整合情感分析和质量功能部署,促进产品开发

Abdullah 'Azzam, Syafira Mahardiningtyas, Qurtubi Qurtubi
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引用次数: 0

摘要

技术和媒体的发展使在线数据评论成为一种前景广阔的数据源。通过利用文本处理的机器学习,可以对 Ventela Public Low 的产品评论进行数据分析--通过情感分析从每条数据中找到类组。分类算法采用 Naïve Bayes 和支持向量机 (SVM)。将选择一个性能和准确率值最佳的分类模型。然后应用词关联来获取所需类别的信息。质量功能展开(QFD)是一种用于协助设计师开发产品的工具。将情感分析整合到 QFD 中的结果表明,情感分析通过 QFD 方法的规定产生信息,可以在各种数据主题的数据量方面支持产品开发过程,并减少设计人员在确定客户心声(VOC)和产品及竞争对手性能值阶段的主观性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrating Sentiment Analysis and Quality Function Deployment for Product Development
The development of technology and media has made online data reviews a promising data source. Through machine learning utilizing text processing, data analysis of Ventela Public Low product reviews can be carried out—sentiment analysis is used to find class groups from each data. The classification algorithm is Naïve Bayes and Support Vector Machine (SVM). A classification model with the best performance and accuracy values will be selected. Word association is then applied to obtain information from the required class. Quality Function Deployment (QFD) is a tool used to assist designers in developing products. The results of the integration of sentiment analysis into QFD show that sentiment analysis produces information by the provisions of the QFD method and can support the product development process in terms of the amount of data various data topics and reduces the subjectivity of designers at the stage of determining Voice of Customer (VOC) and performance values of products and competitors
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