Segmental Dtw: A Parallelizable Alternative to Dynamic Time Warping

T. Tsai
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引用次数: 2

Abstract

In this work we explore parallelizable alternatives to DTW for globally aligning two feature sequences. One of the main practical limitations of DTW is its quadratic computation and memory cost. Previous works have sought to reduce the computational cost in various ways, such as imposing bands in the cost matrix or using a multiresolution approach. In this work, we utilize the fact that computation is an abundant resource and focus instead on exploring alternatives that approximate the inherently sequential DTW algorithm with one that is parallelizable. We describe two variations of an algorithm called Segmental DTW, in which the global cost matrix is broken into smaller sub-matrices, subsequence DTW is performed on each sub-matrix, and the results are used to solve a segment-level dynamic programming problem that specifies a globally optimal alignment path. We evaluate the proposed alignment algorithms on an audio-audio alignment task using the Chopin Mazurka dataset, and we show that they closely match the performance of regular DTW. We further demonstrate that almost all of the computations in Segmental DTW are parallelizable, and that one of the variants is unilaterally better than the other for both empirical and theoretical reasons.
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分段Dtw:动态时间翘曲的可并行选择
在这项工作中,我们探索了DTW的并行替代方案,用于全局对齐两个特征序列。DTW的一个主要的实际限制是它的二次计算和内存开销。以前的工作试图以各种方式降低计算成本,例如在成本矩阵中施加频带或使用多分辨率方法。在这项工作中,我们利用计算是一个丰富的资源这一事实,并将重点放在探索替代方案上,这些替代方案近似于固有的顺序DTW算法,并具有可并行性。我们描述了一种称为分段DTW的算法的两种变体,其中将全局代价矩阵分解为更小的子矩阵,在每个子矩阵上执行子DTW,并将结果用于解决指定全局最优对齐路径的段级动态规划问题。我们使用肖邦马祖卡数据集在音频-音频对齐任务上评估了所提出的对齐算法,并表明它们与常规DTW的性能非常接近。我们进一步证明,几乎所有分段DTW的计算都是可并行的,并且由于经验和理论原因,其中一种变体单方面优于另一种。
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