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Privacy Preserving AI (Andrew Trask) | MIT Deep Learning Series

发布时间 2020-01-19 18:18:52    来源

摘要

Lecture by Andrew Trask in January 2020, part of the MIT Deep Learning Lecture Series. Website: https://deeplearning.mit.edu Slides: http://bit.ly/38jzide Playlist: http://bit.ly/deep-learning-playlist LINKS: Andrew Twitter: https://twitter.com/iamtrask OpenMined: https://www.openmined.org/ Grokking Deep Learning (book): http://bit.ly/2RsxlUZ OUTLINE: 0:00 - Introduction 0:54 - Privacy preserving AI talk overview 1:28 - Key question: Is it possible to answer questions using data we cannot see? 5:56 - Tool 1: remote execution 8:44 - Tool 2: search and example data 11:35 - Tool 3: differential privacy 28:09 - Tool 4: secure multi-party computation 36:37 - Federated learning 39:55 - AI, privacy, and society 46:23 - Open data for science 50:35 - Single-use accountability 54:29 - End-to-end encrypted services 59:51 - Q&A: privacy of the diagnosis 1:02:49 - Q&A: removing bias from data when data is encrypted 1:03:40 - Q&A: regulation of privacy 1:04:27 - Q&A: OpenMined 1:06:16 - Q&A: encryption and nonlinear functions 1:07:53 - Q&A: path to adoption of privacy-preserving technology 1:11:44 - Q&A: recommendation systems CONNECT: - If you enjoyed this video, please subscribe to this channel. - Twitter: https://twitter.com/lexfridman - LinkedIn: https://www.linkedin.com/in/lexfridman - Facebook: https://www.facebook.com/lexfridman - Instagram: https://www.instagram.com/lexfridman

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