基于WCCA的弱监督道路垃圾量化系统

Rongbo Fan, Xiaobo Fan, Hongliang Sun, Jun Chen, Jianhua Yang
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引用次数: 0

摘要

机械化扫路车是城市基础设施不可缺少的组成部分。然而,在提高工作效率的同时,其大功率除尘器的高能耗和噪声污染已成为需要解决的新问题。为实现集尘功率的自适应控制,提出了一种基于视觉的扫路机智能功率控制系统。该系统利用提出的权重交叉关注(Weight cross Attention, WCCA)模块,嵌入到Mobile V2轻量级图像级分类网络中,实现对道路垃圾区域的弱监督逐像素分割,最终得到道路垃圾量化结果。利用基于道路垃圾图像数据分布的先验损失函数,WCCA可以将模型的收敛方向引导到正确的目标区域。最后,采用两种最先进的比较算法来证明所提出算法的优越性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Weakly Supervised Road Garbage Quantification System Based on WCCA
Mechanized road sweeping vehicles are an indispensable part of urban infrastructure. However, while improving work efficiency, the high energy consumption and noise pollution of their high-power dust collectors have become new problems that need to be solved. To achieve adoptive control of dust collection power, we propose a vision-based road sweeper intelligent power control system. The system use the proposed Weight Criss-Cross Attention (WCCA) module, embed into the Mobile V2 light-weight image-level classification network, to achieve weakly supervised pixel-by-pixel segmentation of road garbage area, and finally get the road garbage quantification result. With the proposed prior loss function based on the distribution of road garbage image data, WCCA can guide the convergence direction of the model to the correct target area. Finally, two state-of -the-art comparison algorithms are used to prove the superiority of the proposed algorithm.
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