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Stefan Kramer

4 accepted papers

2026

The Tatort Test of Intelligence: Towards Narrative Comprehension as a Benchmark for AI

AAAI 2026technical

We propose—somewhat tongue-in-cheek, yet with serious implications—a new test for artificial intelligence: the ability to watch a 90-minute episode of the long-running German crime drama Tatort, and to explain every relevant detail. This involves reconstructing the evolving social network of charact

Cited by 0SourcePDFScholar
2024

Peer Learning: Learning Complex Policies in Groups from Scratch via Action Recommendations

AAAI 2024technical

Peer learning is a novel high-level reinforcement learning framework for agents learning in groups. While standard reinforcement learning trains an individual agent in trial-and-error fashion, all on its own, peer learning addresses a related setting in which a group of agents, i.e., peers, learns t…

2023

Invariant Representations with Stochastically Quantized Neural Networks

AAAI 2023technical

Representation learning algorithms offer the opportunity to learn invariant representations of the input data with regard to nuisance factors. Many authors have leveraged such strategies to learn fair representations, i.e., vectors where information about sensitive attributes is removed. These metho…

Cited by 5SourcePDFScholar
2020

A Brief History of Learning Symbolic Higher-Level Representations from Data (And a Curious Look Forward)

IJCAI 2020poster

Learning higher-level representations from data has been on the agenda of AI research for several decades. In the paper, I will give a survey of various approaches to learning symbolic higher-level representations: feature construction and constructive induction, predicate invention, propositionaliz…