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TP-planet: a reliable transport protocol for interplanetary Internet

机译:TP-planet:行星际互联网的可靠传输协议

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摘要

Space exploration missions are crucial for acquisition of information about space and the Universe. The entire success of a mission is directly related to the satisfaction of its communications needs. For this goal, the challenges posed by the InterPlaNetary (IPN) Internet need to be addressed. Current transmission control protocols (TCPs) have very poor performance in the IPN Internet, which is characterized by extremely high propagation delays, link errors, asymmetrical bandwidth, and blackouts. The window-based congestion control, which injects a new packet into the network upon an ACK reception, is responsible for such performance degradation due to high propagation delay. Slow start algorithms of the existing TCPs further contribute to the performance degradation by wasting long time periods to reach the actual data rate. Moreover, wireless link errors amplify the problem by misleading the TCP source to unnecessarily throttle the congestion window. The recovery from erroneous window decrease takes a certain amount of time, which is proportional to the round-trip time (RTT) and further decreases the network performance. In this paper, a reliable transport protocol (TP-Planet) is presented for data traffic in the IPN Internet. It is intended to address the challenges and to achieve high throughput performance and reliable data transmission on deep-space links of the IPN Backbone Network. TP-Planet deploys a rate-based additive-increase multiplicative-decrease (AIMD) congestion control, whose AIMD parameters are tuned to help avoid throughput degradation. TP-Planet replaces the inefficient slow start algorithm with a novel Initial State algorithm, which allows the capture of link resources in a very fast and controlled manner. A new congestion detection and control mechanism is developed, which decouples congestion decisions from single packet losses in order to avoid the erroneous congestion decisions due to high link errors. In order to reduce the effects of blackout conditions on the throughput performance, TP-Planet incorporates the blackout state procedure into the protocol operation. The bandwidth asymmetry problem is addressed by the adoption of delayed selective acknowledgment (SACK). Simulation experiments show that the TP-Planet significantly improves the throughput performance and addresses the challenges posed by the IPN Backbone Network.
机译:太空探索任务对于获取有关太空和宇宙的信息至关重要。任务的全部成功直接关系到其通信需求的满足。为了实现这一目标,需要解决InterPlaNetary(IPN)互联网带来的挑战。当前的传输控制协议(TCP)在IPN互联网中的性能非常差,其特点是传播延迟极高,链路错误,带宽不对称和停电。基于窗口的拥塞控制(在收到ACK时将新的数据包注入网络)会由于高传播延迟而导致这种性能下降。现有TCP的慢启动算法通过浪费很长时间来达到实际数据速率,进一步导致性能下降。此外,无线链路错误通过误导TCP源不必要地限制拥塞窗口而扩大了问题。从错误的窗口减小中恢复需要一定的时间,该时间与往返时间(RTT)成比例,从而进一步降低了网络性能。在本文中,提出了一种可靠的传输协议(TP-Planet),用于IPN Internet中的数据通信。它旨在解决挑战并在IPN骨干网的深空链路上实现高吞吐性能和可靠的数据传输。 TP-Planet部署了基于速率的加减乘减(AIMD)拥塞控制,其AIMD参数已调整为有助于避免吞吐量下降。 TP-Planet用新颖的“初始状态”算法代替了效率低下的慢启动算法,该算法可以以非常快速且受控的方式捕获链接资源。开发了一种新的拥塞检测和控制机制,该机制将拥塞决策与单个数据包丢失解耦,以避免由于高链路错误而导致的错误拥塞决策。为了减少停电条件对吞吐量性能的影响,TP-Planet将停电状态过程合并到协议操作中。带宽不对称问题通过采用延迟选择性确认(SACK)解决。仿真实验表明,TP-Planet显着提高了吞吐量性能,并解决了IPN骨干网带来的挑战。

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