全色胶片
计算机科学
树(集合论)
人工智能
卷积神经网络
分割
集合(抽象数据类型)
树木年代学
深度学习
模式识别(心理学)
图像(数学)
机器学习
地理
数学
考古
数学分析
程序设计语言
作者
Sheng Wang,Chaoyue Zhao,Yun Su,Kangjian Cao,Chao Mou,Fu Xu
摘要
Tree-ring data are pivotal for decoding the age and growth patterns of trees, reflecting the impact of environmental factors over time. Addressing the significant shortcomings of traditional, labour-intensive and resource-demanding methods, we propose an innovative automated technique that utilizes panchromatic images and deep learning for measuring tree rings. The method utilizes convolutional neural networks to enhance image quality, precisely delineate tree rings through segmentation and perform ring counting and width calculation in the post-processing stage. We compiled an extensive data set from diverse sources, including Beijing Forestry University and the Summer Palace, to train our algorithm. The performance of our method was validated empirically, demonstrating its potential to transform tree-ring analysis and provide deeper insights into ecological and climatological research.
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