Multimodal business analytics: The concept and its application prospects in economic science and practice

Pavel Mikhnenko
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Abstract

One of the problems of business analysis is obtaining and processing an ever-increasing volume of economic, financial, organizational, political and legal data. Multimodal business analytics is a new methodology combining the methods of classical business analysis with big data technologies, intelligent business analytics, multimodal data fusion, artificial neural networks and deep machine learning. The purpose of the study is to determine the conceptual foundations of the phenomenon of multimodal business analytics and substantiate the prospects for its use in economic science and practice. Methodologically, the study rests on the systems approach, i.e., multimodal business analytics is examined as a unique integrated phenomenon comprised of several interrelated components. The evidence base covers research studies of 2000–2022 on multimodal business analytics from Scopus and the Russian online database eLibrary.ru. Empirical methods were used to collect and evaluate the dynamics of the number of relevant publications and their segmentation by subject areas. We have proposed own thesaurus and ontology of the key terms that make up the phenomenon of multimodal business analytics. It is shown that the use of the concept allows expanding the range of data, exposing hidden interrelations of organizational and economic phenomena and synthesizing fundamentally new information needed for effective decision-making in business.
多模式商业分析:概念及其在经济科学与实践中的应用前景
商业分析的问题之一是获取和处理越来越多的经济、金融、组织、政治和法律数据。多模态商业分析是将经典商业分析方法与大数据技术、智能商业分析、多模态数据融合、人工神经网络和深度机器学习相结合的一种新方法。本研究的目的是确定多模态商业分析现象的概念基础,并证实其在经济科学和实践中的应用前景。在方法论上,本研究以系统方法为基础,即将多模态商业分析作为一种独特的综合现象进行研究,该现象由几个相互关联的部分组成。证据基础包括 Scopus 和俄罗斯在线数据库 eLibrary.ru 中 2000-2022 年有关多模式商业分析的研究。我们采用了经验方法来收集和评估相关出版物的数量动态及其按主题领域进行的细分。我们为构成多模态商业分析现象的关键术语提出了自己的词库和本体。结果表明,使用这一概念可以扩大数据范围,揭示组织和经济现象之间隐藏的相互关系,并从根本上综合企业有效决策所需的新信息。
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