Selective Multi-Scale Feature Aggregation Framework for 3D Road Object Detection

Yizhou Du, Meiling Wang, Lin Zhao, Yufeng Yue

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

In intelligent transportation, 3D object detection is a key task for autonomous vehicles. It is necessary to consider the multi-scale features aggregation due to the complexity of the point cloud. Based on the perspective, a novel selective multi-scale feature aggregation framework is proposed, which has two modified backbone based on the OpenPCDet framework: Multi-Weights 2D Backbone and Feature Separation 3D Backbone. The former module contains a progressive fusion structure considering the characteristics of the Bird's Eye View (BEV) map in multi-category object detection, and the latter module processes and fuses the location information and the reflection intensity information separately based on the difference between them in raw point cloud. The experiments on KITTI dataset show the progress in multi-category object detection while achieving superior performance on the most common Car category, which reflects the effectiveness of the work.

Original languageEnglish
Title of host publication2023 42nd Chinese Control Conference, CCC 2023
PublisherIEEE Computer Society
Pages4738-4744
Number of pages7
ISBN (Electronic)9789887581543
DOIs
Publication statusPublished - 2023
Event42nd Chinese Control Conference, CCC 2023 - Tianjin, China
Duration: 24 Jul 202326 Jul 2023

Publication series

NameChinese Control Conference, CCC
Volume2023-July
ISSN (Print)1934-1768
ISSN (Electronic)2161-2927

Conference

Conference42nd Chinese Control Conference, CCC 2023
Country/TerritoryChina
CityTianjin
Period24/07/2326/07/23

Keywords

  • 3D Obeject Detection
  • Intelligent Transportation System
  • Multi-scale Feature Aggregation

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