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Pricing and Carbon Emission Reduction Decisions Considering Fairness Concern in the Big Data Era

机译:大数据时代考虑公平性的定价和碳减排决策

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摘要

Facing the increase of consumer heterogeneous demand, green manufacturers and retailers need to get accurate and timely consumer preference information to better meet the consumer demand. In the big data era, a massive amount of demand data can be collected by advanced technologies, which can help manufacturers and retailers predict consumer preferences more accurately. However, big data technology also brings additional information cost to low-carbon supply chains. Therefore, it is necessary to rethink the pricing and carbon emission reduction decisions in the new situations. The purpose of this paper is to explore the influence of big data technology on pricing and carbon emission reduction decisions in low-carbon supply chain considering the retailers’ fairness concerns. By constructing Stackelberg game models, the optimal pricing and carbon emission reduction decisions are presented. Results indicate that the use of big data technology can increase both the profit of manufacturer and the utility of retailer, and can promote manufacturer to improve the carbon emission reduction level.
机译:面对消费者多样化需求的增长,绿色制造商和零售商需要获取准确,及时的消费者偏好信息,以更好地满足消费者需求。在大数据时代,先进技术可以收集大量需求数据,这可以帮助制造商和零售商更准确地预测消费者的偏好。但是,大数据技术也给低碳供应链带来了额外的信息成本。因此,有必要在新形势下重新考虑价格和减少碳排放的决定。本文的目的是考虑零售商的公平性,探讨大数据技术对低碳供应链中定价和碳减排决策的影响。通过构建Stackelberg博弈模型,提出了最优定价和碳减排决策。结果表明,大数据技术的使用可以增加制造商的利润和零售商的效用,并可以促进制造商提高碳减排水平。

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