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Pattern Analysis 2017 (Audio)

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When? This feed was archived on November 18, 2020 17:07 (4y ago). Last successful fetch was on July 08, 2020 22:11 (4y ago)

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Content provided by FAU and Dr. Christian Riess. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by FAU and Dr. Christian Riess or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://player.fm/legal.
This lecture complements (and builds on top of) the lectures "Introduction to Pattern Recognition" and "Pattern Recognition". In this third edition, we focus on modeling of densities, and how to use these models for analyzing the data. Major topics of this lecture are regression, density estimation, manifold learning, hidden Markov models, conditional random fields, and random forests. The lecture is accompanied by exercises, where theoretical results are practically implemented and applied.
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21 episodes

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Archived series ("Inactive feed" status)

When? This feed was archived on November 18, 2020 17:07 (4y ago). Last successful fetch was on July 08, 2020 22:11 (4y ago)

Why? Inactive feed status. Our servers were unable to retrieve a valid podcast feed for a sustained period.

What now? You might be able to find a more up-to-date version using the search function. This series will no longer be checked for updates. If you believe this to be in error, please check if the publisher's feed link below is valid and contact support to request the feed be restored or if you have any other concerns about this.

Manage series 1553219
Content provided by FAU and Dr. Christian Riess. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by FAU and Dr. Christian Riess or their podcast platform partner. If you believe someone is using your copyrighted work without your permission, you can follow the process outlined here https://player.fm/legal.
This lecture complements (and builds on top of) the lectures "Introduction to Pattern Recognition" and "Pattern Recognition". In this third edition, we focus on modeling of densities, and how to use these models for analyzing the data. Major topics of this lecture are regression, density estimation, manifold learning, hidden Markov models, conditional random fields, and random forests. The lecture is accompanied by exercises, where theoretical results are practically implemented and applied.
  continue reading

21 episodes

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