Collection of notebooks about quantitative finance, with interactive python code.
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Updated
Oct 22, 2024 - Jupyter Notebook
Collection of notebooks about quantitative finance, with interactive python code.
Multi-language suite for high-performance solvers of differential equations and scientific machine learning (SciML) components. Ordinary differential equations (ODEs), stochastic differential equations (SDEs), delay differential equations (DDEs), differential-algebraic equations (DAEs), and more in Julia.
NMA Computational Neuroscience course
Gaussian processes in TensorFlow
Rust library for quantitative finance.
Differentiable SDE solvers with GPU support and efficient sensitivity analysis.
Python framework for short-term ensemble prediction systems.
Generate realizations of stochastic processes in python.
📦 Python library for Stochastic Processes Simulation and Visualisation
EasyTPP: Towards Open Benchmarking Temporal Point Processes
Solvers for stochastic differential equations which connect with the scientific machine learning (SciML) ecosystem
Code for the Neural Processes website and replication of 4 papers on NPs. Pytorch implementation.
Fourier-transform pricing, Monte Carlo validation, and calibration of European options under stochastic-volatility models in Python
High-performance quantitative finance in Rust — 120+ stochastic processes, option pricing, calibration, fixed income, risk & copulas, with SIMD/GPU acceleration and Python bindings.
Multifractal Detrended Fluctuation Analysis in Python
Economic scenario generator for python: simulate stocks, interest rates, and other stochastic processes.
📒 A collection of notes exploring Quantitative Finance concepts with Python
Language modeling via stochastic processes. Oral @ ICLR 2022.
R package for statistical inference using partially observed Markov processes
Matlab Toolbox for the Numerical Solution of Stochastic Differential Equations
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