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Improvement of vibration isolation characteristics by Kalman-filter estimated acceleration feedback.

, , , and . ECC, page 1106-1111. IEEE, (2015)

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Development of non-contact carrier system using solar magnetic suspension (3ed report: Continuous 5-day and installation of sloping propulsion mechanism)., , , , and . ASCC, page 1-5. IEEE, (2015)Vibration Isolation System with Kalman Filter Estimated Acceleration Feedback: An Approach of Negative Stiffness Control., , , , and . J. Sensors, (2021)Effect of a Body Part Action on Body Perception of the Other Inactive Body Part., , , , , , , and . IEEE Trans. Cogn. Dev. Syst., 15 (3): 1301-1313 (September 2023)Improvement of vibration isolation characteristics by Kalman-filter estimated acceleration feedback., , , and . ECC, page 1106-1111. IEEE, (2015)Force Compensation Based on Observer for Assembly of Magnetized Components., , , , and . ASCC, page 538-542. IEEE, (2019)Development of a Hysteresis Amplifier with an H-bridge Drive for Self-Sensing Magnetic Suspension., and . J. Robotics Mechatronics, 12 (3): 218-223 (2000)Stiffness control of magnetic suspension by local current feedback., , and . ECC, page 3881-3886. IEEE, (2009)Realization of acceleration feedback by using an active dynamic vibration absorber as a sensor in a low-frequency region., , , and . ECC, page 1681-1685. IEEE, (2015)Development of a three-axis active vibration isolation system using zero-power magnetic suspension., , , and . CDC, page 4493-4498. IEEE, (2003)Realization of Vibration Absorption at Multiple Frequencies on Vacuum Chamber with Cryopump., , , , , and . ASCC, page 699-703. IEEE, (2019)