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FINE-GRAINED MAIZE CULTIVAR IDENTIFICATION USING FILTER-SPECIFIC CONVOLUTIONAL ACTIVATIONS

机译:使用滤过特异性卷积激活的细粒玉米品种鉴定

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Cultivar identification is an important aspect in agriculture and also a typical task of fine-grained visual categorization (FGVC). In comparison with other common topics in FGVC, studies on this problem are somewhat lagged and limited. In this paper, targeting four Chinese maize cultivars of Jundan No.20, Wuyue No.3, Nongda No.108, and Zhengdan No.958, we first consider the problem of identifying the maize cultivar based on its tassel characteristics. Technically, an effective convolutional neural network (CNN) based feature encoding pipeline that allows integration of deep CNN based column feature extraction, filter-specific Fisher vector (FV) encoding and mutual information (MI) based filter selection is proposed to better address this problem. In particular, a novel fine-grained maize cultivar identification dataset termed MCI-4000 that contains 4000 images is first constructed by our team. Experimental results demonstrate that our method outperforms other stat-of-the-art approaches by at least 5% in accuracy. We also show that, there exists redundant filters in the last convolutional layer, and high accuracy can be achieved with only relatively low-dimensional column features and a small number of Gaussian components in FV.
机译:品种鉴定是农业中的一个重要方面,也是细粒度视觉分类(FGVC)的典型任务。与FGVC中的其他常见主题相比,关于这个问题的研究有些滞后和有限。本文瞄准了湖南20号湖南20号中国玉米品种,Nongda No.108和郑丹No.958,首先考虑基于其流苏特征识别玉米品种的问题。技术上,基于有效的卷积神经网络(CNN)的特征编码流水线,允许集成基于CNN的柱特征提取,滤波器特定的Fisher载体(FV)编码和相互信息(MI)基于滤波器选择,以更好地解决这个问题。特别是,一种新的细粒玉米品种识别数据集被称为4000个图像的MCI-4000由我们的团队构建。实验结果表明,我们的方法以至少5%的准确性优于其他现有技术。我们还表明,在最后的卷积层中存在冗余滤波器,并且只有相对低维的列特征和FV中少量高斯组件可以实现高精度。

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