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Obstacle Detection as a Safety Alert in Augmented Reality Models by the Use of Deep Learning Techniques

机译:通过使用深度学习技术将障碍物检测作为增强现实模型中的安全警报

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摘要

Augmented reality (AR) is becoming increasingly popular due to its numerous applications. This is especially evident in games, medicine, education, and other areas that support our everyday activities. Moreover, this kind of computer system not only improves our vision and our perception of the world that surrounds us, but also adds additional elements, modifies existing ones, and gives additional guidance. In this article, we focus on interpreting a reality-based real-time environment evaluation for informing the user about impending obstacles. The proposed solution is based on a hybrid architecture that is capable of estimating as much incoming information as possible. The proposed solution has been tested and discussed with respect to the advantages and disadvantages of different possibilities using this type of vision.
机译:增强现实(AR)由于其众多的应用而变得越来越流行。这在游戏,医学,教育以及其他支持我们日常活动的领域中尤其明显。此外,这种计算机系统不仅可以改善我们的视野和对周围世界的感知,还可以增加其他元素,修改现有元素并提供更多指导。在本文中,我们专注于解释基于现实的实时环境评估,以告知用户即将发生的障碍。提出的解决方案基于一种混合架构,该架构能够估计尽可能多的传入信息。已针对使用此类型视觉的各种可能性的优缺点进行了测试和讨论。

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