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Kalman Filters for Time Delay of Arrival-Based Source Localization

机译:卡尔曼滤波器用于基于到达的源定位的时延

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In this work, we propose an algorithm for acoustic source localization based on time delay of arrival (TDOA) estimation. In earlier work by other authors, an initial closed-form approximation was first used to estimate the true position of the speaker followed by a Kalman filtering stage to smooth the time series of estimates. In the proposed algorithm, this closed-form approximation is eliminated by employing a Kalman filter to directly update the speaker's position estimate based on the observed TDOAs. In particular, the TDOAs comprise the observation associated with an extended Kalman filter whose state corresponds to the speaker's position. We tested our algorithm on a data set consisting of seminars held by actual speakers. Our experiments revealed that the proposed algorithm provides source localization accuracy superior to the standard spherical and linear intersection techniques. Moreover, the proposed algorithm, although relying on an iterative optimization scheme, proved efficient enough for real-time operation.
机译:在这项工作中,我们提出了一种基于到达时间延迟(TDOA)估计的声源定位算法。在其他作者的早期工作中,首先使用初始封闭形式的近似值来估计说话者的真实位置,然后使用卡尔曼滤波阶段来平滑估计的时间序列。在提出的算法中,通过采用卡尔曼滤波器基于观察到的TDOA直接更新说话者的位置估计,消除了这种闭式近似。特别地,TDOA包括与扩展卡尔曼滤波器相关联的观察结果,该卡尔曼滤波器的状态对应于说话者的位置。我们在由实际演讲者举办的研讨会组成的数据集上测试了我们的算法。我们的实验表明,该算法提供的源定位精度优于标准的球形和线性相交技术。此外,所提出的算法尽管依赖于迭代优化方案,但已被证明足以用于实时操作。

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