activity
20192025
most citedMulti-Task Curriculum Framework for Open-Set Semi-Supervised Learning

6 citations · 7 across the 4 of their papers we have counts for

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10 papers · 1 filter

cs.CV2025

A Benchmark and Evaluation for Real-World Out-of-Distribution Detection Using Vision-Language Models

Shiho Noda, Atsuyuki Miyai, Qing Yu +2

Out-of-distribution (OOD) detection is a task that detects OOD samples during inference to ensure the safety of deployed models. However, conventional benchmarks have reached perfo…

cs.CV2024

Generalized Out-of-Distribution Detection and Beyond in Vision Language Model Era: A Survey

Atsuyuki Miyai, Jingkang Yang, Jingyang Zhang +10

Detecting out-of-distribution (OOD) samples is crucial for ensuring the safety of machine learning systems and has shaped the field of OOD detection. Meanwhile, several other probl…

cs.CV2024

Unsolvable Problem Detection: Robust Understanding Evaluation for Large Multimodal Models

Atsuyuki Miyai, Jingkang Yang, Jingyang Zhang +7

This paper introduces a novel task to evaluate the robust understanding capability of Large Multimodal Models (LMMs), termed . Multiple…

cs.CV20231 cited

Can Pre-trained Networks Detect Familiar Out-of-Distribution Data?

Atsuyuki Miyai, Qing Yu, Go Irie +1

Out-of-distribution (OOD) detection is critical for safety-sensitive machine learning applications and has been extensively studied, yielding a plethora of methods developed in the…

cs.CV2023

Open-Set Domain Adaptation with Visual-Language Foundation Models

Qing Yu, Go Irie, Kiyoharu Aizawa

Unsupervised domain adaptation (UDA) has proven to be very effective in transferring knowledge obtained from a source domain with labeled data to a target domain with unlabeled dat…

cs.CV2022

Rethinking Rotation in Self-Supervised Contrastive Learning: Adaptive Positive or Negative Data Augmentation

Atsuyuki Miyai, Qing Yu, Daiki Ikami +2

Rotation is frequently listed as a candidate for data augmentation in contrastive learning but seldom provides satisfactory improvements. We argue that this is because the rotated…