Artificial cochlea mixed mode debugging system and debugging method

By designing a hybrid cochlear implant modular system and integrating remote wireless, Bluetooth, serial port and new communication technology modules, the complexity of the existing system in mode integration and unity is solved, and the system simplification and improvement of the control effort is achieved.

CN120204622APending Publication Date: 2025-06-27SHANGHAI LISTENT MEDICAL TECH CO LTD
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Patent Information

Application Number
CN202311822107.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-27
Publication Date
2025-06-27

AI Technical Summary

Technical Problem

When the existing cochlear implant debugging system supports remote control, on-site wireless Bluetooth control and wired control modes, it faces the problems of complex system implementation, maintenance difficulties and complex communication between pilots and doctors, especially in terms of mode integration and unity.

Method used

A cochlear implant hybrid controller mode system was designed, and the coordinated work of the unit was realized through the interface display unit, interface unit and mode, and the remote wireless controller module, Bluetooth controller module, serial controller module and new communication technology module were integrated to realize the adaptation and data transmission of different communication methods.

Benefits of technology

It has achieved unified integration of existing and future machine control modes, simplified the implementation and maintenance of machine control systems, reduced the technical complexity of pilots and doctors, and increased the attention of machine control energy and patient feedback.

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Abstract

The invention discloses an artificial cochlea hybrid debugging mode system and a debugging method. The system comprises an interface display unit; the interface unit is used for executing operation according to the data of the interface display unit and controlling the interface display unit to display according to the return data of the mode implementation unit; the mode implementation unit comprises a remote wireless debugging module, a Bluetooth debugging module, a serial port debugging module and a new communication technology module, and is used for performing data communication with the interface unit, receiving data of the interface unit, calling corresponding modules to execute corresponding operations and returning the data of each module to the interface unit; and the communication unit is used for receiving data from each module of the corresponding mode implementation unit, sending debugging data to equipment of the artificial cochlea, receiving data from the equipment of the artificial cochlea and returning the data to the mode implementation unit. And the implementation and maintenance of the debugging system are integrated and simplified.
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Description

Technical Field

[0001] This application relates to the field of medical devices, and in particular to a cochlear implant hybrid mode programming system and a programming method. Background Art

[0002] A cochlear implant system belongs to an active implantable medical device and consists of an implant part and an external part, which treats hearing impairment by electrically stimulating the cochlea. The external part consists of a sound processor and a transmitting coil. The sound processor is the external part of the cochlear implant system. The sound processor collects voice signals through a built-in microphone, converts the sound signals into electrical signals according to a speech coding strategy, and transmits them to the implant body wirelessly through the transmitting coil. The implant body is the implant part of the cochlear implant system and consists of a receiving coil, a stimulation decoder, and an electrode array. The receiving coil receives the wireless signals sent by the sound processor through magnetic induction coil coupling, and after being decoded by the stimulation decoder, transmits them to the electrode array in the form of electrical signals.

[0003] A cochlear implant programming system is an application platform that provides programming and data management for cochlear implant products.

[0004] As Figure 1 shown, in the remote programming mode, the cochlear implant programming system (MAP) establishes a network connection with the implant recipient's mobile phone through the server DB SERVER, the workstation MAP WORKSTATION, and the cloud platform cloud computing. The implant recipient's mobile phone establishes a Bluetooth connection with the cochlear implant system used by the implant recipient. The cochlear implant programming system establishes a communication link with the sound processor of the cochlear implant system through the above network connection and Bluetooth connection. The cochlear implant programming system uses this communication link to program the cochlear implant system used by the implant recipient, and saves relevant information during the programming process, such as the implant recipient's personal information, the programs and relevant parameters used, such as the coding strategy, TC value, and stimulation rate, to the database. The database can be deployed on the machine where the cochlear implant programming system is located or on a separate server. In this mode, the programmer and the implant recipient are located in different places, and remote video can be used for auxiliary communication and effect evaluation. The main applicable objects are implant recipients in remote areas.

[0005] As Figure 2As shown in the figure, in the on-site wireless Bluetooth debugging mode, the cochlear implant debugging system establishes a Bluetooth connection with the cochlear implant system used by the implant recipient through the server DBSERVER, the workstation MAP WORKSTATION, and the Bluetooth adapter. The cochlear implant debugging system uses this Bluetooth communication link to adjust the cochlear implant system used by the implant recipient, and saves the relevant information during the debugging process to the database. The database can be deployed on the machine where the cochlear implant debugging system is located, or on a separate server. In this mode, the debugger and the implant recipient are at the same location, and auxiliary communication and effect evaluation are carried out face to face.

[0006] The main applicable objects are implant recipients of cochlear implant debugging systems with Bluetooth functions. It is required that both the cochlear implant debugging system and the cochlear implant system be equipped with compatible Bluetooth adapters, and the Bluetooth pairing operation be completed before use.

[0007] Currently, in order to support the above three debugging modes, the cochlear implant debugging system faces the problems of implementation and integration of the three modes. Since the above three modes are respectively based on network technology, Bluetooth technology, and wired technology, even if the cochlear implant debugging system realizes the three debugging modes respectively, how to integrate the three modes into a conceptually unified entity becomes a key issue. If they cannot be unified conceptually, the following dilemmas will be faced:

[0008] (1) The complexity of system implementation introduced by the cochlear implant debugging system to support the above three debugging modes.

[0009] (2) When new debugging modes appear subsequently, it poses great difficulties in implementation and maintenance for the cochlear implant debugging system.

[0010] (3) The technical complexity and obstacles brought about when communicating with the debugger and the doctor. Without integration and simplification, the above three debugging modes force the debugger and the doctor to face various cumbersome technical details, distracting their main debugging energy. Summary of the Invention

[0011] To solve the above problems, this patent proposes a cochlear implant hybrid debugging mode system, which is characterized by including:

[0012] An interface display unit for displaying and operating the operation interface;

[0013] An interface unit for performing operations according to the data of the interface display unit, and also controlling the interface display unit to display according to the return data of the mode implementation unit;

[0014] A mode implementation unit, which includes a remote wireless tuning module, a Bluetooth tuning module, a serial port tuning module, and a new communication technology module, is used for data communication with an interface unit, receiving data from the interface unit, calling corresponding modules to perform corresponding operations, and returning the data of each module to the interface unit;

[0015] A communication unit, which includes a remote wireless communication module connected to the remote wireless tuning module, a Bluetooth communication module connected to the Bluetooth tuning module, a serial port communication module connected to the serial port tuning module, and a new technology communication module connected to the new communication technology module, is used for receiving data from each module of the corresponding mode implementation unit, sending tuning data to the device of the cochlear implant, and receiving data from the device of the cochlear implant and returning it to the mode implementation unit.

[0016] Optionally, the interface unit includes: a start service module for starting the interface unit; an initialization module for initializing the module implementation unit and returning information on whether the initialization result is successful or not; a data sending module for sending data to the mode implementation unit; a data receiving module for receiving data from the interface display unit or the mode implementation unit; a message processing module for extracting and processing the required messages from the sent or received data; and a stop service module for closing the interface unit.

[0017] Optionally, the cochlear implant hybrid tuning mode system further includes: a configuration interface module for setting the log information and data sending address required by the interface unit; an ID telemetry module for detecting the connection status of the communication unit; a cleaning module for releasing all resources of the interface unit; and a stop log module for stopping the log function.

[0018] This patent also provides a tuning method using the above cochlear implant hybrid tuning mode system for tuning, including steps: the interface display unit displays and operates the operation interface; the interface unit performs operations according to the data of the interface display unit, and also controls the interface display unit to display according to the return data of the mode implementation unit; the mode implementation unit calls corresponding modules to perform corresponding operations and returns the data of each module to the interface unit; the communication unit receives data from each module of the corresponding mode implementation unit, sends tuning data to the device of the cochlear implant, and receives data from the device of the cochlear implant and returns it to the mode implementation unit.

[0019] Optionally, the working steps of the interface unit in the above tuning method include: starting the interface unit; initializing the module implementation unit and returning information on whether the initialization result is successful or not; sending data to the mode implementation unit; receiving data from the interface display unit or the mode implementation unit; extracting and processing the required messages from the sent or received data; and closing the interface unit.

[0020] Optionally, the working steps of the interface unit in the above tuning method further include: setting the log information and data sending address required by the interface unit; detecting the connection status of the communication unit; releasing all resources of the interface unit; and stopping the log function.

[0021] By conceptually unifying the existing three tuning modes and possible new modes in the future, integrating and simplifying the implementation and maintenance of the tuning system, enabling the tuner and doctor not to care about the specific implementation details, and concentrating the main energy on the tuning process and patient feedback. It is beneficial to unify and simplify the use of the cochlear implant debugging system. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present application. For those skilled in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0023] Figure 1 It is a diagram of the existing remote tuning mode;

[0024] Figure 2 It is a diagram of the existing on-site wireless Bluetooth tuning mode;

[0025] Figure 3 It is a system architecture diagram of the cochlear implant hybrid tuning mode according to an embodiment of the present invention;

[0026] Figure 4 It is a flowchart of the cochlear implant hybrid tuning method according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0027] The following will describe the preferred embodiments of the present invention in more detail. Although the following describes the preferred embodiments of the present invention, it should be understood that the present invention can be implemented in various forms and should not be limited by the embodiments described herein.

[0028] In the present invention, unless otherwise stated, the orientation terms such as "upper, lower" generally refer to the upper and lower in the normal use state of the device, and "inner, outer" refer to the inside and outside relative to the contour of the device. In addition, the terms "first, second, third" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Thus, the features defined with "first, second, third" may explicitly or implicitly include one or more of such features. In the description of the present invention, "a plurality" means two or more unless otherwise specifically defined. The present invention is an electrical device, so connections and interconnections all represent conductive interconnections. Since the drawings are descriptions of the same device, the same reference numerals in the drawings represent the same components.

[0029] The cochlear implant hybrid mode programming system of the present invention includes three parts: an interface, an interface unit, and a mode implementation unit. Specifically, the interface display unit is responsible for displaying and operating the operation interface, providing an interface for the user to interact with the system.

[0030] The interface unit performs operations according to the data of the interface display unit, and also controls the interface display unit to display according to the data returned by the mode implementation unit. This part realizes the bridge between user input and system operations.

[0031] The mode implementation unit includes a remote wireless programming module, a Bluetooth programming module, a serial port programming module, and a new communication technology module. These modules are used for data communication with the interface unit. Specifically, they call the corresponding modules according to the data of the interface unit to perform corresponding operations, and return the data of each module to the interface unit. This part realizes the integration and collaborative work of different communication modules.

[0032] The communication unit includes a remote wireless communication module connected to the remote wireless programming module, a Bluetooth communication module connected to the Bluetooth programming module, a serial port communication module connected to the serial port programming module, and a new technology communication module connected to the new communication technology module. These communication modules are responsible for sending programming data to the cochlear implant device according to the data sent by the mode execution unit, receiving data from the cochlear implant device, and then returning it to the mode implementation unit. This part realizes the adaptation of different communication methods and data transmission.

[0033] In a specific embodiment of the present invention, the interface unit includes:

[0034] A start service module to start the interface unit;

[0035] An initialization module for initializing the module implementation unit and returning information on whether the initialization is successful or not. In this embodiment, the initialization module (Initialization Module) is used to receive configuration information in JSON format from the mode implementation unit, such as the port number and baud rate of the serial port, initialize the mode implementation unit, and return information on whether the initialization is successful or not.

[0036] A data sending module for sending data to the mode implementation unit;

[0037] A data receiving module for receiving data from the interface display unit or the mode implementation unit;

[0038] A message processing module for extracting and processing the required messages from the sent or received data;

[0039] A stop service module for closing the interface unit.

[0040] In this embodiment, it further includes:

[0041] A configuration interface module, which is used to set the log information and the data sending address required by the interface unit.

[0042] An ID telemetry module, which is used to detect the connection status of the communication unit; in this embodiment, the ID telemetry module (IdTelemetry Module) is used to start ID (identification) telemetry, perform relevant ID telemetry operations, and return the result information indicating success or failure; stop ID telemetry: perform relevant ID telemetry stop operations and return the result information indicating success or failure.

[0043] A cleaning module, which is used to release all resources of the interface unit, such as a cleaning function, perform relevant cleaning operations, and return the result after cleaning.

[0044] A stop log module, which is used to stop the log function.

[0045] In this embodiment, it further includes a Log Module: which is used to set a log window, receive log information according to the communication with the interface display unit and the mode implementation unit, and display it in the log window. It also includes a main window display module: which receives the debugging information sent by the interface display unit and displays it in the main window.

[0046] In this embodiment, it further includes a Service Control Module, which is used to start the debugging service, perform relevant service start operations, and return the result information indicating success or failure; stop the service, perform the debugging service stop operation, and return the result information indicating success or failure.

[0047] In this embodiment, it further includes a Log (View Log) Module (Log Command Module), which is used to start Log: perform relevant Log start operations; and stop Log: perform relevant Log stop operations.

[0048] In this embodiment, it further includes a Data Transfer Module, which is used to retransmit data to the mode implementation unit: perform the retransmission data operation and return the result information indicating whether the sending is successful.

[0049] In this embodiment, it further includes a service control module, which starts the work of each module in the interface unit and stops the work of each module in the interface unit.

[0050] This system realizes the function of programming the cochlear implant in hybrid mode through the coordinated work of three parts: the interface, the interface unit, and the mode implementation unit. The user interacts with the system through the interface. The interface unit is responsible for passing the user input to the mode implementation unit, and the communication unit is responsible for data transmission between different communication modules. The modules of the interface unit provide support for functions such as initialization of the programming module, service control, ID telemetry, and Log. The design of the entire system enables the coordinated work between different parts to complete the regulation and data transmission of the cochlear implant.

[0051] The present invention also provides a programming method for a cochlear implant hybrid programming mode system, including the steps:

[0052] The interface display unit displays and operates the operation interface;

[0053] The interface unit executes operations according to the data of the interface display unit, and also controls the interface display unit to display according to the return data of the mode implementation unit;

[0054] The mode implementation unit calls the corresponding module to execute the corresponding operation and returns the data of each module to the interface unit;

[0055] The communication unit receives data from each module of the corresponding mode implementation unit, sends programming data to the cochlear implant device, and receives data from the cochlear implant device and returns it to the mode implementation unit.

[0056] In a preferred embodiment of the present invention, referring to Figure 3 , the specific interface unit includes the working steps:

[0057] Set the log information and data sending address required by the interface unit;

[0058] Start the interface unit;

[0059] Initialize the module implementation unit and return information on whether the initialization is successful;

[0060] Detect the connection status of the communication unit;

[0061] Send data to the mode implementation unit;

[0062] Receive data from the interface display unit or the mode implementation unit;

[0063] Extract the required messages from the sent or received data and process them;

[0064] Release all resources of the interface unit;

[0065] Stop the log function;

[0066] Close the interface unit.

[0067] The following will be described in detail in combination with specific work examples and Figure 4 carry out detailed description.

[0068] First, the interface display unit displays and operates the operation interface; start the system, open the cochlear implant mixing programming mode system, wait for the system to initialize, the initialization module of the interface unit communicates with the mode implementation unit, and perform the initialization work. Specifically, according to the initialization result, the selectable programming modes can be determined. For example, in this embodiment, since both the Bluetooth communication module and the serial port communication module are in the connected state, the initialization success result is returned, and these two programming modes can be selected.

[0069] Next, through the operation of the interface display unit, through the touch screen or other interaction methods, the user can browse different setting options and functions. This includes selecting a programming mode, which may include remote wireless programming, Bluetooth programming, serial port programming, or new communication technology programming. In this embodiment, the serial port mode is selected.

[0070] Then, adjust the parameters. After entering the selected programming mode, the user can adjust the parameters through the interface display unit. This may involve audio settings, signal processing, or other parameters related to the cochlear implant. Specifically, the interface display unit calls each module in the interface unit to perform operations. Data interaction is carried out between the mode implementation unit and the selected communication unit. During the execution of the operation, the system will feedback relevant information in real time so that the user can understand the effect of the adjustment. This may include changes in the interface display unit or other perceivable feedback.

[0071] Therefore, after entering the selected programming mode, the interface unit executes operations according to the data of the interface display unit, and also controls the interface display unit to display according to the return data of the mode implementation unit; the mode implementation unit calls the corresponding modules to perform corresponding operations, and returns the data of each module to the interface unit; the communication unit receives data from each module of the corresponding mode implementation unit, sends programming data to the cochlear implant device, and receives data from the cochlear implant device and returns it to the mode implementation unit.

[0072] Specifically, the working steps of the interface unit include:

[0073] Configure the interface module, and set the log information and data sending address required by the interface unit.

[0074] Start the service module, start the interface unit; start the communication interface data service function.

[0075] The log module sets the log window, receives log information according to the communication with the interface display unit and the mode implementation unit, and displays it in the log window; for example, during the volume adjustment process, log information is generated, and the log module may record the corresponding log and display it in the log window.

[0076] The main window display module receives the debugging information sent by the interface display unit and displays it in the main window.

[0077] The initialization module initializes the module implementation unit and returns information on whether the initialization was successful; it initializes the corresponding debugging module with configuration information in JSON format, such as the port number and baud rate of the serial port, and returns the result information on success or failure. The parameters come from the interface layer.

[0078] The ID telemetry module starts ID telemetry and the implanted body ID telemetry function to detect the implanted body ID while incidentally detecting the corresponding hardware connection status.

[0079] The data sending module sends data to the unit implementing the mode; it sends data to the destination specified by the configuration interface or a specific mode implementation component. The data transmission module re-sends data; for example, it communicates with the serial port debugging module to pass the instruction for adjusting the volume of the interface display unit to the serial port debugging module.

[0080] The data receiving module receives data from the interface display unit or the unit implementing the mode; it receives data from the interface or a specific mode implementation component.

[0081] Stop the implanted body ID telemetry function.

[0082] Turn off the data service function of the communication interface.

[0083] Stop the logging function of the logging module.

[0084] Turn off the data service function of the communication interface.

[0085] During the execution of the operation, the system will provide real-time feedback of relevant information so that the user can understand the effect of the adjustment. This may include changes in the interface display or other perceivable feedback.

[0086] In the present invention, the role of the interface is for human-computer interaction. In the cochlear implant hybrid debugging mode architecture, the interface is independent of the specific debugging mode. In other words, under different debugging modes, the debugger and doctor use a unified debugging interface to execute operation commands, simplifying the debugging operations of the debugger and doctor.

[0087] The interface is the bridge between the interface and the implementation of debugging. The communication interface layer defines a set of control and management interfaces, and each specific debugging module implements each interface unit defined by the communication interface layer. The interface unit isolates the interface display unit and the mode implementation unit.

[0088] Mode implementation: Implement each interface defined in the communication interface layer using the relevant technologies used in each tuning mode (SOCKET for remote tuning, BLE for Bluetooth tuning, and serial port for wired tuning).

[0089] The advantages of the present invention are as follows: The system interface is clear and the levels are distinct. The responsibilities of each component in the cochlear implant hybrid tuning mode architecture are clear and the functions are single. The system is easy to expand. When a new tuning module needs to be added, only the interfaces defined in the communication interface layer need to be implemented through relevant technologies. The system is easy to maintain. When an existing function needs to be modified, relevant interfaces can be added / modified in the communication interface layer and corresponding adjustments can be made in each implementation part. The system is easy to test. Each system can be tested separately / jointly, minimizing the occurrence of BUGs as much as possible. It is convenient for doctors and tuning technicians. They do not need to care about the specific tuning mode, use a unified tuning interface to execute operation commands, focus on the tuning process and the feedback from the implant recipient, and do not need to care about technical details.

[0090] In some other embodiments of the present application, there may be more or fewer components than shown in the figures, or some components may be combined, or some components may be split, or different component arrangements may be used. The components shown in the figures can be implemented in hardware, software, or a combination of software and hardware.

[0091] The embodiments of the mechanism disclosed in the present application can be implemented in hardware, software, firmware, or a combination of these implementation methods. The embodiments of the present application can be implemented as a computer program or program code executed on a programmable system, which includes at least one processor, a storage system (including volatile and non-volatile memories and / or storage elements), at least one input device, and at least one output device.

[0092] The program code can be applied to the input instructions to execute the various functions described in the present application and generate output information. The output information can be applied to one or more output devices in a known manner.

[0093] The program code can be implemented in a high-level procedural language or an object-oriented programming language to communicate with the processing system. When necessary, the program code can also be implemented in assembly language or machine language. In fact, the mechanism described in the present application is not limited to the scope of any specific programming language. In any case, the language can be a compiled language or an interpreted language.

[0094] In some cases, the disclosed embodiments may be implemented in hardware, firmware, software, or any combination thereof. The disclosed embodiments may also be implemented as instructions carried or stored on one or more transient or non-transitory machine-readable (e.g., computer-readable) storage media, which may be read and executed by one or more processors. For example, the instructions may be distributed via a network or via other computer-readable media. Thus, machine-readable media can include any mechanism for storing or transmitting information in a form readable by a machine (e.g., a computer), including but not limited to, floppy disks, optical disks, optical discs, compact discs read-only memory (CD-ROMs), magneto-optical discs, read-only memory (ROM), random access memory (RAM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), magnetic or optical cards, flash memory, or tangible machine-readable memories for transmitting information (e.g., carrier waves, infrared signals, digital signals, etc.) in electrical, optical, acoustic, or other forms using the Internet. Thus, machine-readable media include any type of machine-readable media suitable for storing or transmitting electronic instructions or information in a form readable by a machine (e.g., a computer).

[0095] In the drawings, some structural or method features may be shown in a particular arrangement and / or order. However, it should be understood that such a particular arrangement and / or ordering may not be required. Rather, in some embodiments, these features may be arranged in a manner and / or order different from that shown in the illustrative drawings. Additionally, the inclusion of a structural or method feature in a particular figure does not imply that such a feature is required in all embodiments, and in some embodiments, these features may not be included or may be combined with other features.

[0096] It should be noted that the units / modules mentioned in the device embodiments of the present application are all logical units / modules. Physically, a logical unit / module may be a physical unit / module, may be a part of a physical unit / module, or may also be implemented as a combination of multiple physical units / modules. The physical implementation manner of these logical units / modules themselves is not the most important. The combination of the functions implemented by these logical units / modules is the key to solving the technical problems proposed in the present application. In addition, in order to highlight the innovative part of the present application, the above device embodiments of the present application do not introduce units / modules that are not closely related to solving the technical problems proposed in the present application. This does not mean that there are no other units / modules in the above device embodiments.

[0097] It should be noted that in the examples and the description of this patent, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising one" does not exclude the presence of additional identical elements in the process, method, article or device comprising the element.

[0098] The above are only examples of the present application, and do not limit the patent scope of the present application. Any equivalent structure or equivalent process transformation made by using the content of the specification and drawings of the present application, such as the mutual combination of technical features between embodiments, or direct or indirect application in other related technical fields, shall be equally included in the patent protection scope of the present application.

Claims

1. An artificial cochlea hybrid programming mode system, characterized in that, It includes an interface display unit, an interface unit, a mode implementation unit, and a communication unit; The interface display unit is used for displaying and operating an operation interface; The interface unit is used to execute operations according to the data of the interface display unit, and also controls the interface display unit to perform display according to the return data of the mode implementation unit; The mode implementation unit includes a remote wireless tuning module, a Bluetooth tuning module, a serial port tuning module, and a new communication technology module, which is used for data communication with the interface unit, receiving data from the interface unit, calling the corresponding module to execute corresponding operations, and returning the data of each module to the interface unit; The communication unit includes a remote wireless communication module connected to the remote wireless tuning module, a Bluetooth communication module connected to the Bluetooth tuning module, a serial port communication module connected to the serial port tuning module, and a new technology communication module connected to the new communication technology module, which is used for receiving data from each module of the corresponding mode implementation unit, sending tuning data to the cochlear implant device, and receiving data from the cochlear implant device and returning it to the mode implementation unit.

2. The cochlear implant hybrid programming mode system according to claim 1, wherein, The interface unit includes: A start service module to start the interface unit; An initialization module for initializing the module implementation unit and returning information on whether the initialization result is successful or not; A data sending module for sending data to the mode implementation unit; A data receiving module for receiving data from the interface display unit or the mode implementation unit; A message processing module for extracting and processing the required messages from the sent or received data; A stop service module for closing the interface unit.

3. The cochlear implant hybrid tuning mode system according to claim 2, wherein A configuration interface module for setting the log information and data sending address required by the interface unit; An ID telemetry module for detecting the connection status of the communication unit; A cleaning module for releasing all resources of the interface unit; A stop log module for stopping the log function.

4. A programming method for programming using the cochlear implant hybrid programming mode system according to claim 1, characterized in that, It includes the steps of: The interface display unit performs display and operation of the operation interface; The interface unit executes operations according to the data of the interface display unit, and also controls the interface display unit to perform display according to the return data of the mode implementation unit; The mode implementation unit calls the corresponding module to execute the corresponding operation and returns the data of each module to the interface unit; The communication unit receives data from each module of the corresponding mode implementation unit, sends tuning data to the cochlear implant device, and receives data from the cochlear implant device and returns it to the mode implementation unit.

5. The machine adjustment method according to claim 4, wherein The working steps of the interface unit include: Starting the interface unit; Initializing the module implementation unit and returning information on whether the initialization result is successful or not; Sending data to the mode implementation unit; Receiving data from the interface display unit or the mode implementation unit; Extracting and processing the required messages from the sent or received data; Closing the interface unit.

6. The machine adjustment method according to claim 5, wherein The working steps of the interface unit further include: Setting the log information and data sending address required by the interface unit; Detecting the connection status of the communication unit; Releasing all resources of the interface unit; Stopping the log function.