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System and method for online deep learning in an ultra-low power consumption state

机译:超低功耗状态下的在线深度学习系统和方法

摘要

Described is a system and method for ultra-low power consumption state deep online learning. The system operates by filtering an input image to generate one or more feature maps. The one or more feature maps are divided into non-overlapping small regions with feature values in each small region pooled to generate decreased size feature maps. The decreased size feature maps are divided into overlapping patches which are joined together to form a collection of cell maps having connections to the decreased sized feature maps. The collection of cell maps are then divided into non-overlapping small regions, with feature values in each small region pooled to generate a decreased sized collection of cell maps. The decreased sized collection of cell maps are then mapped to a single cell, which results in a class label being generated as related to the input image based on the single cell.
机译:描述了一种用于超低功耗状态深度在线学习的系统和方法。该系统通过对输入图像进行滤波以生成一个或多个特征图来进行操作。将一个或多个特征图划分为非重叠的小区域,在每个小区域中合并特征值以生成尺寸减小的特征图。尺寸减小的特征图被分成重叠的小块,这些小块被连接在一起以形成具有与尺寸减小的特征图的连接的单元图的集合。然后将细胞图的集合划分为不重叠的小区域,并合并每个小区域中的特征值以生成尺寸减小的细胞图集合。然后将尺寸减小的单元格图集合映射到单个单元格,这导致基于单个单元格生成与输入图像相关的类标签。

著录项

  • 公开/公告号US10311341B1

    专利类型

  • 公开/公告日2019-06-04

    原文格式PDF

  • 申请/专利权人 HRL LABORATORIES LLC;

    申请/专利号US201615249849

  • 申请日2016-08-29

  • 分类号H03L7/26;G06K9/66;G06K9/62;G06K9/46;G06T7;G06N3/04;G06N3/08;G06T15/20;H03K4/50;G06T5/20;H04L9/12;H04L9;H04N19/156;G09G3/20;H03K3/03;G09G5;

  • 国家 US

  • 入库时间 2022-08-21 12:12:15

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