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#261: Monitoring and auditing machine learning

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Manage episode 259842368 series 2497444
Content provided by Talk Python To Me Podcast and Michael Kennedy. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Talk Python To Me Podcast and Michael Kennedy 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.
Traditionally, when we have depended upon software to make a decision with real-world implications, that software was deterministic. It had some inputs, a few if statements, and we could point to the exact line of code where the decision was made. And the same inputs lead to the same decisions. Nowadays, with the rise of machine learning and neural networks, this is much more blurry. How did the model decide? Has the model and inputs drifted apart, so the decisions are outside what it was designed for? These are just some of the questions discussed with our guest, Andrew Clark, on this episode of Talk Python To Me. Full show notes at https://talkpython.fm/episodes/show/261/monitoring-and-auditing-machine-learning
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636 episodes

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iconShare
 
Manage episode 259842368 series 2497444
Content provided by Talk Python To Me Podcast and Michael Kennedy. All podcast content including episodes, graphics, and podcast descriptions are uploaded and provided directly by Talk Python To Me Podcast and Michael Kennedy 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.
Traditionally, when we have depended upon software to make a decision with real-world implications, that software was deterministic. It had some inputs, a few if statements, and we could point to the exact line of code where the decision was made. And the same inputs lead to the same decisions. Nowadays, with the rise of machine learning and neural networks, this is much more blurry. How did the model decide? Has the model and inputs drifted apart, so the decisions are outside what it was designed for? These are just some of the questions discussed with our guest, Andrew Clark, on this episode of Talk Python To Me. Full show notes at https://talkpython.fm/episodes/show/261/monitoring-and-auditing-machine-learning
  continue reading

636 episodes

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