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Learnable Adaptive Cosine Estimator for Image Classification

2021-10-11 14:45:15
Joshua Peeples, Connor McCurley, Sarah Walker, Dylan Stewart, Alina Zare

Abstract

In this work, we propose a new loss to improve feature discriminability and classification performance. Motivated by the adaptive cosine/coherence estimator (ACE), our proposed method incorporates angular information that is inherently learned by artificial neural networks. Our learnable ACE (LACE) transforms the data into a new ``whitened" space that improves the inter-class separability and intra-class compactness. We compare our LACE to alternative state-of-the art softmax-based and feature regularization approaches. Our results show that the proposed method can serve as a viable alternative to cross entropy and angular softmax approaches. Our code is publicly available: this https URL.

Abstract (translated)

URL

https://arxiv.org/abs/2110.05324

PDF

https://arxiv.org/pdf/2110.05324.pdf


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