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Framework for the Continuous Increase of Product Performance by Analyzing Product Usage Data

机译:通过分析产品使用数据来持续提高产品性能的框架

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Today's manufacturing companies in the machinery and plant engineering sector are facing increasingly shorter innovation and technology cycles. As a consequence, admired features of their products are rapidly changing to standard features in the customer's perception. Thus, product optimizations during the product life cycle are gaining in importance. Taking this into consideration, subscription models provide a business framework which aims for a continuous improvement of product performance in return for a periodic payment during the product use phase. In order to define this performance, the challenge is to precisely focus on those product features providing the highest contribution to the specific customer benefit and to detect optimization potentials on the existing product. Smart products, which permanently provide product usage data through chips, processors and embedded systems, offer new possibilities on both tracking the current status of a product feature and deduce optimization potentials. This paper introduces a framework to increase product performance by investigating specific product features. Optimization measures shall be identified and deduced by the systematic analysis of product usage data.
机译:如今,机械和工厂工程领域的制造公司正面临越来越短的创新和技术周期。结果,其产品的令人钦佩的功能正迅速转变为客户感知的标准功能。因此,产品生命周期中的产品优化变得越来越重要。考虑到这一点,订阅模型提供了一个旨在持续改善产品性能的业务框架,以换取在产品使用阶段的定期付款。为了定义这种性能,面临的挑战是精确地专注于为特定客户利益做出最大贡献的那些产品功能,并检测现有产品的优化潜力。智能产品通过芯片,处理器和嵌入式系统永久提供产品使用情况数据,为跟踪产品功能的当前状态并推断出优化潜力提供了新的可能性。本文介绍了通过研究特定产品功能来提高产品性能的框架。优化措施应通过对产品使用数据的系统分析来确定和推导。

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