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Deep Interpretation of Parkland Environment for Autonomous Landscaping Robot for the Green Smart City

机译:对绿色智能城市自主绿化机器人的绿地环境的深刻解读

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In the past decade, making the cities green and environmentally friendly is becoming a major issue for many countries around the world. The green city is an urban environment in which the parklands and natural habitats are integrated into the living and the working space of the communities. This significant increase in the scale of parklands in the green cities requires autonomous landscaping. In this paper, a computer vision system for an autonomous landscaping robot which is capable of seeding various types of grass and designing patterns in the lawns is developed. The proposed robotic platform uses deep convolutional neural networks for finding the required patches for the replanting of the grass and the obstacle avoidance for the robot. A dataset of real parkland environment is collected and the proposed vision system is evaluated for various scenarios. The experimental results show that the proposed vision system is capable of operating in complex parkland areas.
机译:在过去的十年中,使城市绿色环保对世界上许多国家而言已成为一个主要问题。绿色城市是一种城市环境,其中的绿地和自然栖息地已融入社区的生活和工作空间。绿色城市中公园面积的显着增加需要自主美化环境。在本文中,开发了一种用于景观美化机器人的计算机视觉系统,该系统能够在草坪上播种各种类型的草并设计图案。所提出的机器人平台使用深层卷积神经网络来找到用于植草和机器人避障的必要补丁。收集了真实公园环境的数据集,并针对各种场景评估了拟议的视觉系统。实验结果表明,所提出的视觉系统能够在复杂的公园地区运行。

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