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e-Learning
Introduction to standards: part 1
e-Learning
Introduction to AI assurance
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Introduction to AI assurance
Share your thoughts on the training here.
Welcome to the safety, security and resilience discussion! Activities for this topic will be facilitated by the BSI team, one…
Many countries, including most developed countries, have an Artificial Intelligence strategy, aware of the enormous potential AI holds for economic…
As part of our journey of building the AI Standards Hub, we conducted workshops with over 140 stakeholders from across…
This blog post provides detail on what the AI Standards Hub is, how we built it, and why we hope…
Research and analysis item
Psychological foundations of explainability and interpretability in artificial intelligence
In this paper, we make the case that interpretability and explainability are distinct requirements for machine learning systems. To make…
Research and analysis item
Four principles of explainable artificial intelligence
We introduce four principles for explainable artiļ¬cial intelligence (AI) that comprise fundamental properties for explainable AI systems. We propose that…
Research and analysis item
A taxonomy and terminology of adversarial machine learning
This NIST Interagency/Internal Report (NISTIR) is intended as a step toward securing applications of Artificial Intelligence (AI), especially against adversarial…
Research and analysis item
Towards a standard for identifying and managing bias in artificial intelligence
As individuals and communities interact in and with an environment that is increasingly virtual they are often vulnerable to the…
Research and analysis item
U.S. leadership in AI: a plan for federal engagement in developing technical standards and related tools
NIST has released a plan for prioritizing federal agency engagement in the development of standards for artificial intelligence (AI). The…