上下文感知物联网系统开发的DSPL和强化学习方法

Amal Hallou, Tarik Fissaa, H. Hafiddi, M. Nassar
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引用次数: 0

摘要

物联网是一种互联设备的范式,这些设备能够进行通信和交换信息,以实现用户的需求。尽管物联网系统在过去几年中得到了扩展,但它们仍然面临着阻碍从中获得主要优势的挑战。其中一个挑战是自动使系统适应用户的上下文和偏好。为了解决这个问题,本文提出了一种方法来设计和开发物联网系统,使其行为适应其上下文,可以是用户或环境上下文。该方法基于动态软件产品线工程,采用马尔可夫过程设计系统的自适应方案,并采用强化学习算法实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A DSPL and Reinforcement Learning Approach for Context-Aware IoT Systems Development
The internet of things is a paradigm of interconnected devices able to communicate and exchange information to achieve users' requirements. In spite of their expansion in the last years, IoT systems still face challenges that hinder gaining major advantages from them. One of these challenges is to automatically adapt the system to the user's context and preferences. As a proposition to deal with this problem, this paper presents a methodology to design and develop IoT systems that adapt their behavior to their context, which can be a user or environmental context. This methodology is based on dynamic software product line engineering and uses Markov process to design the adaptation plan of the system and a reinforcement learning algorithm to implement it.
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