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Disentangled Representations for Sequence Data using Information Bottleneck Principle

机译:使用信息瓶颈原理解开序列数据的表示

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We propose the factorizing variational autoencoder (FAVAE), a generative model for learning dis- entangled representations from sequential data via the information bottleneck principle without supervision. Real-world data are often generated by a few explanatory factors of variation, and disentangled representation learning obtains these factors from the data. We focus on the disen- tangled representation of sequential data which can be useful in a wide range of applications, such as video, speech, and stock markets. Factors in sequential data are categorized into dynamic and static ones: dynamic factors are time dependent, and static factors are time independent. Previous models disentangle between static and dynamic factors and between dynamic factors with different time dependencies by explicitly modeling the priors of latent variables. However, these models cannot disentangle representations between dynamic factors with the same time dependency, such as disentangling “picking up” and “throwing” in robotic tasks. On the other hand, FAVAE can disentangle multiple dynamic factors via the information bottleneck principle where it does not require modeling priors. We conducted experiments to show that FAVAE can extract disentangled dynamic factors on synthetic, video, and speech datasets.
机译:我们提出了分解变分性AutoEncoder(Favae),用于通过信息瓶颈原理从顺序数据进行学习的生成模型,没有监督。实际数据通常由几个变化的解释性因素生成,并且解散的表示学习从数据中获得这些因素。我们专注于紊乱的顺序数据表示,这可以在广泛的应用中有用,例如视频,演讲和股票市场。顺序数据中的因素分为动态和静态数据:动态因子是时间依赖的,静态因子是时间独立的。以前的模型在静态和动态因子之间的解散,通过显式建模潜在变量的前沿模拟不同时间依赖性的动态因子之间。然而,这些模型不能解开具有相同时间依赖性的动态因素之间的表示,例如解开机器人任务中的“拾取”和“投掷”。另一方面,Favae可以通过信息瓶颈原理解散多种动态因素,其中它不需要建模前沿。我们进行了实验,以表明Favae可以提取综合,视频和语音数据集的解除心性动态因素。

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