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Cartesian Configuration . C Ty A. Lasky Configuration. Articulated Configurati Configuration. Gantry Configuratio 101.2 Dynamics and Control Independent Joint Control of the Robot. Dynamic Models iversity of California, Dav omputed Torque Methods. Adaptive Control. Resolved R Lal tummala Motion Control. Compliant Motion. Flexible Manipulators Justification. Implementation Strategies. Applications in Nicholas G. Drey
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Rehabilitation Engineering, Science and Technology 119.1 Rehabilitation Concepts 119.2 Engineering Concepts in Sensory Rehabilitation 119.3 Engineering Concepts in Motor Rehabilitation Charles J. Robinson 119.4 Engineering Concepts in Communications Disorders
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118 Computer Design for pennsylvania State University Biomedical applications The Finite Difference Time Domain(FDTD)[Yee, 1966; Kunz and Luebbers, 1993; Taflove, 1995 is a numerical method for the solution of electromagnetic field interaction problems. It utilizes a geometry mesh, usually of
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Integration.Smart/Optical Cards Matthew e. Baretich 117.2 Hospital Information Systems niversity of Colorado The Clinical Environment Healthcare Codes and Standards 117.1 Clinical Information Systems Luis Kun The main objective of this section is to provide the reader with a summary of areas that relate to clinical
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Bioelectronics and Joseph D. Bronzino finity College/Biomedical Allience Instruments for Central Connecticut(BOACON) Edward J. Berbari Purdue University 115.1 The Electroencephalogram Philip L. Johnson
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一、电力线 1.电力线 若已知电荷分布,则空间各点的场强原则上都可求出。为了形象化地把客观存在的电场表示出来常引人电场线这一辅助工具
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107 Industrial Illuminating Systems 107.1 New Concepts in Designing an Industrial Iluminating Syst Determination of Illuminance Levels. Illuminatio Computational Methods 107.2 Factors Affecting Industrial
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一、叠加原理表述 当空间存在两个以上的点电荷时,任意两个点电荷间都存在相互作用。实验指出,两个点电荷间的作用力不因第三个电荷的 存在而改变
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Vehicular Systems 106.1 Introduction Design Considerations 106.3 Land Transportation Classifications 106.4 Propulsion inda sue boehmer 106.5 Microprocessor Controls 106.6 Monitoring and Diagnostics
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铁磁共振 微波铁磁共振(FMR)是指铁磁介质处在频率为∫的微波电磁场中,当改变外加恒 磁场H的大小时,发生的共振吸收现象。铁磁共振观察的对象是铁磁介质中的未偶电 子,可以说它是铁磁介质中的电子自旋共振。铁磁共振不仅是磁性材料在微波技术应用 上的物理基础,也是研究其它宏观性能与微观结构的有效手段
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