Patent classifications
G05B2219/2652
PACKET-BASED MULTICAST COMMUNICATION SYSTEM
An integrated chip-based communication system is described. The integrated chip-based communication system includes a plurality of source ports and destination ports; and a crossbar or an interconnect. In an embodiment, the crossbar or the interconnect is configured, based upon an address matrix of an address header of a data packet received from one of the source ports, to ascertain one or more destination ports as receivers of the data packet; to transmit the data packet to the ascertained receivers; and to ascertain a readiness to receive of at least one of the receivers and design the data transfer as a function of the ascertained readiness to receive. A medical imaging facility is also described. Furthermore, a data transfer method for transferring data packets is described.
PHYSIOLOGICAL MONITORING DEVICES WITH ADJUSTABLE SIGNAL ANALYSIS AND INTERROGATION POWER AND MONITORING METHODS USING SAME
A method of monitoring a subject via a photoplethysmography (PPG) sensor configured to detect and/or measure PPG information from the subject includes changing, via a processor, signal analysis frequency of the PPG sensor signals, optical wavelength emission of the PPG sensor, and/or PPG sensor interrogation power at predetermined times. Each predetermined time is associated with measuring at least one different biometric parameter from a plurality of biometric parameters.
Multi-component apparatus and method for isochronous communication therein
In a method for isochronous communication of components of a multi-component apparatus, which communicate via peer-to-peer communication connections created by a switch, a periodic communication clock signal is provided by a control computer to all the components, with a communication window between two communication clock cycles of the communication clock signal, in which a communication information item of the isochronous communication is transferrable from a transferring component to at least one addressed component. A synchronization, in relation to the communication clock signal, between at least two of the components is produced by at least one synchronization message sent via the switch by one of the components to be synchronized to all the other components to be synchronized in a communication time window.
Physiological monitoring devices with adjustable signal analysis and interrogation power and monitoring methods using same
A monitoring device configured to be attached to a body of a subject includes a sensor configured to detect and/or measure physiological information from the subject, and a processor coupled to the sensor that is configured to receive and analyze signals produced by the sensor. The processor is configured to change signal analysis frequency and/or sensor interrogation power in response to detecting a change in subject activity, a change in subject stress level, a change in environmental conditions, a change in time, and/or a change in location of the subject.
MANAGING PLURAL SCANNING DEVICES IN A HIGH-THROUGHPUT LABORATORY ENVIRONMENT
Systems and methods for managing a plurality of scanning devices in a high-throughput laboratory environment. Each of the scanning devices is configured for a remote boot operation from an administrative server that is communicatively coupled with the plurality of scanning devices via a local network. The remote boot replaces the complete operational firmware of a scanning device. The scanning devices are each configured to periodically provide operational information to the administrative server for centralized storage. The centralized storage of operational information for each of the plurality of scanning devices, coupled with the ability of the administrative server to initiate a reboot of any scanning device and thereby update the complete operational firmware of the scanning device, allows for centralized administration of multiple scanning devices that facilitates configuration, support, image data storage, and/or communication with outside servers.
Managing plural scanning devices in a high-throughput laboratory environment
Systems and methods for managing a plurality of scanning devices in a high-throughput laboratory environment. Each of the scanning devices is configured for a remote boot operation from an administrative server that is communicatively coupled with the plurality of scanning devices via a local network. The remote boot replaces the complete operational firmware of a scanning device. The scanning devices are each configured to periodically provide operational information to the administrative server for centralized storage. The centralized storage of operational information for each of the plurality of scanning devices, coupled with the ability of the administrative server to initiate a reboot of any scanning device and thereby update the complete operational firmware of the scanning device, allows for centralized administration of multiple scanning devices that facilitates configuration, support, image data storage, and/or communication with outside servers.
PHYSIOLOGICAL MONITORING DEVICES AND METHODS USING OPTICAL SENSORS
A monitoring device configured to be attached to a body of a subject includes a sensor having at least one optical emitter and at least one optical detector, and a processor coupled to the sensor. The processor is configured to instruct the at least one optical emitter to emit a different wavelength of light into the body of the subject during each of a series of respective time intervals. The processor is configured to measure a respective different physiological parameter from signals produced by the at least one optical detector upon receiving light from the body of the subject during each of the respective time intervals.
Device and method for controlling rotation of radiotherapy equipment
The present disclosure discloses a device for controlling rotation of a radiotherapy equipment, for controlling rotation of at least one rotational load of the radiotherapy equipment about a rotation axis. The device and the radiotherapy equipment form a full-closed-loop structure. The device includes: a detector, configured to detect the rotation of respective rotation axis in real time for each rotational load of the radiotherapy equipment during a treatment process, and record a rotational offset when the rotational load is rotationally deviated; a controller, configured to generate a correction instruction for eliminating the deviation according to the recorded offset when the detector detects at least one of the rotational loads of the radiotherapy equipment is deviated; and a driving apparatus, configured to drive each rotational load of the radiotherapy equipment to rotate about the rotation axis, and drive the deviated rotational load to move according to the correction instruction issued by the controller to eliminate the deviation.
PHYSIOLOGICAL MONITORING DEVICES AND METHODS USING OPTICAL SENSORS
A monitoring device configured to be attached to a subject includes a photoplethysmography (PPG) sensor configured to measure physiological information from the subject, a blood flow stimulator, and a processor configured to process signals from the PPG sensor to determine a signal-to-noise level of the signals. In response to a signal-to-noise level determination, the processor is configured to instruct the blood flow stimulator to increase blood perfusion at a location where the PPG sensor is attached to the subject. The signal-to-noise level determination may be a determination that the signal-to-noise level is below a threshold level. The blood flow stimulator may be a heating element or light source configured to heat the location of the subject.
PHYSIOLOGICAL MONITORING DEVICES AND METHODS USING OPTICAL SENSORS
A monitoring device configured to be attached to a subject includes a photoplethysmography (PPG) sensor configured to measure a plurality of physiological parameters from the subject, a motion sensor configured to detect an activity state of the subject, and a processor coupled to the PPG sensor and the motion sensor. The PPG sensor is configured to measure each physiological parameter in a respective one of a plurality of time intervals. The processor instructs the PPG sensor to measure a first one of the plurality of physiological parameters if the activity state is at or above a threshold, and to measure a second one of the plurality of physiological parameters if the activity state is below the threshold.