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Exploring the landscape of machine unlearning: A comprehensive survey and taxonomy
Machine unlearning (MU) is gaining increasing attention due to the need to remove or
modify predictions made by machine learning (ML) models. While training models have …
modify predictions made by machine learning (ML) models. While training models have …
Infogcn: Representation learning for human skeleton-based action recognition
Human skeleton-based action recognition offers a valuable means to understand the
intricacies of human behavior because it can handle the complex relationships between …
intricacies of human behavior because it can handle the complex relationships between …
Clip for all things zero-shot sketch-based image retrieval, fine-grained or not
In this paper, we leverage CLIP for zero-shot sketch based image retrieval (ZS-SBIR). We
are largely inspired by recent advances on foundation models and the unparalleled …
are largely inspired by recent advances on foundation models and the unparalleled …
Factorized contrastive learning: Going beyond multi-view redundancy
In a wide range of multimodal tasks, contrastive learning has become a particularly
appealing approach since it can successfully learn representations from abundant …
appealing approach since it can successfully learn representations from abundant …
Disencdr: Learning disentangled representations for cross-domain recommendation
Data sparsity is a long-standing problem in recommender systems. To alleviate it, Cross-
Domain Recommendation (CDR) has attracted a surge of interests, which utilizes the rich …
Domain Recommendation (CDR) has attracted a surge of interests, which utilizes the rich …
Cross-domain recommendation to cold-start users via variational information bottleneck
Recommender systems have been widely deployed in many real-world applications, but
usually suffer from the long-standing user cold-start problem. As a promising way, Cross …
usually suffer from the long-standing user cold-start problem. As a promising way, Cross …
Text-to-image diffusion models are great sketch-photo matchmakers
This paper for the first time explores text-to-image diffusion models for Zero-Shot Sketch-
based Image Retrieval (ZS-SBIR). We highlight a pivotal discovery: the capacity of text-to …
based Image Retrieval (ZS-SBIR). We highlight a pivotal discovery: the capacity of text-to …
Tvt: Three-way vision transformer through multi-modal hypersphere learning for zero-shot sketch-based image retrieval
In this paper, we study the zero-shot sketch-based image retrieval (ZS-SBIR) task, which
retrieves natural images related to sketch queries from unseen categories. In the literature …
retrieves natural images related to sketch queries from unseen categories. In the literature …
Multi-view representation learning via total correlation objective
Abstract Multi-View Representation Learning (MVRL) aims to discover a shared
representation of observations from different views with the complex underlying correlation …
representation of observations from different views with the complex underlying correlation …
Zero-shot sketch-based image retrieval via adaptive relation-aware metric learning
Retrieving natural images with the query sketches under the zero-shot scenario is known as
zero-shot sketch-based image retrieval (ZS-SBIR). Most of the best-performing methods …
zero-shot sketch-based image retrieval (ZS-SBIR). Most of the best-performing methods …