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SEMI-SUPERVISED LEARNING USING CLUSTERING AS AN ADDITIONAL CONSTRAINT

机译:使用集群作为附加约束的半监督学习

摘要

In some implementations a neural network is trained to perform a main task using a clustering constraint, for example, using both a main task training loss and a clustering training loss. Training inputs are inputted into a main task neural network to produce output labels predicting locations of the parts of the objects in the training inputs. Data from pooled layers of the main task neural network is inputted into a clustering neural network. The main task neural network and the clustering neural network are trained based on a main task loss from the main task neural network and a clustering loss from the clustering neural network. The main task loss is determined by comparing differences between the output labels and the training labels. The clustering loss encourages the clustering network to learn to label the parts of the objects individually, e.g., to learn groups corresponding to the object parts.
机译:在一些实施方式中,训练神经网络以使用聚类约束来执行主要任务,例如,使用主任务训练损失和聚类训练损失两者。训练输入被输入到主任务神经网络中以产生输出标签,该输出标签预测训练输入中对象的各部分的位置。来自主任务神经网络的合并层的数据被输入到聚类神经网络中。基于来自主任务神经网络的主要任务损失和来自聚类神经网络的聚类损失来训练主任务神经网络和聚类神经网络。通过比较输出标签和训练标签之间的差异来确定主要任务损失。聚类丢失鼓励聚类网络学习单独标记对象的部分,例如,学习与对象部分相对应的组。

著录项

  • 公开/公告号US2020074280A1

    专利类型

  • 公开/公告日2020-03-05

    原文格式PDF

  • 申请/专利权人 APPLE INC.;

    申请/专利号US201916513991

  • 发明设计人 PETER MEIER;TANMAY BATRA;

    申请日2019-07-17

  • 分类号G06N3/04;G06N3/08;G06K9/62;G06T7/70;G06T7/20;

  • 国家 US

  • 入库时间 2022-08-21 11:19:15

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