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Tung Kieu

7 accepted papers

2026

Automatic Unsupervised Ensemble Outlier Model Selection

ICML 2026poster

Unsupervised outlier detection is attractive because it eliminates the need for labeled data. Further, forming multi-model ensembles can improve detection robustness performance. However, composing an ensemble without labeled data is challenging. Naively composing ensembles can cause ensemble satura…

Cited by 0SourceScholar
2026

Rethinking Progression of Memory State in Robotic Manipulation: An Object-Centric Perspective

AAAI 2026technical

As embodied agents operate in increasingly complex environments, the ability to perceive, track, and reason about individual object instances over time becomes essential, especially in tasks requiring sequenced interactions with visually similar objects. In non-Markovian settings, critical decision

Cited by 0SourcePDFScholar
2026

Universal Multi-Domain Translation via Diffusion Routers

ICLR 2026poster

Multi-domain translation (MDT) aims to learn translations between multiple domains, yet existing approaches either require fully aligned tuples or can only handle domain pairs seen in training, limiting their practicality and excluding many cross-domain mappings. We introduce universal MDT (UMDT), a…

Cited by 0SourcecodeScholar
2025

SLM-Bench: A Comprehensive Benchmark of Small Language Models on Environmental Impacts

EMNLP 2025

Small Language Models (SLMs) offer computational efficiency and accessibility, yet a systematic evaluation of their performance and environmental impact remains lacking. We introduce SLM-Bench, the first benchmark specifically designed to assess SLMs across multiple dimensions, including accuracy, c

2024

WAVER: Writing-Style Agnostic Text-Video Retrieval Via Distilling Vision-Language Models Through Open-Vocabulary Knowledge

ICASSP 2024accepted

Text-video retrieval, a prominent sub-field within the domain of multimodal information retrieval, has witnessed remarkable growth in recent years. However, existing methods assume video scenes are consistent with unbiased descriptions. These limitations fail to align with real-world scenarios since…

Cited by 0SourceScholar
2022

Triformer: Triangular, Variable-Specific Attentions for Long Sequence Multivariate Time Series Forecasting

IJCAI 2022poster

A variety of real-world applications rely on far future information to make decisions, thus calling for efficient and accurate long sequence multivariate time series forecasting. While recent attention-based forecasting models show strong abilities in capturing long-term dependencies, they still su…