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Takayuki Osogami

9 accepted papers

2024

A Surprisingly Simple Approach to Generalized Few-Shot Semantic Segmentation

NeurIPS 2024poster

The goal of *generalized* few-shot semantic segmentation (GFSS) is to recognize *novel-class* objects through training with a few annotated examples and the *base-class* model that learned the knowledge about the base classes. Unlike the classic few-shot semantic segmentation, GFSS aims to classify…

2023

A Rigorous Risk-aware Linear Approach to Extended Markov Ratio Decision Processes with Embedded Learning

IJCAI 2023poster

We consider the problem of risk-aware Markov Decision Processes (MDPs) for Safe AI. We introduce a theoretical framework, Extended Markov Ratio Decision Processes (EMRDP), that incorporates risk into MDPs and embeds environment learning into this framework. We propose an algorithm to find the optima…

2023

Biases in Evaluation of Molecular Optimization Methods and Bias Reduction Strategies

ICML 2023poster

We are interested in an evaluation methodology for molecular optimization. Given a sample of molecules and their properties of our interest, we wish not only to train a generator of molecules optimized with respect to a target property but also to evaluate its performance accurately. A common practi…

Cited by 1SourcePDFScholar
2023

Learning Efficient Truthful Mechanisms for Trading Networks

IJCAI 2023poster

Trading networks are an indispensable part of today's economy, but to compete successfully with others, they must be efficient in maximizing the value they provide to the external market. While the prior work relies on truthful disclosure of private information to achieve efficiency, we study the p…