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题名

RMS: Real-time Motion Segmentation over the Internet of Vehicles

作者
DOI
发表日期
2023
ISSN
2155-5044
ISBN
979-8-3503-2153-1
会议录名称
卷号
2023-June
页码
1-7
会议日期
14-16 June 2023
会议地点
Beijing, China
摘要
In the context of autonomous driving, moving objects such as vehicles and pedestrians are of critical importance as they primarily influence the maneuvering and braking of cars. Unfortunately, due to the limited detection range of sensors, some distant and blocked objects cannot be detected, leading to slow responses when some unexpected situations occur during driving. To address this problem, a real-time motion segmentation multi-task model (RMS), running on an individual vehicle, is introduced to provide motion segmentation of moving objects within its field of view. RMS consists of a shared encoder, a multi-modal fusion module, and a dual decoder. An enhanced High Definition (HD) map constructed with the proposed RMS in line with the recommendations of the 3rd Generation Partnership Project (3GPP) Vehicle-to-everything (V2X) communication standard is produced. Extensive experiments demonstrate how RMS outperforms existing state-of-the-art motion segmentation methods in terms of multiple metrics, including mean Intersection over Union (mIoU). Additionally, Internet of Vehicles (IoV) simulation experiments show how the time required to update the map is better than the times achieved when using other methods.
关键词
学校署名
第一
相关链接[IEEE记录]
收录类别
EI入藏号
20233614670792
EI主题词
Digital television ; Maneuverability ; Motion analysis ; Object detection ; Vehicle to Everything ; Vehicle to vehicle communications
EI分类号
Highway Transportation:432 ; Radio Systems and Equipment:716.3 ; Television Systems and Equipment:716.4 ; Data Processing and Image Processing:723.2 ; Robot Applications:731.6
来源库
IEEE
全文链接https://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=10211233
引用统计
被引频次[WOS]:0
成果类型会议论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/559211
专题南方科技大学
作者单位
1.Institue of Future Networks, Southern University of Science and Technology, Shenzhen, China
2.Department of Broadband Communication, Peng Cheng Laboratory, Shenzhen, China
3.Department of Computer and Information Sciences, Northumbria University, Newcastle, UK
4.School of Electronic Engineering, Dublin City University, Dublin, Ireland
第一作者单位南方科技大学
第一作者的第一单位南方科技大学
推荐引用方式
GB/T 7714
Lei Zhan,Kai Hu,Longhao Zou,et al. RMS: Real-time Motion Segmentation over the Internet of Vehicles[C],2023:1-7.
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