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Model order selection for collision multiplicity estimation

机译:碰撞多平面估计的模型订单选择

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The collision multiplicity (CM) is the number of users involved in a collision. The CM estimation is an essential step in multi-packet reception (MPR) techniques and in collision resolution (CR) methods. We propose two techniques to estimate collision multiplicities in the context of IEEE 802.11 networks. These two techniques have been initially designed in the context of source separation. The first estimation technique is based on eigenvalue statistics. The second technique is based on the exponentially embedded family (EEF). These two techniques outperform current estimation techniques in terms of underestimation rate (UNDER). The reason for this is twofold. First, current techniques are based on a uniform distribution of signal samples whereas the proposed methods rely on a Gaussian distribution. Second, current techniques use a small number of observations whereas the proposed methods use a number of observations much greater than the number of signals to be separated. This is in accordance with typical source separation techniques.
机译:碰撞多重性(cm)是碰撞涉及的用户数。 CM估计是多分组接收(MPR)技术和冲突分辨率(CR)方法的基本步骤。我们提出了两种技术来估计IEEE 802.11网络的上下文中的碰撞多个配置。这两种技术最初是在源分离的背景下设计的。第一估计技术基于特征值统计。第二种技术基于指数嵌入的家庭(EEF)。这两种技术在低估​​速率(下)方面优于电流估计技术。这是一个双重的原因。首先,当前技术基于信号样本的均匀分布,而所提出的方法依赖于高斯分布。其次,当前技术使用少量观察,而所提出的方法使用多于要分离的信号数量的观察结果。这是符合典型的源分离技术。

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