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Yu-Hsiang Wang

6 accepted papers

2025

DMol: A Highly Efficient and Chemical Motif-Preserving Molecule Generation Platform

NeurIPS 2025poster

We introduce a new graph diffusion model for small drug molecule generation which simultaneously offers a 10-fold reduction in the number of diffusion steps when compared to existing methods, preservation of small molecule graph motifs via motif compression, and an average 3\% improvement in SMILES…

Cited by 0SourceScholar
2025

Financial Risk Relation Identification through Dual-view Adaptation

EMNLP 2025

A multitude of interconnected risk events—ranging from regulatory changes to geopolitical tensions—can trigger ripple effects across firms. Identifying inter-firm risk relations is thus crucial for applications like portfolio management and investment strategy. Traditionally, such assessments rely o

Cited by 0SourcePDFScholar
2025

Let’s Fuse Step by Step: A Generative Fusion Decoding Algorithm with LLMs for Robust and Instruction-Aware ASR and OCR

ACL 2025finding

We introduce “Generative Fusion Decoding” (GFD), a novel shallow fusion framework, utilized to integrate large language models(LLMs) into cross-modal text recognition systems inlculding automatic speech recognition (ASR) and optical character recognition (OCR). We derive the formulas necessary to en…

Cited by 0SourcePDFScholar
2025

SURF: A System to Unveil Explainable Risk Relations between Firms

NAACL 2025system demonstrations

Firm risk relations are crucial in financial applications, including hedging and portfolio construction. However, the complexity of extracting relevant information from financial reports poses significant challenges in quantifying these relations. To this end, we introduce SURF, a System to Unveil E…

Cited by 0SourcePDFScholar
2024

SMILEtrack: SiMIlarity LEarning for Occlusion-Aware Multiple Object Tracking

AAAI 2024technical

Despite recent progress in Multiple Object Tracking (MOT), several obstacles such as occlusions, similar objects, and complex scenes remain an open challenge. Meanwhile, a systematic study of the cost-performance tradeoff for the popular tracking-by-detection paradigm is still lacking. This paper in…

2015

A fast hyperplane-based MVES algorithm for hyperspectral unmixing

ICASSP 2015accepted

Hyperspectral unmixing (HU) is an essential signal processing procedure for blindly extracting the hidden spectral signatures of materials (or endmembers) from observed hyperspectral imaging data. Craig's criterion, stating that the vertices of the minimum volume enclosing simplex (MVES) of the data…

Cited by 0SourceScholar