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The challenges and limits of big data algorithms in technocratic governance

机译:大数据算法在技术官僚治理中的挑战和局限性

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Big data is driving the use of algorithm in governing mundane but mission-critical tasks. Algorithms seldom operate on their own and their (dis)utilities are dependent on the everyday aspects of data capture, processing and utilization. However, as algorithms become increasingly autonomous and invisible, they become harder for the public to detect and scrutinize their impartiality status. Algorithms can systematically introduce inadvertent bias, reinforce historical discrimination, favor a political orientation or reinforce undesired practices. Yet it is difficult to hold algorithms accountable as they continuously evolve with technologies, systems, data and people, the ebb and flow of policy priorities, and the clashes between new and old institutional logics. Greater openness and transparency do not necessarily improve understanding. In this editorial we argue that through unravelling the imperceptibility, materiality and governmentality of how algorithms work, we can better tackle the inherent challenges in the curatorial practice of data and algorithm. Fruitful avenues for further research on using algorithm to harness the merits and utilities of a computational form of technocratic governance are presented.
机译:大数据正在推动算法在管理平凡但至关重要的任务中的使用。算法很少单独运行,其(无效)效用取决于数据捕获,处理和利用的日常情况。然而,随着算法变得越来越自治和越来越不可见,公众越来越难以检测和审查其公正性。算法可以系统地引入无意的偏见,加强历史歧视,有利于政治取向或加强不希望的做法。然而,由于算法随着技术,系统,数据和人员的不断发展,政策优先级的起伏变化以及新旧制度逻辑之间的冲突而难以追究责任。更大的开放度和透明度并不一定能增进理解。在这篇社论中,我们认为,通过揭示算法工作方式的不可感知性,重要性和政府性,我们可以更好地应对数据和算法的策展实践中的内在挑战。提出了进一步研究使用算法来利用技术形式的技术官僚治理的优点和效用的富有成效的途径。

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