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Jeong-Yoon Lee, Ph.D.
Sr. Applied Machine Learning Scientist, Microsoft
Science Advisor, Neofect, Conversion Logic
KDD Cup 2012, 2015 Winner, Top 10, Kaggle 2015
KDD Cup 2018 Co-Chair, ACM SIGKDD
OneML Organizing Committee, Microsoft
ML Competitions
Since 1997
2006 - 2009
Since 2010
For the latest list of competitions, see https://github.com/iphysresearch/DataSciComp
Started in 8/2018
KDD Cup
Kaggle
http://kagglerank.azurewebsites.net/
Country Rankers
USA 863
Russia 266
India 220
China 197
France 153
Germany 143
Japan 139
UK 119
South Korea 19
North Korea 1
Why ML Competitions?
Fun
Networking
Learning - Data
Learning - Languages
Learning - Approaches
https://imaginecup.microsoft.com/en-us/winners/2018WorldChampions
https://www.sciencealert.com/this-teenage-girl-invented-a-brilliant-ai-
based-app-that-can-quickly-diagnose-eye-disease
Best Practices
Feature Engineering
Types Note
Numerical Log, Log2(1 + x), Box-Cox, Normalization, Binning
Categorical One-hot-encoding, Label-encoding, Count, Weight-of-Evidence
Text Bag-of-Words, TF-IDF, N-gram, Character-n-gram, K-skip-n-gram
Timeseries/ Sensor data Descriptive Statistics, Derivatives, FFT, MFCC, ERP
Network Graph Degree, Closeness, Betweenness, PageRank
Numerical/ Timeseries Convert to categorical features using RF/GBM
Dimensionality Reduction PCA, SVD, Autoencoder, Hashing Trick
Interaction Addition/subtraction/multiplication/division. Hashing Trick
* More comprehensive overview on feature engineering by HJ van Veen: https://www.slideshare.net/HJvanVeen/feature-engineering-72376750
Diverse Algorithms
Algorithm Tool Note
Gradient Boosting Machine XGBoost, LightGBM The most popular algorithm in competitions
Random Forests Scikit-Learn, randomForest Used to be popular before GBM
Extremely Random Trees Scikit-Learn
Neural Networks/ Deep Learning Keras, MXNet, PyTorch, CNTK Blends well with GBM. Best at image and speech recognition competitions
Logistic/Linear Regression Scikit-Learn, Vowpal Wabbit Fastest. Good for ensemble.
Support Vector Machine Scikit-Learn
FTRL Vowpal Wabbit Competitive solution for CTR estimation competitions
Factorization Machine libFM, fastFM Winning solution for KDD Cup 2012
Field-aware Factorization Machine libFFM Winning solution for CTR estimation competitions (Criteo, Avazu)
A Tale of Two Algorithms
GBM Deep Learning
No. 1 winning algorithm at most
machine learning competitions
Highlight
Most popular algorithm across media,
industry, and academia
Decision Tree
(Morgan & Sonquist 1963)
Base algorithm
Perceptron
(Rosenblatt 1958)
Structured, categorical data Use cases Image, speech, natural language data
Feature engineering Crucial step
Architecture design.
Finding pre-trained models
LightGBM, XGBoost, CatBoost, H2O Open source tools
Keras, PyTorch, Tensorflow, CNTK,
MXNet, Caffe
Cross Validation
Training data are split into five folds where the sample size and dropout rate are preserved (stratified).
* for other types of ensemble, see http://mlwave.com/kaggle-ensembling-guide/
Ensemble - Stacking
KDD Cup 2015 Solution
Collaboration
Collaboration – Git Repo + S3/Dropbox
Collaboration – Common Validation
Collaboration – Internal Leaderboard
Pipeline https://gitlab.com/jeongyoonlee/allstate-claims-severity
How to Explore
Resources
캐글뽀개기
Introduction to Machine Learning for Coders
Practical Deep Learning for Coders
How to Win a Data Science Competition
Winning Tips on Machine Learning Competitions
Feature Engineering mlwave.com
Active Competitions
jeol@microsoft.com
https://linkedin.com/in/jeongyoonlee
https://kaggle.com/jeongyoonlee
Misconceptions on Competitions
No ETL? - Deloitte Western Australia Rental Prices
No ETL? - Outbrain Click Prediction
2B page views. 16.9MM clicks. 700MM users. 560 sites
No ETL? - YouTube-8M Video Understanding Challenge
1.7TB feature-level data. 31GB video-level data.
No ETL?
No EDA?
Not worth it?

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