Real Time Implementation of a Vision-Based UAV Detection and Tracking System for UAV-Navigation Aiding

Author(s):  
Natalie Frietsch ◽  
Justus Seibold ◽  
Philipp Crocoll ◽  
Michael Weiss ◽  
Gert Trommer
2021 ◽  
Vol 2021 ◽  
pp. 1-16
Author(s):  
Prabu Mohandas ◽  
Jerline Sheebha Anni ◽  
Rajkumar Thanasekaran ◽  
Khairunnisa Hasikin ◽  
Muhammad Mokhzaini Azizan

Object detection in images and videos has become an important task in computer vision. It has been a challenging task due to misclassification and localization errors. The proposed approach explored the feasibility of automated detection and tracking of elephant intrusion along forest border areas. Due to an alarming increase in crop damages resulted from movements of elephant herds, combined with high risk of elephant extinction due to human activities, this paper looked into an efficient solution through elephant’s tracking. The convolutional neural network with transfer learning is used as the model for object classification and feature extraction. A new tracking system using automated tubelet generation and anchor generation methods in combination with faster RCNN was developed and tested on 5,482 video sequences. Real-time video taken for analysis consisted of heavily occluded objects such as trees and animals. Tubelet generated from each video sequence with intersection over union (IoU) thresholds have been effective in tracking the elephant object movement in the forest areas. The proposed work has been compared with other state-of-the-art techniques, namely, faster RCNN, YOLO v3, and HyperNet. Experimental results on the real-time dataset show that the proposed work achieves an improved performance of 73.9% in detecting and tracking of objects, which outperformed the existing approaches.


2013 ◽  
Vol 373-375 ◽  
pp. 547-551 ◽  
Author(s):  
Lve Huang ◽  
Hua Biao Yan ◽  
Lu Min Tan

The Surendra background update and novel fast model matching were mixed which can reduce the matching region. A Yuntai tracking system was present for people tracking, the fuzzy control tracking based on polar coordinates was also present, which makes the tracking of people object always in the video range and the Yuntai neednt move frequency. Results indicate that the algorithm is superior to the previously published variants of the model matching and the Yuntai system track people in real time.


2008 ◽  
Author(s):  
Zhanfeng Yue ◽  
Pramod Lakshmi Narasimha ◽  
Pankaj Topiwala

2019 ◽  
Vol 85 ◽  
pp. 410-420 ◽  
Author(s):  
Mauro Fernández-Sanjurjo ◽  
Brais Bosquet ◽  
Manuel Mucientes ◽  
Víctor M. Brea

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