A package for statistically rigorous scientific discovery using machine learning. Implements prediction-powered inference.
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Updated
Sep 23, 2024 - Python
A package for statistically rigorous scientific discovery using machine learning. Implements prediction-powered inference.
Explore "Statistics" and "Probability Theory" Concepts and Their Implementations in "Python"
Multiple hypothesis testing in Python
Statistical functions based on bootstrapping for computing confidence intervals and p-values comparing machine learning models and human readers
Minimal A/B Testing Library in PHP
E-Commerce Website A/B testing: Recommend which of two landing pages to keep based on A/B testing
Analysis platform for large-scale dose-dependent data
pMoSS (p-value Model using the Sample Size) is a Python code to model the p-value as an n-dependent function using Monte Carlo cross-validation. Exploits the dependence on the sample size to characterize the differences among groups of large datasets
Implementation of backward elimination algorithm used for dimensionality reduction for improving the performance of risk calculation in life insurance industry.
Assignment-04-Simple-Linear-Regression-2. Q2) Salary_hike -> Build a prediction model for Salary_hike Build a simple linear regression model by performing EDA and do necessary transformations and select the best model using R or Python. EDA and Data Visualization. Correlation Analysis. Model Building. Model Testing. Model Predictions.
Adjust p-values for multiple comparisons
Lean Six Sigma with Python — Kruskal Wallis Test
collection of utility functions for correlation analysis
Shiny Web Application for Making Your p-value Sound Significant
Strategies for analyzing the distribution of datasets, switching the data towards a normal distribution testing different manual transformations and Box-Cox transformation.
Understand the results of an A/B test run by the website and provide statistical and practical interpretation on the test results
Udacity Data Analyst Nanodegree - Project III
Generalized linear mixed model elastic net
Analysis of mock A/B Test Results by an e-commerce company. Application of probability, hypothesis testing, sampling distribution, two-sample z-test, and logistic regression to determining whether the company should implement the new web page it developed to increase users' conversion rate
First rank winner in the Machine Learning Course Competition for class 2021-2022. Airline ticket price prediction from end to end (analysis - preprocessing - modeling - testing - deployment - documentation) between Indian cities
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