使用自然语言处理和神经网络的校园聊天机器人系统

Tuan-Jun Goh, Lee-Ying Chong, Siew-Chin Chong, Pey-Yun Goh
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引用次数: 0

摘要

聊天机器人旨在模拟人类对话,为用户提供即时回复。聊天机器人在提供自动客户支持和信息检索方面在企业中越来越受欢迎。此外,它还可以作为虚拟助手与用户交流,根据用户的输入提供最新的答案。大多数聊天机器人仍在使用传统的基于规则的聊天机器人,这种机器人只能对预定义的句子做出回应,因此用户不太可能使用聊天机器人。本文旨在为多媒体大学信息科学与技术学院(FIST)设计和构建一个校园聊天机器人,以方便FIST学生的学习生活。在使用 FIST 聊天机器人之前,需要使用自然语言处理技术,如标记化、词法化和词袋模型来生成输入,用于训练神经网络模型(多层感知器模型)。通过分析用户的问题,FIST 聊天机器人能够理解用户的意图,从而能够处理更广泛的咨询,并以准确的答案或与信息科学与技术学院相关的信息满足学生的需求。此外,我们还开发了后台界面,允许管理员添加和编辑拟议聊天机器人中的数据集,并使其能够持续向学生回复最新信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Campus-based Chatbot System using Natural Language Processing and Neural Network
A chatbot is designed to simulate human conversation and provide instant responses to users. Chatbots have gained popularity in providing automated customer support and information retrieval among organisations. Besides, it also acts as a virtual assistant to communicate with users by delivering updated answers based on users' input. Most chatbots still use the traditional rule-based chatbot, which can only respond to pre-defined sentences, making the users unlikely to use the chatbot. This paper aims to design and build a campus chatbot for the Faculty of Information Science & Technology (FIST) of Multimedia University that facilitates the study life of FIST students. Before the FIST chatbot can be used, natural language processing techniques such as tokenisation, lemmatisation and bag of word model are used to generate the input that can be used to train the neural network model (multilayer perceptron model). It makes the FIST chatbot comprehends user intent by analysing their questions, enabling it to address a broader range of inquiries and cater to the student's need with accurate answers or information related to the Faculty of Information Science & Technology. Besides, we also developed the backend interface allowing the admin to add and edit the dataset in the proposed chatbot and enable it continuously responds to the student with the latest and updated information.
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