Intelligent multi-dimensional management system for critical patients

The intelligent multidimensional management system for critically ill patients addresses the anxiety and fear experienced by critically ill patients in the intensive care unit through intelligent display terminals and fingertip controllers, achieving emotional relief and orientation training, and improving the patient's rehabilitation experience.

CN115240815BActive Publication Date: 2026-03-27ZHEJIANG UNIV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-05-18
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Critically ill patients in the intensive care unit often experience anxiety, fear, delirium, and other emotional distress that current technologies struggle to effectively alleviate.

Method used

This invention provides an intelligent multidimensional management system for critically ill patients, including an intelligent display terminal and a fingertip controller. The system helps patients alleviate their emotions through video calls, playing videos, or playing mini-games, and allows them to select functions and receive orientation training through the fingertip controller.

Benefits of technology

It effectively alleviates the anxiety and fear of critically ill patients, prevents delirium, and creates a rehabilitation model in which family members are fully involved through video calls with family members via intelligent display terminals, early rehabilitation exercises, and orientation training.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of patient accompanying, and specifically provides an intelligent multi-dimensional management system for critical patients, which comprises an intelligent display terminal, an accompanying program is built in the intelligent display terminal, a fingertip controller, the accompanying program is controlled by the fingertip controller through acquisition of finger actions to select corresponding functions, wherein the fingertip controller comprises a direction control module, finger actions are acquired to control a cursor in the intelligent display terminal to move up, down, left and right along a screen, and a determination button module is used for acquiring actions of another finger to input confirmation and power-on / off instructions; the accompanying program in the intelligent display terminal enables the critical patient to make a video call with family members, watch videos and play small games, a rehabilitation mode with full participation of the family members is created to relieve the fear and anxiety of the critical patient, and thus problems such as anxiety, panic and delirium of the patient in an intensive care unit are prevented.
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Description

Technical Field

[0001] This invention relates to the field of patient care technology, and in particular to an intelligent multidimensional management system for critically ill patients. Background Technology

[0002] The Intensive Care Unit (ICU), also known as a comprehensive treatment room or enhanced care ward, allows for simultaneous treatment, nursing care, and rehabilitation. It provides isolation facilities and equipment for various critically ill patients, offering optimal nursing care, comprehensive treatment, integrated medical and nursing services, early postoperative rehabilitation, joint care, and exercise therapy. The ICU concentrates critically ill patients, providing optimal support in terms of manpower, resources, and technology to achieve the best possible treatment outcomes. The ICU has a central monitoring station that directly observes all monitored beds. Each bed occupies a relatively large area, and beds are separated by glass or curtains.

[0003] After being admitted to the intensive care unit, critically ill patients may experience anxiety, fear, delirium, and other emotional or pathological changes due to factors such as their illness, changes in environment, inability of family members to accompany them, unfamiliar surroundings, alarms from various instruments, and uncertainty about their condition. To address this issue, this application proposes an intelligent multi-dimensional management system for critically ill patients. Summary of the Invention

[0004] The purpose of this invention is to provide an intelligent multidimensional management system for critically ill patients to address current problems such as anxiety, fear, and delirium experienced by critically ill patients in the intensive care unit.

[0005] To achieve the above objectives, the present invention provides the following technical solution:

[0006] An intelligent multidimensional management system for critically ill patients, the management system comprising:

[0007] The intelligent display terminal has a built-in companion program that can alleviate the patient's emotions through video calls, video playback, or mini-games.

[0008] A fingertip controller, which controls the caregiving program to select corresponding functions by acquiring finger movements; wherein, the fingertip controller includes:

[0009] The direction control module is used to acquire finger movements to control the cursor in the smart display terminal to move up, down, left, and right along the screen;

[0010] The button module is used to obtain the movement of another finger to input confirmation and power on / off commands.

[0011] Furthermore, the direction control module includes:

[0012] The first fingertip shell is a cylindrical shape with an opening at one end;

[0013] A first fingertip sleeve is disposed inside the first fingertip shell, and the first fingertip sleeve is a cylindrical shape with openings at both ends;

[0014] Four sets of tactile switches are disposed between the first fingertip sleeve and the first fingertip shell. The tactile switches are evenly distributed around the axis of the first fingertip sleeve in the circumferential direction to obtain the patient's finger movements. The two ends of the tactile switches are respectively connected to the inner wall of the first fingertip shell and the outer wall of the first fingertip sleeve so that the first fingertip sleeve floats inside the first fingertip shell. The tactile switches are electrically connected to the control circuit in the smart display terminal to input commands.

[0015] Furthermore, a first soft rubber sleeve is also provided inside the first fingertip sleeve, which is a cylindrical structure with openings at both ends.

[0016] Furthermore, the button determination module includes:

[0017] Second fingertip shell;

[0018] The second fingertip sleeve is slidably connected to the inside of the second fingertip shell;

[0019] A tactile switch is provided inside the second fingertip housing, and the tactile switch is positioned between the second fingertip housing and the second fingertip sleeve.

[0020] Furthermore, a light-shielding tube is provided between the first fingertip shell and the first fingertip sleeve, and a light-shielding plate is provided inside the second fingertip shell. Light-transmitting holes are provided in the light-shielding tube and the light-shielding plate. The tactile switch includes:

[0021] A photoresistor, wherein the photoresistors located at different positions have different resistance values ​​to identify the position of the photoresistor, the photoresistors being electrically connected to a control circuit, wherein the photoresistors are located on a first fingertip sleeve and a second fingertip sleeve;

[0022] A light guide post fixedly connected to the photoresistor;

[0023] LED lamp beads, wherein the LED lamp beads are disposed between the first fingertip shell and the light shielding tube and between the second fingertip shell and the light shielding plate;

[0024] A light-shielding sheet, located at the end of the light-transmitting hole away from the photoresistor to block the light-transmitting hole; and a compression spring sleeved on the outside of the light guide post.

[0025] Furthermore, a light-shielding sleeve is also fitted over the light guide column.

[0026] Furthermore, the fingertip controller also includes

[0027] A fingertip fixing module is fixedly connected to the direction control module and the confirmation button module.

[0028] Furthermore, the management system includes an orientation training program, which comprises an image playback module, an audio playback module, and a video playback module.

[0029] Furthermore, the management system is also connected to the hospital management system via a network to receive patient treatment arrangements.

[0030] Furthermore, the management system also includes:

[0031] A display screen bracket includes a fixed base, support rods, and a mounting base. At least two support rods are provided, and the support rods are arranged in parallel. The two ends of each support rod are hinged to the fixed base and the support rod, respectively. The fixed base and the mounting base are arranged in parallel.

[0032] The fixed base is equipped with a height adjustment unit to control the rotation of the support rod on the fixed base, and the support rod is equipped with an angle adjustment unit to control the rotation of the smart display terminal on the mounting base.

[0033] In summary, the present invention has the following advantages compared with the prior art:

[0034] The intelligent multidimensional management system for critically ill patients disclosed in this invention enables critically ill patients to have video calls with their families, receive introductions from the medical team, participate in early rehabilitation exercises, watch videos, and play mini-games through a companion program within an intelligent display terminal. This helps patients understand their current environment as early as possible, creates a rehabilitation model with full family participation, alleviates the fear and anxiety of critically ill patients, and prevents problems such as anxiety, panic, and delirium from occurring in the intensive care unit.

[0035] The intelligent display terminal in the intelligent multidimensional management system for critically ill patients disclosed in this invention can also be adjusted up and down and at different angles, making it more comfortable for users.

[0036] The intelligent multidimensional management system for critically ill patients disclosed in this invention also includes a built-in orientation training program in the caregiving program, enabling patients to treat orientation disorders. Attached Figure Description

[0037] Figure 1 This is a schematic diagram of the display screen bracket in the intelligent multidimensional management system for critically ill patients disclosed in this invention.

[0038] Figure 2 This is a schematic diagram of the structure of the fingertip controller in the intelligent multidimensional management system for critically ill patients disclosed in this invention.

[0039] Figure 3 This is a full sectional view of the forward-looking perspective of the fingertip controller in the intelligent multidimensional management system for critically ill patients disclosed in this invention.

[0040] Figure 4 for Figure 3 A magnified view of a section at point I.

[0041] Figure 5 for Figure 3 A schematic diagram showing the position of the light guide column under the control of the middle finger.

[0042] Figure 6 for Figure 3 Full cross-section of MM.

[0043] Attached label: 100, Intelligent display terminal;

[0044] 200. Display screen bracket; 210. Mounting base; 220. Support rod; 230. Mounting bracket;

[0045] 300, Height adjustment unit; 310, First worm gear; 320, First worm; 330, First motor;

[0046] 400, Angle adjustment unit; 410, Display screen hinge; 420, Second worm gear; 430, Second worm; 440, Second motor;

[0047] 500. Fingertip controller; 510. Direction control module; 511. First fingertip shell; 512. Light shield; 513. First fingertip sleeve; 514. First soft rubber sleeve; 520. Confirm button module; 521. Second fingertip shell; 522. Second fingertip sleeve; 523. Light shield; 524. Second soft rubber sleeve; 530. Fingertip fixing module; 531. Third fingertip shell; 532. Third soft rubber sleeve; 540. Tactile switch; 541. Photoresistor; 542. Light guide column; 543. Light shield; 544. LED bead; 545. Compression spring; 546. Light shield sleeve; 550. Circuit board placement cavity; 560. Dustproof sheet. Detailed Implementation

[0048] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0049] like Figure 1 and Figure 2 As shown, one embodiment of the present invention provides an intelligent multi-dimensional management system for critically ill patients. The management system includes an intelligent display terminal 100 and a fingertip controller 500. The intelligent display terminal 100 has a built-in companion program that alleviates the patient's emotions through video calls, video playback, or mini-games. The fingertip controller 500 controls the companion program to select corresponding functions by acquiring finger movements. The fingertip controller 500 includes a direction control module 510 and a confirmation button module 520. The direction control module 510 is used to acquire finger movements to control the cursor in the intelligent display terminal 100 to move up, down, left, and right along the screen. The confirmation button module 520 is used to acquire the movement of another finger to input confirmation and power on / off commands.

[0050] In this embodiment, the patient wears the fingertip controller 500 on their finger. When inputting a power-on or power-off command, the determining button module 520 acquires the patient's long-press action. In the caregiving program, in the power-off state, the long-press action maps to a power-on command, and in the power-on state, the long-press action maps to a power-off command. This is used so that when powering on, the determining button module 520 acquires the patient's long-press action to obtain the power-on command. When using the caregiving program, the direction control module 510 controls the movement of the cursor displayed on the smart display terminal 100 to select a preset program. For example, the caregiving program has a built-in video call program that communicates with the patient's relatives' smart devices (mobile phones, tablets). An APP is set in the smart device, and the patient's relatives can make video calls with the patient through the APP to alleviate the user's emotions. It can also play introductions of the medical team so that the patient can better understand the attending physician's information. The caregiving program can also have built-in mini-games, and the patient can control the character operation in the game through the fingertip controller 500 to play the game to relieve emotions.

[0051] As a preferred embodiment of this example, Figure 3 As shown, the direction control module 510 includes:

[0052] The first fingertip shell 511 is a cylindrical shape with an opening at one end;

[0053] A first fingertip sleeve 513 is disposed inside the first fingertip shell 511. The first fingertip sleeve 513 is a cylindrical shape with openings at both ends.

[0054] Four sets of tactile switches 540 are disposed between the first fingertip sleeve 513 and the first fingertip shell 511. The tactile switches 540 are evenly distributed in the circumferential direction around the axis of the first fingertip sleeve 513 to obtain the movement of the patient's finger. The two ends of the tactile switches 540 are respectively connected to the inner wall of the first fingertip shell 511 and the outer wall of the first fingertip sleeve 513 so that the first fingertip sleeve 513 floats inside the first fingertip shell 511. The tactile switches 540 are electrically connected to the control circuit in the intelligent display terminal 100 to input commands.

[0055] In this embodiment, when the patient uses the direction control module 510, he inserts his finger into the first fingertip sleeve 513, for example, inserting his index finger into the first fingertip sleeve 513. The patient controls the movement of the first fingertip shell 511 within the first fingertip sleeve 513 by the movement of his index finger. When the first fingertip sleeve 513 moves to a preset position, one of the touch switches 540 turns on the control circuit to generate current in the control circuit, thereby acquiring the patient's movement. For example, if the patient wants to control the cursor to move upward, the patient controls the fingertip to move upward, so that the touch switch 540 located above the finger is pressed. Then the control circuit connected to the touch switch 540 located above the finger is turned on. The processor in the intelligent display terminal 100 sends a signal, and the processor controls the cursor to move upward.

[0056] In some examples, the cursor movement instruction can be that each press of the touch switch 540 moves the cursor a preset distance. This method is suitable for function selection modes. For example, the smart display terminal 100 displays icons corresponding to different functions. When the touch switch 540 is pressed once, the cursor moves from one icon to the position of another icon.

[0057] The cursor can also move continuously when the tactile switch 540 is pressed continuously;

[0058] As a preferred embodiment in this practice, such as Figure 3 and Figure 4As shown, a light-shielding tube 512 is disposed between the first fingertip shell 511 and the first fingertip sleeve 513. A gap exists between the light-shielding tube 512 and both the first fingertip shell 511 and the first fingertip sleeve 513. A tactile switch 540 is positioned between the light-shielding tube 512 and the first fingertip sleeve 513. The tactile switch 540 includes a photoresistor 541 fixedly connected to the outer wall of the first fingertip sleeve 513, a light guide post 542 fixedly connected to the photoresistor 541, and an LED bead 544 disposed between the first fingertip shell 511 and the light-shielding tube 512. The photoresistor 541 at different positions has different resistance values ​​to identify its position. The photoresistor 541 is electrically connected to a control circuit. The light-shielding tube 512 is provided with a light-transmitting hole. On the side of the light-shielding tube 512 near the first fingertip shell 511, a light-shielding sheet 543 is also provided, one end of which is fixed to the light-shielding tube 512 to block the light-transmitting hole. A compression spring 545 is sleeved on the outside of the light guide post 542. The two ends of the compression spring 545 abut against the first fingertip sleeve 513 and the light-shielding tube 512, respectively.

[0059] like Figure 5 As shown, when the first fingertip sleeve 513 moves, within the first fingertip shell 511, the light guide post 542 located in the direction of movement of the first fingertip sleeve 513 passes through the light-transmitting hole. The end of the light guide post 542 away from the photoresistor 541 pushes up the light-shielding plate 543. Light emitted from the LED bead 544 shines from the light guide post 542 onto the photoresistor 541, causing the resistance of the photoresistor 541 to decrease. At this time, the current in the control circuit changes, and the control circuit sends a signal to the processor. Due to the different positions of the photoresistors 541... Because the resistance values ​​are different, the current change amplitude of the control circuit is different after receiving light. By detecting the amplitude of the current change, the position of the photoresistor 541 that received light can be detected, thereby detecting the direction of the patient's finger movement. After the pressing is completed, since the compression springs 545 are distributed on the outside of the first fingertip sleeve 513 and the compression springs 545 are evenly distributed, the compression springs 545 cause the first fingertip sleeve 513 to return to its original position.

[0060] In some examples, the photoresistor 541 is fixedly connected to the first fingertip sleeve 513 by welding, and the photoresistor 541 is electrically connected to the control circuit through wires; the first fingertip sleeve 513 is made of non-metallic material.

[0061] In a preferred embodiment of this invention, two light-shielding sheets 543 are provided, and the two light-shielding sheets 543 abut against each other at the center of the light-transmitting hole. The end of the light-shielding sheet 543 away from the center of the light-transmitting hole is fixedly connected to the light-shielding cylinder 512 by adhesive.

[0062] Preferably, a light-shielding sleeve 546 is also provided on the outside of the light guide post 542. The light-shielding sleeve 546 is a light-shielding coating and is used to prevent light from passing through the light guide post 542.

[0063] Preferably, the outer wall of the light-shielding tube 512 and the inner wall of the first fingertip shell 511 are both coated with a reflective coating, so that the light emitted by the LED lamp bead 544 fills the space between the light-shielding tube 512 and the first fingertip shell 511, so that after the light guide column 542 passes through the light-transmitting hole, the light can be transmitted to the photoresistor 541. In some examples, the reflective coating is a silver coating.

[0064] like Figure 6 As shown, the first fingertip shell 511, the light-shielding tube 512, and the first fingertip sleeve 513 are all cylindrical with openings at both ends. The edge of the opening of the light-shielding tube 512 is fixedly connected to the edge of the opening of the first fingertip shell 511 by adhesive. A dustproof sheet 560 is also connected between the edge of the opening of the first fingertip sleeve 513 and the edge of the opening of the light-shielding tube 512. The dustproof sheet 560 is an annular rubber sheet. The dustproof sheet 560 is fixedly connected to the first fingertip sleeve 513 and the light-shielding tube 512 by adhesive. The outer edge of the dustproof sheet 560 is fixedly connected to the light-shielding tube 512, and the inner edge of the dustproof sheet 560 is fixedly connected to the first fingertip sleeve 513.

[0065] As a preferred embodiment of this example, a first soft rubber sleeve 514 is also provided inside the first fingertip sleeve 513. The first soft rubber sleeve 514 is a cylindrical structure with openings at both ends. The first fingertip sleeve 513 is made of soft material, such as silicone. The first soft rubber sleeve 514 is used to reduce the contact between the finger and the first fingertip sleeve 513 and improve comfort.

[0066] like Figure 2 and Figure 3As shown, in a preferred embodiment of this invention, the confirmation button module 520 includes a second fingertip shell 521, a second fingertip sleeve 522, and a tactile switch 540 disposed within the second fingertip shell 521. The structure of the second fingertip shell 521 is the same as that of the first fingertip shell 511, and the structure of the second fingertip sleeve 522 is the same as that of the first fingertip sleeve 513. A light shield 523 is disposed inside the second fingertip shell 521. The tactile switch 540 is installed between the second fingertip sleeve 522 and the light shield 523. When a confirmation command is input, the patient presses the tactile switch 540 through the second fingertip sleeve 522, causing the photoresistor 541 located within the confirmation button module 520 to receive light.

[0067] The LED beads 544 in the button module 520 are installed between the second fingertip shell 521 and the light shield 523, the light shield 543 is installed on the light shield 523, and the light-transmitting hole is set on the light shield 523.

[0068] The second fingertip sleeve 522 has a second soft rubber sleeve 524 inside, and the second soft rubber sleeve 524 has the same structure as the first soft rubber sleeve 514.

[0069] In some examples, both the first soft rubber sleeve 514 and the second soft rubber sleeve 524 are medical-grade silicone. The second soft rubber sleeve 524 is disposed inside the second fingertip sleeve 522 by an interference fit, making the second soft rubber sleeve 524 easy to replace.

[0070] In a preferred embodiment of this invention, the fingertip controller 500 further includes a fingertip fixing module 530, which is fixedly connected to the direction control module 510 and the confirm button module 520, so that the fingertip controller 500 can be fixed to the finger, preventing the direction control module 510 and the confirm button module 520 from following the movement of the finger.

[0071] The fingertip fixing module 530 includes a third fingertip shell 531 and a third soft rubber sleeve 532. The structure of the third fingertip shell 531 is the same as that of the first fingertip shell 511, and the structure of the third soft rubber sleeve 532 is the same as that of the second soft rubber sleeve 524.

[0072] Since most critically ill patients are unable to move easily and make large movements, the control required to move the cursor by finger is relatively small, allowing patients to control the management system.

[0073] In some examples, the fingertip controller 500 further includes a circuit board placement cavity 550, which is a hollow cavity. The direction control module 510, the confirmation button module 520, and the fingertip fixing module 530 are all fixedly connected to the circuit board placement cavity 550. The circuit board placement cavity 550 is used to install the control circuit, and the control circuit is electrically connected to a communication device for establishing a wireless communication connection with the smart display terminal 100.

[0074] As a further embodiment of the present invention, in this embodiment, the management system is provided with an orientation training program, which includes an image playback module, an audio playback module and a video playback module. Medical staff train patients' orientation by playing pictures, audio or video to treat orientation disorders. In this embodiment, the orientation training program is the prior art.

[0075] In this embodiment, the patient uses the fingertip controller 500 to control the cursor to make selections during orientation training. For example, during orientation training, multiple family pictures are played for the patient to select their own family picture, and the patient uses the fingertip controller 500 to control the cursor to select their own family picture.

[0076] Alternatively, during orientation training, when addition and subtraction calculations are required, the patient can use a cursor to control the soft keyboard displayed on the intelligent display terminal 100 to input the results.

[0077] In some examples, the management system also includes a clock program and a weather program for displaying time and weather;

[0078] In some examples, the management system is also connected to the hospital management system via a network to receive patient treatment schedules, and the smart display terminal 100 is equipped with a network card for connecting to the hospital network;

[0079] The intelligent display terminal 100 is also equipped with a reading device for reading patient information. For example, the reading device is a barcode scanning device. The reading device scans the patient's wristband to identify the patient's information for logging into the management system.

[0080] As a further embodiment of the present invention, such as Figure 1As shown, the intelligent display terminal 100 is installed in front of the hospital bed via a display screen bracket 200. In this embodiment, the display screen bracket 200 includes a fixed base 210, a support rod 220, and a mounting base 230. At least two support rods 220 are provided, and the support rods 220 are arranged in parallel. The two ends of the support rods 220 are respectively hinged to the fixed base 210 and the support rods 220. The fixed base 210 and the mounting base 230 are arranged in parallel, so that the fixed base 210, the two support rods 220, and the mounting base 230 form a parallelogram structure.

[0081] The fixed base 210 is provided with a height adjustment unit 300 to control the support rod 220 to rotate on the fixed base 210. The support rod 220 is provided with an angle adjustment unit 400 to control the intelligent display terminal 100 to rotate on the mounting base 230. Both the fixed base 210 and the mounting base 230 are hollow box-shaped structures.

[0082] In this embodiment, the height adjustment unit 300 includes a first worm gear 310, a first worm 320, and a first motor 330. The first worm gear 310 is fixedly connected to the rotating shaft of one of the support rods 220. The first worm 320 meshes with the first worm gear 310 and is rotatably connected to the first worm gear 310 through a bearing structure. The first motor 330 is fixedly connected to the first worm gear 310, and the output shaft of the first motor 330 is fixedly connected to the first worm 320 through a flange.

[0083] The angle adjustment unit 400 has the same structure as the height adjustment unit 300. The angle adjustment unit 400 includes a second worm gear 420, a second worm 430, and a second motor 440. The mounting base 230 is also rotatably connected to the display screen shaft 410 via bearings. The intelligent display terminal 100 is fixedly connected to the display screen shaft 410 via a bushing structure. The bushing structure is fixedly connected to the intelligent display terminal 100 via bolts. The second worm gear 420 is fixedly connected to the display screen shaft 410. The second worm 430 is rotatably connected to the mounting base 230 via a bearing structure, and the second worm 430 meshes with the second worm gear 420. The output shaft of the second motor 440 is fixedly connected to the second worm 430 via a coupling. The second motor 440 is fixedly connected to the mounting base 230.

[0084] The intelligent display terminal 100 is equipped with an adjustment program. When an up / down command is input into the fingertip controller 500, the first motor 330 rotates, thereby controlling the up / down movement of the intelligent display terminal 100. When a left / right command is input into the fingertip controller 500, the second motor 440 rotates. The commands corresponding to the four sets of buttons in the fingertip controller 500 are respectively the forward rotation of the first motor 330, the reverse rotation of the first motor 330, the forward rotation of the second motor 440, and the reverse rotation of the second motor 440, thereby controlling the height and angle of the intelligent display terminal 100 through the fingertip controller 500.

[0085] In the several embodiments provided by this invention, it should be understood that the disclosed apparatus and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative. For instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between devices or units may be electrical, mechanical, or other forms.

[0086] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0087] Furthermore, the functional units in the various embodiments of the present invention can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or in the form of hardware plus software functional units.

[0088] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the above-described division of functional modules is merely an example. In practical applications, the above functions can be assigned to different functional modules as needed, that is, the internal structure of the device can be divided into different functional modules to complete all or part of the functions described above. The specific working process of the device described above can be referred to the corresponding process in the foregoing method embodiments, and will not be repeated here.

Claims

1. An intelligent multi-dimensional management system for critical patients, characterized in that, The management system comprises an intelligent display terminal, wherein an accompanying program is built in the intelligent display terminal, and the accompanying program relieves the patient's emotion through video call, video playing or small game; A fingertip controller is used to control the accompanying program to select corresponding functions by acquiring finger actions; wherein the fingertip controller comprises a direction control module used to acquire finger actions to control a cursor in the intelligent display terminal to move up, down, left and right on the screen; A determination button module is used to acquire actions of another finger to input confirmation and power-on / off instructions; the direction control module comprises a first fingertip shell which is a cylinder with an opening at one end; A first fingertip sleeve is arranged in the first fingertip shell, and the first fingertip sleeve is also a cylinder with openings at both ends; four groups of light touch switches are arranged between the first fingertip sleeve and the first fingertip shell, and the light touch switches are evenly distributed around the axis of the first fingertip sleeve to acquire actions of the patient's fingers; the light touch switches are connected to the inner wall of the first fingertip shell and the outer wall of the first fingertip sleeve respectively to make the first fingertip sleeve float in the first fingertip shell; the light touch switches are electrically connected to a control circuit in the intelligent display terminal to input commands; The determination button module comprises a second fingertip shell; A second fingertip sleeve is slidingly connected in the second fingertip shell; A light touch switch is arranged in the second fingertip shell between the second fingertip shell and the second fingertip sleeve; An opaque cylinder is arranged between the first fingertip shell and the first fingertip sleeve, and an opaque plate is arranged in the second fingertip shell; light transmission holes are arranged on the opaque cylinder and the opaque plate; the light touch switch comprises a photoresistor, and the photoresistors at different positions have different resistances to identify the positions of the photoresistors; the photoresistors are electrically connected to the control circuit; wherein the photoresistors are arranged on the first fingertip sleeve and the second fingertip sleeve; A light guide column is fixedly connected to the photoresistor; LED lamp beads are arranged between the first fingertip shell and the opaque cylinder and between the second fingertip shell and the opaque plate; An opaque sheet is arranged on the light transmission hole away from the photoresistor to block the light transmission hole; and a compression spring is arranged outside the light guide column; The management system further comprises a display screen support, wherein the display screen support comprises a fixed seat, support rods and a mounting seat; the support rods are arranged in at least two parallel; the two ends of the support rods are respectively hinged to the fixed seat and the mounting seat; the fixed seat and the mounting seat are arranged in parallel; wherein a height adjusting unit is arranged in the fixed seat to control the rotation of the support rods on the fixed seat, and an angle adjusting unit is arranged in the support rods to control the rotation of the intelligent display terminal on the mounting seat. 2.The intelligent multi-dimensional management system for critical patients according to claim 1, characterized in that, A first soft rubber sleeve is further arranged in the first fingertip sleeve, and the first soft rubber sleeve is a cylinder with openings at both ends. 3.The intelligent multi-dimensional management system for critical patients according to claim 1, characterized in that, An opaque sleeve is further arranged outside the light guide column.

4. The intelligent multi-dimensional management system for critical patients according to any one of claims 1-3, characterized in that, The fingertip controller further comprises a fingertip fixing module fixedly connected with the direction control module and the certain key module.

5. The intelligent multi-dimensional management system for critical patients according to any one of claims 1-3, characterized in that, The management system is provided with a directional force training program, and the directional force training program comprises an image playing module, a voice playing module and a video playing module.

6. The intelligent multi-dimensional management system for critical patients according to any one of claims 1-3, characterized in that, The management system is further connected to a hospital management system through a network to receive treatment arrangement of patients.

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