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首页> 外文期刊>Artificial Intelligence for Engineering Design, Analysis & Manufacturing >A framework for the automatic annotation of car aesthetics
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A framework for the automatic annotation of car aesthetics

机译:汽车美学自动注释的框架

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The design of a new car is guided by a set of directives indicating the target market, specific engineering, and aesthetic constraints, which may also include the preservation of the company brand identity or the restyling of products already on the market. When creating a new product, designers usually evaluate other existing products to find sources of inspiration or to possibly reuse successful solutions. In the perspective of an optimized styling workflow, great benefit could be derived from the possibility of easily retrieving the related documentation and existing digital models both from internal and external repositories. In fact, the rapid growth of resources on the Web and the widespread adoption of computer-assisted design tools have made available huge amounts of data, the utilization of which could be improved by using more selective retrieval methods. In particular, the retrieval of aesthetic elements may help designers to create digital models conforming to specific styling properties more efficiently. The aim of our research is the definition of a framework that supports (semi)automatic extraction of semantic data from three-dimensional models and other multimedia data to allow car designers to reuse knowledge and design solutions within the styling department. The first objective is then to capture and structure the explicit and implicit elements contributing to the definition of car aesthetics, which can be realistically tackled through computational models and methods. The second step is the definition of a system architecture that is able to transfer such semantic evaluation through the automatic annotation of car models.
机译:新车的设计遵循一系列指示目标市场,特定工程和美学约束的指令,其中还可能包括保留公司品牌标识或重新销售已经上市的产品。在创建新产品时,设计人员通常会评估其他现有产品,以寻找灵感来源或重用成功的解决方案。从优化的样式工作流程的角度来看,可以轻松地从内部和外部存储库中检索相关文档和现有数字模型,从而获得巨大的收益。实际上,Web资源的快速增长和计算机辅助设计工具的广泛采用已经使大量数据可用,可以通过使用更具选择性的检索方法来提高其利用率。特别是,美学元素的检索可以帮助设计人员更有效地创建符合特定样式属性的数字模型。我们研究的目的是定义一个框架,该框架支持从三维模型和其他多媒体数据中(半)自动提取语义数据,以使汽车设计师可以在造型部门内重用知识和设计解决方案。然后,第一个目标是捕获和构造有助于定义汽车美学的显式和隐式元素,可以通过计算模型和方法来实际解决这些问题。第二步是定义系统体系结构,该体系结构能够通过自动注释汽车模型来传递这种语义评估。

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