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Exploring public attention in the circular economy through topic modelling with twin hyperparameter optimisation
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作者 Junhao Song yingfang yuan +3 位作者 Kaiwen Chang Bing Xu Jin Xuan Wei Pang 《Energy and AI》 2024年第4期258-280,共23页
To advance the circular economy(CE),it is crucial to gain insights into the evolution of public attention,cognitive pathways related to circular products,and key public concerns.To achieve these objectives,we collecte... To advance the circular economy(CE),it is crucial to gain insights into the evolution of public attention,cognitive pathways related to circular products,and key public concerns.To achieve these objectives,we collected data from diverse platforms,including Twitter,Reddit,and The Guardian,and utilised three topic models to analyse the data.Given the performance of topic modelling may vary depending on hyperparameter settings,we proposed a novel framework that integrates twin(single-and multi-objective)hyperparameter timisation op-for CE analysis.Systematic experiments were conducted to determine appropriate hyperparameters under different constraints,providing valuable insights into the correlations between CE and public attention.Our findings reveal that economic implications of sustainability and circular practices,particularly around recyclable materials and environmentally sustainable technologies,remain a significant public concern.Topics related to sustainable development and environmental protection technologies are particularly prominent on The Guardian,while Twitter discussions are comparatively sparse.These insights highlight the importance of targeted education programmes,business incentives adopt CE practices,and stringent waste management policies alongside improved recycling processes. 展开更多
关键词 Circular economy Pulic attention Topic modelling Machine learning Hyperparameter optimisation
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