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A Methodology for Strategically Designing Physical Products that are Naturally Resistant to Reverse Engineering.

机译:一种策略设计自然抗逆向工程的物理产品的方法论。

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摘要

Reverse engineering---defined as extracting information about a product from the product itself---is a design tactic commonly used in industry from competitive benchmarking to product imitation. While reverse engineering is a legitimate practice---as long as the product was legally obtained---innovative products are often reverse engineered at the expense of the pioneering company. However, by designing products with built-in barriers to reverse engineering, competitors are no longer able to effectively extract critical information from the product of interest. Enabling the quantification of barriers to reverse engineering, this dissertation presents a set of metrics and parameters that can be used to calculate the barrier to reverse engineer any product as well as the time required to do so. To the original designer, these numerical representations of the barrier and time can be used to strategically identify and improve product characteristics so as to increase the difficulty and time to reverse engineer them. On the other hand, these quantitative measures enable competitors who reverse engineer original designs to focus their efforts on products that will result in the greatest return on investment.;In addition to metrics that estimate the reverse engineering barrier and time, this dissertation also presents a methodology to strategically plan for, select, design, and implement reverse engineering barriers. The methodology presented herein considers barrier development cost, barrier effectiveness in various product components, impact on performance, and return on investment. This process includes sensitivity analysis, modeling of the return on investment, and exploration of multiobjective design spaces. The effectiveness of the presented methodology is demonstrated by making a solar-powered unmanned aerial vehicle difficult to reverse engineer. In the example, the propeller is selected to be the critical component where a series of voids are introduced to decrease the propeller weight and increase the flutter speed (a desirable attribute in propellers). Our tenet is that the use of such a framework contributes greatly to the sustainability of technological, economical, and security advantages enjoyed by those who developed the technology. Designers benefit because (i) products do not readily disclose trade secrets, (ii) competitive advantages can be maintained by impeding competitors from reverse engineering and imitating innovative products, and (iii) the return on investment can be increased.
机译:逆向工程(定义为从产品本身中提取有关产品的信息)是从竞争基准测试到产品模仿在行业中常用的一种设计策略。逆向工程是一种合法的做法-只要合法获得产品-经常对逆向工程进行逆向工程,而这要损害开创性公司的利益。但是,通过设计具有内置逆向工程障碍的产品,竞争对手将不再能够从感兴趣的产品中有效提取关键信息。为了对逆向工程的障碍进行量化,本文提出了一组度量和参数,可用于计算对任何产品进行逆向工程的障碍以及所需的时间。对于原始设计者而言,这些障碍和时间的数字表示可用于策略性地识别和改善产品特性,从而增加对它们进行逆向工程的难度和时间。另一方面,这些量化指标使反向工程原始设计的竞争者能够将精力集中在将带来最大投资回报的产品上。除了估算反向工程障碍和时间的指标外,本论文还提出了战略规划,选择,设计和实施逆向工程障碍的方法。本文介绍的方法考虑了障碍开发成本,各种产品组件中的障碍有效性,对性能的影响以及投资回报。此过程包括敏感性分析,投资回报率建模以及多目标设计空间的探索。通过使太阳能无人飞行器难以进行逆向工程,证明了所提出方法的有效性。在该示例中,螺旋桨被选为关键组件,在其中引入了一系列空隙以减小螺旋桨的重量并增加颤振速度(螺旋桨中的理想属性)。我们的宗旨是,使用这样的框架可以极大地促进技术开发人员所享有的技术,经济和安全优势的可持续性。设计师将从中受益,因为(i)产品不会轻易泄露商业秘密;(ii)可以通过阻止竞争对手进行逆向工程和模仿创新产品来保持竞争优势;以及(iii)可以提高投资回报率。

著录项

  • 作者

    Harston, Stephen P.;

  • 作者单位

    Brigham Young University.;

  • 授予单位 Brigham Young University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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