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Georg Gottlob

5 accepted papers

2025

Selective Forgetting: Advancing Machine Unlearning Techniques and Evaluation in Language Models

AAAI 2025technical

This paper explores Machine Unlearning (MU), an emerging field that is gaining increased attention due to concerns about neural models unintentionally remembering personal or sensitive information. We present SeUL, a novel method that enables selective and fine-grained unlearning for language models…

2023

MV-Datalog+/-: Effective Rule-based Reasoning with Uncertain Observations (Extended Abstract)

IJCAI 2023poster

Modern data processing applications often combine information from a variety of complex sources. Oftentimes, some of these sources, like Machine-Learning systems or crowd-sourced data, are not strictly binary but associated with some degree of confidence in the observation. Ideally, reasoning over s…

Cited by 0SourcePDFScholar
2020

Fast and Parallel Decomposition of Constraint Satisfaction Problems

IJCAI 2020poster

Constraint Satisfaction Problems (CSP) are notoriously hard. Consequently, powerful decomposition methods have been developed to overcome this complexity. However, this poses the challenge of actually computing such a decomposition for a given CSP instance, and previous algorithms have shown their l…

2020

Semantic Width and the Fixed-Parameter Tractability of Constraint Satisfaction Problems

IJCAI 2020poster

Constraint satisfaction problems (CSPs) are an important formal framework for the uniform treatment of various prominent AI tasks, e.g., coloring or scheduling problems. Solving CSPs is, in general, known to be NP-complete and fixed-parameter intractable when parameterized by their constraint scopes…

Cited by 0SourcePDFScholar