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Relation Detection for Indonesian Language Using Deep Neural Network - Support Vector Machine

机译:基于深度神经网络的印尼语关系检测-支持向量机

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Relation Detection is a task to determine whether two entities is related or not. In this paper, we employ neural network to do relation detection between two named entities for Indonesian Language. We used feature such as word embedding, position embedding, POS-Tag embedding, and character embedding. For the model, we divide the model into two parts: Front-part classifier (Convolutional layer or LSTM layer)and Back-part classifier (Dense layer or SVM). We did grid search method of neural network hyper parameter and SVM. We used 6000 Indonesian sentences for training process and 1,125 for testing. The best result is 0.8083 on F1-Score using Convolutional Layer as front-part and SVM as back-part.
机译:关系检测是确定两个实体是否相关的任务。在本文中,我们使用神经网络对印尼语两个命名实体之间的关系进行检测。我们使用了词嵌入,位置嵌入,POS标签嵌入和字符嵌入等功能。对于模型,我们将模型分为两部分:前部分类器(卷积层或LSTM层)和后部分类器(密集层或SVM)。我们做了神经网络超参数和支持向量机的网格搜索方法。我们在训练过程中使用了6000个印尼语句子,在测试中使用了1,125个句子。最佳结果是在F1-Score上使用卷积层作为前部分,将SVM作为后部分的0.8083。

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