Wearable information acquisition device and talent evaluation system

By designing a head that automatically applies auxiliary testing agents and an eye device that blocks light, the problems of difficulty in contact between the testing head and scalp and light interference in existing assessment systems have been solved, achieving efficient and accurate talent assessment.

CN121879557APending Publication Date: 2026-04-17RICHFIT INFORMATION TECH +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-17
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

In existing talent assessment systems, the EEG head is difficult to contact with the scalp and is easily obstructed by hair, requiring manual application of coupling gel, which affects assessment efficiency. Eye trackers are unstable to wear and are easily affected by light, impacting assessment results.

Method used

A wearable information collection device was designed, including a head-mounted device and an eye-mounted device. The head-mounted device automatically applies an auxiliary detection agent through an opening and closing structure, while the eye-mounted device has a shielding and protective structure to prevent light interference, thus ensuring the accuracy and stability of information collection.

Benefits of technology

It improves the efficiency and accuracy of the test, eliminates the need for manual application of auxiliary reagents for head information collection, reduces the impact of light on eye information collection, and extends the lifespan of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses wearable information acquisition equipment and a talent evaluation system, the wearable information acquisition equipment comprises a head wearing device and an eye wearing device, the head wearing device comprises a head wearing main body and a head information acquisition mechanism, and the head information acquisition mechanism comprises a head detection head; an opening / closing structure; a feeding structure; a pipeline structure; a coating control structure; wherein the plurality of opening and closing covers are movably arranged along the radial direction of the head detection head so as to form an opening state and a closing state; in the opening state, the coating control structure is in a closed state; in the closed state, the opening and closing covers are matched to form a coating cavity, the coating control structure is in the open state, and the feeding structure is communicated with the coating cavity through the pipeline structure so that the auxiliary detection agent can flow into the coating cavity through the pipeline structure to be coated on the head detection head. According to the invention, an evaluation person does not need to manually smear an auxiliary reagent on a head detection head, so that the evaluation efficiency can be improved.
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Description

Technical Field

[0001] This invention relates to the field of information collection equipment technology, and in particular, to a wearable information collection device.

[0002] This invention relates to the field of talent assessment technology, and in particular, to a talent assessment system. Background Technology

[0003] With the development of technology, the talent needs of the oil and gas industry in the new era are showing new trends, especially in the context of digitalization and globalization, where the requirements for new employees are significantly higher. This trend poses greater challenges to talent selection and training, particularly regarding employees' performance in coping with high cognitive loads and stressful environments.

[0004] Traditional talent assessment methods struggle to accurately evaluate candidates' cognitive load, attention span, and adaptability to multilingual environments. Therefore, existing technologies, through research on EEG and eye-tracking devices, have developed a novel talent assessment system for the selection and training of new employees in the oil and gas industry. This system integrates EEG and eye-tracking technologies and constructs a bilingual (Chinese and English) assessment model. During use, candidates wear eye-tracking and EEG modules and operate the answering devices. Finally, based on the candidates' answers and the dynamic monitoring of their neurophysiological state during the questioning process, their abilities are assessed in a stratified manner, thus filling the technological gap in precise talent assessment for the industry's specific needs. Summary of the Invention

[0005] The inventors of this invention discovered that in existing talent assessment systems, the EEG and eye tracker are problematic because the EEG's detection head is difficult to contact the scalp, is easily obstructed by hair, affecting the assessment results. Furthermore, manual application of coupling gel between the detection head and scalp using tools such as syringes is required, impacting assessment efficiency. Additionally, the eye tracker is prone to loosening during wear, lacking stability and reliability. The eye movement recorder is also susceptible to overhead light, affecting assessment results. Moreover, after the assessment, the eye movement recorder lacks protection, making it prone to positional shifts or even damage.

[0006] The purpose of this invention is to provide a wearable information collection device and a talent assessment system to solve the technical problem that the detection head of the electroencephalogram (EEG) instrument in the existing talent assessment system needs to be manually coated with coupling agent during use, which affects the assessment efficiency and effectiveness.

[0007] The above-mentioned objectives of the present invention can be achieved by the following technical solutions:

[0008] This invention provides a wearable information collection device, including a head-wearing device and an eye-wearing device. The eye-wearing device includes an eye-wearing main body and an eye information collection mechanism, the latter being mounted on the eye-wearing main body. The head-wearing device includes a head-wearing main body and a head information collection mechanism, the latter comprising: a head detection head mounted on the head-wearing main body; an opening and closing structure including multiple opening and closing covers mounted circumferentially on the head-wearing main body and located below the head detection head; and a feeding structure mounted on the head-wearing main body. The device is used to store auxiliary detection reagents; a pipeline structure, wherein the feeding structure is connected to an opening / closing hood via the pipeline structure; a coating control structure for controlling the opening and closing of the pipeline structure; wherein, multiple opening / closing hoods are movably arranged radially along the head detection head to form an open state and a closed state; in the open state, the coating control structure is in a closed state; in the closed state, multiple opening / closing hoods cooperate to form a coating cavity, the coating control structure is in an open state, and the feeding structure is connected to the coating cavity via the pipeline structure so that the auxiliary detection reagent can flow into the coating cavity through the pipeline structure and be coated on the head detection head.

[0009] In an embodiment of the present invention, each of the opening and closing covers is provided with an inner inclined surface. In the closed state, the inner inclined surfaces of the multiple opening and closing covers cooperate to form the coating cavity. During the process of the multiple opening and closing covers switching from the closed state to the open state along the radial outward of the head detection head, the head detection head slides against the inner inclined surface of each opening and closing cover and can scrape off the auxiliary detection agent on the inner inclined surface.

[0010] In embodiments of the present invention, each of the opening and closing covers is provided with an outer inclined surface, and in the closed state, the outer inclined surfaces of the plurality of opening and closing covers cooperate to form an outer conical surface.

[0011] In an embodiment of the present invention, the head information acquisition mechanism is mounted on the headwear body via an installation structure, and a plurality of opening and closing covers are movably mounted on the installation structure along the radial direction of the head detection head via a plurality of elastic reset members, and the head detection head is movably mounted on the installation structure along its axial direction.

[0012] In an embodiment of the present invention, the pipeline structure includes a first connecting support pipe and a second connecting support pipe, and the coating control structure includes a fixed cover and a switching control plate; one end of the first connecting support pipe is connected to the feeding structure, and the other end of the first connecting support pipe is connected to the second connecting support pipe through the fixed cover; the fixed cover is provided with a slot, the slot is connected to the first connecting support pipe through a first through hole, and the slot is connected to the second connecting support pipe through a second through hole; the switching control plate has a connecting end and a sealing end, the connecting end is connected to an opening / closing cover, and the sealing end is movably inserted into the slot along the radial direction of the head detection head, and during the process of multiple opening / closing covers switching from the closed state to the open state along the radial direction of the head detection head, the sealing end can move between the first through hole and the second through hole under the drive of the opening / closing cover.

[0013] In an embodiment of the present invention, the pipeline structure further includes a connecting hose, and the second connecting support pipe is connected to an opening and closing cover through the connecting hose. During the radial movement of the opening and closing cover along the head detection head, the connecting hose can adaptively deform.

[0014] In an embodiment of the present invention, the feeding structure includes a liquid storage tank, an extrusion plate, and an elastic structure. The inner cavity of the liquid storage tank is slidably and sealed within the liquid storage tank by the extrusion plate, which divides the inner cavity of the liquid storage tank into a storage cavity and an installation cavity. The storage cavity is connected to the pipeline structure. The elastic structure is installed in the installation cavity, with one end of the elastic structure connected to the extrusion plate and the other end of the elastic structure connected to the inner wall surface of the liquid storage tank.

[0015] In an embodiment of the present invention, the head-wearing body is provided with multiple elastic headbands, and the number of head information collection mechanisms is multiple, with the multiple head information collection mechanisms correspondingly installed on the multiple elastic headbands.

[0016] In an embodiment of the present invention, the eye-wearing device further includes a shielding and protective structure. The eye-wearing body includes a frame. The shielding and protective structure is rotatably mounted on the top of the frame to form a protective state and a shielding state. In the protective state, the shielding and protective structure blocks the front of the frame; in the shielding state, the shielding and protective structure blocks the top of the frame.

[0017] In an embodiment of the present invention, the shielding and protective structure is rotatably mounted on the top of the eyeglass frame via a rotating structure. The eye-wearing device further includes a driving structure, which is mounted on the eye-wearing body and connected to the rotating structure. The driving structure can drive the rotating structure to rotate, thereby causing the shielding and protective structure to rotate.

[0018] In an embodiment of the present invention, the wearable eyepiece further includes two temples mounted on both sides of the frame. The driving structure includes a driving cord, two pulleys, two winding wheels, and two transmission structures. The two pulleys are mounted on the two temples, and the two winding wheels are rotatably mounted on both sides of the frame via rotating rods, with the rotating rods connected to the frame via torsion springs. One end of the driving cord passes over one pulley and connects to the winding wheel on the same side, while the other end passes over the other pulley and connects to the winding wheel on the same side. Under the action of wearing tension, the driving cord drives the two winding wheels to rotate, and the two winding wheels drive the rotating structure to rotate via the two transmission structures.

[0019] In an embodiment of the present invention, the rotating structure includes a rotating plate and a hinge shaft. The rotating plate is connected to the shielding and protective structure, and the rotating plate is hinged to the top of the eyeglass frame via the hinge shaft. The transmission structure includes a first gear, a second gear, a first rack, a second rack, and a pusher. The first gear is installed at one end of the hinge shaft. The first rack is arranged vertically and meshes with the first gear. The first rack is installed on the pusher. The pusher is slidably installed on the eyewear body along the vertical direction. The second gear is installed on the rotating rod, which is connected to the winding wheel. The second rack is slidably installed on the eyewear body along the horizontal direction. The pusher has a pushing inclined surface, which is inclined relative to the horizontal direction and abuts against the bottom of the first rack.

[0020] In an embodiment of the present invention, the first rack is slidably mounted on the eyewear body in the vertical direction via a first sliding structure, and the second rack is slidably mounted on the eyewear body in the horizontal direction via a second sliding structure. The first sliding structure includes multiple guide rods and multiple sliding blocks. The sliding blocks are fixed to the first rack and slide in cooperation with the guide rods in the vertical direction. The guide rods are connected to the eyewear body via connecting blocks, and the sliding blocks are connected to the connecting blocks via return springs. The second sliding structure includes a sliding frame. A sliding rail and a sliding groove are provided between the sliding frame and the second rack. A connecting frame is provided on the eyeglass frame, and the sliding frame is mounted on the connecting frame. The rotating rod is rotatably mounted on the connecting frame and connected to the connecting frame via a torsion spring.

[0021] The present invention also provides a talent assessment system, including the wearable information collection device described above. The talent assessment system further includes a question-answering device. The eye information collection mechanism is used to collect the eye movement information of the assessment subject, and the head information collection mechanism is used to collect the electroencephalogram (EEG) information of the assessment subject.

[0022] The features and advantages of this invention are:

[0023] The wearable information collection device of the present invention allows the head-wearing device to first deliver an auxiliary detection agent to the coating cavity of the opening and closing structure and apply it to the head detection head. After the head-wearing device is worn on the head, the multiple opening and closing covers of the opening and closing structure can be opened, so that the head detection head coated with the auxiliary detection agent can fit against the scalp to collect head information, thus making it impossible to manually apply the auxiliary reagent.

[0024] The wearable information collection device of the present invention can first shield the eye detection mechanism installed on the main body of the wearable device through a shielding and protective structure when not in use, and when in use, it can block the light from above, so as to avoid the light affecting the eye information collection mechanism to collect eye information, thereby improving the service life of the device and the accuracy of the collected eye information.

[0025] The talent assessment system of this invention eliminates the need for assessors to manually apply auxiliary reagents to the head detection head, thereby improving assessment efficiency.

[0026] The talent assessment system of this invention enables the eye information collection agency to collect eye information of the assessors more accurately, thereby improving the accuracy of the assessment. Attached Figure Description

[0027] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0028] Figure 1 This is a schematic diagram of the overall structure of the head-wearing device in this invention from one perspective;

[0029] Figure 2 for Figure 1 Enlarged structural diagram at point A;

[0030] Figure 3 for Figure 2 Enlarged structural diagram at point B;

[0031] Figure 4This is a schematic diagram of the overall structure of the head-wearing device in this invention from another perspective;

[0032] Figure 5 for Figure 4 Enlarged structural diagram at point C;

[0033] Figure 6 This is a schematic diagram of the overall structure of the eye-wearing device in this invention;

[0034] Figure 7 for Figure 6 Enlarged structural diagram at point D;

[0035] Figure 8 for Figure 7 Enlarged structural diagram at point E;

[0036] Figure 9 for Figure 8 Enlarged structural diagram at point F;

[0037] Figure 10 for Figure 8 Enlarged structural diagram at point G;

[0038] Figure 11 This is a schematic diagram of the overall structure of the talent assessment system of the present invention.

[0039] In the picture:

[0040] 1. Head-mounted device;

[0041] 11. Headwear main body; 111. Elastic headband;

[0042] 12. Head information acquisition mechanism; 121. Head detection head; 122. Opening and closing structure; 1221. Opening and closing cover; 1222. Coating chamber; 1223. Inner inclined surface; 1224. Outer conical surface; 1225. Elastic reset component; 1226. Connecting plate; 1227. Mounting guide rod; 123. Feeding structure; 1231. Liquid storage tank; 1232. Extrusion plate; 1233. Elastic structure; 1234. Storage chamber; 1235. Safety device 1236. Filling tube; 124. Piping structure; 1241. First connecting support tube; 1242. Second connecting support tube; 1243. Connecting hose; 125. Coating control structure; 1251. Fixing cover; 1252. On / off control board; 1253. Slot; 1254. Second through hole; 126. Mounting structure; 1261. Mounting bracket; 1262. Mounting hole; 1263. Push rod; 1264. Rubber ring;

[0043] 2. Wearable eye device;

[0044] 21. Main body of the eyewear; 211. Frame; 2111. Mounting block; 212. Temples; 213. Connecting frame;

[0045] 22. Eye information collection agencies;

[0046] 23. Shielding and protective structure; 231. Protective plate; 232. Rotating structure; 2321. Rotating plate; 2322. Hinge shaft; 2323. Rotating block;

[0047] 24. Drive structure; 241. Drive rope; 242. Pulley; 243. Winding wheel; 2431. Rotating rod; 2432. Torsion spring; 244. Transmission structure; 2441. First gear; 2442. Second gear; 2443. First rack; 2444. Second rack; 2445. Pushing component; 2446. Pushing inclined plane; 2447. Pushing connecting plate; 245. First sliding structure; 2451. Guide rod; 2452. Sliding block; 2453. Connecting block; 2455. Return spring; 246. Second sliding structure; 2461. Sliding frame; 2462. Slide rail; 2463. Slide groove;

[0048] 3. Answering equipment;

[0049] 4. Table body. Detailed Implementation

[0050] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0051] Implementation Method 1

[0052] like Figure 1 and Figure 2As shown, the present invention provides a wearable information collection device, including a head-wearing device 1. The head-wearing device 1 includes a head-wearing body 11 and a head information collection mechanism 12. The head information collection mechanism 12 includes: a head detection head 121, mounted on the head-wearing body 11; an opening and closing structure 122, including multiple opening and closing covers 1221, which are mounted on the head-wearing body 11 along the circumference of the head detection head 121 and located below the head detection head 121; a feeding structure 123, mounted on the head-wearing body 11, for storing auxiliary detection reagents; and a pipeline structure 124, through which the feeding structure 123 passes through a pipe. The pipeline structure 124 is connected to an opening and closing cover 1221; the coating control structure 125 is used to control the opening and closing of the pipeline structure 124; wherein, multiple opening and closing covers 1221 are movably arranged along the radial direction of the head detection head 121 to form an open state and a closed state; in the open state, the coating control structure 125 is in the closed state; in the closed state, multiple opening and closing covers 1221 cooperate to form a coating cavity 1222, the coating control structure 125 is in the open state, and the feeding structure 123 is connected to the coating cavity 1222 through the pipeline structure 124 so that the auxiliary detection agent can flow into the coating cavity 1222 through the pipeline structure 124 and be coated on the head detection head 121.

[0053] In the wearable information collection device of the present invention, the head-wearing device 1 can first deliver the auxiliary detection agent to the coating cavity 1222 of the opening and closing structure 122 and apply it to the head detection head 121. After the head-wearing device 1 is worn on the head, the multiple opening and closing covers 1221 of the opening and closing structure 122 can be opened, so that the head detection head 121 coated with the auxiliary detection agent can fit against the scalp to collect head information, thus making it impossible to manually apply the auxiliary agent.

[0054] Specifically, the head detection head 121 can be, but is not limited to, the detection head of an electroencephalogram (EEG) device to collect brainwave information, and the auxiliary detection reagent is a coupling agent. Of course, the head detection head 121 can also be selected from the detection heads of other brain information acquisition devices to detect other brain information as needed, and the auxiliary detection reagent can be adjusted accordingly.

[0055] like Figure 2 and Figure 3 As shown, in the embodiment of the present invention, each opening and closing cover 1221 is provided with an inner inclined surface 1223. In the closed state, the inner inclined surfaces 1223 of the multiple opening and closing covers 1221 cooperate to form a coating cavity 1222. During the process of the multiple opening and closing covers 1221 switching from the closed state to the open state along the radial outward of the head detection head 121, the head detection head 121 slides and contacts the inner inclined surfaces 1223 of each opening and closing cover 1221 to scrape off the auxiliary detection agent on the inner inclined surfaces 1223, thereby ensuring the application effect of the auxiliary detection agent.

[0056] like Figure 4 and Figure 5 As shown, in the embodiment of the present invention, each opening and closing cover 1221 is provided with an outer inclined surface. In the closed state, the outer inclined surfaces of multiple opening and closing covers 1221 cooperate to form an outer conical surface 1224, so that when worn, the tip of the outer conical surface 1224 can be inserted into the hair. Furthermore, after the multiple opening and closing covers 1221 are opened, it is ensured that the head detection head 121 is in close contact with the scalp, thereby improving the head information collection effect and collection accuracy.

[0057] like Figure 2 and Figure 3 As shown, in an embodiment of the present invention, the head information acquisition mechanism 12 is mounted on the head-wearing body 11 via the mounting structure 126, and multiple opening and closing covers 1221 are movably mounted on the mounting structure 126 along the radial direction of the head detection head 121 via multiple elastic reset members 1225, and the head detection head 121 is movably mounted on the mounting structure 126 along its axial direction. By setting multiple elastic reset elements 1225, on the one hand, when the head-wearing body 11 moves downward and squeezes open the multiple opening and closing covers 1221, the multiple opening and closing covers 1221 can use the elastic restoring force of the multiple elastic reset elements 1225 to abut against the head detection head 121 in the open state, thereby ensuring the stability of the head detection head 121. On the other hand, when the head-wearing body 11 moves upward and separates from the multiple opening and closing covers 1221, the multiple opening and closing covers 1221 can use the elastic restoring force of the multiple elastic reset elements 1225 to move radially inward along the head detection head 121 and close quickly and tightly, thereby ensuring the sealing of the coating cavity 1222 and preventing the auxiliary detection agent from being exposed.

[0058] Specifically, the mounting structure 126 includes a mounting bracket 1261 and a push rod 1263. The top of the mounting bracket 1261 is provided with a mounting hole 1262, and a rubber ring 1264 is provided in the mounting hole 1262. The push rod 1263 is in a sealing sliding fit with the rubber ring 1264 along the axial direction of the head detection head 121. One end of the push rod 1263 is connected to the top of the head detection head 121, and the other end of the push rod 1263 extends out from the mounting bracket 1261. By operating the push rod 1263, the head detection head 121 is pushed downward to compress multiple opening and closing covers 1221 to move outward along the radial direction of the head detection head 121 and open. The push rod 1263 is also pulled to move the head detection head 121 upward to separate it from the multiple opening and closing covers 1221. Under the action of the elastic restoring force of multiple elastic reset members 1225, the multiple opening and closing covers 1221 move inward along the radial direction of the head detection head 121 and close. Furthermore, due to the frictional resistance of the rubber ring 1264, the push rod 1263 cannot slide freely and can only move axially along the head detection head 121 under the action of an external operating force. The top of the opening and closing cover 1221 is provided with a connecting plate 1226, and the outer wall of the mounting bracket 1261 is provided with a mounting guide rod 1227 along the radial direction of the head detection head 121. The connecting plate 1226 is movably mounted on the mounting guide rod 1227. The elastic reset member 1225 is a spring sleeved on the mounting guide rod 1227, and one end of the elastic reset member 1225 abuts against the end of the mounting guide rod 1227, and the other end of the elastic reset member 1225 abuts against the connecting plate 1226.

[0059] like Figure 2 , Figure 3 as well as Figure 5As shown, in an embodiment of the present invention, the pipeline structure 124 includes a first connecting support pipe 1241 and a second connecting support pipe 1242, and the paint control structure 125 includes a fixing cover 1251 and an on / off control plate 1252; one end of the first connecting support pipe 1241 is connected to the feeding structure 123, and the other end of the first connecting support pipe 1241 is connected to the second connecting support pipe 1242 through the fixing cover 1251; the fixing cover 1251 is provided with a slot 1253, and the slot 1253 is connected to the first connecting support pipe 1242 through a first through hole. The slot 1253 is connected to the second connecting support tube 1242 through the second through hole 1254. The on / off control plate 1252 has a connecting end and a sealing end. The connecting end is connected to an opening / closing cover 1221. The sealing end is movably inserted into the slot 1253 along the radial direction of the head detection head 121. During the process of multiple opening / closing covers 1221 switching from a closed state to an open state along the radial direction of the head detection head 121, the sealing end can move between the first through hole and the second through hole 1254 under the action of the opening / closing cover 1221. By connecting the on / off control plate 1252 to the opening / closing cover 1221, the opening and closing states of the opening and closing structure 122 are synchronized with the closing and opening states of the paint control structure 125, respectively. No other control components are required, and the structure is simple.

[0060] Specifically, the piping structure 124 also includes a connecting hose 1243. The second connecting support pipe 1242 is connected to an opening / closing cover 1221 via the connecting hose 1243. During the radial movement of the opening / closing cover 1221 along the head detection head 121, the connecting hose 1243 can adaptably deform, resulting in a simple structure. Of course, the connecting hose 1243 can also be replaced by a telescopic pipe or other deformable pipe.

[0061] like Figure 2 , Figure 3 as well as Figure 5As shown, in an embodiment of the present invention, the feeding structure 123 includes a liquid storage tank 1231, an extrusion plate 1232, and an elastic structure 1233. The inner cavity of the liquid storage tank 1231 is sealed and slidably disposed within the liquid storage tank 1231 by the extrusion plate 1232, which divides the inner cavity of the liquid storage tank 1231 into a storage cavity 1234 and an installation cavity 1235. The storage cavity 1234 is connected to the pipeline structure 124. The elastic structure 1233 is installed in the installation cavity 1235, with one end of the elastic structure 1233 connected to the extrusion plate 1232 and the other end connected to the inner wall surface of the liquid storage tank 1231. By providing the extrusion plate 1232 and the elastic structure 1233, when the coating control structure 125 is open, the elastic restoring force of the elastic structure 1233 pushes the extrusion plate 1232 toward the storage cavity 1234, thereby pushing the auxiliary detection agent in the storage cavity 1234 into the pipeline structure 124. Specifically, the liquid storage tank 1231 is also equipped with a liquid filling pipe 1236, which is connected to the storage chamber 1234.

[0062] like Figure 1 and Figure 4 As shown in the embodiment of the present invention, the head-wearing body 11 is provided with multiple elastic headbands 111, and the number of head information collection mechanisms 12 is also multiple, with the multiple head information collection mechanisms 12 correspondingly installed on the multiple elastic headbands 111. After the head-wearing body 11 is worn on the user's head, each head information collection mechanism 12 can use the elastic restoring force of the elastic headbands 111 to make the head detection head 121 fit more tightly against the scalp.

[0063] like Figure 6 As shown, in an embodiment of the present invention, the wearable information collection device includes an eye-wearing device 2, which includes an eye-wearing body 21 and an eye-information collection mechanism 22, which is mounted on the eye-wearing body 21.

[0064] Specifically, the wearable eye device 21 includes a frame 211 and two temples 212. The frame 211 has frame edges corresponding to the two eyeglasses and a connecting bracket 213 for mounting on the bridge of the nose. The two temples 212 are mounted on both sides of the frame 211. The number of eye information detection mechanisms may be, but is not limited to, two, and the two eye information detection mechanisms are mounted on the two frame edges of the frame 211. The eye information detection mechanisms may be, but are not limited to, eye movement recorders used for collecting eye movement information.

[0065] like Figure 6As shown, in an embodiment of the present invention, the eye-wearing device 2 further includes a shielding and protective structure 23. The eye-wearing main body 21 includes a lens frame 211. The shielding and protective structure 23 is rotatably mounted on the top of the lens frame 211 to form a protective state and a shielding state. In the protective state, the shielding and protective structure 23 blocks the front of the lens frame 211; in the shielding state, the shielding and protective structure 23 blocks the top of the lens frame 211.

[0066] The wearable information collection device of the present invention allows the eye-wearing device 2 to be protected by the eye detection mechanism installed on the main body 21 of the eye-wearing device when not in use, through the shielding and protective structure 23. When in use, it can block the light from above, thus preventing the light from affecting the eye information collection mechanism 22 in collecting eye information, thereby improving the service life of the device and the accuracy of the collected eye information.

[0067] like Figure 6 and Figure 7 As shown, specifically, the protective structure 23 is rotatably mounted on the top of the eyeglass frame 211 via a rotating structure 232. The rotating structure 232 includes a rotating plate 2321 and a hinge shaft 2322. The rotating plate 2321 is connected to the protective structure 23 and is hinged to the top of the eyeglass frame 211 via the hinge shaft 2322. A mounting block 2111 is provided on the top of the eyeglass frame 211, and a rotating block 2323 is provided on the lower surface of the rotating plate 2321. The rotating block 2323 is hinged to the mounting block 2111 via the hinge shaft 2322. The protective structure 23 includes a protective plate 231, which is connected to the rotating plate 2321. The protective plate 231 and the rotating plate 2321 are vertically arranged. In the protective state, the protective plate 231 is generally vertical, blocking the front of the eyeglass frame 211. In the blocking state, the protective plate 231 is generally horizontal, blocking the top of the eyeglass frame 211.

[0068] like Figure 6 , Figure 7 as well as Figure 8As shown, in an embodiment of the present invention, the eye-wearing device 2 further includes a driving structure 24, which is mounted on the eye-wearing body 21 and connected to the rotating structure 232. The driving structure 24 can drive the rotating structure 232 to rotate, thereby causing the shielding and protective structure 23 to rotate. The drive structure 24 includes a drive rope 241, two pulleys 242, two winding wheels 243, and two transmission structures 244. The two pulleys 242 are mounted on the two temples 212. The two winding wheels 243 are rotatably mounted on both sides of the frame 211 via a rotating rod 2431, which is connected to the frame 211 via a torsion spring 2432. One end of the drive rope 241 passes over one pulley 242 and connects to the winding wheel 243 on the same side. The other end of the drive rope 241 passes over another pulley 242 and connects to the winding wheel 243 on the same side. Under the action of wearing tension, the drive rope 241 drives the two winding wheels 243 to rotate. The two winding wheels 243 drive the rotating structure 232 to rotate via the two transmission structures 244. The wearing tension is the tension applied by the user pulling the drive cord 241 between the two temples 212 when preparing to wear the eye-wearing device 2, and the squeezing force exerted on the drive cord 241 by the back of the user's head after the eye-wearing device 2 is worn. This makes the entire drive structure 24 simple and allows the blocking state of the protective structure 23 to be synchronized with the wearing of the eye-wearing device 2. When the user removes the eye-wearing device 2, the winding wheel 243 rotates in the opposite direction under the action of the torsion spring 2432, causing the drive structure 24 and the protective structure 23 to return to their original positions. Specifically, the drive cord 241 can be a rubber cord, which has elastic deformation force to facilitate the return of the drive cord 241 after the wearing tension is lost, and is also relatively soft and comfortable to wear on the head.

[0069] like Figures 6 to 10 As shown, in an embodiment of the present invention, the transmission structure 244 is used to convert the rotational motion of the winding wheel 243 into the rotational motion of the rotating structure 232. Specifically, the transmission structure 244 includes a first gear 2441, a second gear 2442, a first rack 2443, a second rack 2444, and a pusher 2445. The first gear 2441 is mounted on one end of the hinge shaft 2322. The first rack 2443 is arranged vertically and meshes with the first gear 2441. The first rack 2443 is mounted on the pusher 2445. The pusher 2445 is slidably mounted on the eye-wearing body 21 vertically. The second gear 2442 is mounted on the rotating rod 2431. The rotating rod 2431 is connected to the winding wheel 243. The second rack 2444 is slidably mounted on the eye-wearing body 21 horizontally. The pusher 2445 has a pushing inclined surface 2446, which is inclined relative to the horizontal direction and abuts against the lower part of the first rack 2443. Specifically, the pusher 2445 is connected to the second rack 2444 via the pusher connecting plate 2447.

[0070] like Figures 8 to 10 As shown, in an embodiment of the present invention, the first rack 2443 is slidably mounted on the eyewear body 21 in the vertical direction via the first sliding structure 245, and the second rack 2444 is slidably mounted on the eyewear body 21 in the horizontal direction via the second sliding structure 246; the first sliding structure 245 includes a plurality of guide rods 2451 and a plurality of sliding blocks 2452, the sliding blocks 2452 are fixed to the first rack 2443 and slide in cooperation with the guide rods 2451 in the vertical direction, and the guide rods 2451 are connected by... Block 2453 is connected to the main body 21 of the eyewear, and sliding block 2452 is connected to connecting block 2453 through return spring 2455; the second sliding structure 246 includes sliding frame 2461, and sliding rail 2462 and sliding groove 2463 are provided between sliding frame 2461 and second rack 2444. Connecting frame 213 is provided on the frame 211, sliding frame 2461 is installed on connecting frame 213, and rotating rod 2431 is rotatably installed on connecting frame 213 and connected to connecting frame 213 through torsion spring 2432.

[0071] by Figure 6 Taking the indicated position as an example, and combining it with... Figures 7 to 8 As shown, when wearing the eye-wearing device 2, the drive rope 241 is pulled first, causing the drive rope 241 to deform and pull the winding wheel 243 to rotate clockwise. The rotating rod 2431 drives the second gear 2442 to rotate clockwise. At the same time, the torsion spring 2432 deforms, and the second gear 2442 drives the pusher to move horizontally backward, so that the pushing inclined surface 2446 pushes the first rack 2443 to move upward. The first rack 2443 moves upward under the drive of the pusher 2445, which drives the first gear 2441 to rotate clockwise, so that the rotating structure 232 drives the shielding and protective structure 23 to rotate upward to block the top of the frame 211. After the eye-wearing device 2 is removed, the rotating rod 2431 drives the second gear 2442 to rotate counterclockwise under the action of the torsion spring 2432. The second gear 2442 then drives the pusher 2445 to move horizontally forward, so that the first rack 2443 can slide down along the guide rod 2451 under the action of the return spring 2455, and drive the first gear 2441 to rotate counterclockwise. This causes the rotating structure 232 to drive the shielding and protective structure 23 to rotate downward to block the front of the frame 211.

[0072] Implementation Method 2

[0073] like Figure 11 As shown, the present invention also provides a talent assessment system, including a wearable information collection device. The wearable information collection device in this embodiment has the same specific structure, working principle, and beneficial effects as the wearable information collection device in Embodiment 1, and will not be described again here.

[0074] The talent assessment system also includes a question-answering device 3, an eye information acquisition mechanism 22 for collecting the eye movement information of the assessment subject, and a head information acquisition mechanism 12 for collecting the electroencephalogram (EEG) information of the assessment subject. The eye movement information includes the eye movement information of the assessment subject during the question-answering process using the question-answering device 3, and the EEG information includes the EEG information of the assessment subject during the question-answering process using the question-answering device 3.

[0075] The talent assessment system of the present invention eliminates the need for assessors to manually apply auxiliary reagents to the head detection head 121, thereby improving assessment efficiency.

[0076] The talent assessment system of the present invention has an eye information collection mechanism 22 that can more accurately collect eye information of the assessors, thereby improving the accuracy of the assessment.

[0077] Specifically, the talent assessment system also includes a table 4, on which the answering device 3 is placed. Furthermore, by constructing an assessment model, the system analyzes the electroencephalogram (EEG) and eye-tracking information of the assessment subjects, enabling dynamic monitoring of their neurophysiological state and stratified assessment of their abilities.

[0078] The above descriptions are merely a few embodiments of the present invention. Those skilled in the art can make various modifications or variations to the embodiments of the present invention based on the content disclosed in the application documents without departing from the spirit and scope of the present invention.

Claims

1. A wearable information collection device, characterized in that, The device includes a head-mounted wearable device and an eye-mounted wearable device. The eye-mounted wearable device includes an eye-mounted wearable body and an eye information acquisition mechanism, the eye information acquisition mechanism being mounted on the eye-mounted wearable body. The head-mounted wearable device includes a head-mounted wearable body and a head information acquisition mechanism, the head information acquisition mechanism comprising: A head detection head is mounted on the head-wearing body. The opening and closing structure includes multiple opening and closing covers, which are mounted on the head-wearing body along the circumference of the head detection head and located below the head detection head. A feeding structure is installed on the head-wearing body, and the feeding structure is used to store auxiliary detection reagents; The pipeline structure, wherein the feeding structure is connected to the opening and closing hood through the pipeline structure; A coating control structure is used to control the on / off state of the pipeline structure; The plurality of opening and closing covers are movably arranged radially along the head detection head to form an open state and a closed state; in the open state, the coating control structure is in a closed state; in the closed state, the plurality of opening and closing covers cooperate to form a coating cavity, the coating control structure is in an open state, and the feeding structure is connected to the coating cavity through the pipeline structure so that the auxiliary detection agent can flow into the coating cavity through the pipeline structure and be coated on the head detection head.

2. The wearable information collection device as described in claim 1, characterized in that, Each of the opening and closing covers is provided with an inner inclined surface. In the closed state, the inner inclined surfaces of the multiple opening and closing covers cooperate to form the coating cavity. During the process of the multiple opening and closing covers switching from the closed state to the open state along the radial outward of the head detection head, the head detection head slides and contacts the inner inclined surfaces of each opening and closing cover to scrape off the auxiliary detection agent on the inner inclined surfaces.

3. The wearable information collection device as described in claim 1, characterized in that, Each of the opening and closing covers has an outer inclined surface. In the closed state, the outer inclined surfaces of the multiple opening and closing covers cooperate to form an outer conical surface.

4. The wearable information collection device as described in claim 1, characterized in that, The head information acquisition mechanism is mounted on the head-wearing body via an installation structure. Multiple opening and closing covers are movably mounted on the installation structure along the radial direction of the head detection head via multiple elastic reset members. The head detection head is movably mounted on the installation structure along its axial direction.

5. The wearable information collection device as described in claim 1, characterized in that, The pipeline structure includes a first connecting support pipe and a second connecting support pipe, and the coating control structure includes a fixing cover and an on / off control plate; one end of the first connecting support pipe is connected to the feeding structure, and the other end of the first connecting support pipe is connected to the second connecting support pipe through the fixing cover. The fixed cover is provided with a slot, which is connected to the first connecting support tube through a first through hole and to the second connecting support tube through a second through hole. The on / off control plate has a connecting end and a sealing end. The connecting end is connected to one of the opening and closing covers. The sealing end is movably inserted into the slot along the radial direction of the head detection head. During the process of multiple opening and closing covers switching from the closed state to the open state along the radial direction of the head detection head, the sealing end can move between the first through hole and the second through hole under the action of the opening and closing cover.

6. The wearable information collection device as described in claim 5, characterized in that, The pipeline structure also includes a connecting hose, and the second connecting support pipe is connected to an opening and closing cover through the connecting hose. During the radial movement of the opening and closing cover along the head detection head, the connecting hose can adaptably deform.

7. The wearable information collection device as described in claim 1, characterized in that, The feeding structure includes a liquid storage tank, an extrusion plate, and an elastic structure. The inner cavity of the liquid storage tank is slidably and sealed within the liquid storage tank by the extrusion plate, which divides the inner cavity of the liquid storage tank into a storage cavity and an installation cavity. The storage cavity is connected to the pipeline structure. The elastic structure is installed in the installation cavity, with one end of the elastic structure connected to the extrusion plate and the other end of the elastic structure connected to the inner wall of the liquid storage tank.

8. The wearable information collection device as described in claim 1, characterized in that, The headwear body is provided with multiple elastic headbands, and there are multiple head information collection mechanisms, which are installed on the multiple elastic headbands.

9. The wearable information collection device as described in claim 1, characterized in that, The wearable eye device also includes a shielding and protective structure. The main body of the wearable eye device includes a frame. The shielding and protective structure is rotatably mounted on the top of the frame to form a protective state and a shielding state. In the protective state, the shielding and protective structure blocks the front of the frame; in the shielding state, the shielding and protective structure blocks the top of the frame.

10. The wearable information collection device as described in claim 9, characterized in that, The shielding and protective structure is rotatably mounted on the top of the eyeglass frame via a rotating structure. The eye-wearing device also includes a driving structure, which is mounted on the eye-wearing body and connected to the rotating structure. The driving structure can drive the rotating structure to rotate, thereby causing the shielding and protective structure to rotate.

11. The wearable information collection device as described in claim 10, characterized in that, The main body of the eyewear also includes two temples, which are mounted on both sides of the frame. The driving structure includes a driving cord, two pulleys, two winding wheels, and two transmission structures. The two pulleys are mounted on the two temples, and the two winding wheels are rotatably mounted on both sides of the frame via rotating rods. The rotating rods are connected to the frame via torsion springs. One end of the driving cord passes over one of the pulleys and is connected to the winding wheel on the same side. The other end of the driving cord passes over the other pulley and is connected to the winding wheel on the same side. The drive rope drives the two winding wheels to rotate under the action of the wearing tension, and the two winding wheels drive the rotating structure to rotate through the two transmission structures.

12. The wearable information collection device as described in claim 11, characterized in that, The rotating structure includes a rotating plate and a hinge shaft. The rotating plate is connected to the shielding and protective structure, and the rotating plate is hinged to the top of the frame via the hinge shaft. The transmission structure includes a first gear, a second gear, a first rack, a second rack, and a pusher. The first gear is mounted on one end of the hinge shaft. The first rack is arranged vertically and meshes with the first gear. The first rack is mounted on the pusher. The pusher is slidably mounted on the eyewear body along the vertical direction. The second gear is mounted on the rotating rod, which is connected to the winding wheel. The second rack is slidably mounted on the eyewear body along the horizontal direction. The pusher has a pushing inclined surface, which is inclined relative to the horizontal direction and abuts against the lower part of the first rack.

13. The wearable information collection device as described in claim 12, characterized in that, The first rack is slidably mounted on the eyewear body in the vertical direction via a first sliding structure, and the second rack is slidably mounted on the eyewear body in the horizontal direction via a second sliding structure. The first sliding structure includes multiple guide rods and multiple sliding blocks. The sliding blocks are fixed to the first rack and slide in cooperation with the guide rods along the vertical direction. The guide rods are connected to the eyewear body through connecting blocks, and the sliding blocks are connected to the connecting blocks through return springs. The second sliding structure includes a sliding frame, with a matching slide rail and slide groove between the sliding frame and the second rack. A connecting frame is provided on the frame, the sliding frame is mounted on the connecting frame, and the rotating rod is rotatably mounted on the connecting frame and connected to the connecting frame via a torsion spring.

14. A talent assessment system, characterized in that, The talent assessment system includes the wearable information collection device as described in any one of claims 1-13, and further includes a question-answering device. The eye information collection mechanism is used to collect the eye movement information of the assessment subject, and the head information collection mechanism is used to collect the electroencephalogram (EEG) information of the assessment subject.