人工智能
计算机科学
分割
口译(哲学)
模式识别(心理学)
图像分割
卷积神经网络
像素
班级(哲学)
图像(数学)
相关性(法律)
尺度空间分割
扩展(谓词逻辑)
基于分割的对象分类
航程(航空)
语义解释
计算机视觉
复合材料
材料科学
程序设计语言
法学
政治学
作者
Kira Vinogradova,Alexandr Dibrov,Gene Myers
摘要
Convolutional neural networks have become state-of-the-art in a wide range of image recognition tasks. The interpretation of their predictions, however, is an active area of research. Whereas various interpretation methods have been suggested for image classification, the interpretation of image segmentation still remains largely unexplored. To that end, we propose SEG-GRAD-CAM, a gradient-based method for interpreting semantic segmentation. Our method is an extension of the widely-used Grad-CAM method, applied locally to produce heatmaps showing the relevance of individual pixels for semantic segmentation.
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