LIU Xu

Work place: Business Intelligence, SAP Labs China, PudongPudong , Shanghai hanghai , 201203

E-mail: liuxuhere@hotmail.com

Website:

Research Interests: Visualization, Software Construction, Software Development Process, Software Engineering

Biography

LIU Xu is currently with Business Intelligence department of SAP Labs China, Shanghai as a senior software developer. He received his BBA from Nanjing University and his MSc from Peking University. He has worked as a software developer for about 14 years, has participated in the development of SAP Crystal Reports, SAP Lumira, SAPUI5 and SAP Analytics Cloud, and has published 10 research papers. His research interests include Business Intelligence, Information Visualization, Software Engineering and Educational Technology.

Author Articles
User Story based Information Visualization Type Recommendation System

By LIU Xu

DOI: https://doi.org/10.5815/ijieeb.2019.03.01, Pub. Date: 8 May 2019

To help users to determine the most appropriate visualization type is a useful feature of business visualization tools. Existing systems often give preliminary suggestions based on data sources but usually cannot make practical final decision. User stories are generalizations of user requirements. To recommend visualization type based on user stories can make better use of human experience to achieve automated decision making. One approach discussed in the paper is using machine learning techniques to model existing visualization types with corresponding user stories, and then use this model to predict recommended visualization type for new user story. This paper designs and implements a recommendation system prototype ReViz to verify the feasibility of this approach. As a typical web application, Modeling, Input Processing and Predicting components of ReViz are programmed using Python with Flask framework and Anaconda package set, and user interface is implemented using HTML, JavaScript and CSS with Bootstrap front-end library. The evaluation results show that ReViz can give recommended visualization type based on user story keywords. As a data-based intelligent software development technology achievement, visualization type recommendation system can also be integrated into larger business information management systems.

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