Jonathan Bechtel - Forecasting With Classical and Machine Learning Methods | PyData NYC 2023

www.pydata.org Traditional time series models such as ARIMA and exponential smoothing have typically been used to forecast time series data, but the use of machine learning methods have been able to set new benchmarks for accuracy in high profile forecasting competitions such as M4 and M5. However, the use of machine learning models can easily lead to inferior results under common conditions. This talk is a discussion of how each of these methods can be used to model time series data, and demonstrate how SKTime provides a unified framework for implementing both families of techniques. PyData is an educational program of NumFOCUS, a 501(c)3 non-profit organization in the United States. PyData provides a forum for the international community of users and developers of data analysis tools to share ideas and learn from each other. The global PyData network promotes discussion of best practices, new approaches, and emerging technologies for data management, processing, analytics, and visualization. PyData communities approach data science using many languages, including (but not limited to) Python, Julia, and R. PyData conferences aim to be accessible and community-driven, with novice to advanced level presentations. PyData tutorials and talks bring attendees the latest project features along with cutting-edge use cases. 00:00 Welcome! 00:10 Help us add time stamps or captions to this video! See the description for details. Want to help add timestamps to our YouTube videos to help with discoverability? Find out more here: https://github.com/numfocus/YouTubeVi...

Ramon Perez - Architecting Data: A Deep Dive Into the world of Synthetic Data | PyData NYC 2023
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Ramon Perez - Architecting Data: A Deep Dive Into the world of Synthetic Data | PyData NYC 2023

Uruguay – Spanien Highlights | Gruppe H, FIFA WM 2026 | sportstudio
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Uruguay – Spanien Highlights | Gruppe H, FIFA WM 2026 | sportstudio

Foundational Models for Tabular Data & Databases: Technical Deep Dive (Part 3 of 12)
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Foundational Models for Tabular Data & Databases: Technical Deep Dive (Part 3 of 12)

Kishan Manani - Feature Engineering for Time Series Forecasting | PyData London 2022
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Kishan Manani - Feature Engineering for Time Series Forecasting | PyData London 2022

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A Tutorial on Conformal Prediction

Seaborn Masterclass: Statistical Data Visualization & Advanced EDA | The Analytics Flow
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Seaborn Masterclass: Statistical Data Visualization & Advanced EDA | The Analytics Flow

Ritchie Vink - Polars; DataFrames in the multi-core era | PyData NYC 2023
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Ritchie Vink - Polars; DataFrames in the multi-core era | PyData NYC 2023

AlphaFold - The Most Useful Thing AI Has Ever Done
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AlphaFold - The Most Useful Thing AI Has Ever Done

Lag Features  | Feature Engineering for Time Series Forecasting
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Lag Features | Feature Engineering for Time Series Forecasting

Max Mergenthaler and Fede Garza - Quantifying Uncertainty in Time Series Forecasting
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Max Mergenthaler and Fede Garza - Quantifying Uncertainty in Time Series Forecasting

The Strange Math That Predicts (Almost) Anything
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The Strange Math That Predicts (Almost) Anything

Machine Learning Explained: A Guide to ML, AI, & Deep Learning
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Machine Learning Explained: A Guide to ML, AI, & Deep Learning

Keynote: After the AI Hype – What’s Real, and What’s Next - Richard Campbell - 2026
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Keynote: After the AI Hype – What’s Real, and What’s Next - Richard Campbell - 2026

Challenges in Time Series Forecasting
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Challenges in Time Series Forecasting

Nicolas Makaroff - AI Scientist - Hands-On with Tabular Foundation Models | Pydata London 26
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Nicolas Makaroff - AI Scientist - Hands-On with Tabular Foundation Models | Pydata London 26

VN1 Forecasting Competition - How did the winners win?
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VN1 Forecasting Competition - How did the winners win?

تلاوة القرآن للدراسة والتركيز 📚🕛 | راحة وطمأنينة | Peaceful Focus Quran | محمد هشام
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تلاوة القرآن للدراسة والتركيز 📚🕛 | راحة وطمأنينة | Peaceful Focus Quran | محمد هشام

NestJS Full Course for Beginners in 2026 | Build a Production-Ready API
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NestJS Full Course for Beginners in 2026 | Build a Production-Ready API

ASMR Addictive Fast Tapping Collection For Deep Sleep & Anxiety Relief (No Talking) — 2.5 Hours
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ASMR Addictive Fast Tapping Collection For Deep Sleep & Anxiety Relief (No Talking) — 2.5 Hours

Inge van den Ende - Kickstart Your Probabilistic Forecasting | PyData Amsterdam 2025
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Inge van den Ende - Kickstart Your Probabilistic Forecasting | PyData Amsterdam 2025