Intelligent robot control using ultrasonic measurements

M. Brudka, Andrzej Pacut · IEEE Transactions on Instrumentation and Measurement · 2002

We present an intelligent robot control system which employs low-quality ultrasonic measurements to perform high-precision recognition and grasping tasks. The system adaptively restores the ultrasonic image using approximators based on neural networks. Neural networks are also applied to perform object classification and a grasp planning task. Since the grasp planning is not unique, we developed a novel learning scheme that uses the expectation maximization approach. The resulting system works precisely and reliably. The underlying methodology can be extended to other low-quality data problems.

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