Patent classifications
A61B2090/3945
Apparatus and method for placement of device along wall of a body lumen
An apparatus (100) includes: a expandable structure (140) formable into three dimensional shapes including a range of diameters (D) and corresponding lengths (L); a movable component (106) moveable between a range of positions (124, 126) effecting the range of diameters; and a mechanical linkage (110) disposed between the movable component and the expandable structure. The expandable structure is configured to fit inside a working channel (204) of an endoscope (202) when the expandable structure is collapsed. The mechanical linkage is configured to move the collapsed expandable structure through the working channel to a selected location (400) past a distal end (404) of the endoscope and to increase and decrease a diameter of the expandable structure in response to changes in the position of the movable component when the expandable structure is at the selected location.
SURGICAL SYSTEM WITH PASSIVE AND MOTORIZED JOINTS
A method includes obtaining an implant plan, defining a range of motion for a surgical tool based on the implant plan, adjusting, by an actuator and based on the range of motion, a passive joint coupled between the actuator and the surgical tool, and allowing manual movement of the surgical tool through the range of motion via rotation at the passive joint.
SYSTEMS AND METHODS FOR DISTINGUISHING KINEMATIC CHAINS IN ROBOTIC SURGERY
A surgical system can include a master controller for controlling one or more surgical tools. The system can also include an input on the master controller configured to change the master controller from a first mode into a second mode. The first mode can be a teleoperation mode and the second mode can be a virtual marking mode. In the virtual marking mode, a user is capable of communicating a virtual marker to other staff.
Surgical robot platform
A medical robot system, including a robot coupled to an effectuator element with the robot configured for controlled movement and positioning. The system may include a transmitter configured to emit one or more signals, and the transmitter is coupled to an instrument coupled to the effectuator element. The system may further include a motor assembly coupled to the robot and a plurality of receivers configured to receive the one or more signals emitted by the transmitter. A control unit is coupled to the motor assembly and the plurality of receivers, and the control unit is configured to supply one or more instruction signals to the motor assembly. The instruction signals can be configured to cause the motor assembly to selectively move the effectuator element.
Versatile tracking arrays for a navigation system and methods of recovering registration using the same
A navigation system is disclosed comprising a first and a second tracker support separately affixed to the same rigid object by a distance. A first and a second plurality of trackable elements are secured to the first and second tracker supports, respectively. The navigation system defines a tracking arrangement to be tracked based on a combination of the first and second plurality of trackable elements. A geometry of the tracking arrangement relative to the rigid object is registered. The navigation system has a localizer configured to track the rigid object by detecting the registered geometry of the tracking arrangement. The navigation system identifies a condition wherein at least one trackable element has been displaced relative to the registered geometry, and in response, generates a response to address the condition.
Apparatus And Methods For Robot Assisted Bone Treatment
A method for performing a surgical procedure includes planning a resection of a bone of a patient. A volume of the bone is removed according to the planned resection using a surgical tool. As the bone is removed, data corresponding to a shape and volume of the removed bone is tracked with a computer system operatively coupled to the surgical tool. A prosthesis is implanted onto the bone of the patient based on the tracked data corresponding to the shape of the removed bone.
ULTRASONIC WAVE IMAGING APPARATUS, THERAPY SUPPORT SYSTEM, AND IMAGE DISPLAY METHOD
An ultrasonic wave imaging apparatus is disclosed, including: an ultrasonic probe for irradiating a subject with an ultrasonic wave and receive a reflected wave of the ultrasonic wave and receiving an ultrasonic wave from a beacon inserted into the subject; a probe position-acquiring unit for acquiring a 3D position and an orientation of the ultrasonic probe; a beacon location-acquiring unit for determining a 3D location of the beacon from relative location and speed of the beacon relative to the ultrasonic probe as calculated from an ultrasonic wave image received at the ultrasonic probe and the 3D position and the orientation of the ultrasonic probe as acquired by the probe position-acquiring unit; and a display image formation section for using the ultrasonic wave image of the ultrasonic waves from the ultrasonic probe to form a display image. A corresponding method is also disclosed.
Navigation systems and methods for indicating and reducing line-of-sight errors
Navigation systems and methods used to track objects moving in space. One navigation system and method employs trackers each having a light emitting diode that emits a colored light when obstruction of line-of-sight between tracking elements on the trackers and sensors or other errors are absent. When obstruction of line-of-sight between tracking elements on the trackers and sensors or other errors are generated, the light emitting diode is deactivated. Another navigation system and method employs trackers each having a light emitting diode that emits a colored light when obstruction of line-of-sight between tracking elements on the trackers and sensors or other errors are generated. When obstruction of line-of-sight between tracking elements on the trackers and sensors or other errors are absent, the light emitting diode is deactivated.
Apparatus and Method for Placement of Device along Wall of a Body Lumen
An apparatus includes: a expandable structure formable into three dimensional shapes including a range of diameters and corresponding lengths; a movable component moveable between a range of positions effecting the range of diameters; and a mechanical linkage disposed between the movable component and the expandable structure. The expandable structure is configured to fit inside a working channel of an endoscope when the expandable structure is collapsed. The mechanical linkage is configured to move the collapsed expandable structure through the working channel to a selected location past a distal end of the endoscope and to increase and decrease a diameter of the expandable structure in response to changes in the position of the movable component when the expandable structure is at the selected location.
SYSTEM AND METHOD TO CHECK CUT PLANE ACCURACY AFTER BONE REMOVAL
A device for checking post cut plane accuracy and alignment following bone removal in a bone of a patient during a computer-assisted surgical procedure to create a bone surface is provided. The device includes a body having an axis and adapted to contact the bone surface. One or more alignment features are associated with the body and are accessible when the body is in contact with the bone surface. Each of the one or more alignment features has a known orientation and position relative to the axis. A method for checking post cut plane accuracy and alignment following removal of bone from a patient to create a bone surface during a computer-assisted surgical procedure is also provided. A computer-assisted surgical system is provided that includes a tracking system, a tracked digitizer probe, the aforementioned device, a tracked surgical device, and one or more computers with software for determining the orientation.