Hyperspectral imaging predicts yield and nitrogen content in grass-legume polyculturesem
收藏DataCite Commons2022-06-29 更新2025-04-16 收录
下载链接:
https://adelaide.figshare.com/articles/dataset/Hyperspectral_imaging_predicts_yield_and_nitrogen_content_in_grass-legume_polyculturesem/20173877
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资源简介:
predict_nutrient.py demonstrates PLSR modelling using Bootstrap validation and it was tested in Python 3.6. The folder "organised_data" includes all of the pre-processed data, including reflectance data and laboratory-measured data. The program conducts the following parts: 1. Trains a PLSR model using the original data and then validates the model using the original data. The validation results will be saved in a .xlsx file with column names of 'xxx_full'. 2. Trains a PLSR model using the Bootstrap data (re-sampling with replacement) and then validates the model using the original data. The validation results will be saved in the .xlsx file with column names of 'xxx_bs. 3. Trains a PLSR model using the Bootstrap data and then validates the model using the Bootstrap data. The validation results will be saved in the .xlsx file with column names 'xxx_a'.
提供机构:
The University of Adelaide
创建时间:
2022-06-29



