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When big data fails: Adaptive agents using coarse-grained information have competitive advantage

机译:当大数据发生故障时:使用粗粒度信息的自适应代理具有竞争优势

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摘要

The recent trend for acquiring big data assumes that possessing quantitatively more and qualitatively finer data necessarily provides an advantage that may be critical in competitive situations. Using a model complex adaptive system where agents compete for a limited resource using information coarse grained to different levels, we show that agents having access to more and better data perform worse than others in certain situations. The relation between information asymmetry and individual payoffs is seen to be complex, depending on the composition of the population of competing agents.
机译:最近获取大数据的趋势假设具有定量和定性更细的数据具有必然提供在竞争情况中可能是至关重要的优势。 使用模型复杂的自适应系统,其中代理使用粗粒的信息竞争有限的资源,我们表明,在某些情况下,具有更多和更好数据的代理能够比其他数据更差。 根据竞争因素人口的组成,可以复杂,信息不对称和各个收益之间的关系。

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