Explainable Neural Network Regression Model with SHAP

버전 1.0.1 (496 KB) 작성자: Mita
Radial Basis Function Neural Network training include 5-fold cross-validation and SHAP analysis for explainable model
다운로드 수: 287
업데이트 날짜: 2024/12/16

라이선스 보기

This MATLAB script implements an explainable neural network regression model using a Radial Basis Function Neural Network (RBFNN) to predict water flux in forward osmosis processes. The model utilizes operational parameters such as membrane area, feed and draw solution flow rates, and concentrations as input features for training. To enhance interpretability, SHapley Additive exPlanations (SHAP) are applied, allowing users to gain insights into the contribution of each parameter to the model's predictions. This tool provides a powerful solution for researchers and engineers looking to develop accurate and transparent regression models while leveraging the flexibility of RBFNNs for optimizing forward osmosis system performance.

인용 양식

Mita (2026). Explainable Neural Network Regression Model with SHAP (https://kr.mathworks.com/matlabcentral/fileexchange/174170-explainable-neural-network-regression-model-with-shap), MATLAB Central File Exchange. 검색 날짜: .

MATLAB 릴리스 호환 정보
개발 환경: R2024a
R2024a에서 R2024b까지의 릴리스와 호환
플랫폼 호환성
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버전 게시됨 릴리스 정보
1.0.1

The published script cannot run properly on the matlab version lower than R2024a

1.0.0