Ipython notebook presentations for getting starting with basic programming, statistics and machine learning techniques

Overview

Data Science 45-min Intros

Every week*, our data science team @Gnip (aka @TwitterBoulder) gets together for about 50 minutes to learn something.

While these started as opportunities to collectively "raise the tide" on common stumbling blocks in data munging and analysis tasks, they have since grown to machine learning, statistics, and general programming topics. Anything that will help us do our jobs better is fair game.

For each session, someone puts together the lesson/walk-through and leads the discussion. Presentation platforms commonly include well-written READMEs, IPython notebooks, knitr documents, interactive code sessions... the more hands-on, the better.

Feel free to use these for your own (or your team's) growth, and do submit pull requests if you have something to add.

*ok, while we try to do it every week, sometimes it doesn't happen. In that case, we try to guilt trip the person who slacked.

Current topics

Python

Bash + command-line tools

Statistics

Machine Learning

Natural Langugage Processing

Network structure

Algorithms

Engineering

Geographic Information Systems

Web development

Visualization

Databases

Owner
Scott Hendrickson
Director, Data Science
Scott Hendrickson
Training code and evaluation benchmarks for the "Self-Supervised Policy Adaptation during Deployment" paper.

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Official code repository for the EMNLP 2021 paper

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BTC-Generator - BTC Generator With Python

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A method to perform unsupervised cross-region adaptation of crop classifiers trained with satellite image time series.

TimeMatch Official source code of TimeMatch: Unsupervised Cross-region Adaptation by Temporal Shift Estimation by Joachim Nyborg, Charlotte Pelletier,

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Block-wisely Supervised Neural Architecture Search with Knowledge Distillation (CVPR 2020)

DNA This repository provides the code of our paper: Blockwisely Supervised Neural Architecture Search with Knowledge Distillation. Illustration of DNA

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Rethinking Semantic Segmentation from a Sequence-to-Sequence Perspective with Transformers

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Pytorch implementation of Learning Rate Dropout.

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