NILM

所属分类:数值算法/人工智能
开发工具:Jupyter Notebook
文件大小:2275KB
下载次数:1
上传日期:2019-09-03 15:41:45
上 传 者sh-1993
说明:  NILM,我们的MPS 2019论文的代码,题为“基于奇次谐波电流矢量的NILM机器学习方法”,
(Code for our MPS 2019 paper entitled "A Machine Learning Approach for NILM based on Odd Harmonic Current Vectors" ,)

文件列表:
code (0, 2019-09-03)
code\classification.ipynb (49957, 2019-09-03)
code\new_house_classification.ipynb (1145600, 2019-09-03)
datasets (0, 2019-09-03)
datasets\appliances_combination_daskio.xls (3734016, 2019-09-03)
datasets\appliances_combination_veroia.xls (635904, 2019-09-03)
datasets\metrics.xls (23552, 2019-09-03)
datasets\new_house_classification.py (7810, 2019-09-03)
datasets\one_appliance.xls (2935808, 2019-09-03)
results (0, 2019-09-03)
results\daskio_veroia_decision_trees_50.csv (809, 2019-09-03)
results\daskio_veroia_decision_trees_50_150.csv (790, 2019-09-03)
results\daskio_veroia_decision_trees_50_150_250.csv (802, 2019-09-03)
results\november_18.ods (9367, 2019-09-03)

# NILM ## Info In this repo, we provide the **code and** the **datasets used in the following publication**, in order to promote reproduction and further research. ## A Machine Learning Approach for NILM based on Odd Harmonic Current Vectors #### Published in: 2019 8th International Conference on Modern Power Systems (MPS) #### Authors: EP. Loukas, K. Bodurri, P. Evangelopoulos, AS. Bouhouras, N. Poulakis, GC. Christoforidis, I. Panapakidis, KCH. Chatzisavvas ### Abstract This paper examines the application of machine learning techniques in NILM methodologies based on the first three odd harmonic order current vectors as the only attributes of the appliances. Proper formulation of the measured current waveform of appliances' combinations is also presented. We apply our methodology on performed measurements of typical Low Voltage residential installations considering harmonic order currents as the input features for both the training and disaggregation scheme. Our results support the hypothesis that the identification performance is enhanced when higher harmonic currents are included in the NILM methodology. ### The full paper can be found [here](https://ieeexplore.ieee.org/abstract/document/8759666). #### DOI: `10.1109/MPS.2019.8759666` --- ### BibTeX In case our work inspires you in any way: ``` @inproceedings{Loukas2019, doi = {10.1109/mps.2019.8759666}, url = {https://doi.org/10.1109/mps.2019.8759666}, year = {2019}, month = may, publisher = {{IEEE}}, author = {Eleftherios P. Loukas and Klajdi Bodurri and Panagiotis Evangelopoulos and Aggelos S. Bouhouras and Nikolay Poulakis and Giorgos C. Christoforidis and Ioannis Panapakidis and Konstantinos Ch. Chatzisavvas}, title = {A Machine Learning Approach for {NILM} based on Odd Harmonic Current Vectors}, booktitle = {2019 8th International Conference on Modern Power Systems ({MPS})} } ```

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