Object Detection Using Region-Conventional Neural Network (RCNN) and OpenCV

K. Archana, Kamakshi Prasad
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Abstract

Object detection is used in almost every real-world application such as autonomous traversal, visual system, face detection, and even more. This paper aims at applying object detection technique to assist visually impaired people. It helps visually impaired people to know about the objects around them to enable them to walk free. A prototype has been implemented on a Raspberry PI3 using OpenCV libraries, and satisfactory performance is achieved. In this paper, a detailed review has been carried out on object detection using region-conventional neural network (RCNN)-based learning systems for a real-world application. This paper explores the various process of detecting objects using various object detections methods and walks through detection including a deep neural network for SSD implemented using Caffee model.
基于区域常规神经网络(RCNN)和OpenCV的目标检测
物体检测几乎用于每个现实世界的应用程序,例如自主遍历,视觉系统,人脸检测等等。本文旨在将目标检测技术应用于视障人士的视觉辅助。它帮助视障人士了解周围的物体,使他们能够自由行走。使用OpenCV库在Raspberry PI3上实现了一个原型,并取得了令人满意的性能。本文详细介绍了基于区域-常规神经网络(RCNN)的学习系统在实际应用中的目标检测。本文探讨了使用各种对象检测方法检测对象的各种过程,并介绍了使用Caffee模型实现的SSD深度神经网络的检测。
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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