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Big Business
- London, UK
- https://www.linkedin.com/in/valeriy-manokhin-phd-mba-cqf-704731236/
- @predict_addict
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Bindings for Nixtla's neuralforecast Library in R, specifically KANs, to use with {modeltime} package. Nixtla's KAN is called from R via {reticulate}, which is then ported into {parsnip} and bridge…
Official Implementation of "Predictive Inference with (Fast) Feature Conformal Prediction"
The Resampling Delusion: A Geometric Theory of Class Imbalance
Reproduction code of 'Fast Conformal Prediction using Conditional Interquantile Intervals'
This repository contains the official implementation of the paper "Colorful Pinball: Density-Weighted Quantile Regression for Conditional Guarantee of Conformal Prediction". Authors: Qianyi Chen, B…
A PyTorch-based End-to-End Predict-then-Optimize Library for Linear and Integer Programming
[arXiv] Conformal Prediction to Control False Positives in Medical Image Segmentation
[ICML'24] Conformal Prediction for Deep Classifier via Label Ranking
APDTFlow is a modern and extensible forecasting framework for time series data that leverages advanced techniques including neural ordinary differential equations (Neural ODEs), transformer-based c…
code to reproduce results in paper Residual Distribution Predictive Systems
A Python package for fitting Quinlan's Cubist regression model
Conformal Prediction for Time-series Forecasting with Change Points
The provided files implement the method proposed in the paper "Split conformal classification with unsupervised calibration"
Official implementation for "TimeXer: Empowering Transformers for Time Series Forecasting with Exogenous Variables" (NeurIPS 2024)
Julia package for time series forecasting, inspired by R’s forecast package—part of the TAFS Forecasting Ecosystem.
Adaptive, distribution-free prediction intervals for financial time series using Temporal Conformal Prediction (TCP). Benchmarked against GARCH, Quantile Regression, and Historical Simulation.
A Python library for conformal prediction, providing tools for uncertainty quantification in regression and classification tasks.
Tsururu is a Python-based library that provides a wide range of multi-series and multi-point-ahead prediction strategies, compatible with any underlying model, including neural networks.
R package to compute distribution-free prediction bands using density estimators
R package - Dynamic Ensembles for Time Series Forecasting
This repository holds the code developed during my Master theis
[COPA 2025] Robust Vision-Based Runway Detection through Conformal Prediction and Conformal mAP