计算机科学 ›› 2024, Vol. 51 ›› Issue (11A): 240300095-8.doi: 10.11896/jsjkx.240300095
王坤阳1, 刘洋1, 业宁1, 张凯2
WANG Kunyang1, LIU Yang1, YE Ning1, ZHANG Kai2
摘要: 提出一种新的遥感图像道路提取框架,旨在利用从道路边缘检测中获得的知识来提高道路提取的准确性。研究中引入了一个融合多尺度信息和视觉注意力机制的多尺度视觉注意力模块,并构建了一个级联特征融合模块以集成网络在不同尺度上的预测结果。在此基础上,构建了一个包含编码器和解码器的多尺度视觉注意网络(MSVANet)。同时,提出一个多任务学习框架,该框架结合了MSVANet,并采用粒子群优化算法对多任务学习框架的两个学习率超参数的自动选取进行优化。RNBD数据集的训练和测试结果表明,所提方法在各种分割精度指标和泛化能力方面均优于其他道路提取方法。
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