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A similarity-guided segmentation model for garbage detection under road scene.

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Area of Science:

  • Computer Vision
  • Deep Learning
  • Artificial Intelligence

Background:

  • Urban street cleaning generates significant energy waste.
  • Intelligent control of road sweepers is needed to optimize efficiency.
  • Accurate garbage segmentation is crucial for automated cleaning systems.

Purpose of the Study:

  • To develop an efficient deep learning model for segmenting seven categories of road garbage.
  • To improve the speed and accuracy of garbage detection for intelligent road sweepers.
  • To enable effective segmentation with limited annotated data.

Main Methods:

  • A lightweight deep learning model with a feature pyramid attention (FPA) module in the decoder for multi-level feature integration.
  • Incorporation of a similarity guidance (SG) module using metric learning to guide segmentation results.
  • Model parameters under 3 million, achieving over 65 FPS on an RTX 2070 GPU.

Main Results:

  • Achieved an overall mean intersection-over-union (mIoU) of 0.87 and 0.67 on two custom garbage datasets.
  • Demonstrated a competitive trade-off between speed and accuracy.
  • Enabled acceptable category-balanced segmentation with fewer than 20 annotated images per category when using the SG module.

Conclusions:

  • The proposed deep learning method offers an efficient solution for road garbage segmentation.
  • The model's lightweight design and advanced modules (FPA, SG) enhance performance and data efficiency.
  • This technology can contribute to reducing energy waste in urban street cleaning through intelligent road sweeper control.