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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Rate-distortion analysis of discrete-HMM pose estimation via multiaspect scattering data
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Rate-distortion analysis of discrete-HMM pose estimation via multiaspect scattering data

机译:基于多方面散射数据的离散HMM姿态估计的率失真分析

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摘要

We consider the problem of estimating the pose of a target based on a sequence of scattered waveforms measured at multiple target-sensor orientations. Using a hidden Markov model (HMM) representation of the scattered-waveform sequence, pose estimation reduces to estimating the underlying HMM states from a sequence of observations. It is assumed that each scattered waveform must be quantized via an encoding procedure. A distortion D is defined as the error in estimating the underlying HMM states, and the rate R represents the size of the discrete-HMM codebook. Rate-distortion theory is applied to define the minimum rate required to achieve a desired distortion, denoted as R(D). After deriving the rate-distortion function R(D), we demonstrate that discrete-HMM performance based on Lloyd encoding is far from this bound. Performance is improved via block coding, based on Bayes VQ. Results are presented for a canonical HMM problem, and then for multiaspect acoustic scattering from underwater elastic targets. Although the examples presented here are for multiaspect scattering and pose estimation, the results are of general applicability to discrete-HMM state estimation.
机译:我们考虑基于在多个目标传感器方向上测得的一系列散射波形估计目标姿态的问题。使用散射波形序列的隐马尔可夫模型(HMM)表示,姿势估计可简化为从一系列观测结果估计潜在的HMM状态。假设必须通过编码过程对每个散射波形进行量化。失真D被定义为估计基础HMM状态时的误差,比率R代表离散HMM码本的大小。率失真理论用于定义实现所需失真所需的最小速率,表示为R(D)。推导了速率失真函数R(D)之后,我们证明了基于Lloyd编码的离散HMM性能离此界限还很远。通过基于Bayes VQ的块编码可以提高性能。给出了一个典型的HMM问题的结果,然后给出了来自水下弹性目标的多方面声散射。尽管此处提供的示例用于多方面散射和姿态估计,但结果通常可用于离散HMM状态估计。

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