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Intelligent advisory systems for fabric selection.

机译:用于面料选择的智能咨询系统。

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摘要

In general, the selection of fabric relies on the user's preferences. Such preferences are expressed in terms of psychological perceptions of fabric hand. Fabric hand is commonly adopted for the assessment of fabric quality and prospective performance in a particular end use. The fabric hand is primarily assessed by subjective judgments from sensory experts. Subjective judgment treats fabric hand as the outcome of the psychological chain reactions initiated from the sense of touch and combined with the sensitivity and the experience of judges.; Conventional fabric hand evaluation system utilizes an old-fashioned Total Hand Value (THV) as a metric to model the subjective fabric hands based on fabric properties. The Kawabata's evaluation system (KES) developed by Kato Tech Company is an example that has a systematic approach on modeling fabric hand. This method has become a standard evaluation system in the industries nowadays. However, these specialized systems could not advise the users which type of fabric is most likely matched his/her psychological perceptions of fabric hand.; In this thesis, we have built and characterized an intelligent advisory system for individuals in fabric selection based on his/her psychological perceptions of fabric hand. We modeled the relationship between the sensory perceptions of fabric hand and fabric properties using a neural networks approach for generating the rules for the selection making functionality. The selection advisory system was constructed using a fuzzy rule-based expert system and was validated by individuals. It was proved that the proposed advisory system is able to advise on the desired fabrics for individuals based on inputs of his/her preferred sensory ratings of 14 fabric hand descriptors. The results verified the robustness of the proposed hybrid fuzzy-neural advisory system that could provide satisfactory performance in the new idea.
机译:通常,织物的选择取决于用户的偏好。这些偏好是根据对织物手的心理感知来表达的。织物手通常用于评估特定最终用途中的织物质量和预期性能。织物手感主要由感官专家的主观判断来评估。主观判断将织物的手视为从触觉出发并结合法官的敏感性和经验的心理连锁反应的结果。常规的织物手评估系统利用老式的总手值(THV)作为度量标准,以基于织物特性对主观织物手进行建模。加藤技术公司开发的川端康成评估系统(KES)就是一个具有系统性的手织物建模方法的例子。该方法已成为当今行业的标准评估系统。但是,这些专门的系统不能告知用户哪种类型的织物最有可能与他/她对织物手的心理感知相匹配。在本文中,我们基于个人对织物手感的认知,建立了一个智能的织物选择咨询系统,并对其进行了特征化。我们使用神经网络方法对织物手感和织物特性的感官知觉之间的关系进行建模,以生成选择功能的规则。选择咨询系统是使用基于模糊规则的专家系统构建的,并已通过个人验证。事实证明,所提出的咨询系统能够基于他/她的14种织物手描述符的优选感官等级的输入来建议个人所需的织物。结果验证了所提出的混合模糊神经咨询系统的鲁棒性,该鲁棒性可以在新思想中提供令人满意的性能。

著录项

  • 作者

    Lau, Tak Wah.;

  • 作者单位

    Hong Kong Polytechnic University (People's Republic of China).;

  • 授予单位 Hong Kong Polytechnic University (People's Republic of China).;
  • 学科 Textile Technology.; Artificial Intelligence.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 579 p.
  • 总页数 579
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 轻工业、手工业;人工智能理论;
  • 关键词

  • 入库时间 2022-08-17 11:44:28

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