Real-time machine learning in embedded software and hardware platforms

Q3 Computer Science
D. Mulvaney, I. Sillitoe, E. Swere, Yang Wang, Zhenhuan Zhu
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引用次数: 3

Abstract

This paper describes on-going research work into real-time machine learning using embedded software and reconfigurable hardware. The main focus of the work is to develop real-time incremental learning methods particularly targeted at demonstration in mobile robot environments. Three main areas are described. The first represents reactive robot navigation knowledge using a novel frequency table technique whose memory requirement is known a priori. The second area investigates a Genetic Algorithm (GA) method that combines planning and reactive approaches to allow navigation to proceed even in the face of time constraints. In the third area we are developing novel hardware-based machine learning systems suitable for implementation in reconfigurable platforms.
嵌入式软硬件平台的实时机器学习
本文描述了使用嵌入式软件和可重构硬件进行实时机器学习的研究工作。这项工作的主要重点是开发实时增量学习方法,特别是针对移动机器人环境中的演示。本文描述了三个主要方面。第一种方法是使用一种新的频率表技术来表示响应式机器人的导航知识,这种技术的记忆需求是先验已知的。第二个领域研究了一种遗传算法(GA)方法,该方法结合了规划和反应方法,即使在面临时间限制的情况下,也能使导航继续进行。在第三个领域,我们正在开发新的基于硬件的机器学习系统,适合在可重构平台中实现。
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来源期刊
CiteScore
1.30
自引率
0.00%
发文量
11
期刊介绍: Intelligent systems refer broadly to computer embedded or controlled systems, machines and devices that possess a certain degree of intelligence. IJISTA, a peer-reviewed double-blind refereed journal, publishes original papers featuring innovative and practical technologies related to the design and development of intelligent systems. Its coverage also includes papers on intelligent systems applications in areas such as manufacturing, bioengineering, agriculture, services, home automation and appliances, medical robots and robotic rehabilitations, space exploration, etc. Topics covered include: -Robotics and mechatronics technologies- Artificial intelligence and knowledge based systems technologies- Real-time computing and its algorithms- Embedded systems technologies- Actuators and sensors- Mico/nano technologies- Sensing and multiple sensor fusion- Machine vision, image processing, pattern recognition and speech recognition and synthesis- Motion/force sensing and control- Intelligent product design, configuration and evaluation- Real time learning and machine behaviours- Fault detection, fault analysis and diagnostics- Digital communications and mobile computing- CAD and object oriented simulations.
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