2020
DOI: 10.1016/j.ijinfomgt.2020.102190
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Big data analytics adoption: Determinants and performances among small to medium-sized enterprises

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Cited by 264 publications
(323 citation statements)
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References 137 publications
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“…Prior studies have discovered the of big data components for building the SSCM ( Akter et al, 2016 ; Zhan and Tan, 2020 ). Maroufkhani et al, (2020) proposed a data-driven analysis to obtain the technological-organizational-environmental paradigm to implement the lessening resource utilization and emission reduction solutions in SSCM systems. Majeed et al (2021) developed a modeling structure by uniting big data analytics to additive manufacturing, and sustainable smart manufacturing technologies which is advantageous to the additive manufacturing initiatives.…”
Section: Data Collection and Methodsologymentioning
confidence: 99%
“…Prior studies have discovered the of big data components for building the SSCM ( Akter et al, 2016 ; Zhan and Tan, 2020 ). Maroufkhani et al, (2020) proposed a data-driven analysis to obtain the technological-organizational-environmental paradigm to implement the lessening resource utilization and emission reduction solutions in SSCM systems. Majeed et al (2021) developed a modeling structure by uniting big data analytics to additive manufacturing, and sustainable smart manufacturing technologies which is advantageous to the additive manufacturing initiatives.…”
Section: Data Collection and Methodsologymentioning
confidence: 99%
“…These adversities are further exacerbated by a dearth of 5 empirical studies examining the analytics' effect on the performance of SMEs (e.g. Maroufkhani et al, 2020, Liu et al, 2020, Wang et al, 2018.…”
Section: Literature Reviewmentioning
confidence: 99%
“…Based on the literature review, the following gaps concerning marketing analytics use are identified and will be addressed in this study: First, although studies have established the link between the use of business analytics and improved firm performance such as innovation (e.g., Duan et al, 2020), decision making effectiveness (e.g., Cao et al, 2015), supply chain performance (e.g., Zhan and Tan, 2020), and competitive advantages (e.g., Cao et al, 2019, WangYeoh et al, 2019, the majority of these studies are based on large companies and their findings should not be applied to SMEs directly without further investigation, as SMEs are not smaller versions of larger firms (O'Regan et al, 2005). Aside from only a few studies (e.g., Ferraris et al, 2019, Maroufkhani et al, 2020, Hansen and Bøgh, 2020, Liu et al, 2020, business/marketing analytics use and its effect on the performance of SMEs are yet to be fully investigated (e.g., Maroufkhani et al, 2020, Liu et al, 2020, Wang et al, 2018. Second, although prior studies have used configurational approaches to understand organizational relationships in SMEs (e.g., Hughes et al, 2019, Uwizeyemungu et al, 2018, Poorkavoos et al, 2016, Magistretti et al, 2020, no research has investigated how the configurations of multiple conditions affect business/marketing analytics use in SMEs.…”
Section: Literature Reviewmentioning
confidence: 99%
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“…This adoption process is widely studied in different sectors such as healthcare (Chen et al, 2020 ), industrial (McMahon et al, 2020 ), or tourism (Yadegaridehkordi et al, 2020 ) although all of them refer to generic Big Data techniques while there is little literature on the adoption process of Big Data Analytics (Maroufkhani et al, 2020 ) as can be seen check from the appropriate literature review (Inamdar et al, 2020 ).…”
Section: Introductionmentioning
confidence: 99%