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Classification of emergency phone conversations with artificial neural network

机译:用人工神经网络进行紧急电话交谈的分类

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This paper presents a series of experiments on the classification of emergency phone conversation records using artificial neural networks (ANNs). Input data which were processed by ANNs were the features of callers and events taken from emergency phone calls. The authors analyzed four variants of classification: the groups of callers which have specified features, the groups of events which have specified features, selected callers, and selected events. Then the efficiency of classification by the ANN (artificial neural network) with various sets of features was compared. Results show that ANNs can properly classify precisely defined callers or events, from e.g. so called `black-list' of callers.
机译:本文介绍了使用人工神经网络(ANNS)的应急电话交谈记录分类一系列实验。 Anns处理的输入数据是从紧急电话呼叫中获取的呼叫者和事件的功能。作者分析了四个分类变体:具有指定功能的呼叫者组,具有指定功能,所选呼叫者和所选事件的事件组。然后比较了ANN(人工神经网络)分类具有各种特征的效率。结果表明,ANNS可以从例如,正确地分类精确定义的呼叫者或事件。所谓的来电者的“黑名单”。

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