A probabilistic approach for predictive congestion control in wireless sensor networks

R. Uthra, S. V. Kasmir Raja, A. Jeyasekar, A. Lattanze
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引用次数: 15

Abstract

Any node in a wireless sensor network is a resource constrained device in terms of memory, bandwidth, and energy, which leads to a large number of packet drops, low throughput, and significant waste of energy due to retransmission. This paper presents a new approach for predicting congestion using a probabilistic method and controlling congestion using new rate control methods. The probabilistic approach used for prediction of the occurrence of congestion in a node is developed using data traffic and buffer occupancy. The rate control method uses a back-off selection scheme and also rate allocation schemes, namely rate regulation (RRG) and split protocol (SP), to improve throughput and reduce packet drop. A back-off interval selection scheme is introduced in combination with rate reduction (RR) and RRG. The back-off interval selection scheme considers channel state and collision-free transmission to prevent congestion. Simulations were conducted and the results were compared with those of decentralized predictive congestion control (DPCC) and adaptive duty-cycle based congestion control (ADCC). The results showed that the proposed method reduces congestion and improves performance.
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无线传感器网络预测拥塞控制的概率方法
无线传感器网络中的任何节点在内存、带宽和能量方面都是资源受限的设备,这导致大量的数据包丢失,吞吐量低,并且由于重传而导致大量的能量浪费。本文提出了一种用概率方法预测拥塞和用新的速率控制方法控制拥塞的新方法。利用数据流量和缓冲区占用率开发了用于预测节点中拥塞发生的概率方法。速率控制方法采用后退选择方案和速率分配方案,即速率调节(RRG)和分离协议(SP),以提高吞吐量和减少丢包。结合降率(RR)和RRG,提出了一种退退间隔选择方案。退退间隔选择方案考虑信道状态和无冲突传输以防止拥塞。仿真结果与分散预测拥塞控制(DPCC)和基于自适应占空比的拥塞控制(ADCC)进行了比较。结果表明,该方法减少了拥塞,提高了性能。
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