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shap-values

Quickly build Explainable AI dashboards that show the inner workings of so-called "blackbox" machine learning models.

Python
2426
19 天前

In this project, I have utilized survival analysis models to see how the likelihood of the customer churn changes over time and to calculate customer LTV. I have also implemented the Random Forest model to predict if a customer is going to churn and deployed a model using the flask web app.

Jupyter Notebook
218
3 年前

A demonstration of the explainerdashboard package that that displays model quality, permutation importances, SHAP values and interactions, and individual trees for sklearn RandomForestClassifiers, etc

Python
19
10 个月前

Weighted Shapley Values and Weighted Confidence Intervals for Multiple Machine Learning Models and Stacked Ensembles

R
17
5 个月前

In this project, we have to create a predictive model which allows the company to maximize the profit of the next marketing campaign

Jupyter Notebook
10
1 个月前

Github Repository for the paper "Different Algorithms (Might) Uncover Different Patterns: A Brain-Age Prediction Case Study" - BIBM 2023

Jupyter Notebook
7
1 年前

This project uses Explainable AI (XAI) to interpret machine learning models for diagnosing faults in industrial bearings. By applying SVM and kNN models and leveraging SHAP values, it enhances the transparency and reliability of machine learning in industrial condition monitoring.

Jupyter Notebook
5
1 年前

Framework de Mixture of Experts para Explicabilidade de Estados de Ansiedade

Jupyter Notebook
5
6 个月前

Análise Avançada de Intervenção para Ansiedade com SHAP

Jupyter Notebook
4
6 个月前

Multiclass Skin lesion localization and Detection with YOLOv7-XAI Framework with explainable AI

Python
3
8 个月前

Generate predictive model using supervised learning method to enhanced coupon acceptance rate using python.

Jupyter Notebook
2
3 年前

The purpose of this work is the modeling of the wine preferences by physicochemical properties. Such model is useful to support the oenologist wine tasting evaluations, improve and speed-up the wine production. A Neural Network was trained using Tensorflow, which was later tuned in order to achieve high-accuracy quality predictions.

Jupyter Notebook
2
3 年前

Prediction if patients with symptoms have COVID-19 based on clinical variables (blood related variables, urine related variables, age, etc)

Jupyter Notebook
2
3 年前

WiDS Datathon 2020 on patient health through data from MIT’s GOSSIS (Global Open Source Severity of Illness Score) initiative.

Jupyter Notebook
2
5 年前

Jantahack : BigMart Sales Prediction using LGBM Regressor and Model interpretation using SHAP

Jupyter Notebook
1
5 年前

Explainable Landscape-Aware Optimization Performance Prediction

Jupyter Notebook
1
2 年前