Search Results for author: BingYi Jing

Found 6 papers, 0 papers with code

Knowledge Distillation with Multi-granularity Mixture of Priors for Image Super-Resolution

no code implementations3 Apr 2024 Simiao Li, Yun Zhang, Wei Li, Hanting Chen, Wenjia Wang, BingYi Jing, Shaohui Lin, Jie Hu

Knowledge distillation (KD) is a promising yet challenging model compression technique that transfers rich learning representations from a well-performing but cumbersome teacher model to a compact student model.

Image Super-Resolution Knowledge Distillation +1

Enhanced Bayesian Personalized Ranking for Robust Hard Negative Sampling in Recommender Systems

no code implementations28 Mar 2024 Kexin Shi, Jing Zhang, Linjiajie Fang, Wenjia Wang, BingYi Jing

In implicit collaborative filtering, hard negative mining techniques are developed to accelerate and enhance the recommendation model learning.

Collaborative Filtering Recommendation Systems

Exploring Learning Complexity for Downstream Data Pruning

no code implementations8 Feb 2024 Wenyu Jiang, Zhenlong Liu, Zejian Xie, Songxin Zhang, BingYi Jing, Hongxin Wei

In this paper, we propose to treat the learning complexity (LC) as the scoring function for classification and regression tasks.

Informativeness

Lyrics: Boosting Fine-grained Language-Vision Alignment and Comprehension via Semantic-aware Visual Objects

no code implementations8 Dec 2023 Junyu Lu, Dixiang Zhang, Songxin Zhang, Zejian Xie, Zhuoyang Song, Cong Lin, Jiaxing Zhang, BingYi Jing, Pingjian Zhang

During the instruction fine-tuning stage, we introduce semantic-aware visual feature extraction, a crucial method that enables the model to extract informative features from concrete visual objects.

Image Captioning object-detection +5

Data Upcycling Knowledge Distillation for Image Super-Resolution

no code implementations25 Sep 2023 Yun Zhang, Wei Li, Simiao Li, Hanting Chen, Zhijun Tu, Wenjia Wang, BingYi Jing, Shaohui Lin, Jie Hu

Knowledge distillation (KD) compresses deep neural networks by transferring task-related knowledge from cumbersome pre-trained teacher models to compact student models.

Image Super-Resolution Knowledge Distillation +1

Enhancing Recommender Systems: A Strategy to Mitigate False Negative Impact

no code implementations25 Nov 2022 Kexin Shi, Yun Zhang, BingYi Jing, Wenjia Wang

In implicit collaborative filtering (CF) task of recommender systems, recent works mainly focus on model structure design with promising techniques like graph neural networks (GNNs).

Collaborative Filtering Recommendation Systems

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