信息系统中的大数据:回顾

Hrishitva Patel
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摘要

大数据的出现给信息系统领域带来了重大变革,为学术界和企业带来了无与伦比的前景和复杂性。本摘要探讨了在这个充满活力、快速发展的领域开展研究的潜在风险和益处。信息系统领域的特点是大数据研究具有巨大潜力,可为各行各业和社会带来变革性影响。然而,这一充满希望的发展也引起了人们对隐私、伦理和数据安全问题的担忧。大数据研究的潜在益处多种多样。首先,这项技术提供了从广泛而多样的数据集合中提取实用和适用知识的潜力。这反过来又促进了基于数据的决策,推动了创新,并提高了多个行业的效率。此外,大数据还促进了机器学习和人工智能等尖端技术的发展,这些技术有能力推动信息系统领域的重大改进。总之,利用大数据研究有可能增强我们对复杂现象的理解,促进预测分析,推动定制服务的发展,从而提升用户体验。然而,开展大数据研究的潜在风险也同样巨大。数据收集和分析的迅速扩展引发了对数据隐私、安全和所有权保护的担忧。学术研究人员面临着有效解决与敏感个人数据的获取和利用有关的伦理难题的任务。此外,在数据驱动决策的背景下,必须认真考虑围绕算法偏见和歧视的重大问题。此外,数据的巨大数量和错综复杂的性质也给数据质量、数据管理和扩展能力带来了障碍。
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Big Data in Information Systems: A Review
The emergence of big data has brought about a significant transformation in the domain of Information Systems, presenting academics and companies with unparalleled prospects and complexities. This abstract examines the potential risks and benefits associated with conducting research in a dynamic and fast growing field. The field of Information Systems is characterized by the significant potential of big data research to bring about transformative effects on various sectors and societies. However, this promising development also gives rise to apprehensions surrounding issues of privacy, ethics, and data security. The potential benefits of big data research are many and varied. First and foremost, this technology offers the potential to extract practical and applicable knowledge from extensive and varied collections of data. This, in turn, facilitates decision-making based on data, fosters innovation, and enhances effectiveness across multiple industries. Furthermore, it enables the progression of cutting-edge technologies, such as machine learning and artificial intelligence, which possess the capacity to propel substantial improvements in the field of Information Systems. In conclusion, the utilization of big data research has the potential to augment our comprehension of intricate phenomena, facilitate predictive analytics, and stimulate the advancement of tailored services, consequently amplifying user experiences. Nevertheless, the potential risks associated with conducting big data research are equally substantial. The rapid expansion of data gathering and analysis has given rise to apprehensions regarding the protection of data privacy, security, and ownership. Academic researchers are confronted with the task of effectively addressing ethical quandaries pertaining to the acquisition and utilization of sensitive personal data. Furthermore, it is imperative to carefully contemplate the significant concern around algorithmic bias and discrimination in the context of data-driven decision-making. Furthermore, the considerable quantity and intricate nature of data provide obstacles in relation to the quality of data, the administration of data, and the ability to scale.
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