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Variational Bayesian Inference for Audio-Visual Tracking of Multiple Speakers

机译:变分贝叶斯推论多个扬声器的视听跟踪

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In this article, we address the problem of tracking multiple speakers via the fusion of visual and auditory information. We propose to exploit the complementary nature and roles of these two modalities in order to accurately estimate smooth trajectories of the tracked persons, to deal with the partial or total absence of one of the modalities over short periods of time, and to estimate the acoustic status-either speaking or silent-of each tracked person over time. We propose to cast the problem at hand into a generative audio-visual fusion (or association) model formulated as a latent-variable temporal graphical model. This may well be viewed as the problem of maximizing the posterior joint distribution of a set of continuous and discrete latent variables given the past and current observations, which is intractable. We propose a variational inference model which amounts to approximate the joint distribution with a factorized distribution. The solution takes the form of a closed-form expectation maximization procedure. We describe in detail the inference algorithm, we evaluate its performance and we compare it with several baseline methods. These experiments show that the proposed audio-visual tracker performs well in informal meetings involving a time-varying number of people.
机译:在本文中,我们通过融合视觉和听觉信息来解决跟踪多个扬声器的问题。我们建议利用这两种方式的互补性和角色,以便准确估计跟踪人员的平滑轨迹,以应对短时间内的部分或完全不存在的方式,并估计声学状态 - 随着时间的推移,对每个跟踪的人说话或沉默。我们建议将问题施放到制定作为潜在时间图形模型的生成视听融合(或关联)模型中。这可能被视为给出过去和当前观察的一组连续和离散变量的一组连续和离散变量的后关节分布的问题,这是棘手的。我们提出了一种变分推理模型,其相当于具有分解分布的关节分布。该解决方案采用封闭式期望最大化程序的形式。我们详细描述了推理算法,我们评估其性能,并使用几种基线方法进行比较。这些实验表明,所提出的视听跟踪器在涉及时变数人数的非正式会议中表现良好。

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