peter frick
63 posts

peter frick retweetledi
peter frick retweetledi

A nice fact I like: Every matrix corresponds to a graph, and so familiar things (e.g. matrix multiplication) have nice pictures! Another nice fact: joint probability distributions *also* correspond to graphs. They have telling pictures, too. New blog post! math3ma.com/blog/matrices-…

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peter frick retweetledi
peter frick retweetledi
peter frick retweetledi

A recent paper in NEJM shows that children born in August are 30% more likely to be diagnosed with ADHD than children born in September, probably because they start school younger.
I reanalyzed the data using Bayesian logistic regression:
allendowney.com/blog/2018/12/0…

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@rctatman Imagine predicting what I’m like based on a sibling. He is a model of me. If you don’t learn about him to predict me, you are excluding useful info (bias) But if you learn everything about him and apply it to me thats using too much info since we are different ppl (variance)
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Slides for my talk @py_bay about AI/ML and Python are located here: speakerdeck.com/teoliphant/ml-… #PyBay2018 #MachineLearning #Python @NumFOCUS @TensorFlow @PyTorch @ChainerOfficial @ApacheMXNet
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peter frick retweetledi

RT @afshinea 🔥Set of illustrated Machine Learning cheat sheets from Stanford's CS 229 class:
Deep Learning: stanford.io/2BsQ91Q
Supervised Learning: stanford.io/2nRlxxp
Unsupervised Learning: stanford.io/2MmP6FN
Tips and tricks: stanford.io/2MEHwFM

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How to Create an ARIMA Model for Time Series Forecasting in Python machinelearningmastery.com/arima-for-time…
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One of the top questions we've been getting from new Python coders is "how should I structure my Python projects?"
With this tutorial, we want to give you a dependable Python application layout reference guide that you can refer to: realpython.com/python-applica…
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how to train a neural network for text classification using keras #neural-networks-text_classification" target="_blank" rel="nofollow noopener">frickp.github.io/neural-network…
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"Advances in Semantic Textual Similarity": @GoogleAI's new post on universal text embeddings: ai.googleblog.com/2018/05/advanc…
Pre-trained 512 dim #Tensorflow model: tensorflow.org/hub/modules/go… (already available in @scaletext_ai)

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"Context is Everything: Finding Meaning Statistically in Semantic Spaces." A replacement of tf-idf that is actually better than tf-idf (finally?!)
arxiv.org/abs/1803.08493

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