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Prashant Shivaram Bhat

3 accepted papers

2023

BiRT: Bio-inspired Replay in Vision Transformers for Continual Learning

ICML 2023poster

The ability of deep neural networks to continually learn and adapt to a sequence of tasks has remained challenging due to catastrophic forgetting of previously learned tasks. Humans, on the other hand, have a remarkable ability to acquire, assimilate, and transfer knowledge across tasks throughout t…

2023

Task-Aware Information Routing from Common Representation Space in Lifelong Learning

ICLR 2023poster

Intelligent systems deployed in the real world suffer from catastrophic forgetting when exposed to a sequence of tasks. Humans, on the other hand, acquire, consolidate, and transfer knowledge between tasks that rarely interfere with the consolidated knowledge. Accompanied by self-regulated neurogen…

2023

TriRE: A Multi-Mechanism Learning Paradigm for Continual Knowledge Retention and Promotion

NeurIPS 2023poster

Continual learning (CL) has remained a persistent challenge for deep neural networks due to catastrophic forgetting (CF) of previously learned tasks. Several techniques such as weight regularization, experience rehearsal, and parameter isolation have been proposed to alleviate CF. Despite their rela…