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Design and implementation of active error canceling in hand-held microsurgical instrument

机译:手持式显微外科仪器中激活误差的设计与实现

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This paper presents the development and initial experimental results of the first prototype of Micron, an active hand-held instrument to sense and compensate physiological tremor and other unwanted movement during vitreoretinal microsurgery. The instrument incorporates six inertial sensors, allowing the motion of the tip to be computed. The motion captured is processed to discriminate between desired and undesired components of motion. Tremor canceling is implemented via the weighted-frequency Fourier linear combiner (WFLC) algorithm, and compensation of non-tremorous error via a neural network technique is being investigated. The instrument tip is attached to a three-degree-of-freedom parallel manipulator with piezoelectric actuation. The actuators move the tool tip in opposition to the tremor, thereby suppressing the erroneous motion. Motion canceling experiments with oscillatory motions in the frequency band of physiological tremor show that Micron is able to reduce error amplitude by 45.3% in 1-D tests and 37.2% in 1-D tests.
机译:本文介绍了发展和微米,有源手持仪器到感的第一个原型的初始实验结果和玻璃体视网膜显微期间补偿生理震颤和其它不希望的运动。该仪器采用了6个惯性传感器,从而允许尖端的运动来计算。捕获的运动进行处理,以运动的期望的和不期望的组分之间进行区分。震颤消除经由正在调查的加权频率傅立叶线性组合器(WFLC)算法,和非发抖的误差的补偿通过神经网络技术来实现。器械端头被附接到与压电驱动的三度的自由度并行操纵器。致动器移动在反对震颤刀尖,从而抑制错误的运动。运动抵消,在生理震颤节目的频带美光能够通过45.3%,以减少在1-d测试,并在1-d测试37.2%的误差幅度振荡运动的实验。

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