业务潜空间

Scott H. Hawley, Austin R. Tackett
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引用次数: 0

摘要

我们研究了通过自我监督学习来构建潜空间,以支持有语义的操作。与操作放大器类似,这些 "操作潜空间"(OpLaS)不仅能展示聚类等语义结构,还能支持具有内在语义的常见转换操作。有些操作潜空间是在实现某个(其他)自我监督学习目标的过程中 "无意 "产生的,在空间中的点关系中发现了无意但仍然有用的属性。其他空间可能是由开发人员 "有意 "构建的,他们通过某些类型的聚类或转换来产生所需的结构。我们将重点放在通过自监督学习有意创建操作性空间上,包括通过新颖的 "FiLMR "层引入旋转算子,这可用于增强某些音乐结构中的对称性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Operational Latent Spaces
We investigate the construction of latent spaces through self-supervised learning to support semantically meaningful operations. Analogous to operational amplifiers, these "operational latent spaces" (OpLaS) not only demonstrate semantic structure such as clustering but also support common transformational operations with inherent semantic meaning. Some operational latent spaces are found to have arisen "unintentionally" in the progress toward some (other) self-supervised learning objective, in which unintended but still useful properties are discovered among the relationships of points in the space. Other spaces may be constructed "intentionally" by developers stipulating certain kinds of clustering or transformations intended to produce the desired structure. We focus on the intentional creation of operational latent spaces via self-supervised learning, including the introduction of rotation operators via a novel "FiLMR" layer, which can be used to enable ring-like symmetries found in some musical constructions.
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