StePO-Rec: Towards Personalized Outfit Styling Assistant via Knowledge-Guided Multi-Step Reasoning
Yuxi Bi, Yunfan Gao, Haofen Wang
摘要
Advancements in Generative AI offers new opportunities for Fash-ionAI, surpassing traditional recommendation systems that often lack transparency and struggle to integrate expert knowledge, leaving the potential for personalized fashion styling remain untapped. To address these challenges, we present PAFA (Principle-Aware Fashion), a multi-granular knowledge base that organizes professional styling expertise into three levels of metadata, domain principles, and semantic relationships. Using PAFA, we develop StePO-Rec, a knowledge-guided method for multi-step outfit recommendation. StePO-Rec provides structured suggestions using a scenario-dimension-attribute framework, employing recursive tree construction to align recommendations with both professional principles and individual preferences. A preference-trend re-ranking system further adapts to fashion trends while maintaining the consistency of the user's original style. Experiments on the widely used personalized outfit dataset IQON show a 28% increase in Recall@1 and 32.8% in MAP. Furthermore, case studies highlight improved explainability, traceability, result reliability, and the seamless integration of expertise and personalization.
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- Hierarchical Fashion Graph Network for Personalized Outfit RecommendationXingchen Li, Xiang Wang, Xiangnan He, Long Chen 等SIGIR 2020 · 被引用 124 次
- Aligning LLM Agents by Learning Latent Preference from User EditsGe Gao, Alexey Taymanov, Eduardo Salinas, Paul Mineiro 等NeurIPS 2024 · 被引用 102 次
- Knowledge-Augmented Large Language Models for Personalized Contextual Query SuggestionJinheon Baek, Nirupama Chandrasekaran, Silviu Cucerzan, Allen Herring 等WWW 2024 · 被引用 72 次
- Bi-directional Heterogeneous Graph Hashing towards Efficient Outfit RecommendationWeili Guan, Xuemeng Song, Haoyu Zhang, Meng Liu 等ACM MM 2022 · 被引用 42 次
- Show Me The Best Outfit for A Certain Scene: A Scene-aware Fashion Recommender SystemTangwei Ye, Liang Hu, Qi Zhang, Zhongyuan Lai 等WWW 2023 · 被引用 12 次
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