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环境感知框架:农业中基于视觉的场景理解算法的集成方法

Framework for environment perception: Ensemble method for vision-based scene understanding algorithms in agriculture.

作者信息

Mujkic Esma, Ravn Ole, Christiansen Martin Peter

机构信息

Automation and Control Group, Department of Electrical and Photonics Engineering, Technical University of Denmark, Kongens Lyngby, Denmark.

AGCO A/S, Randers, Denmark.

出版信息

Front Robot AI. 2023 Jan 12;9:982581. doi: 10.3389/frobt.2022.982581. eCollection 2022.

Abstract

The safe and reliable operation of autonomous agricultural vehicles requires an advanced environment perception system. An important component of perception systems is vision-based algorithms for detecting objects and other structures in the fields. This paper presents an ensemble method for combining outputs of three scene understanding tasks: semantic segmentation, object detection and anomaly detection in the agricultural context. The proposed framework uses an object detector to detect seven agriculture-specific classes. The anomaly detector detects all other objects that do not belong to these classes. In addition, the segmentation map of the field is utilized to provide additional information if the objects are located inside or outside the field area. The detections of different algorithms are combined at inference time, and the proposed ensemble method is independent of underlying algorithms. The results show that combining object detection with anomaly detection can increase the number of detected objects in agricultural scene images.

摘要

自主农业车辆的安全可靠运行需要先进的环境感知系统。感知系统的一个重要组成部分是基于视觉的算法,用于检测田间的物体和其他结构。本文提出了一种集成方法,用于在农业环境中组合语义分割、目标检测和异常检测这三个场景理解任务的输出。所提出的框架使用目标检测器来检测七个特定于农业的类别。异常检测器检测所有不属于这些类别的其他物体。此外,如果物体位于田间区域内或外,田间的分割图可用于提供额外信息。不同算法的检测结果在推理时进行组合,且所提出的集成方法独立于底层算法。结果表明,将目标检测与异常检测相结合可以增加农业场景图像中检测到的物体数量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/897f/9878339/6b1cffde4b66/frobt-09-982581-g001.jpg

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