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A Fuzzy Case-Based Reasoning Model to Forecast Prices of Aquatic Products

机译:基于模糊的案例推理模型预测水产品价格

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Accurate prediction of aquatic product prices can improve the quality of business strategy of aquatic product market. Case-based reasoning (CBR) systems have long been intensively used in several areas of artificial intelligence. But it is difficult to cluster similar cases from case bases as there are uncertainties in knowledge representation, attribute description and similarity measures in CBR. To increase the efficiency and reliability of CBR, fuzzy theories have been combined with CBR. In this paper, fuzzy case-based reasoning (FCBR) has been developed to forecast the price of aquatic products.
机译:准确预测水产品价格可以提高水产产品市场的业务战略质量。基于案例的推理(CBR)系统长期以来在人工智能的几个领域密集地使用。但是,由于知识表示的不确定性,CBR中的属性描述和相似度测量,难以从案例基础群集群体。为了提高CBR的效率和可靠性,模糊理论已与CBR结合。在本文中,已经开发出模糊的基于案例的推理(FCBR)预测水产品价格。

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