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Machine Learning for Physicists 2019 (QHD 1920)

FAU

Machine Learning for Physicists 2019 (QHD 1920)

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Machine Learning for Physicists 2019 (QHD 1920)

FAU

Machine Learning for Physicists 2019 (QHD 1920)

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Machine Learning for Physicists 2019 (QHD 1920)

FAU

Machine Learning for Physicists 2019 (QHD 1920)

A podcast
Good podcast? Give it some love!
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This is a course introducing modern techniques of machine learning, especially deep neural networks, to an audience of physicists. Neural networks can be trained to perform diverse challenging tasks, including image recognition and natural language processing, just by training them on many examples. Neural networks have recently achieved spectacular successes, with their performance often surpassing humans. They are now also being considered more and more for applications in physics, ranging from predictions of material properties to analyzing phase transitions. We will cover the basics of neural networks, convolutional networks, autoencoders, restricted Boltzmann machines, and recurrent neural networks, as well as the recently emerging applications in physics.

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Podcast Details

Created by
FAU
Podcast Status
Idle
Started
Apr 23rd, 2019
Latest Episode
Jul 2nd, 2019
Release Period
2 per month
Episodes
1436
Avg. Episode Length
About 1 hour
Explicit
No
Order
Serial
Language
English

Podcast Tags

This podcast, its content, and its artwork are not owned by, affiliated with, or endorsed by Podchaser.
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