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Method for controlling a device, in particular, a prosthetic hand or a robotic arm (US20200327705A1)
(2020)
A method for controlling a device, in particular a prosthetic hand or a robotic arm, includes using an operator-mounted camera to detect at least one marker positioned on or in relation to the device. Starting from the detection of the at least one marker, a predefined movement of the operator together with the camera is detected and is used to trigger a corresponding action of the device. The predefined movement of the operator is detected in the form of a line of sight by means of camera tracking. A system for controlling a device, in particular a prosthetic hand or a robotic arm, includes a pair of AR glasses adapted to detect the at least one marker and to detect the predefined movement of the operator.
In the field of neuroprosthetics, the current state-of-the-art method involves controlling the prosthesis with electromyography (EMG) or electrooculography/electroencephalography (EOG/EEG). However, these systems are both expensive and time consuming to calibrate, susceptible to interference, and require a lengthy learning phase by the patient. Therefore, it is an open challenge to design more robust systems that are suitable for everyday use and meet the needs of patients. In this paper, we present a new concept of complete visual control for a prosthesis, an exoskeleton or another end effector using augmented reality (AR) glasses presented for the first time in a proof-of-concept study. By using AR glasses equipped with a monocular camera, a marker attached to the prosthesis is tracked. Minimal relative movements of the head with respect to the prosthesis are registered by tracking and used for control. Two possible control mechanisms including visual feedback are presented and implemented for both a motorized hand orthosis and a motorized hand prosthesis. Since the grasping process is mainly controlled by vision, the proposed approach appears to be natural and intuitive.
Die Erfindung betrifft ein Verfahren zur Steuerung eines Geräts, insbesondere einer Handprothese oder eines Roboterarms, wobei wenigstens ein an oder im Bezug zu dem Gerät positionierter Marker von einer an einer Bedienperson angeordneten Kamera erkannt wird, wobei ab dem Erkennen des wenigstens einen Markers eine vordefinierte Bewegung der Bedienperson zusammen mit der Kamera erkannt wird und zum Auslösen einer entsprechenden Aktion des Geräts verwendet wird, wobei die vordefinierte Bewegung einer Bedienperson in Form eines Sehstrahls mittels Kamera-Tracking erkannt wird. Weiterhin betrifft die Erfindung eine Anordnung aus einem Gerät, insbesondere einer Handprothese oder eines Roboterarms, und einer AR-Brille zur Durchführung eines derartigen Verfahrens.
Restoring hand motion to people experiencing amputation, paralysis, and stroke is a critical area of research and development. While electrode-based systems that use input from the brain or muscle have proven successful, these systems tend to be expensive and di¨cult to learn. One group of researchers is exploring the use of augmented reality (AR) as a new way of controlling hand prostheses. A camera mounted on eyeglasses tracks LEDs on a prosthetic to execute opening and closing commands using one of two different AR systems. One system uses a rectangular command window to control motion: crossing horizontally signals “open” along one direction and “close” in the opposite direction. The second system uses a circular command window: once control is enabled, gripping strength can be controlled by the direction of head motion. While the visual system remains to be tested with patients, its low cost, ease of use, and lack of electrodes make the device a promising solution for restoring hand motion.
A new concept for robust non-invasive optical activation of motorized hand prostheses by simple and non-contactcommands is presented. In addition, a novel approach for aiding hand amputees is shown, outlining significantprogress in thinking worth testing. In this, personalized 3D-printed artificial flexible hands are combined withcommercially available motorized exoskeletons, as they are used e.g. in tetraplegics.
Hybrid SPECT/US
(2014)
eLetter zum Artikel "Hybrid EEG/EOG-based brain/neural hand exoskeleton restores fully independent daily living activities after quadriplegia" von Surjo R. Soekadar et al., veröffentlicht in Science Robotics, Vol. 1, No. 1 (DOI: 10.1126/scirobotics.aag3296)
Nicht-invasives, nicht-ionisierendes funktionelles Neuroimaging mit räumlich und zeitlich hochauflösender Elektroenzephalographie oder Echtzeit-Naheinfrarotspektroskopie in Kombination mit modernen Robotorsystemen ist ein entscheidender Entwicklungsschritt auf dem Gebiet der Neuroprothetik und Brain-Machine-Interfaces. In der Medizintechnik an der Hochschule Offenburg wird hierzu geforscht.