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  • title: Optimizing Reusable Knowledge for Continual Learning via Metalearning
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            Optimizing Reusable Knowledge for Continual Learning via Metalearning
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            Optimizing Reusable Knowledge for Continual Learning via Metalearning

            Dec 6, 2021

            Speakers

            JH

            Julio Hurtado

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            AR

            Alain Raymond-Sáez

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            ÁS

            Álvaro Soto

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            About

            When learning tasks over time, artificial neural networks suffer from a problem known as Catastrophic Forgetting (CF). This happens when the weights of a network are overwritten during the training of a new task causing forgetting of old information. To address this issue, we propose MetA Reusable Knowledge or MARK, a new method that fosters weight reusability instead of overwriting when learning a new task. Specifically, MARK keeps a set of shared weights among tasks. We envision these shared w…

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            NeurIPS 2021

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            Neural Information Processing Systems (NeurIPS) is a multi-track machine learning and computational neuroscience conference that includes invited talks, demonstrations, symposia and oral and poster presentations of refereed papers. Following the conference, there are workshops which provide a less formal setting.

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