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清华大学材料科学与工程研究院《材料科学论坛》:基于三维微纳结构的仿生光电与传感器...
报告题目:
Why is it so hard to make self-driving cars?(Trustworthy autonomous systems)
 报告人:
Joseph Sifakis
A.M. Turing Award Winner Verimag laboratory
报告时间:
2020-10-16 15:00
报告地点:
Zoom ID:873 3516 1515;Password:774630
主办单位:
计算机系
  简介:

Abstract

Why is self-driving so hard? Despite the enthusiastic involvement of big technological companies and the massive investment of many billions of dollars, all the optimistic predictions about self-driving cars “being around the corner” went utterly wrong.
I argue that these difficulties emblematically illustrate the challenges raised by the vision for trustworthy autonomous systems. These are critical systems intended to replace human operators in complex organizations, very different from other intelligent systems such as game-playing robots or intelligent personal assistants. They have to understand dynamically changing situations in unpredictable dynamically changing environments. They have to manage many different potentially conflicting goals and plan actions for achieving them. Finally yet importantly, they have to interact safely with human operators.
I discuss complexity limitations inherent to autonomic behavior but also to integration in complex cyber-physical and human environments. I argue that traditional model-based critical systems engineering techniques fall short of meeting the complexity challenge. I also argue that emerging end-to-end AI-enabled solutions currently developed by industry fail to provide the required strong trustworthiness guarantees.

I conclude that building trustworthy autonomous systems goes far beyond the current AI vision and advocate a new scientific and engineering foundation addressing this unique and groundbreaking challenge.

Bio

Joseph Sifakis is Emeritus Senior CNRS Researcher at Verimag. In 2007, Joseph Sifakis has received the Turing Award for his contribution to the theory and application of model checking, the most widely used system verification technique today.

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