Web editor for typed tree structures. (like decision / behaviour trees)
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Updated
Jul 19, 2023 - TypeScript
Web editor for typed tree structures. (like decision / behaviour trees)
A powerful tree-based uplift modeling system.
Breast cancer detection using 4 different models i.e. Logistic Regression, KNN, SVM, and Decision Tree Machine Learning models and optimizing them for even a better accuracy.
Smart disease prediction system made using traditional machine learning algorithms and to create an user interface using streamlit. 🚀
Insurance claim fraud detection using machine learning algorithms.
A web application to predicted whether a URL/Website is phishing or not by extracting its lexical features.
This study demonstrates how numerous factors have an impact on bike rentals. Due to our understanding that many Koreans hire bikes throughout the week, we assumed that most of their use is for commuting to work or school. The number of rentals varies depending on a number of factors, including the day of the week, the hour of the day.
In this data science project, we will predict borrowers chance of defaulting on loans by building a default prediction model.
In this regression project, We will make use of different features like age, BMI, region, sex, smoker, etc to predict the medical insurance cost for an individual.
Unity package for generating 'treescheme' files based on dotnet assemblies.
Bike rental prediction, blending predictive analytics and machine learning, optimizes inventory, pricing, and operations. It harnesses historical data, weather patterns, and time dynamics to enhance efficiency and elevate customer experiences.
machine-learning algorithms using Python.
Evaluation and Implementation of various Machine Learning models for creating a "Banking/Financial Transaction Fraud Prevention System"
Prediction of customer will purchase iPhone or not using KNN classifier model and multiple supervised ML model.
This repository contains all resources for Homework 1 of TDT4173 fall 2021.
In this notebook, I'm using this dataset called 'flight-price-prediction', which contains the traveller information.In this notebook, I'm trying to run a dummy variable regression model at first, and after that, I'm trying to build a supervised ML Model with higher accuracy of predation.
This project presents and discusses data-driven predictive models for predicting the defaulters among the credit card users.About Data Cleaning,Exploratory Data Analysis ,Handling Class Imbalance, Transforming Data , Fitting Different Model ,Cross Validation & Hyperparameter Tunning, Comparison of Model ,Combined ROC Curve, Feature Impotance.
Code for my Medium article: "How you can quickly deploy your ML models with FastAPI"
Cli tool for generating 'treescheme' files based on dotnet assemblies.
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