统,并结合了一种轻量级的人工智能方法。我们将所提出的方案应用于TCP的重传超时机制,并将该方案的有效性与当代估计方案的有效性进行比较。详尽的仿真和测试平台实验表明,与其他方案相比,我们的方案显着提高了网络吞吐量和每位平均能量。

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