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Jin Cui

8 accepted papers

2026

FAST: Topology-Aware Frequency-Domain Distribution Matching for Coreset Selection

CVPR 2026

Coreset selection compresses large datasets into compact, representative subsets, reducing the energy and computational burden of training deep neural networks. Existing methods are either: (i) DNN-based, which are inherently coupled with network-specific parameters, inevitably introducing architect

Cited by 0SourceScholar
2026

“The Whole Is Greater than the Sum of Its Parts”: A Compatibility-Aware Multi-Teacher CoT Distillation Framework

IJCAI 2026

Chain-of-Thought (CoT) reasoning empowers Large Language Models (LLMs) with remarkable capabilities but typically requires prohibitive parameter scales. CoT distillation has emerged as a promising paradigm to transfer reasoning prowess into compact Student Models (SLMs), but existing approaches ofte

Cited by 0Scholar
2025

AGRec: Adapting Autoregressive Decoders with Graph Reasoning for LLM-based Sequential Recommendation

ACL 2025finding

Autoregressive decoders in large language models (LLMs) excel at capturing users’ sequential behaviors for generative recommendations. However, they inherently struggle to leverage graph-structured user-item interactions, which are widely recognized as beneficial. This paper presents AGRec, adapting…

2025

Causal Denoising Prototypical Network for Few-Shot Multi-label Aspect Category Detection

ACL 2025finding

The multi-label aspect category detection (MACD) task has attracted great attention in sentiment analysis. Many recent methods have formulated the MACD task by learning robust prototypes to represent categories with limited support samples. However, few of them address the noise categories in the su…

2024

Enhanced Coherence-Aware Network with Hierarchical Disentanglement for Aspect-Category Sentiment Analysis

COLING 2024main

Aspect-category-based sentiment analysis (ACSA), which aims to identify aspect categories and predict their sentiments has been intensively studied due to its wide range of NLP applications. Most approaches mainly utilize intrasentential features. However, a review often includes multiple different…

2024

Enhancing High-order Interaction Awareness in LLM-based Recommender Model

EMNLP 2024main

Large language models (LLMs) have demonstrated prominent reasoning capabilities in recommendation tasks by transforming them into text-generation tasks. However, existing approaches either disregard or ineffectively model the user-item high-order interactions. To this end, this paper presents an enh…

2024

RDRec: Rationale Distillation for LLM-based Recommendation

ACL 2024short

Large language model (LLM)-based recommender models that bridge users and items through textual prompts for effective semantic reasoning have gained considerable attention. However, few methods consider the underlying rationales behind interactions, such as user preferences and item attributes, limi…

2023

Aspect-Category Enhanced Learning with a Neural Coherence Model for Implicit Sentiment Analysis

EMNLP 2023long findings

Aspect-based sentiment analysis (ABSA) has been widely studied since the explosive growth of social networking services. However, the recognition of implicit sentiments that do not contain obvious opinion words remains less explored. In this paper, we propose aspect-category enhanced learning with a…

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