判别式
遗忘
计算机科学
修剪
人工智能
班级(哲学)
可视化
特征(语言学)
上下文图像分类
模式识别(心理学)
频道(广播)
机器学习
图像(数学)
语言学
生物
计算机网络
农学
哲学
作者
Junxiao Wang,Song Guo,Xin Xie,Heng Qi
标识
DOI:10.1145/3485447.3512222
摘要
We explore the problem of selectively forgetting categories from trained CNN classification models in federated learning (FL). Given that the data used for training cannot be accessed globally in FL, our insights probe deep into the internal influence of each channel. Through the visualization of feature maps activated by different channels, we observe that different channels have a varying contribution to different categories in image classification.
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