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Big data or small data? A methodological review of sustainable tourism

机译:大数据或小数据?可持续旅游的方法论综述

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Research in the field of sustainable tourism is increasingly important due to significant growth in tourism industries and the unsustainable impacts incurred. Innovation in sustainable tourism studies is required to meet a number of challenges including socio-ecological impacts; the critical turn in tourism research; and the growth of ICTs, mobile technologies and big data analytics. These shifts in particular are transforming the field and creating new research opportunities. This article seeks to identify potentially new methodological areas of application to sustainable tourism studies for both quantitative and qualitative methods. A range of methods are reviewed, focusing on big data (e.g. mobile device signaling, GPS, social media and search engine data) that elucidates wider patterns of tourist movement, as applied to forecasting travel demands and sustainable management of a destination. Three novel "small data" methods are also discussed, comprising visual methods, autoethnography and qualitative GIS, that provide deeper, contextual insights into the drivers, dynamics and impacts of sustainable tourism. We consider how expansive qualitative methodologies might yield potentially important insights concealed by existing methodologies. Furthermore, we argue that combined big data and small data approaches can address methodological imbalance and generate mutually reinforcing insights at a number of levels.
机译:由于旅游业的显着增长和不可持续的影响,可持续旅游领域的研究越来越重要。需要在可持续旅游研究中创新,以满足许多挑战,包括社会生态影响;旅游研究的批判性研究;和ICT,移动技术和大数据分析的增长。这些转变特别是转变该领域并创造新的研究机会。本文旨在为定量和定性方法识别可持续旅游研究的潜在新的方法论领域。审查了一系列方法,专注于大数据(例如移动设备信令,GPS,社交媒体和搜索引擎数据),其阐明了更广泛的旅游运动模式,适用于预测目的地的旅行需求和可持续管理。还讨论了三种新颖的“小数据”方法,包括视觉方法,自动识别和定性GIS,为司机,动态和可持续旅游的驾驶员,动态和影响提供更深入的,情境见解。我们考虑广泛的定性方法可能会产生现有方法隐藏的潜在重要见解。此外,我们认为,组合的大数据和小型数据方法可以解决方法论不平衡,并在许多级别中产生相互加强的洞察力。

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