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Can Wang

4 papers here

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • last author2

Across the 2 of 4 papers where every author was matched, so the position is known.

fields
  • cs.IR4
ORCID 0000-0002-5890-4307
same name
  • Can Wang — 11 papers, h 37
  • Can Wang — 10 papers, h 17
  • Can Wang — 7 papers
  • Can Wang — 5 papers
  • Can Wang — 5 papers
  • Can Wang — 5 papers, h 13

Either other researchers who publish under this name, or the same person where the external sources have not merged their records.

identity via Semantic Scholar / OpenAlex

most citedRankformer: A Graph Transformer for Recommendation based on Ranking Objective

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

collaborators

4 papers

cs.IR2025

Advancing Loss Functions in Recommender Systems: A Comparative Study with a Rényi Divergence-Based Solution

Shengjia Zhang, Jiawei Chen, Changdong Li +5

Loss functions play a pivotal role in optimizing recommendation models. Among various loss functions, Softmax Loss (SL) and Cosine Contrastive Loss (CCL) are particularly effective…

cs.IR2025

Bridging the Gap: Self-Optimized Fine-Tuning for LLM-based Recommender Systems

Heng Tang, Feng Liu, Xinbo Chen +7

Recent years have witnessed extensive exploration of Large Language Models (LLMs) on the field of Recommender Systems (RS). There are currently two commonly used strategies to enab…

cs.IR2025

MSL: Not All Tokens Are What You Need for Tuning LLM as a Recommender

Bohao Wang, Feng Liu, Jiawei Chen +7

Large language models (LLMs), known for their comprehension capabilities and extensive knowledge, have been increasingly applied to recommendation systems (RS). Given the fundament…

cs.IR2025★ 4 cited

Rankformer: A Graph Transformer for Recommendation based on Ranking Objective

Sirui Chen, Shen Han, Jiawei Chen +6

Recommender Systems (RS) aim to generate personalized ranked lists for each user and are evaluated using ranking metrics. Although personalized ranking is a fundamental aspect of R…

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