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EARC: Enhanced Adaptation of Link Rate and Contention Window for IEEE 802.11 Multi-Rate Wireless Networks

机译:EARC:针对IEEE 802.11多速率无线网络的链路速率和竞争窗口的增强适应

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摘要

IEEE 802.11 wireless network supports multiple link rates at the physical layer. Each link rate is associated with a certain required Signal-to-Interference-and-Noise Ratio (SINR) threshold for successfully decoding received packets. On transmission failures, the 802.11 DCF performs a binary exponential backoff mechanism to discourage channel access attempts, hoping to reduce congestion. When traditional link adaptation is applied, both rate reduction and binary backoff represent double penalties for this wireless link, which may cause overly conservative transmission attempts. On the other hand, once transmission succeeds, 802.11 DCF resets the backoff contention window to the minimum value to encourage channel access attempts. At the same time, traditional link adaptation may also decide to increase the data rate, which leads to overly aggressive transmission attempts. We observe this improper interaction of link rate and backoff mechanism that harms the 802.11 system performance, due to separate consideration of those two parameters. In this paper, we propose to jointly adapt the rate and backoff parameters. Specifically, an Enhanced Adaptation of link Rate and Contention window, abbreviated as EARC, is devised. EARC is a closed-loop (receiver-assisted) link rate adaptation protocol that jointly considers the backoff mechanism. With only one extra byte carried by the DATA packet, EARC incurs little controlling overhead despite its receiver-assisted nature. Moreover, since SINR information commonly utilized by receiver-assisted protocols is not precisely supported in real devices, we introduce a rate selection reference (RSR) table empirically derived by constantly monitoring the environmental energy level and reception behavior. The RSR table then guides the receiver to select the best sustainable rate for the transmitter. Simulation results demonstrate the RSR table is a practical option for making the rate decision, and the proposed EARC approach is effective - n maintaining high system throughput, compared to other link adaptation algorithms.
机译:IEEE 802.11无线网络在物理层支持多种链路速率。每个链路速率都与某个必需的信噪比(SINR)阈值相关联,以成功解码接收到的数据包。在传输失败时,802.11 DCF执行二进制指数退避机制以阻止信道访问尝试,以期减少拥塞。当应用传统的链路自适应时,速率降低和二进制退避都表示对该无线链路的双重惩罚,这可能会导致过于保守的传输尝试。另一方面,一旦传输成功,802.11 DCF会将退避争用窗口重置为最小值,以鼓励尝试进行信道访问。同时,传统的链路适配也可能决定增加数据速率,这会导致过度积极的传输尝试。由于对这两个参数的单独考虑,我们观察到这种链路速率和退避机制的不正确交互,从而损害了802.11系统性能。在本文中,我们建议共同调整速率和退避参数。具体而言,设计了链接速率和竞争窗口的增强适应窗口,缩写为EARC。 EARC是一种闭环(接收机辅助)链路速率自适应协议,该协议共同考虑了退避机制。尽管DATA数据包仅携带一个额外的字节,但EARC尽管具有接收器辅助功能,却几乎没有控制开销。此外,由于在实际设备中无法精确支持通常由接收机辅助协议使用的SINR信息,因此我们引入了通过不断监控环境能级和接收行为凭经验得出的速率选择参考(RSR)表。然后,RSR表指导接收机选择发射机的最佳可持续速率。仿真结果表明,RSR表是做出速率决定的实用选择,并且与其他链路自适应算法相比,所提出的EARC方法是有效的-n维持高系统吞吐量。

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