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Papers/Feature Generating Networks for Zero-Shot Learning

Feature Generating Networks for Zero-Shot Learning

Yongqin Xian, Tobias Lorenz, Bernt Schiele, Zeynep Akata

2017-12-04CVPR 2018 6Generalized Zero-Shot LearningZero-Shot Learning
PaperPDFCodeCodeCodeCode

Abstract

Suffering from the extreme training data imbalance between seen and unseen classes, most of existing state-of-the-art approaches fail to achieve satisfactory results for the challenging generalized zero-shot learning task. To circumvent the need for labeled examples of unseen classes, we propose a novel generative adversarial network (GAN) that synthesizes CNN features conditioned on class-level semantic information, offering a shortcut directly from a semantic descriptor of a class to a class-conditional feature distribution. Our proposed approach, pairing a Wasserstein GAN with a classification loss, is able to generate sufficiently discriminative CNN features to train softmax classifiers or any multimodal embedding method. Our experimental results demonstrate a significant boost in accuracy over the state of the art on five challenging datasets -- CUB, FLO, SUN, AWA and ImageNet -- in both the zero-shot learning and generalized zero-shot learning settings.

Results

TaskDatasetMetricValueModel
Zero-Shot LearningCUB-200-2011average top-1 classification accuracy57.3f-CLSWGAN
Zero-Shot LearningSUN Attributeaverage top-1 classification accuracy60.8f-CLSWGAN
Zero-Shot LearningSUN AttributeHarmonic mean39.4f-CLSWGAN

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