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Three-dimensional electromagnetic articulography: A measurement principle

机译:三维电磁关节造影:一种测量原理

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A measurement principle of the three-dimensional electromagnetic articulographic device is presented. The state of the miniature receiver coil is described by five variables representing the position in the three-dimensional coordinate system and the rotation angles relative to it. When the receiver coil is placed in the magnetic field produced from the distributed transmitter coils, its state can be optimally estimated by minimizing the difference between the measured strength of the received signal and the predicted one using the known spatial pattern of the magnetic field. Therefore, the design and calibration of the field function inherently determine the accuracy in estimating the state of the receiver coil. The field function in our method is expressed in the form of a multivariate B spline as a function of position in the three-dimensional space. Because of the piecewise property of the basis function and the freedom in the selection of the rank and the number of basis functions, the spline field function has a superior ability to flexibly and accurately represent the actual magnetic field. Given a set of calibration data, the spline function is designed to form a smooth curved surface interpolating all of these data samples. Then, an iterative procedure is employed to solve the nonlinear estimation problem of the receiver state variables. Because the spline basis function is a polynomial, it is also shown that the calculation of the Jacobian or Hessian required to obtain updated quantities for the state variables can be efficiently performed. Finally, experimental results reveal that the measurement accuracy is about 0.2 mm for a preliminary condition, indicating that the method can achieve the degree of precision required for observing articulatory movements in a three-dimensional space. It is also experimentally shown that the Marquardt method is a better nonlinear programming technique than the Gauss-Newton or Newton-Raphson method for solving the receiver state problem. (c) 2005 Acoustical Society of America.
机译:提出了三维电磁关节装置的测量原理。微型接收器线圈的状态由五个变量表示,这些变量代表三维坐标系中的位置以及相对于其的旋转角度。当将接收器线圈放置在由分布式发送器线圈产生的磁场中时,可以通过使用已知的磁场空间模式将接收信号的测量强度与预测信号强度之间的差异最小化,从而最佳地估计其状态。因此,场函数的设计和校准固有地确定了估计接收器线圈状态的准确性。我们方法中的场函数以多元B样条的形式表示,它是三维空间中位置的函数。由于基函数的分段特性以及基函数的秩和数量的选择自由度,样条场函数具有出色的能力来灵活而准确地表示实际磁场。给定一组校准数据,样条函数被设计为形成一个平滑的曲面,插值所有这些数据样本。然后,采用迭代过程来解决接收机状态变量的非线性估计问题。因为样条基函数是多项式,所以还表明可以有效地执行获得状态变量的更新量所需的Jacobian或Hessian的计算。最后,实验结果表明,在初始条件下,测量精度约为0.2毫米,这表明该方法可以达到在三维空间中观察关节运动所需的精确度。实验还表明,与接收器状态问题相比,高斯-牛顿或牛顿-拉夫森法是一种更好的非线性编程技术。 (c)2005年美国声学学会。

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