Abstract:
A method for configuring a presentation of physiological data for a patient includes identifying one or more physiological sensor modules that are connected in a physiological parameter monitoring device. After the physiological sensor modules are identified, the physiological parameter monitoring device is configured so that display areas are allocated on a display screen of the physiological parameter monitoring device for displaying physiological data for the patient. A separate display area is allocated for each identified physiological module. After one or more physiological sensor modules are detected as being connected, the physiological parameter monitoring device is automatically configured to include one or more additional display areas on the display screen for displaying physiological data for the patient. A separate additional display area is allocated for each of the additional physiological sensor modules that is connected.
Abstract:
A method for configuring a presentation of physiological data for a patient includes identifying one or more physiological sensor modules that are connected in a physiological parameter monitoring device. After the physiological sensor modules are identified, the physiological parameter monitoring device is configured so that display areas are allocated on a display screen of the physiological parameter monitoring device for displaying physiological data for the patient. A separate display area is allocated for each identified physiological module. After one or more physiological sensor modules are detected as being connected, the physiological parameter monitoring device is automatically configured to include one or more additional display areas on the display screen for displaying physiological data for the patient. A separate additional display area is allocated for each of the additional physiological sensor modules that is connected.
Abstract:
A method for displaying physiological data on a medical display device includes receiving one or more first units of physiological data from a first monitoring device. At least one of the first units of physiological data is received on a continuous basis. Each first unit of physiological data corresponds to a medical parameter being monitored by the first monitoring device. One or more second units of physiological data are received from a second monitoring device. At least one of the second units of physiological data is received on a non-continuous basis. Each second unit of physiological data corresponds to a medical parameter being monitored by the second monitoring device. The first and second units of physiological data are displayed on a single display screen of the medical display device.
Abstract:
A compact integrated power amplifier is described herein. In an exemplary design, an apparatus includes (i) an integrated circuit (IC) die having at least one transistor for a power amplifier and (ii) an IC package having a load inductor for the power amplifier. The IC die is mounted on the IC package with the transistor(s) located over the load inductor. In an exemplary design, the IC die includes a transistor manifold that is placed over the load inductor on the IC package. The transistor(s) are fabricated in the transistor manifold, have a drain connection in the center of the transistor manifold, and have source connections on two sides of the transistor manifold. The IC die and the IC package may include one or more additional power amplifiers. The transistor(s) for each power amplifier may be located over the load inductor for that power amplifier.
Abstract:
A print engine (10) having a maximum physical sheet capacity (MAX_C), and being operable at an operational sheet capacity (OP_C) equal to or less than the maximum physical sheet capacity, includes a marking device (12) which applies marks to sheets of media supplied thereto and outputs the same. A feeding device (14) supplies the sheets to the marking device (12), and a finishing device (16) receives the sheets from the marking device (12). Also included is a user interface (18). The user interface (18) has an indicator (100) which communicates to an operator of the print engine (10): the maximum physical sheet capacity of the print engine (10); the operational sheet capacity at which the print engine (10) is currently operating; and, a measurement of actual sheets which are at least one of contained in or received in a support device of the print engine (10), wherein the support device is the feeding device (14) or the finishing device (16).
Abstract:
A device obtains a series of measurements of a physiological parameter of a monitored patient when the device is operating within a monitoring workflow. The device displays a monitoring workflow home screen when the device is operating within the monitoring workflow. The monitoring workflow home screen contains a representation of the physiological parameter of the monitored patient. In addition, the device obtains a measurement of the physiological parameter of each patient in a series of patients when the device is operating within a non-monitoring workflow. The device displays a non-monitoring workflow home screen when the device is operating within the non-monitoring workflow. The non-monitoring workflow home screen contains a representation of the physiological parameter of a given patient in the series of patients. The monitoring workflow home screen is different than the non-monitoring workflow home screen.
Abstract:
The present invention relates to a printing system, and more particularly to a user interface for navigating and controlling a printing system to generate documents received from one or more input units including a computer network, scanner, modem, etc. Since the operator or user wishes to offer a wide variety of printing options to customers and complete customer orders as quickly as possible, minimizing the interruption of print jobs is a very important priority. By replenishing supplies such as stock and toner in a timely fashion, the utilization of the printing systems can be maximized. In order for the operator to more efficiently utilize the printing system to perform a large number of print jobs with as few interruptions as possible, the present invention provides a user friendly navigational tool, which can provide the operator with information regarding the amount of printing supplies currently available in the printing system.
Abstract:
A compact integrated power amplifier is described herein. In an exemplary design, an apparatus includes (i) an integrated circuit (IC) die having at least one transistor for a power amplifier and (ii) an IC package having a load inductor for the power amplifier. The IC die is mounted on the IC package with the transistor(s) located over the load inductor. In an exemplary design, the IC die includes a transistor manifold that is placed over the load inductor on the IC package. The transistor(s) are fabricated in the transistor manifold, have a drain connection in the center of the transistor manifold, and have source connections on two sides of the transistor manifold. The IC die and the IC package may include one or more additional power amplifiers. The transistor(s) for each power amplifier may be located over the load inductor for that power amplifier.