Interactive intelligent agents with creative minds: Experiments with mobile robots in cooperating tasks by using machine learning

M. A. Qayum, N. Nahar, N. Siddique, Z. Saifullah
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Abstract

In this paper, we present an intelligent system where agents can co-ordinate creative tasks through machine learning and cooperation. For machine learning, we used commonly used pattern recognition algorithm - Principal Component Analysis (PCA). Based on recognition, we plan a task that is performed by multiple intelligent agents. In our case, task is to draw a pattern or perform a creative art by agents. The task action is divided into three phases: obtaining a design, composing a mathematical model and and performing the task by agents. In case of agents co-ordination, various feedback techniques using wireless sensors and on-board sensors are used. As for proof of concept (POC), a flower pattern is detected, which is painted on a canvas by using mobile robots. Also, person's identity and mood is detected and then a creative art is performed by mobile robots to improve the mood.
具有创造性思维的交互式智能代理:利用机器学习对移动机器人进行协作任务的实验
在本文中,我们提出了一个智能系统,其中代理可以通过机器学习和合作来协调创造性任务。对于机器学习,我们使用了常用的模式识别算法-主成分分析(PCA)。基于识别,我们计划一个由多个智能代理执行的任务。在我们的例子中,任务是由代理绘制图案或执行创造性艺术。任务动作分为三个阶段:获得设计、建立数学模型和由agent执行任务。在代理协调的情况下,使用了各种反馈技术,包括无线传感器和车载传感器。在概念验证(POC)方面,检测到花卉图案,并使用移动机器人将其绘制在画布上。此外,人们的身份和情绪被检测出来,然后由移动机器人进行创造性的艺术表演,以改善情绪。
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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