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Deep Reinforcement Learning Methods for Navigational Aids

机译:导航辅助的深度强化学习方法

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摘要

Navigation is one of the most complex daily activities we engage in. Partly due to its complexity, navigational abilities are vulnerable to many conditions including Topographical Agnosia, Alzheimer's Disease, and vision impairments. While navigation using solely vision remains a difficult problem in the field of assistive technology, emerging methods in Deep Reinforcement Learning and Computer Vision show promise in producing vision-based navigational aids for those with navigation impairments. To this effect, we introduce GraphMem, a Neural Computing approach to navigation tasks and compare it to several state of the art Neural Computing methods in a one-shot, 3D, first-person maze solving task. Comparing GraphMem to current methods in navigation tasks unveils insights into navigation and represents a first step towards employing these emerging techniques in navigational assistive technology.
机译:导航是我们从事的最复杂的日常活动之一。部分由于其复杂性,导航功能易受多种条件的影响,包括地形失常,阿尔茨海默氏病和视力障碍。尽管仅凭视觉进行导航仍然是辅助技术领域的难题,但深度强化学习和计算机视觉中的新兴方法显示出为有导航障碍的人生产基于视觉的导航辅助设备的希望。为此,我们引入了GraphMem,这是一种用于导航任务的神经计算方法,并将其与一次射击的3D第一人称迷宫解决任务中的几种先进的神经计算方法进行比较。将GraphMem与导航任务中的当前方法进行比较,揭示了对导航的见识,并代表了在导航辅助技术中采用这些新兴技术的第一步。

著录项

  • 来源
    《Smart multimedia》|2018年|66-75|共10页
  • 会议地点 Toulon(FR)
  • 作者单位

    School of Computing, Informatics, and Decision Systems Engineering, Arizona State University, Tempe, AZ 85281, USA;

    Georgia Tech Research Institute, 250 15th St. NW, Atlanta, GA, USA;

    Georgia Tech Research Institute, 250 15th St. NW, Atlanta, GA, USA;

    Georgia Tech Research Institute, 250 15th St. NW, Atlanta, GA, USA;

    School of Computing, Informatics, and Decision Systems Engineering, Arizona State University, Tempe, AZ 85281, USA;

    School of Computing, Informatics, and Decision Systems Engineering, Arizona State University, Tempe, AZ 85281, USA;

    School of Interactive Computing, Georgia Tech, 85 5th St. NW, Atlanta, GA, USA,Georgia Tech Research Institute, 250 15th St. NW, Atlanta, GA, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Navigation; Assistive technology; Reinforcement learning; Topographical agnosia;

    机译:导航;辅助技术;强化学习;地形失明;

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