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SNR estimation and decision making using hypothesis testing in energy-efficient adaptive modulation

机译:节能自适应调制中使用假设检验的SNR估计和决策

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To improve energy efficiency in low power short-range communication systems such as Wireless Sensor Networks (WSNs) and Wireless Body Area Networks (WBANs), adaptive techniques have been proposed to adjust the transmit waveforms according to the channel conditions. The estimation of channel quality, such as Signal-to-Noise Ratio (SNR), plays an important role in the waveform switching. Errors introduced by the estimation result in wrong decisions on transmit mode, which would further affect the overall energy efficiency. In this paper, we consider a low power system that adopts Link Adaptation (LA) switching between multiple modulation schemes. We point out that the decision of switch between different modulations only requires the knowledge of whether the SNR falls into a certain range, rather than that of an exact value. Therefore we propose a novel SNR estimation and decision making framework based on Hypothesis Testing (HT) theory. This framework provides a generic way to both evaluate and control the probabilities of different types of estimation errors. Hence approach can be adjusted for different applications to improve energy efficiency by reducing the probability of the errors associated with significant energy cost. We also highlight that the conventional estimation method is a special case of the proposed framework.
机译:为了提高诸如无线传感器网络(WSN)和无线体域网(WBAN)之类的低功率短距离通信系统的能效,已经提出了自适应技术来根据信道条件调整发射波形。信道质量的估计,例如信噪比(SNR),在波形切换中起着重要的作用。估算引入的错误会导致对传输模式的错误决策,这将进一步影响整体能效。在本文中,我们考虑一种在多个调制方案之间采用链路自适应(LA)切换的低功耗系统。我们指出,在不同调制之间进行切换的决定仅需要知道SNR是否落入某个范围,而不是确切值。因此,我们提出了一种基于假设检验(HT)理论的新型SNR估计和决策框架。该框架提供了一种通用方法来评估和控制不同类型的估计误差的概率。因此,可以通过减少与大量能源成本相关的错误的可能性,针对不同应用调整方法,以提高能源效率。我们还强调指出,常规估计方法是所提出框架的特例。

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