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Out-of-sample generating few-shot classification networks

机译:样本外生成少量快照分类网络

摘要

Embodiments of the present disclosure include training a model using a plurality of pairs of feature vectors related to a first class. Embodiments include providing a sample feature vector related to a second class as an input to the model. Embodiments include receiving at least one synthesized feature vector as an output from the model. Embodiments include training a classifier to recognize the second class using a training data set comprising the sample feature vector related to the second class and the at least one synthesized feature vector. Embodiments include providing a query feature vector as an input to the classifier. Embodiments include receiving output from the classifier that identifies the query feature vector as being related to the second class, wherein the output is used to perform an action.
机译:本公开的实施例包括使用与第一类有关的多对特征向量来训练模型。实施例包括提供与第二类有关的样本特征向量作为模型的输入。实施例包括从模型接收至少一个合成特征向量作为输出。实施例包括使用训练数据集训练分类器以识别第二类别,该训练数据集包括与第二类别有关的样本特征向量和至少一个合成特征向量。实施例包括提供查询特征向量作为对分类器的输入。实施例包括从分类器接收将查询特征向量识别为与第二类相关的输出,其中,该输出用于执行动作。

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