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When Machines Learn
Sharing industry research to advance data science and machine learning for industrial processes.
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Lorenzo Bucci
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When Machines Learn
Apr 12, 2022
How I landed my data scientist position at Tagup
Mastering technical interviews with autoencoders and…
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4
Anna Haensch
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When Machines Learn
Oct 30, 2020
Methods for Imputation with Hidden Markov Models
Using inference to fill in missing values in…
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10
Roshan Thaikkat
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When Machines Learn
Oct 16, 2020
A Guide to Distributed TensorFlow: Part 2
How to set up large scale, distributed training of…
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40
Daniel Hathcock
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When Machines Learn
Oct 13, 2020
Dask Performance Boosts For Model Training
Tips and tricks to speed up distributed training with Dask.
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19
Roshan Thaikkat
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When Machines Learn
Oct 9, 2020
A Guide to Distributed TensorFlow: Part 1
How to set up efficient input data pipelines for deep…
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12
Ben Dexter Cooley
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When Machines Learn
Oct 2, 2020
How to use data visualization to validate imputation tasks
Creating custom charts can help us better…
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41
Anna Haensch
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When Machines Learn
Sep 25, 2020
Imputation and its Applications
Using imputation for model validation, data preprocessing and…
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99
Sam McCormick
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When Machines Learn
Sep 11, 2020
Using Jax to streamline machine learning optimization
Speed up your optimization processes and reduce…
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166
Ben Dexter Cooley
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When Machines Learn
Jul 30, 2020
An Introduction to Imputation: Solving problems of missing and insufficient data
Missing data is a…
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186
Anna Haensch
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When Machines Learn
Jun 19, 2020
Using Hidden Markov Models to Detect Seasonality in Sequential Data
Comparing clustering techniques…
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224
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About
When Machines Learn
A blog to share research and work in applying machine learning in heavy industry. Focus includes asset management and process optimization.
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