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Acquisition and Active Navigation of Knowledge Particles throughout Product Variation Design Process 被引量:3
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作者 ZHANG Shuyou XU Jinghua 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2009年第3期395-402,共8页
The variation design of complex products has such features as multivariate association, weak theory coupling and implicit knowledge iteration. However, present CAD soft wares are still restricted to making decisions o... The variation design of complex products has such features as multivariate association, weak theory coupling and implicit knowledge iteration. However, present CAD soft wares are still restricted to making decisions only according to current design status in dynamic navigation which leads to the huge drain of the knowledge hidden in design process. In this paper, a method of acquisition and active navigation of knowledge particles throughout product variation design process is put forward. The multi-objective decision information model of the variation design is established via the definition of condition attribute set and decision attribute set in finite universe. The addition and retrieval of the variation semantics is achieved through bidirectional association between the transplantable structures and variation design semantics. The mapping relationships between the topology lapping geometry elements set and constraint relations set family is built by means of geometry feature analysis. The acquisition of knowledge particles is implemented by attribute reduction based on rough set theory to make multi-objective decision of variation design. The topology lapping status of transplantable substructures is known from DOF reduction. The active navigation of knowledge particles is realized through embedded event-condition-action(ECA) rules. The independent prototype system taking Alan, Charles, Ian's system(ACIS) as kernel has been developed to verify the proposed method by applying variation design of complex mechanical products. The test results demonstrate that the navigation decision basis can be successfully extended from static isolated design status to dynamic continuous design process so that it more flexibly adapts to the different designers and various variation design steps. It is of profound significance for enhancing system intelligence as well as improving design quality and efficiency. 展开更多
关键词 variation design knowledge particles acquisition active navigation structure transplantation rough set
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变量化分析的原理及其在机械产品快速设计中的应用 被引量:6
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作者 陈永亮 徐燕申 +1 位作者 徐千理 侯亮 《机械设计》 CSCD 北大核心 2002年第3期6-8,共3页
阐述了变量化分析的原理和理论模型 ,包括高阶灵敏度分析、基于泰勒级数近似展开式和迭代摄动的参数分析 ,以及兼顾精度和重分析效率的误差控制。以箱形盖板为具体算例 ,研究了变量化分析技术在机械结构快速设计中的作用和应用前景。
关键词 变量化分析 灵敏度分析 参数分析 快速重分析 快速设计 CAD CAE 机械设计
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现代CAD系统的两种建模技术 被引量:1
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作者 常晓俊 任建平 《机械管理开发》 2007年第1期85-86,共2页
介绍了现代CAD系统的两种主要造型技术,即参数化造型技术及变量化造型技术,分析比较了两种技术的特点及应用领域。
关键词 CAD 造型技术 参数化 变量化
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组合式变量化设计的研究及应用 被引量:1
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作者 贾宝玺 黄毓瑜 《机械设计》 CSCD 北大核心 2004年第7期22-23,26,27,共4页
基于约束的变量化设计技术是当前CAD研究中的热点问题。结合变量几何法和图归约法的特点 ,提出了采用组合式变量化方法解决二维草图几何约束的策略 。
关键词 几何约束系统 变量化设计 组合法 CAD 机械设计
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Efficient SRAM yield optimization with mixture surrogate modeling
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作者 蒋中建 叶佐昌 王燕 《Journal of Semiconductors》 EI CAS CSCD 2016年第12期64-69,共6页
Largely repeated cells such as SRAM cells usually require extremely low failure-rate to ensure a mod- erate chi yield. Though fast Monte Carlo methods such as importance sampling and its variants can be used for yield... Largely repeated cells such as SRAM cells usually require extremely low failure-rate to ensure a mod- erate chi yield. Though fast Monte Carlo methods such as importance sampling and its variants can be used for yield estimation, they are still very expensive if one needs to perform optimization based on such estimations. Typ- ically the process of yield calculation requires a lot of SPICE simulation. The circuit SPICE simulation analysis accounted for the largest proportion of time in the process yield calculation. In the paper, a new method is proposed to address this issue. The key idea is to establish an efficient mixture surrogate model. The surrogate model is based on the design variables and process variables. This model construction method is based on the SPICE simulation to get a certain amount of sample points, these points are trained for mixture surrogate model by the lasso algorithm. Experimental results show that the proposed model is able to calculate accurate yield successfully and it brings significant speed ups to the calculation of failure rate. Based on the model, we made a further accelerated algo- rithm to further enhance the speed of the yield calculation. It is suitable for high-dimensional process variables and multi-performance applications. 展开更多
关键词 yield optimization process variations design variations mixture surrogate model statistical analysis importance sampling
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