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Spiking Neural Networks for Crop Yield Estimation Based on Spatiotemporal Analysis of Image Time Series

机译:基于图像时间序列时空分析的穗神经网络作物产量估算

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This paper presents spiking neural networks (SNNs) for remote sensing spatiotemporal analysis of image time series, which make use of the highly parallel and low-power-consuming neuromorphic hardware platforms possible. This paper illustrates this concept with the introduction of the first SNN computational model for crop yield estimation from normalized difference vegetation index image time series. It presents the development and testing of a methodological framework which utilizes the spatial accumulation of time series of Moderate Resolution Imaging Spectroradiometer 250-m resolution data and historical crop yield data to train an SNN to make timely prediction of crop yield. The research work also includes an analysis on the optimum number of features needed to optimize the results from our experimental data set. The proposed approach was applied to estimate the winter wheat (Triticum aestivum L.) yield in Shandong province, one of the main winter-wheat-growing regions of China. Our method was able to predict the yield around six weeks before harvest with a very high accuracy. Our methodology provided an average accuracy of 95.64%, with an average error of prediction of 0.236 t/ha and correlation coefficient of 0.801 based on a nine-feature model.
机译:本文提出了用于图像时间序列遥感时空分析的尖峰神经网络(SNN),它利用了高度并行和低功耗的神经形态硬件平台成为可能。本文通过引入第一个用于从归一化差异植被指数图像时间序列估算作物产量的SNN计算模型来说明这一概念。它提出了一种方法框架的开发和测试,该框架利用中分辨率成像光谱仪250米分辨率数据和历史农作物产量数据的时间序列的空间累积来训练SNN,以便及时预测农作物产量。研究工作还包括对最佳数量的功能进行分析,以优化我们的实验数据集的结果。该方法被用于估算山东省的冬小麦(Triticum aestivum L.)产量,山东省是中国主要的冬小麦种植区之一。我们的方法能够非常准确地预测收割前六周的产量。我们的方法提供了9个特征模型,平均准确度为95.64%,平均预测误差为0.236 t / ha,相关系数为0.801。

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