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A hybrid decision support system for sustainable office building renovation and energy performance improvement

机译:用于办公楼可持续改造和能源绩效改善的混合决策支持系统

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Energy consumption of buildings accounts for around 20-40% of all energy consumed in advanced countries. Over the last decade, more and more global organizations are investing significant resources to create sustainably built environments, emphasizing sustainable building renovation processes to reduce energy consumption and carbon dioxide emissions. This study develops an integrated decision support system to assess existing office building conditions and to recommend an optimal set of sustainable renovation actions, considering trade-offs between renovation cost, improved building quality, and environmental impacts. A hybrid approach that combines A~* graph search algorithm with genetic algorithms (GA) is used to analyze all possible renovation actions and their trade-offs to develop the optimal solution. A two-stage system validation is performed to demonstrate the practical application of the hybrid approach: zero-one goal programming (ZOGP) and genetic algorithms are adopted to validate the effectiveness of the algorithm. A real-world renovation project is introduced to validate differences in energy performance projected for the renovation solution suggested by the system. The results reveal that the proposed hybrid system is more computationally effective than either ZOGP or GA alone. The system's suggested renovation actions would provide substantial energy performance improvements to the real project if implemented.
机译:建筑物的能耗约占发达国家能耗总量的20-40%。在过去的十年中,越来越多的全球性组织正在投入大量资源来创建可持续建筑的环境,强调可持续的建筑翻新过程以减少能耗和二氧化碳排放。这项研究开发了一个综合的决策支持系统,以评估现有的办公楼条件并建议一套最佳的可持续装修行动,同时要考虑到装修成本,改善的建筑质量和环境影响之间的权衡。将A〜*图搜索算法与遗传算法(GA)相结合的混合方法用于分析所有可能的翻新动作及其折衷方案,以开发出最佳解决方案。进行了两阶段的系统验证,以证明混合方法的实际应用:采用零一目标编程(ZOGP)和遗传算法来验证算法的有效性。引入了一个实际的改造项目,以验证针对系统建议的改造解决方案预测的能源性能差异。结果表明,提出的混合系统比单独使用ZOGP或GA的计算效率更高。如果实施该系统,建议的改造措施将为实际项目带来实质性的能源性能改善。

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