GISualization: visualized integration of multiple types of data for knowledge co-production

IF 0.8 4区 社会学 Q4 ENVIRONMENTAL STUDIES Geografisk Tidsskrift-Danish Journal of Geography Pub Date : 2019-04-24 DOI:10.1080/00167223.2019.1605301
M. Adelfio, Jaan-Henrik Kain, Jenny Stenberg, L. Thuvander
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引用次数: 3

Abstract

ABSTRACT Urban planning deals with multiple layers of information stemming from concurrent activities and stakeholders intervening in urban development. For a better management of complexity more comprehensiveness and data integration are needed. This study develops an adaptive and iterative mixed-method approach for knowledge production in urban transformation processes. Specific research questions relate to data integration from different sources and facilitation of co-production of knowledge beyond triangulation. A new multi-layer framework, GISualization, has been developed in the context of a research project exploring compact city qualities. The framework is structured through five data layers, representing different methods for data collection and different grades of complexity, richness and interpretation: basic statistics; advanced statistics; exogenous quali-quantitative descriptions; exogenous qualitative descriptions; and endogenous qualitative descriptions. Thus, data stem from both quantitative and qualitative sources. Our study has proven that GISualization is a methodological framework that enables analysis and visualization of complex data in a rich format. The approach is closely related to analytical eclecticism and abductivity. It embodies a collaborative communication platform that provides a language to navigate between heterogeneous data, information and methods. The GISualization framework opens up for broader stakeholder involvement and community participation extending research into the domain of transdisciplinary knowledge production.
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可视化:多种类型数据的可视化集成,用于知识协同生产
城市规划涉及多个层面的信息,这些信息来源于同时发生的活动和参与城市发展的利益相关者。为了更好地管理复杂性,需要更多的全面性和数据集成。本研究为城市转型过程中的知识生产开发了一种自适应迭代混合方法。具体的研究问题涉及来自不同来源的数据整合和促进超越三角测量的知识共同生产。在一个探索紧凑型城市质量的研究项目的背景下,开发了一个新的多层框架GISualization。该框架由五个数据层构成,代表了不同的数据收集方法和不同的复杂性、丰富度和解释等级:基本统计;高级统计;外生质定量描述;外生定性描述;以及内生的定性描述。因此,数据来自定量和定性两个来源。我们的研究已经证明,GISualization是一种方法论框架,能够以丰富的格式对复杂数据进行分析和可视化。这种方法与分析折衷主义和溯因性密切相关。它体现了一个协作通信平台,该平台提供了一种在异构数据、信息和方法之间导航的语言。gisalization框架为更广泛的利益相关者参与和社区参与打开了大门,将研究扩展到跨学科知识生产领域。
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来源期刊
CiteScore
5.20
自引率
0.00%
发文量
5
期刊介绍: DJG is an interdisciplinary, international journal that publishes peer reviewed research articles on all aspects of geography. Coverage includes such topics as human geography, physical geography, human-environment interactions, Earth Observation, and Geographical Information Science. DJG also welcomes articles which address geographical perspectives of e.g. environmental studies, development studies, planning, landscape ecology and sustainability science. In addition to full-length papers, DJG publishes research notes. The journal has two annual issues. Authors from all parts of the world working within geography or related fields are invited to publish their research in the journal.
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