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SYSTEM AND METHOD FOR TIME-DEPENDENT MACHINE LEARNING ARCHITECTURE

机译:依赖时间的机器学习架构的系统和方法

摘要

Described in various embodiments herein is a technical solution directed to decomposition of time as an input for machine learning, and various related mechanisms and data structures. In particular, specific machines, computer-readable media, computer processes, and methods are described that are utilized to improve machine learning outcomes, including, improving accuracy, convergence speed (e.g., reduced epochs for training), and reduced overall computational resource requirements. A vector representation of continuous time containing a periodic function with frequency and phase-shift learnable parameters is used to decompose time into output dimensions for improved tracking of periodic behavior of a feature. The vector representation is used to modify time inputs in machine learning architectures.
机译:本文的各个实施例中描述了一种技术解决方案,其涉及时间分解作为机器学习的输入,以及各种相关的机制和数据结构。特别地,描述了用于改善机器学习结果的特定机器,计算机可读介质,计算机过程和方法,包括提高准确性,收敛速度(例如,减少了训练的时期)以及减少了总体计算资源需求。包含具有频率和相移可学习参数的周期函数的连续时间的矢量表示,可用于将时间分解为输出维,以改进对特征的周期性行为的跟踪。向量表示用于修改机器学习架构中的时间输入。

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