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20222026
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cs.CV2026

Self-Supervised Learning with a Multi-Task Latent Space Objective

Pierre-François De Plaen, Abhishek Jha, Luc Van Gool +2

We propose a multi-task formulation of self-predictive Siamese SSL in which each spatial transformation defines a distinct latent-space alignment task, solved by a dedicated predic…

cs.CV2025

Unsupervised Parameter Efficient Source-free Post-pretraining

Abhishek Jha, Tinne Tuytelaars, Yuki M. Asano

Following the success in NLP, the best vision models are now in the billion parameter ranges. Adapting these large models to a target distribution has become computationally and ec…

cs.CV2024

Analysis of Spatial augmentation in Self-supervised models in the purview of training and test distributions

Abhishek Jha, Tinne Tuytelaars

In this paper, we present an empirical study of typical spatial augmentation techniques used in self-supervised representation learning methods (both contrastive and non-contrastiv…

cs.CV2024

The Common Stability Mechanism behind most Self-Supervised Learning Approaches

Abhishek Jha, Matthew B. Blaschko, Yuki M. Asano +1

Last couple of years have witnessed a tremendous progress in self-supervised learning (SSL), the success of which can be attributed to the introduction of useful inductive biases i…

cs.CV2022

Barlow constrained optimization for Visual Question Answering

Abhishek Jha, Badri N. Patro, Luc Van Gool +1

Visual question answering is a vision-and-language multimodal task, that aims at predicting answers given samples from the question and image modalities. Most recent methods focus…