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小样本条件下的公路建设项目场景识别与安全预警

周志宇 王天一 左治江 冀虹 杨刚 任明龙 高智

江汉大学学报(自然科学版)2024,Vol.52Issue(1):80-90,11.
江汉大学学报(自然科学版)2024,Vol.52Issue(1):80-90,11.DOI:10.16389/j.cnki.cn42-1737/n.2024.01.009

小样本条件下的公路建设项目场景识别与安全预警

Scene Recognition and Safety Precaution of Highway Construction Projects Under Few-shot Conditions

周志宇 1王天一 1左治江 2冀虹 1杨刚 3任明龙 4高智1

作者信息

  • 1. 武汉大学 遥感信息工程学院,湖北 武汉 430079
  • 2. 江汉大学 智能制造学院,湖北 武汉 430056
  • 3. 中交路桥建设有限公司,北京 101107
  • 4. 广州市高速公路有限公司,广东 广州 510030
  • 折叠

摘要

Abstract

The shortage of systematic and complete highway sample datasets makes it difficult for the traditional deep learning paradigm to meet the application requirements.Therefore,to address this problem,this paper proposed a two-stage scene recognition framework under small-sample conditions,with easily accessible remote sensing data for training tests,and then finally applied to highway scenes.The small-sample learning started with obtaining a priori knowledge from a large-scale base class dataset,learning the base model,and then generalizing the model to new classes that did not appear in the training process or had few training samples.In the first stage of the framework,we introduced a multi-task model to learn the intrinsic features across semantic classes from two auxiliary tasks,and then in the second stage,we implemented joint prediction of labeled and unlabeled data based on label propagation.Extensive experiments showed that the scene recognition method proposed in this article achieved a classification accuracy of 80.58%,which was an improvement of 13.24% and 10.69% compared to SIB and CAN+T,respectively.It performed excellently in the test dataset with a classification accuracy of 69.37%.This method can be used for scene recognition and intelligent warning tasks for engineering vehicle driving safety in various highway construction projects.

关键词

小样本场景分类/公路建设/安全巡检/遥感影像

Key words

few-shot scene classification/road construction/safety inspection/remote sensing image

分类

交通工程

引用本文复制引用

周志宇,王天一,左治江,冀虹,杨刚,任明龙,高智..小样本条件下的公路建设项目场景识别与安全预警[J].江汉大学学报(自然科学版),2024,52(1):80-90,11.

基金项目

国家自然科学基金重大项目(42192580,42192583) (42192580,42192583)

江汉大学学报(自然科学版)

1673-0143

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