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Improved Strategy for Adaptive Rank Estimation with Spherical Subspace Trackers

机译:具有球面子空间跟踪器的自适应等级估计的改进策略

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We present an improved adaptive rank detection algorithm for on-line estimation and tracking of the signal subspace dimension in applications of spherical subspace trackers. The proposed algorithm uses different adaptive thresholds for the rank increase (up) and decrease (down) tests as well as a special set of fast tracking eigenvalue estimates in the rank decrease test, which can be obtained at little extra cost. It is based on an original investigation of the detection performance for the up and down tests that takes into account the exponential nature of the eigenvalue update in spherical subspace trackers. Through computer experiments in multiuser detection, it is shown that with the proposed algorithm, the time required to detect a rank decrease is significantly less than with existing methods.
机译:我们在球形子空间跟踪器应用中提出了一种改进的自适应等级检测算法,以及信号子空间尺寸的跟踪。该算法使用不同的自适应阈值来增加(向上)和减少(向下)测试以及等级减少测试中的特殊快速跟踪特征值估计,这可以几乎没有额外的成本获得。它基于对上下测试的检测性能的原始调查,以考虑球形子空间跟踪器中特征值更新的指数性质。通过计算机实验在多用户检测中,表明,通过所提出的算法,检测秩减少所需的时间明显小于现有方法。

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