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  • title: Transfer Learning with Deep Tabular Models
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            Transfer Learning with Deep Tabular Models
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            Transfer Learning with Deep Tabular Models

            Dec 2, 2022

            Speakers

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            Roman Levin

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            Valeriia Cherepanova

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            AS

            Avi Schwarzschild

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            About

            Recent work on deep learning for tabular data demonstrates the strong performance of deep tabular models, often bridging the gap between gradient boosted decision trees and neural networks. Accuracy aside, a major advantage of neural models is that they are easily fine-tuned in new domains and learn reusable features. This property is often exploited in computer vision and natural language applications, where transfer learning is indispensable when task-specific training data is scarce. In this…

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            NeurIPS 2022

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