纺织学报 ›› 2024, Vol. 45 ›› Issue (05): 60-69.doi: 10.13475/j.fzxb.20220902201
胡旭东1, 汤炜1, 曾志发2, 汝欣1, 彭来湖1, 李建强3(), 王博平2
HU Xudong1, TANG Wei1, ZENG Zhifa2, RU Xin1, PENG Laihu1, LI Jianqiang3(), WANG Boping2
摘要:
为解决纬编针织物组织结构自动分类时现有方法计算量偏大的问题,基于轻量化卷积神经网络,提出了一种改进的纬编针织物组织结构分类方法。采集纬编针织物组织双面的图像,以准确判断其结构类型。在特征提取步骤中,引入了注意力机制模块,修正各个层次特征在通道域和空间域的权重。构建的双分支网络架构能并行提取织物双面的特征信息。在分类阶段,采用了串行策略来融合高维特征向量,以确定纬编针织物组织所属类别。使用准确率、宏精确率、宏召回率以及宏F1评估模型的性能,并统计了参数量和计算复杂度衡量模型的资源消耗。实验结果显示,对于纬编针织物特殊的结构特点,双分支网络架构具有很好的适应性。改进后的模型增强了不同组织间的特征区分度,在受到角度旋转、尺度改变、光照条件变化等干扰下,本文方法的分类准确率可达99.51%,且保持了较小的资源消耗。
中图分类号:
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