Machine learning and Sensor-Based Multi-Robot System with Voice Recognition for Assisting the Visually Impaired

Shirley C P, K. Rane, Kolli Himantha Rao, Bradley Bright B, Prashant Agrawal, Neelam Rawat
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Abstract

Navigating through an environment can be challenging for visually impaired individuals, especially when they are outdoors or in unfamiliar surroundings. In this research, we propose a multi-robot system equipped with sensors and machine learning algorithms to assist the visually impaired in navigating their surroundings with greater ease and independence. The robot is equipped with sensors, including Lidar, proximity sensors, and a Bluetooth transmitter and receiver, which enable it to sense the environment and deliver information to the user. The presence of obstacles can be detected by the robot, and the user is notified through a Bluetooth interface to their headset. The robot's machine learning algorithm is generated using Python code and is capable of processing the data collected by the sensors to make decisions about how to inform the user about their surroundings. A microcontroller is used to collect data from the sensors, and a Raspberry Pi is used to communicate the information to the system. The visually impaired user can receive instructions about their environment through a speaker, which enables them to navigate their surroundings with greater confidence and independence. Our research shows that a multi-robot system equipped with sensors and machine learning algorithms can assist visually impaired individuals in navigating their environment. The system delivers the user with real-time information about their surroundings, enabling them to make informed decisions about their movements. Additionally, the system can replace the need for a human assistant, providing greater independence and privacy for the visually impaired individual. The system can be improved further by incorporating additional sensors and refining the machine learning algorithms to enhance its functionality and usability. This technology has the possible to greatly advance the value of life for visually impaired individuals by increasing their independence and mobility. It has important implications for the design of future assistive technologies and robotics.
辅助视障人士语音识别的机器学习和基于传感器的多机器人系统
对于视障人士来说,在环境中导航是一项挑战,尤其是当他们在户外或不熟悉的环境中时。在这项研究中,我们提出了一个配备传感器和机器学习算法的多机器人系统,以帮助视障人士更轻松、更独立地在周围环境中导航。该机器人配备了传感器,包括激光雷达、接近传感器、蓝牙发射器和接收器,使其能够感知环境并向用户传递信息。机器人可以检测到障碍物的存在,并通过蓝牙接口通知用户。机器人的机器学习算法是用Python代码生成的,能够处理传感器收集的数据,以决定如何告知用户周围的环境。微控制器用于从传感器收集数据,树莓派用于将信息传递给系统。视力受损的用户可以通过扬声器接收有关周围环境的指示,这使他们能够更加自信和独立地在周围环境中导航。我们的研究表明,配备传感器和机器学习算法的多机器人系统可以帮助视障人士在他们的环境中导航。该系统向用户提供有关周围环境的实时信息,使他们能够对自己的行动做出明智的决定。此外,该系统可以取代人工助理,为视障人士提供更大的独立性和隐私。该系统可以通过加入额外的传感器和改进机器学习算法来进一步改进,以增强其功能和可用性。这项技术有可能通过提高视障人士的独立性和行动能力,大大提高他们的生活价值。这对未来辅助技术和机器人的设计具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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