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Author

Xiaocao Ouyang

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Sep 2026

Structural knowledge-guided complex-noise handling for open intent classification.

Open intent classification aims to assign known intents to their corresponding classes while identifying unknown intents. Its success largely relies on accurately annotated data. However, real-world data often contains both in-distribution (IND) noise and out-of-distribution (OOD) noise, which degrades model performanc...

Yan-Hua Li, Xiao-Cao Ouyang, Jie Zhang et al. · 0 citations
Oct 2026

Context-Aligned Latent Enhancement for Multimodal Hate Meme Detection

Detecting hate memes on social media presents a formidable challenge due to their multimodal and often subtle nature. The hateful intent typically emerges from a nuanced interplay between visual and textual elements, which existing methods often fail to capture by inadequately modeling these cross-modal correlations. T...

Lian-Song Zong, Qing-Chi Gui, Jie Wang et al. · 0 citations
Book Open access Aug 2026

TS-MTM: Temporal-Spectral Masked Time-Series Modeling for Forecasting

TS-MTM is proposed, a Temporal-Spectral Masked Time-series Modeling framework that formalizes pretraining within a joint representation space and introduces two synergistic mechanisms: Axial-Period Cross Masking to capture temporal dependencies across phases, and Structure-aware Spectral Magnitude Masking to reconstruc...

Pengcheng Zhang, Xiao-Cao Ouyang, Xin Li et al. · 0 citations
Book Open access Aug 2026

TS-MTM: Temporal-Spectral Masked Time-Series Modeling for Forecasting

Time series forecasting is a cornerstone of numerous real-world applications, where prediction accuracy relies on capturing intricate periodic patterns and evolving spectral dynamics. While Masked Time-series Modeling (MTM) has emerged as a powerful self-supervised paradigm, its conventional one-dimensional (1D) formul...

Pengcheng Zhang, Xiaocao Ouyang, Xin Li et al. · 0 citations
Review Jul 2026

Zero-Mem: Zero-Token Memory Operations for LLM Agents

The results show that structured agent memory need not generate an intermediate representation of the past, and Zero-Mem achieves competitive performance while eliminating LLM calls and LLM-token consumption from memory operations.

Yi-Lin Xiao, Zhe-Han Zhu, Yujing Zhang et al. · 1 citation

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