This patent application claims foreign priority benefits under 35 U.S.C. §119 to United Kingdom Patent Application No. 1422720.1, filed Dec. 19, 2014, and United Kingdom Patent Application No. 1423358.9 filed Dec. 30, 2014, which are hereby incorporated by reference in their entireties.
The present disclosure relates to a method and an apparatus for generating a control signal for a medical device.
Medical devices, such as medical imaging devices, are used in combination with many other medical devices. These other devices are, for example, devices provided with a screen for monitoring data. Other devices include medical instruments like injectors or support devices such as tables. In order to operate the variety of devices an operator has to use a variety of input devices. Such input devices include remote controls, joysticks, push buttons, or similar input devices. The more devices used in an environment, the more difficult the operation of the different devices becomes. A related problem is the relative orientation of a medical device to the input device used to generate instructions for the medical device. If the relative orientation changes, the user can ideally continue to use the input device in an intuitive manner. Situations wherein the change in the relative orientation makes the intended use of the input device more complicated should be avoided. As a consequence, there is an apparent need for intuitive input devices which help operators to interact safely and easily with the medical devices they operate.
In one aspect, the present disclosure is directed to a method for generating a control signal for operating a medical device using an input device located in a determined environment, wherein the input device is configured to generate instructions for the medical device, the method comprising:
In another aspect, the present disclosure is directed to a system for generating a control signal for operating a medical device in a determined environment, the system comprising:
In a further aspect, the present disclosure is directed to an input device for a medical device, the input device being configured for use in a determined environment, the input device having an input sensor for generating an input signal relating to an instruction for the medical device, wherein the input device is provided with an electronic compass, accelerometer, or other orientation sensor/sensor combination to identify the orientation of the input device in the determined environment.
At least one of the above aspects provides one or more solutions to the problems and disadvantages with the background art. Other technical advantages of the present disclosure will be readily apparent to one skilled in the art from the following description and claims. Various aspects of the present application obtain only a subset of the advantages set forth. No one advantage is critical to the aspects. Any described or claimed aspect or embodiment may be technically combined with any other claimed aspect(s) or embodiment(s).
The accompanying drawings illustrate example embodiments of the disclosure and serve to explain, by way of example, the principles of the disclosure.
In the present disclosure, the wording “determined environment” is used to indicate the environment where the medical device and the input device for the medical device are used. This “determined environment” can depend on the type of medical devices used. According to the present disclosure the “determined environment” makes reference to the fact that the medical device and the related input device are used in an environment which allows the identification of the location and/or the orientation of at least the input device. This location or orientation may be in reference either to the compositional elements of the determined environment itself (i.e., walls, ceiling, or floor of a room) or to equipment or markers within the determined environment. According to an embodiment of the invention it is possible that the locations and/or orientations of both the medical device and the input device can be determined either in reference to each other or derived from factors within the determined environment.
In the present disclosure the word “location” is used in relation to an input device and more particularly to the use of an input device in a determined environment. According to the present disclosure, the input device is configured to allow localization in three directions (X,Y,Z) and in three rotations to allow six degrees of freedom in a 3D environment. The word “location” refers to the position and/or the orientation of the input device in the determined environment.
In the present disclosure the phrase “input device” makes reference to a device which can be used to generate instruction for a medical device. The phrase “input device” makes reference to, for example, a joystick, an indicator in the form of a stick or pen, a wearable device with a location/orientation communicating aspect, a specific movement or gesture of the human body, or the mouse of a computer. The phrase “input device” refers to the fact that a movement of the input device can be translated into a specific instruction for the medical device to which the input device is connected.
In the present disclosure, the phrase “electronic compass” is used. The words “compass” and “electronic compass” make reference to a magnetometer and in particular a portable or mobile magnetometer or a device which provides a similar functionality.
In the present disclosure the phrase “medical device” is used to refer to a device which is typically configured to be used in a medical environment. The phrase “medical device” includes devices such as medical imaging devices, devices for monitoring data and other devices like injectors or support devices such as tables or beds.
In the present disclosure the abbreviation CAN is used. CAN makes reference to communication using a CAN bus. The letters CAN stand for “controller area network”. CAN bus is a message-based protocol and is specifically configured and used to allow microcontrollers and devices to communicate with each other without the use of a host computer.
In the room 2 a first device 10 is present which is used as a table or support for supporting a person 11. This person 11 could be a patient of which physiological parameters of any type need to be obtained. In the room 2 a first medical device 12 is present for obtaining physiological parameters of a certain type. In order to operate the medical device 12 the operator 1 uses an input device 20. This input device 20 is, for example, a joystick which is connected to a control unit which is part of the medical device 12 or connected to the medical device 12, and which allows for controlling the movement of the medical device 12 with respect to the support 10. The input device 20 can be a wireless input device which can communicate, using a wireless communication protocol, with a medical device 12 or a control device connected to the medical device 12.
In the room 2 according to
An instruction provided by the input device 20 can be used to operate the medical device 12. A first instruction could, for example, relate to a required movement of the medical device 12 with respect to the person 11 in order to position the medical device 12 correctly with respect to said person 11. A second instruction could include a specific action to be executed by the medical device 12 in order to measure physiological parameters of the person 11.
In the embodiment according to
Turning to
In order to allow the operator 1 to continue using the input device 20 in an intuitive manner irrespective of the position of the operator 1 or the input device 20, according to the present disclosure room 2 is also provided with at least one observer sensor 50. The observer sensor 50 is configured on its own or in combination with further observer sensors 50 to determine the location, that is to say the position and/or the rotation of the input device 20 with respect to said at least one observer sensor 50. According to an embodiment of the disclosure the at least one observer sensor 50 is configured to determine the position and/or orientation of the medical device 12 with respect to a reference in the room, which allows the system to determine the relative location of the input device 20 with respect to the medical device 12. Returning to
According to the present disclosure, intuitive use is accomplished by the fact that an instruction for the medical device 12 generated by the input device 20 comprises two elements. The first element of the instruction for the medical device 12 will be generated by the input device 20 wherein, in the example of
According to an embodiment of the disclosure the parameter linked to the identified location of the input device 20 generated by the at least one observation sensor will be generated prior to, while or after an input signal has been generated by the input device 20. That means that the parameter will be generated for the specific location at which the input signal was generated by the input device 20.
According to an alternative embodiment of the disclosure the at least one observation sensor 50 could continuously generate a parameter linked to the location of the input device 20 and combine the so obtained parameter linked to the identified location of the input device 20 to a generated input signal, once such an input signal is generated by the input device 20.
In another embodiment, the input device 20, according to the present disclosure, is provided with an electronic compass. This electronic compass is configured to determine the orientation of the input device 20 in the room 2. It is possible to use a reference in the room 2 and to allow the electronic compass to determine its orientation with respect to said reference. According to an embodiment of the disclosure, the electronic compass is configured to determine the orientation of input device 20 with respect to a medical device 10, 12 or 15 in the room 2. The fact that the electronic compass is configured to determine the orientation of input device 20, means the system is able to determine the relative position of the input device 20 with respect to a reference position.
According to an embodiment of the disclosure in a first step, the orientation of the medical device 12, operated by the input device 20, is determined. In a further step the orientation of the input device 20 is obtained by the electronic compass. It is possible to calibrate the electronic compass using the initial position of the medical device 12. This would mean that the orientation of the input device 20 obtained by the electronic compass would relate to a relative orientation of the input device 20 with respect to the orientation of the medical device 12. As an alternative, it is possible that the medical device 12 would be provided with a second electronic compass. In that case, both the orientation of the medical device 12 and the input 20 are obtained by an electronic compass.
Once the orientation of both the medical device 12 and the input device 20 is known, a relative orientation of the input device with respect to the medical device 12 can be obtained. The relative orientation of the input device 20 with respect to the medical device 12 can be used to correct any instructions generated by the input device 20.
If the operator 1 would like movement of the joystick 20 in the direction indicated with arrow 33 to be followed by movement of the medical device 12 in a direction 43, the operator 1 does not need to compensate for any orientation, rotation on or displacement of either the operator 1 or the input device 20 with respect to the medical device 12. The correction of any instruction, with the objective of obtaining intuitive use of the input device 20, would be automatic and the movement of the joystick 20 in a direction of arrow 33 would be followed by a movement of the medical device 12 in the direction 43.
According to the present disclosure, intuitive use of the input device 20 is accomplished by the fact that an instruction for the second medical device 12 comprises two elements. The first element of the instruction for the medical device 12 will be generated by the input device 20 wherein, in the example of
According to an embodiment of the disclosure the electronic compass of the input device 20 could continuously generate a parameter linked to the relative orientation of the input device 20 with respect to the medical device 12. Moreover, it would be possible to identify an updated orientation of the medical device 12 in the determined environment. If the medical device 12 comprises an electronic compass, the orientation of the medical device 12 may be obtained continuously by said electronic compass.
In order to be able to able to execute the method according to the disclosure and to obtain the functionality described with respect to the drawings, a system for generating a control signal for operating a medical device 12 in a determined environment 2, according to the disclosure, comprises at least a medical device 12 configured to receive instructions generated by an input device 20. The system further comprises an input device 20 connected to the medical device 12. The connection could be obtained via a wired and/or a wireless connection. In the case of a wireless connection the input device 20 and the medical device 12 should be configured to communicate via an adapted wireless communication protocol. According to the disclosure the input device 20 is provided with an input sensor for generating an input signal relating to an instruction for the medical device. The input sensor is able to translate an instruction provided by the operator 1 into an input signal. The input device 20 further comprises an electronic compass for identifying the orientation of the input device 20 in the determined environment 2 wherein the input device 20 is used. The system further comprises a processor connected to the input device 20, wherein the processer is adapted to receive and process data relating to the orientation of the medical device 20 in the determined environment 2, data relating to the orientation of the input device 12 in the determined environment 2 obtained by the electronic compass, and to obtain an input signal generated by the input sensor. The processor could be physically present in the input device 20 or in the medical device 12 or could be present in a separate device connected to both the input device 20 and the medical device 12. The processor should be configured to process data, the data relating to the orientation of the medical device 20 in the determined environment 2, the data relating to the orientation of the input device 12 in the determined environment 2 obtained by the electronic compass, and an input signal generated by the input sensor to obtain, as a result of said processing, the control signal for the medical device.
In the system according to the disclosure the different devices 12 and 20 could communicate by CAN protocol or any other protocols sufficient to convey the relevant information.
In a first embodiment of the invention, the reference element 60 could comprise a passive element, for example in the form of an elongated or triangular member, which facilitates recognition of the position and/or orientation of the reference element 60. Such a passive element could for instance facilitate image recognition when, for example, the at least one observation sensor 50 comprises cameras that enable the identification of the location by providing, for example, 3D visualization.
The reference element 60 could also comprise, for example, an active element in the form of an LED element to facilitate recognition of the location of the reference element 60.
According to a further embodiment, the reference element comprises an element for allowing electromagnetism localization.
According to a further embodiment of the present disclosure, the reference element 60 is configured to allow radio-frequency (RF) localization such as RFID localization.
In
In at least one embodiment, the bracelet 70 could be worn by the operator 1 to allow the system as described with reference to
This means that if the input device comprises a touch screen, any instructions generated by touching the screen will only be taken into account if, at the same time, a determined distance between the bracelet 70 and the touch screen is equal to or below the threshold value. In at least one embodiment the threshold value is, for example, between about 10 centimeters and about 100 centimeters. And in another embodiment, the threshold value is about 20 centimeters. If the distance between the bracelet 70 and the touch screen exceeds the threshold value, then this implies that the touch screen was touched by coincidence and the operator who is supposed to be providing instructions via the touch screen is not in the direct vicinity of the touch screen. In other words, generating instructions is not possible by simply touching an input device unless the system has also confirmed that the operator who is supposed to be operating a certain device is effectively either close to the medical device or close to the input device associated with the medical device. The use of the bracelet 70 therefore increases the safety of operating one or more medical devices in a determined environment.
A further use of a bracelet 70 according to
With reference to
The pointed device 80 in combination with at least one embodiment of the invention is particularly useful when an operator has obtained in a first step physiological data of an area of interest, such as the arm 90 of a person 11. The data relating to the arm 90 is, for example, obtained by radiology. In the context of this disclosure radiology makes reference to any known image acquisition modality such as, for example, X-ray radiography, ultrasound, computed tomography and magnetic resonance imaging (MRI).
A database of image data including data relating to a full 3D structure of a body part of interest can be generated in connection with any of the image acquisition modalities used. It is known that in some imaging procedures, after generating such a database an operator uses processing techniques, for example on a computer, to obtain specific slices, meaning images taken under a certain angle in order to try to obtain a most appropriate representation of the body part on a 2D screen. According to the present disclosure, after obtaining the data by, a radiology procedure, an operator could return to the actual body part 90 and indicate the exact axes of interest of which he would like to obtain the image. That means that the operator could position the input device 80 at a preferred position and could turn the input device 80 to a preferred angular position with respect to the body part 90 in order to obtain in an intuitive manner an image of the body 90 part which relates to the position and the angular orientation of the input device 80 with respect to the actual body part 90.
A further use of the method and system according to the present disclosure is that the location of an input device can be monitored in order to avoid losing the input device. For example, if the input device is removed from the determined environment and is no longer visible in the determined environment, an alarm could be generated. A further possibility is to use the method and system according to the present disclosure to indicate the location of a medical device in the determined environment. For example, if the operator is provided with a bracelet, the operator could position his hand in the vicinity of a medical device to locate the medical device in the determined environment. Thereafter, the actual position of the medical device in the determined environment could be obtained and/or compared with a preferred location for the medical device in the determined environment.
According to the present disclosure a single input device can be used to generate instructions for either a single medical device or several medical devices. In the determined environment, either one or several input devices are used. In case of multiple input devices, these can be used by either one or several operators. The observation sensor used to determine the location of the input device is either fixed to part of the determined environment or attached to the input device itself.
In a second step 120 a parameter is generated linked to either or both of the identified orientation or location of the medical device and the identified orientation or location of the input device in the determined environment.
In a third step 130 the input sensor of the input device is used to generate an input signal relating to an instruction for the medical device.
In a fourth step 140 the input signal from the input device is used in combination with the parameters to obtain and use a control signal for the medical device.
This written description uses examples to disclose example embodiments of the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they have structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal languages of the claims.
Number | Date | Country | Kind |
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1422720.1 | Dec 2014 | GB | national |
1423358.9 | Dec 2014 | GB | national |