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Binary and multi-class classification systems and methods using one spike connectionist temporal classification

机译:二进制和多级分类系统和方法使用一个尖峰连接主人时间分类

摘要

A classification training system for binary and multi-class classification comprises a neural network operable to perform classification of input data, a training dataset including pre-segmented, labeled training samples, and a classification training module operable to train the neural network using the training dataset. The classification training module includes a forward pass processing module, and a backward pass processing module. The backward pass processing module is operable to determine whether a current frame is in a region of target (ROT), determine ROT information such as beginning and length of the ROT and update weights and biases using a cross-entropy cost function and One Spike Connectionist Temporal Classification (OSCTC) cost function. The backward pass module further computes a soft target value using ROT information and computes a signal output error using the soft target value and network output value.
机译:用于二进制和多级分类的分类培训系统包括用于执行输入数据的分类的神经网络,包括预分段,标记的训练样本的训练数据集,以及可操作以使用训练数据集训练神经网络的分类训练模块 。 分类训练模块包括前向通过处理模块和后向通过处理模块。 后向通过处理模块可操作以确定当前帧是否处于目标区域(ROT),确定诸如RET的开始和长度的ROT信息以及使用跨熵成本函数和一个尖峰连接器更新权重和偏置 时间分类(OSCTC)成本函数。 后向通过模块还使用腐烂信息计算软目标值,并使用软目标值和网络输出值计算信号输出误差。

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