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A Method to Recognize and Count Leaves on the Surface of a River Using User's Knowledge about Color of Leaves

机译:使用用户关于叶子颜色的知识识别和计数河表面上的叶子的方法

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This paper proposes a recognition and count method of leaves on the surface of a river to be used in mangrove ecosystem monitoring. Conventionally counting leaves required considerable manual labor for precise monitoring of material flow in the ecosystem. Therefore an efficient counting method was needed. Our method automatically recognizes and counts the number of floating leaves in recorded video using color and motion features. The color feature is represented by 3 dimensional histogram of a color space. We have developed a user interface based on the interactive machine learning model to acquire the color feature from video images. The user can easily produce a huge number of sample data to extract the color feature by the user interface in the same way as coloring a picture. For the motion feature, speed and acceleration of the targets are used. The counting method proposed in this paper has been applied to three videos (total five hours) which recorded about 20,000 leaves, and high recall and precision rates of 96% and 94%, respectively, have been achieved.
机译:本文提出了在红树林生态系统监测中使用河流表面的叶子的识别和计数方法。传统上计数留下需要大量的体力劳动,以确切地监测生态系统中的材料流动。因此,需要一种有效的计数方法。我们的方法使用颜色和运动功能自动识别并计算录制视频中的浮动叶子的数量。颜色特征由3维直方图表示颜色空间。我们开发了一种基于交互式机器学习模型的用户界面,以获取视频图像的颜色特征。用户可以轻松地产生大量的样本数据以通过与彩色图像的方式以与彩色相同的方式提取颜色特征。对于运动特征,使用速度和加速度。本文提出的计数方法已应用于三个视频(共5小时),记录约20,000个叶子,并且分别为96%和94%的精确率为96%和94%。

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