Abstract:
A dependency-based startup method in a multi-modality medical processing system that includes receiving initialization information about a plurality of executable components to be started, the plurality of executable components including an executable modality component configured to communicate with a medical device communicatively coupled to the multi-modality medical processing system. The method also includes receiving dependency information about the executable modality component, the dependency information identifying one or more of the executable components upon which the executable modality component depends and transforming the initialization information and the dependency information into a dependency map that represents the dependencies between the plurality of executable components. Further, the method includes deriving a start order for the plurality of executable components based on the dependency map and starting the plurality of executable components in the multi-modality medical processing system according to the start order.
Abstract:
Generally, the present disclosure is directed to displaying patient medical data in a multi-modality medical processing system. The method and system described herein present medical data in multiple different modalities on a single user interface screen, allowing a practitioner viewing the user interface to manage all acquired data sets associated with a patient regardless of modality. As such, the amount of time a practitioner must spend reviewing patient medical data is reduced, leading to more efficient diagnosis and treatment. Further, multiple patient cases corresponding to different patients may be presented on a single user interface screen to simplify multi-patient case management.
Abstract:
A distributed medical sensing system including a first hub configured to receive first medical characteristic data from a first body sensing device, the first body sensing device being located in a first sterile field and a second hub configured to receive second medical characteristic data from a second body sensing device, the second body sensing device being located in a second sterile field spaced from the first sterile field. The system also includes a computing device outside of the first and second sterile fields and communicatively coupled to the first and second hubs, the computing device configured to receive the first and second medical characteristic data from the respective first and second hubs, process the first and second medical characteristic data, and transmit the processed first and second medical characteristic data to the respective first and second hubs.
Abstract:
A dependency-based startup method in a multi-modality medical processing system that includes receiving initialization information about a plurality of executable components to be started, the plurality of executable components including an executable modality component configured to communicate with a medical device communicatively coupled to the multi-modality medical processing system. The method also includes receiving dependency information about the executable modality component, the dependency information identifying one or more of the executable components upon which the executable modality component depends and transforming the initialization information and the dependency information into a dependency map that represents the dependencies between the plurality of executable components. Further, the method includes deriving a start order for the plurality of executable components based on the dependency map and starting the plurality of executable components in the multi-modality medical processing system according to the start order.
Abstract:
A dependency-based startup method in a multi-modality medical processing system that includes receiving initialization information about a plurality of executable components to be started, the plurality of executable components including an executable modality component configured to communicate with a medical device communicatively coupled to the multi-modality medical processing system. The method also includes receiving dependency information about the executable modality component, the dependency information identifying one or more of the executable components upon which the executable modality component depends and transforming the initialization information and the dependency information into a dependency map that represents the dependencies between the plurality of executable components. Further, the method includes deriving a start order for the plurality of executable components based on the dependency map and starting the plurality of executable components in the multi-modality medical processing system according to the start order.
Abstract:
Generally, the present disclosure is directed to managing shared resources in a multi-modality medical system. A multi-modality medical system acquires, stores, processes, and displays data associated with a plurality of different medical modalities. Although different, independent modules within the medical system handle different modality workflows, such modules rely on common resources in the system. The method and systems described herein coordinate usage of the common resources, such as a display viewport, among the independent modality modules. For example, a token-based, locking scheme is utilized to exclusively assign a shared resource to a single modality component. This locking scheme prevents, for example, resource deadlocks from occurring during a patient procedure, thus enhancing patient safety. This scheme also ensures, for example, that one diagnostic step in a patient procedure is completed before a second diagnostic step is started, and that all workflow operations halt in the event of an error.
Abstract:
A distributed medical sensing system including a first hub configured to receive first medical characteristic data from a first body sensing device, the first body sensing device being located in a first sterile field and a second hub configured to receive second medical characteristic data from a second body sensing device, the second body sensing device being located in a second sterile field spaced from the first sterile field. The system also includes a computing device outside of the first and second sterile fields and communicatively coupled to the first and second hubs, the computing device configured to receive the first and second medical characteristic data from the respective first and second hubs, process the first and second medical characteristic data, and transmit the processed first and second medical characteristic data to the respective first and second hubs.
Abstract:
Generally, the present disclosure is directed to managing and storing patient data in a multi-modality medical processing system. The method and systems described herein store all medical data acquired from a patient in a single patient record that is assigned a unique identifier. For example, (i) information identifying a patient, (ii) data acquired during a first diagnostic procedure, and (iii) data acquired during a second, different diagnostic procedure may all be stored in association with the same unique identifier, so as to simplify patient case review and retrieval. As an aspect of this, identifying patient information such as patient name and date of birth need only be inputted into the disclosed system a single time, thereby reducing the chance of clerical error.
Abstract:
Generally, the present disclosure is directed to displaying patient medical data in a multi-modality medical processing system. The method and system described herein present medical data in multiple different modalities on a single user interface screen, allowing a practitioner viewing the user interface to manage all acquired data sets associated with a patient regardless of modality. As such, the amount of time a practitioner must spend reviewing patient medical data is reduced, leading to more efficient diagnosis and treatment. Further, multiple patient cases corresponding to different patients may be presented on a single user interface screen to simplify multi-patient case management.
Abstract:
A multi-modality medical system having a computing system communicatively coupled to a medical instrument is provided. An acquisition control activity module is configured to control acquisition of medical data from a patient with the medical instrument and a business logic state machine having a first data acquisition state and a first data review state and being operable to utilize the acquisition control activity module to control acquisition of medical data from the patient with the medical instrument while in the first data acquisition state, and being configured to convert the medical data into images representative of portions of the patient while in the first data acquisition state. The computing system includes also includes a user interface state machine having a second data acquisition state and a second data review state and being configured to present the images within a user interface while in the second data review state.