Attention Network Multi-mode Data Collection and Analysis Complex
The system improves data collection and analysis efficiency by using a deployment box and scanning mechanism to support brain load detectors and EEG data acquisition, facilitating precise brain load detection and analysis.
Patent Information
- Application Number
- JP2025003121U
- Authority / Receiving Office
- JP · JP
- Patent Type
- Utility models
- Current Assignee / Owner
- Filing Date
- 2025-09-10
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2035-09-10
AI Technical Summary
Traditional data analysis equipment faces challenges in efficiently collecting and transmitting brain power load data, leading to low efficiency and accuracy in multi-mode data analysis, especially when accurate detection is required.
The system includes a deployment box with an adjustment gasket, H-shaped frame, wiring sockets, and a scanning mechanism to support and connect brain load detectors, EEG data acquisition complexes, and a wireless transceiver base for efficient data collection and transmission.
Enhances the efficiency and accuracy of multi-mode data collection and analysis by aggregating and analyzing brain load data through interlocking components and wireless signal transmission, enabling precise brain load detection and analysis.
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Figure 0003253536000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention belongs to the technical field of brain load analysis, and specifically relates to an attention network multi-mode data collection and analysis complex. [Background technology]
[0002] Brain load refers to the degree to which brain resources are occupied when a person performs a task, and is also called psychological load or brain load. Currently, there is no unified definition, but it is generally considered to be related to multidimensional factors such as task demands, personal ability, effort level, etc. Application number CN202220029268.8 is a computer display visual data collection and analysis device, and the present invention provides a computer display visual data collection and analysis device, which relates to the computer technology field and includes a data collection and analysis device, and a first rectangular block is fixed to the bottom of the data collection and analysis device. The present invention enables the quick attachment and detachment of the data collection and analysis equipment to the mounting plate through the cooperation of the L-shaped block, locking block, spring, rectangular pillar, spring, cross-shaped slider, cross-shaped slide groove, connecting block, first rectangular block and second rectangular block. This effectively avoids the situation where the data collection and analysis equipment cannot be quickly attached and detached from its mounting position and disposed of in a timely manner due to water infiltration, resulting in damage to the data collection and analysis equipment and a shortened service life. The connecting block prevents the locking block from moving, meaning that the rectangular pillar cannot be removed from the opposing sides of the two L-shaped blocks.
[0003] 1) Traditional data analysis equipment is difficult and inconvenient to collect structured information, and the corresponding multi-mode data collection and analysis, even if it adopts a signal wireless transmission and reception platform, the efficiency of collected brain data is low, and it is relatively difficult to collect brain power load, and the transmission efficiency is low to realize information transmission, which leads to poor accuracy of multi-mode data analysis in the later stage, and seriously affects the actual analysis effect of multi-mode data; 2) Especially when it is necessary to accurately detect some brain loads, it is difficult to grasp the relevant information without the support of accurate data, which increases the difficulty of later analysis processing and makes it impossible to collect and analyze efficiently and accurately. Summary of the Invention [Problem to be solved by the invention]
[0004] The purpose of this invention is to provide an attention network multi-mode data collection and analysis complex machine, which aims to solve the problems that traditional data analysis equipment is difficult and inconvenient to structurely collect information, and the corresponding attention network multi-mode data collection and analysis, even if it adopts a signal wireless transmission and reception base, has low efficiency in collecting brain power load network data, is relatively difficult in terms of the effect of collecting brain power load, and realizes information transmission with low transmission efficiency. [Means for solving the problem]
[0005] To achieve the above objectives, the present invention provides the following technical solution: a support mechanism includes a deployment box, an adjustment gasket is installed in the center of the housing of the deployment box, an assembly gasket is attached to the front of the adjustment gasket, adjustment holes are opened in sequence on the surface of the assembly gasket, an H-shaped frame is installed in the center of the adjustment holes, wiring sockets for attention network multi-mode data collection are installed in sequence on the side walls of the housing of the deployment box, an insertion groove is installed on the surface of the wiring socket, and a collection control terminal is inserted and installed on the surface of the insertion groove.
[0006] In one preferred embodiment of the present invention, a connecting mechanism is provided at the center of the top end of the deployment box; The connecting mechanism includes a lamination gasket attached to the center of the top end of the deployment box, a stabilizing base is provided on the surface of the lamination gasket, and an assembly roller is sequentially provided on the surface of the stabilizing base.
[0007] In one preferred embodiment of the present invention, a brain load detector is installed at the center of the top end of the assembly roller, a keyboard setting plate is installed on the top edge side of the brain load detector, a plurality of adjustment cavity grooves are sequentially installed on the surface of the keyboard setting plate, and indicators are sequentially installed on the surfaces of the plurality of adjustment cavity grooves.
[0008] In one preferred embodiment of the present invention, an adjustment knob is installed in sequence on the side wall surface of the brain stress detector, the inside of the adjustment knob is electrically connected to the built-in announcement controller, an announcement speaker is installed on the top edge side of the brain stress detector, and a ripple stress display screen is installed on the side of the brain stress detector.
[0009] In one preferred embodiment of the present invention, the brain load detector is provided with a mounting socket at the top edge thereof, which is connected to a base, an EEG signal terminal is provided at one end of the mounting socket, a conductive wire is provided at one end of the EEG signal terminal, and a data collection mechanism is provided at one end of the conductive wire; The collecting mechanism includes an electroencephalogram data acquisition complex installed at one end of a conductive line.
[0010] In one preferred embodiment of the present invention, an assembly cavity groove is provided inside the EEG data acquisition complex machine, an assembly clamp groove is provided at the center of the assembly cavity groove, a hinge connection sleeve is provided at the end of the assembly cavity groove, a plurality of detection cavity grooves are provided in sequence on the surface of the hinge connection sleeve, and a multi-mode data acquisition head is provided at the end of the detection cavity groove.
[0011] In one preferred embodiment of the present invention, a tilting support mechanism is installed on each side of the bottom of the deployment box, and the tilting support mechanism includes an H-shaped bracket attached to the rear side of the deployment box. An outer frame is installed on the surface of the H-shaped bracket, and an analysis deployment cabinet is installed at the bottom of the outer frame. A signal wireless transceiver base is installed on the top side of the analysis deployment cabinet, a conical cover is installed at the center of the top of the signal wireless transceiver base, and a scanning mechanism is installed at the center of the top of the conical cover.
[0012] In one preferred embodiment of the present invention, the scanning mechanism comprises a connection socket attached to the side of the analysis and deployment cabinet, a connection head is installed on the side of the connection socket, an adjustment line is installed at one end of the connection head, an adjustment handle is installed at the center of the top end of the adjustment line, a recording handle is installed at the center of the top end of the adjustment handle, and a brain load scanner is installed at the center of the top end of the recording handle. [Effects of the Invention]
[0013] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0014] 1) The deployed box and the adjusting gasket are interlocked with each other, and the corresponding interlocking box and the controller terminal are assembled together. The wireless signal transmitting and receiving base is used to transmit the collected information. The H-shaped bracket is adapted to support the specific brain load detector, and the collected multi-mode data is aggregated and analyzed. The adjusting knob is used to gradually expand the accuracy of the analysis information, and the corresponding collected information is searched for, aggregated, stored and analyzed in a unified manner. 2) The adopted socket and model terminal transmit data through one end of the conductive wire for signal transmission. The data collection of the adopted EEG data acquisition complex machine is realized by inserting information from one end of the adjustment cavity groove. The adopted detection cavity groove and one end of the specific hinge connection sleeve realize signal transmission and transfer. The adopted connection head and one end of the specific adjustment wire realize pipe connection. Finally, the corresponding end of the recording handle realizes connection. The adopted adjustment handle and one end of the specific brain load scanner realize information input according to a specific direction. The network integrated collection efficiency is more efficient, and it can be further linked with the attached device to ensure accurate information collection. Finally, the collected data can be further analyzed to obtain a signal bandwidth diagram, which can improve the multi-mode collection efficiency of the subsequent attention network. This can be linked with the dynamics of the human eye to collect EEG data, which can be used for testing and analyzing several brain loads. [Brief explanation of the drawings]
[0015] The drawings are used to provide a further understanding of the present invention, constitute a part of the specification, and are used to describe the present invention together with the embodiments of the present invention, but are not intended to be limiting of the present invention. [Figure 1] 1 is a structural schematic diagram of the present invention; [Figure 2] 1 is a structural diagram of a collecting mechanism according to the present invention; [Figure 3] 1 is a structural diagram of the adjusting handle of the present invention; [Figure 4] 1 is a schematic diagram of the structure of a conductive wire according to the present invention; [Figure 5] 1 is a structural diagram of a connection mechanism according to the present invention; [Figure 6] 2 is a structural schematic diagram of the cone-shaped cover of the present invention; [Figure 7] 1 is a structural schematic diagram of a brain load scanner according to the present invention; [Figure 8] 1 is a schematic diagram of the structure of a conductive wire according to the present invention; DETAILED DESCRIPTION OF THE INVENTION
[0016] The following clearly and completely describes the technical solutions in the embodiments of the present invention, in conjunction with the drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only some embodiments of the present invention, not all embodiments, and all other embodiments obtained by those skilled in the art based on the embodiments of the present invention without any creative efforts are all within the scope of protection of the present invention.
[0017] 1 to 8, the present invention provides the following technical solution: an attention network multi-mode data collection and analysis complex machine, comprising: a support mechanism 1, the support mechanism 1 comprising: a deployment box 11, an adjustment gasket 12 installed in the center of the housing of the deployment box 11, an assembly gasket 13 attached to the front of the adjustment gasket 12, adjustment holes 14 opened in sequence on the surface of the assembly gasket 13, an H-shaped frame 15 installed in the center of the adjustment hole 14, a wiring socket 16 for network multi-mode collection installed in sequence on the side wall of the housing of the deployment box 11, an insertion groove 17 installed on the surface of the wiring socket 16, and a collection control terminal inserted and installed on the surface of the insertion groove 17.
[0018] In this embodiment, a connection mechanism 2 is provided at the center of the top end of the deployment box 11. The connection mechanism 2 includes a lamination gasket 21 attached to the center of the top end of the deployment box 11, a stabilizing base 22 provided on the surface of the lamination gasket 21, and an assembly roller 23 provided on the surface of the stabilizing base 22 in turn.
[0019] The adhesive gasket 21 and one end of the concrete stabilizing base 22 are used to achieve fixation, and the assembling roller 23 is used to change the tilt angle direction of the deployment box 11 .
[0020] In this embodiment, a brain load detector 24 is installed at the center of the top end of the assembly roller 23, a keyboard setting plate 25 is installed on the top edge side of the brain load detector 24, a plurality of adjustment cavity grooves 26 are installed in sequence on the surface of the keyboard setting plate 25, and indicators are installed in sequence on the surface of the plurality of adjustment cavity grooves 26.
[0021] The adjustment cavity groove 26 and the brain force load detector 24 are adapted to access the signal and input the corresponding signal, and the indicator is adapted to feedback and display on the surface of the adjustment cavity groove 26.
[0022] In this embodiment, an adjustment knob 27 is installed in sequence on the side wall surface of the brain stress detector 24, the inside of the adjustment knob 27 is electrically connected to the built-in announcement controller, an announcement speaker 28 is installed on the top edge side of the brain stress detector 24, and a ripple load display screen 29 is installed on the side edge side of the brain stress detector 24.
[0023] The brain load detector 24 and announcement speaker 28 employed are intended to announce to personnel how the device is to be used.
[0024] In this embodiment, a deployment socket 291 is installed on the top edge side of the brain load detector 24, an EEG signal terminal 292 is installed at one end of the deployment socket 291, a conductive wire 293 is installed at one end of the EEG signal terminal 292, and a data collection mechanism 4 is installed at one end of the conductive wire 293. The collecting mechanism 4 includes an electroencephalogram data acquisition complex 41 that is installed at one end of the conductive wire 293 .
[0025] The EEG data acquisition complex 41 employed performs data acquisition of brain load, data omnidirectional attention network multi-mode acquisition, and data acquisition analysis in conjunction with model scanning.
[0026] In this embodiment, an assembly cavity groove 42 is installed inside the EEG data acquisition complex 41, an assembly clamp groove 43 is installed in the center of the groove position of the assembly cavity groove 42, a hinge connection sleeve 44 is installed at the tip of the assembly cavity groove 42, multiple detection cavity grooves 45 are installed in sequence on the surface of the hinge connection sleeve 44, and an attention network multi-mode data acquisition head is installed at the tip of the detection cavity groove 45.
[0027] The adopted brain power load attention network multi-mode data collection head aims to realize the connection and analysis of the brain's brain power load signal, and provide the possibility of leaving data collection to the load in the process of brain and eye movement.
[0028] In this embodiment, tilting support mechanisms 5 are installed on both sides of the bottom of the deployment box 11, and the tilting support mechanisms 5 include H-shaped brackets 51 attached to the rear side of the deployment box 11. An outer frame 52 is installed on the surface of the H-shaped bracket 51, an analysis deployment cabinet 53 is installed at the bottom of the outer frame 52, a signal wireless transmission and reception base 54 is installed on the top side of the analysis deployment cabinet 53, a conical cover 55 is installed at the center of the top of the signal wireless transmission and reception base 54, and a scanning mechanism 6 is installed at the center of the top of the conical cover 55.
[0029] The signal wireless transmitting and receiving base 54 is used for connecting as wireless transmitting and receiving of signals, and the cone-shaped cover 55 is used for accessing and transmitting signals, and directly transmitting the detected brain power load electrical signal data and load information ripples to the equipment for analyzing.
[0030] In this embodiment, the scanning mechanism 6 includes a connection socket 61 attached to the side of the analysis and deployment cabinet 53, a connection head 62 attached to the side of the connection socket 61, an adjustment line 63 attached to one end of the connection head 62, an adjustment handle 64 attached to the center of the top end of the adjustment line 63, a recording handle 65 attached to the center of the top end of the adjustment handle 64, and a brain load scanner 66 attached to the center of the top end of the recording handle 65.
[0031] The adjustment handle 64 and the specific recording handle 65 are adapted to each other, which facilitates aligning the brain load scanner 66 with the side from which information needs to be collected, and connecting and collecting the desired data.
[0032] When using it specifically, first step 1: collect the brain load, According to the corresponding housing of the deployment box 11, the assembly is realized, and the assembly gasket 13 is used to realize support, and the corresponding connecting pin is inserted between the hole positions of the adjustment hole 14 to realize insertion, and the wiring socket 16 is inserted, and the connection with the main controller is realized through one end of the groove position of the insertion groove 17, and the axial hinge connection of the assembly roller 23 is changed to realize the hinge connection of one end of the brain power load detector 24, and after the hinge connection of the corresponding announcement speaker 28, voice guidance analysis is realized, and dynamic attention network multi-mode data collection is required, and the hinge connection is realized according to one end of the adjustment knob 27, and during the hinge connection process, the brain electromagnetic wave information is fed back and displayed through the screen surface of the specific ripple load display screen 29, and the personnel only need to wear the detection device, and the brain power load signal is connected through the network through one end of the corresponding deployment socket 291, and is connected through the surface of the EEG signal terminal 292, and is analyzed and converted into a band spectrum image that can be specifically presented.
[0033] Step 2: Realize connection based on deployment socket 291; The tube connection needs to be made through one end of the corresponding EEG signal terminal 292, and the signal wiring groove built into the tube connection is used to realize the connection using the surface corresponding to the assembly clamp groove 43 at one end of the EEG data acquisition complex 41. Finally, the end corresponding to the hinge connection sleeve 44 is connected using the surface of the corresponding detection cavity groove 45. Finally, it is only necessary to connect the position of the detection cavity groove 45, which facilitates the realization of specific brain bioelectrical signal collection in attention network multi-mode data collection.
[0034] Step 3: Finally, analyze and collect the attention network multi-mode data. According to the interfitting between the corresponding connecting socket 61 and the connecting head 62, a tube connection circuit is formed between the adjusting line 63, and finally it is gripped with the specific recording handle 65. During the gripping process, the position of the brain power load scanner 66 is directly aimed at the object through the adjusting handle 64, and after scanning, the attention network multi-mode information presentation is input, and the status information is constructed through scanning, and finally it is re-input into the corresponding console through the insertion groove 17, facilitating the subsequent attention network multi-mode data organization. In the collection stage, this device realizes the collection, and what is collected is the brain discharge signal, which can be widely used in patients with epilepsy, abnormal discharge and some brain injuries.
[0035] Finally, it should be noted that the above are only preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art may still make modifications to the technical solutions described in the above embodiments or make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention. [Explanation of symbols]
[0036] 1 Support mechanism 11 Deployment Box 12 Adjustment gasket 13 Assembly gasket 14 Adjustment hole 15 H-frame 16 Wiring socket 17 Insertion groove 2. Connection mechanism 21 Laminated gasket 22 Stabilizing pedestal 23 Assembly Roller 24 Brain Load Detector 25 Keyboard Settings Board 26 Adjustment cavity groove 27 Adjustment knob 28 Announcement Speaker 29 Ripple Load Display Screen 291 Deployment Socket 292 EEG signal terminal 293 Conductive Wire 4 Collection Mechanism 41 EEG data acquisition complex machine 42 Assembly cavity groove 43 Assembly clamp groove 44 Hinge connection sleeve 45 Detection cavity groove 5 Tilt support mechanism 51 H-bracket 52 outer frame 53 Analysis and Deployment Cabinet 54 Signal radio transmitter and receiver base 55 Cone Cover 6 Scanning mechanism 61 Connection Socket 62 Connection Head 63 Adjustment line 64 Adjustment handle 65 Recording Handle 66 Brain Stress Scanner
Claims
1. 1. An attention network multi-mode data collection and analysis complex machine, comprising: a support mechanism (1); the support mechanism (1) comprises a deployment box (11); an adjustment gasket (12) is installed in the center of the housing of the deployment box (11); an assembly gasket (13) is attached to the front of the adjustment gasket (12); adjustment holes (14) are opened in sequence on the surface of the assembly gasket (13); an H-shaped frame (15) is installed in the center of the adjustment holes (14); wiring sockets (16) for attention network multi-mode data collection are installed in sequence on the side walls of the housing of the deployment box (11); an insertion groove (17) is installed on the surface of the wiring socket (16); and a control terminal for collection is inserted and installed on the surface of the insertion groove (17).
2. A connection mechanism (2) is provided at the center of the top end of the deployment box (11), 2. The attention network multi-mode data collection and analysis complex machine according to claim 1, wherein the connection mechanism (2) comprises a lamination gasket (21) attached to the center of the top end of the deployment box (11), a stabilizing base (22) is provided on the surface of the lamination gasket (21), and an assembly roller (23) is sequentially installed on the surface of the stabilizing base (22).
3. The attention network multi-mode data collection and analysis complex machine of claim 2, characterized in that a brain force load detector (24) is installed at the center of the top end of the assembly roller (23), a keyboard setting plate (25) is installed on the top edge side of the brain force load detector (24), a plurality of adjustment cavity grooves (26) are sequentially installed on the surface of the keyboard setting plate (25), and indicators are sequentially installed on the surfaces of the plurality of adjustment cavity grooves (26).
4. The attention network multi-mode data collection and analysis complex machine of claim 3, characterized in that an adjustment knob (27) is installed in sequence on the side wall surface of the brain load detector (24), the inside of the adjustment knob (27) is electrically connected to a built-in announcement controller, an announcement speaker (28) is installed on the top edge side of the brain load detector (24), and a ripple load display screen (29) is installed on the side side of the brain load detector (24).
5. A deployment socket (291) is installed on the top edge of the brain load detector (24), an EEG signal terminal (292) is installed at one end of the deployment socket (291), a conductive wire (293) is installed at one end of the EEG signal terminal (292), and a data collection mechanism (4) is installed at one end of the conductive wire (293); The attention network multi-mode data collection and analysis complex of claim 3, characterized in that the collection mechanism (4) comprises an electroencephalogram data acquisition complex (41) installed at one end of a conductive line (293).
6. The attention network multi-mode data collection and analysis complex machine of claim 5, characterized in that an assembly cavity groove (42) is installed inside the EEG data acquisition complex machine (41), an assembly clamp groove (43) is installed in the center of the groove position of the assembly cavity groove (42), a hinge connection sleeve (44) is installed at the end of the assembly cavity groove (42), multiple detection cavity grooves (45) are installed in sequence on the surface of the hinge connection sleeve (44), and a multi-mode data collection head is installed at the end of the detection cavity groove (45).
7. 2. The attention network multi-mode data collection and analysis complex machine of claim 1, wherein: a tilting support mechanism (5) is installed on each side of the bottom of the deployment box (11), the tilting support mechanism (5) comprises an H-shaped bracket (51) attached to the rear side of the deployment box (11), an outer frame (52) is installed on the surface of the H-shaped bracket (51), an analysis deployment cabinet (53) is installed at the bottom of the outer frame (52), a signal wireless transmission and reception base (54) is installed on the top side of the analysis deployment cabinet (53), a conical cover (55) is installed at the center of the top of the signal wireless transmission and reception base (54), and a scanning mechanism (6) is installed at the center of the top of the conical cover (55).
8. 8. The attention network multi-mode data collection and analysis complex machine of claim 7, wherein the scanning mechanism (6) comprises a connection socket (61) attached to and installed on the side of the analysis and deployment cabinet (53), a connection head (62) installed on the side of the connection socket (61), an adjustment line (63) installed at one end of the connection head (62), an adjustment handle (64) installed at the center of the top end of the adjustment line (63), a recording handle (65) installed at the center of the top end of the adjustment handle (64), and a brain power load scanner (66) installed at the center of the top end of the recording handle (65).