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A Perspective-Aware Cyclist Image Generation Method for Perception Development of Autonomous Vehicles

  • Beike Yu
  • , Dafang Wang*
  • , Xing Cui
  • , Bowen Yang
  • *Corresponding author for this work
  • School of Mechatronics Engineering, Harbin Institute of Technology
  • China North Artificial Intelligence & Innovation Research Institute

Research output: Contribution to journalArticlepeer-review

Abstract

Realistic urban scene generation has been extensively studied for the sake of the development of autonomous vehicles. However, the research has primarily focused on the synthesis of vehicles and pedestrians, while the generation of cyclists is rarely presented due to its complexity. This paper proposes a perspective-aware and realistic cyclist generation method via object retrieval. Images, semantic maps, and depth labels of objects are first collected from existing datasets, categorized by class and perspective, and calculated by an algorithm newly designed according to imaging principles. During scene generation, objects with the desired class and perspective are retrieved from the collection and inserted into the background, which is then sent to the modified 2D synthesis model to generate images. This pipeline introduces a perspective computing method, utilizes object retrieval to control the perspective accurately, and modifies a diffusion model to achieve high fidelity. Experiments show that our proposal gets a 2.36 Fréchet Inception Distance, which is lower than the competitive methods, indicating a superior realistic expression ability. When these images are used for augmentation in the semantic segmentation task, the performance of ResNet-50 on the target class can be improved by 4.47%. These results demonstrate that the proposed method can be used to generate cyclists in corner cases to augment model training data, further enhancing the perception capability of autonomous vehicles and improving the safety performance of autonomous driving technology.

Original languageEnglish
Pages (from-to)2687-2702
Number of pages16
JournalComputers, Materials and Continua
Volume82
Issue number2
DOIs
StatePublished - 2025
Externally publishedYes

Keywords

  • Realistic cyclist generation
  • artificial intelligence
  • autonomous vehicle
  • perspective-aware image synthesis

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