Method and system for optimizing multi-parameter electronic control display of electronic watch of fitness equipment

By dynamically fusing necessary parameters with user preference parameters, and combining ambient brightness and infrared cameras, an adaptive display solution is constructed, which solves the information overload and visual discomfort problems of traditional fitness equipment electronic display systems, and realizes the timely presentation of key information and sports safety monitoring.

CN120789618AActive Publication Date: 2025-10-17DONGGUAN BOQUN ELECTRONIC SCI & TECH CO LTD
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Patent Information

Application Number
CN202511169202.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-20
Publication Date
2025-10-17
Estimated Expiration
2045-08-20

AI Technical Summary

Technical Problem

The display system of traditional fitness equipment electronic watches cannot dynamically adjust parameter priorities, the display brightness does not match the ambient light intensity, and there is a lack of intelligent warning mechanisms, resulting in information overload, visual discomfort and risky delays.

Method used

By receiving multi-parameter display optimization instructions, dynamically integrating necessary parameters with user preference parameters, obtaining threshold nodes based on ambient brightness and infrared cameras, and building an adaptive display solution, including an initial adjustable display area and an initial auxiliary display area, the system realizes intelligent parameter priority sorting and brightness adjustment.

Benefits of technology

It improves the dynamic adaptability of electronic watches for fitness equipment, ensures timely presentation of key information and convenient access by users, and improves the efficiency of sports safety monitoring.

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Abstract

The invention relates to the technical field of intelligent fitness equipment and health monitoring, in particular to a multi-parameter electronic control display optimization method and system for an electronic watch of fitness equipment, and the method comprises the steps: receiving a multi-parameter display optimization instruction, determining a multi-parameter optimization system based on the multi-parameter display optimization instruction, obtaining an exercise mode, obtaining the exercise duration, and displaying the exercise mode and the exercise duration. Acquiring a plurality of monitoring time periods based on the movement duration, preset movement starting time, a movement mode and a preset confirmation method, and acquiring an initial adjustable display area and an initial auxiliary display area based on a multi-parameter display screen, a display scheme is constructed based on a plurality of monitoring time periods, a threshold node set, a monitoring parameter acquisition unit, an ambient brightness sensor, an infrared camera, an initial adjustable display area and an initial auxiliary display area, and the display scheme is a first display scheme or a second display scheme. And realizing multi-parameter electronic control display optimization of the electronic watch of the fitness equipment based on the display scheme. The dynamic adaptability of display optimization of the electronic watch of the fitness equipment can be improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of intelligent fitness equipment and health monitoring technology, and particularly relates to a multi-parameter electronic display optimization method and system for a fitness equipment watch. BACKGROUND

[0002] Modern fitness equipment can monitor physiological indicators such as heart rate, blood oxygen, and calories in real time and present them intuitively through a display screen. An optimized display system can efficiently integrate multi-dimensional data, helping users quickly grasp their exercise state and avoid misjudgments caused by information overload or display confusion. In particular, during high-intensity training, accurate parameter display can provide timely warnings of potential risks (such as rapid heart rate) and provide data support for scientific fitness. Therefore, the multi-parameter electronic display optimization of fitness equipment watches is of great significance to improving user experience and exercise safety.

[0003] Currently, the display system of traditional fitness equipment watches has obvious limitations. First, the parameter layout is fixed and cannot be dynamically adjusted according to exercise risk priorities, and key indicators may be overwhelmed by secondary information. Second, the display brightness does not match the ambient light intensity, resulting in poor visibility in strong light or glare in dark environments.

[0004] Although the display system of traditional fitness equipment watches can display monitoring parameters during operation, it often lacks intelligent warning mechanisms, making it difficult for users to quickly locate abnormal parameters. Moreover, it does not consider user eye fatigue or exercise duration factors, which can lead to visual discomfort over time. These defects reduce data acquisition efficiency and may even delay risk intervention opportunities. Therefore, how to optimize the display of fitness equipment watches has become a problem to be solved. SUMMARY

[0005] The present application provides a multi-parameter electronic display optimization method and computer readable storage medium for a fitness equipment watch, which mainly aims to achieve accurate control of electrically heated pipelines.

[0006] To achieve the above purpose, the present application provides a multi-parameter electronic display optimization method for a fitness equipment watch, which comprises:

[0007] receiving a multi-parameter display optimization instruction and confirming a multi-parameter optimization system based on the multi-parameter display optimization instruction, wherein the multi-parameter optimization system includes a motion confirmation unit, a monitoring parameter acquisition unit, a multi-parameter display screen, an ambient brightness sensor, and an infrared camera;

[0008] obtaining a set of monitoring parameters, wherein the set of monitoring parameters includes multiple monitoring parameters, obtaining a set of threshold nodes based on the set of monitoring parameters, wherein the set of threshold nodes includes multiple threshold nodes, and each threshold node includes a threshold rate, an upper threshold, and a lower threshold, wherein the threshold nodes correspond one-to-one to the monitoring parameters;

[0009] acquiring a motion mode, wherein the motion mode is a free mode or a fixed mode;

[0010] acquiring a motion duration, and acquiring a plurality of monitoring time periods based on the motion duration, a preset motion starting time, the motion mode, a motion confirmation unit, and a preset confirmation method, wherein each monitoring time period comprises a monitoring starting time and a monitoring ending time;

[0011] acquiring an initial adjustable display area and an initial auxiliary display area based on the multi-parameter display screen;

[0012] constructing a display scheme based on the plurality of monitoring time periods, a threshold node set, a monitoring parameter acquisition unit, an ambient brightness sensor, an infrared camera, the initial adjustable display area, and the initial auxiliary display area, wherein the display scheme is a first display scheme or a second display scheme, and the display scheme is used to realize multi-parameter electronic control display optimization of the fitness equipment electronic watch.

[0013] Optionally, the acquiring the monitoring parameter set comprises:

[0014] acquiring a necessary parameter set, wherein the necessary parameter set comprises a plurality of necessary parameters;

[0015] acquiring a preference parameter node set, wherein the preference parameter node set comprises a plurality of preference parameter nodes, and each preference parameter node comprises a preference parameter and a preference degree;

[0016] counting a number of the preference parameter nodes in the preference parameter node set to obtain a preference number;

[0017] comparing the preference number with a preset preference number threshold value;

[0018] if the preference number is less than or equal to the preference number threshold value, acquiring a preference parameter set based on the preference parameter node set, and combining the preference parameter set and the necessary parameter set to obtain the monitoring parameter set;

[0019] otherwise, sorting the preference parameters corresponding to the preference parameter nodes in the preference parameter node set in descending order of the preference degrees to obtain a preference sequence;

[0020] acquiring a plurality of priority preference parameters based on the preference sequence, wherein each priority preference parameter in the plurality of priority preference parameters has a position sequence in the preference sequence less than or equal to the preference number threshold value;

[0021] combining the plurality of priority preference parameters and the necessary parameter set to obtain the monitoring parameter set.

[0022] Optionally, the acquiring the plurality of monitoring time periods based on the motion duration, the preset motion starting time, the motion mode, the motion confirmation unit, and the preset confirmation method comprises:

[0023] obtaining an initial exercise scheme based on the exercise duration, the exercise confirmation unit and the exercise start time;

[0024] if the exercise mode is a fixed mode, obtaining a plurality of fixed monitoring time periods based on the initial exercise scheme;

[0025] if the exercise mode is a free mode, obtaining a plurality of free monitoring time periods based on the initial exercise scheme and a preset monitoring time period adjustment method;

[0026] taking the plurality of fixed monitoring time periods or the plurality of free monitoring time periods as the plurality of monitoring time periods.

[0027] Optionally, the obtaining of the initial adjustable display area and the initial auxiliary display area based on the multi-parameter display screen comprises:

[0028] respectively obtaining a display height and a display angle of the multi-parameter display screen;

[0029] obtaining a user line-of-sight height based on a pre-constructed detection technology;

[0030] obtaining a target distance value based on the user line-of-sight height, the display height, the display angle and a preset target distance value calculation formula;

[0031] obtaining a target center horizontal axis based on the target distance value, obtaining the initial adjustable display area based on the target center horizontal axis and a preset area obtaining method, and obtaining the initial auxiliary display area based on the initial adjustable display area and the multi-parameter display screen.

[0032] Optionally, the constructing of the display scheme based on the plurality of monitoring time periods, the threshold node set, the monitoring parameter acquisition unit, the environment brightness sensor, the infrared camera, the initial adjustable display area and the initial auxiliary display area comprises:

[0033] for each monitoring time period in the plurality of monitoring time periods, the following operations are performed:

[0034] obtaining an exercise time in real time, and when the exercise time reaches a monitoring start time corresponding to the monitoring time period, the following operations are performed for each monitoring parameter in the monitoring parameter set:

[0035] obtaining a monitoring node set based on the monitoring parameter acquisition unit and the monitoring time period, wherein the monitoring node set comprises a plurality of monitoring nodes, and each monitoring node comprises a monitoring value and a monitoring time;

[0036] aggregating the monitoring node set to obtain a plurality of monitoring node sets;

[0037] When the motion time reaches the monitoring end moment corresponding to the monitoring period, a continuous motion duration is obtained based on the monitoring period, where the continuous motion duration is a time interval between the monitoring start moment and the monitoring end moment corresponding to the monitoring period, and a target display brightness value is obtained based on the continuous motion duration, the ambient brightness sensor, and the infrared camera;

[0038] Each of the plurality of monitoring node sets is subjected to the following operations:

[0039] The monitoring nodes in the monitoring node set are sorted in descending order of the monitoring time to obtain a monitoring sequence, where the monitoring sequence corresponds to the monitoring parameter one by one.

[0040] The monitoring sequences are summarized to obtain a plurality of monitoring sequences.

[0041] The monitoring sequences are extracted from the plurality of monitoring sequences in sequence, and the threshold node corresponding to the monitoring sequence is determined based on the monitoring sequence in the threshold node set.

[0042] It is determined whether the monitoring sequence and the threshold node meet a pre-constructed warning condition, where the warning condition is as follows:

[0043]

[0044] where n represents the total number of monitoring nodes in the monitoring sequence, a1, ai, and ai-1 represent the monitoring values of the first, i-th, and i-1-th monitoring nodes in the monitoring sequence, T1, Ti, and Ti-1 represent the monitoring time of the first, i-th, and i-1-th monitoring nodes in the monitoring sequence, Δa represents the threshold rate corresponding to the threshold node, a represents the upper limit of the threshold corresponding to the threshold node, and a represents the lower limit of the threshold corresponding to the threshold node. i i-1 i i-1 h l

[0045] If there is no monitoring sequence and threshold node that meets the warning condition, a first display scheme is constructed based on the plurality of monitoring sequences, the threshold node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value, otherwise, one or more warning node sets are obtained based on the plurality of monitoring sequences, where each of the one or more warning node sets meets the warning condition.

[0046] A second display scheme is constructed based on the monitoring parameter set, the one or more warning node sets, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value.

[0047] The first display scheme or the second display scheme is used as the display scheme. ​​​​​​

[0048] Optionally, the acquiring of the target display brightness value based on the continuous motion duration, an ambient brightness sensor, and an infrared camera includes:

[0049] Acquire a current ambient brightness value based on the ambient brightness sensor;

[0050] Obtaining an eye fatigue coefficient using the infrared camera;

[0051] The target display brightness value is obtained based on the current ambient brightness value, eye fatigue coefficient, continuous exercise duration, and a pre-built target display brightness value calculation formula, wherein the target display brightness value calculation formula is as follows:

[0052]

[0053] Among them, B d Indicates the target display brightness value, B max Indicates the preset maximum display brightness value, B min Indicates the preset minimum display brightness value, L c Indicates the current ambient brightness value, L min Indicates the preset lower limit of the ambient brightness value, L max represents the preset upper limit of the ambient brightness value, t represents the duration of the continuous exercise, E represents the eye fatigue coefficient, t max represents the preset maximum continuous exercise duration threshold, w1, w2 and w3 represent the preset first weight, second weight and third weight respectively.

[0054] Optionally, constructing a first display solution based on multiple monitoring sequences, a threshold node set, an initial adjustable display area, an initial auxiliary display area, and a target display brightness value includes:

[0055] Extracting monitoring sequences from a plurality of monitoring sequences in sequence, and identifying threshold nodes corresponding to the monitoring sequences in a threshold node set based on the monitoring sequences;

[0056] Obtaining rate ratios based on monitoring sequences, threshold nodes, and a pre-built rate ratio calculation formula;

[0057] Extracting an analysis monitoring node from the monitoring sequence, wherein the analysis monitoring node is a monitoring node with a position of one in the monitoring sequence;

[0058] The monitoring value corresponding to the analysis monitoring node is used as the analysis value;

[0059] The monitoring parameters corresponding to the analysis and monitoring nodes are used as the analysis and monitoring parameters;

[0060] Associating the rate ratio, the analysis parameter value, and the analysis monitoring parameter to obtain an analysis node;

[0061] aggregate the analysis nodes to obtain an analysis node set;

[0062] construct a first display scheme based on the analysis node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value.

[0063] Optionally, the constructing the first display scheme based on the analysis node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value comprises:

[0064] sort analysis values corresponding to analysis nodes in the analysis node set in descending order of rate ratios to obtain an analysis sequence;

[0065] obtain a core value set and an auxiliary value set based on the analysis sequence and a preset bit sequence threshold, wherein a bit sequence of each core value in the core value set in the analysis sequence is less than or equal to the bit sequence threshold, and a bit sequence of each auxiliary value in the auxiliary value set in the analysis sequence is greater than the bit sequence threshold;

[0066] construct the first display scheme based on the core value set, the auxiliary value set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value, wherein the first display scheme is as follows:

[0067] obtain a core display area based on the initial adjustable display area, the target display brightness value, and a preset core area background, display the core parameter value set by using the core display area to obtain a visual core parameter area;

[0068] obtain an auxiliary display area based on the initial auxiliary display area, the target display brightness value, and a preset auxiliary area background, display the auxiliary parameter value set by using the auxiliary display area to obtain a visual auxiliary parameter area, wherein the first display scheme comprises the visual core parameter area and the visual auxiliary parameter area.

[0069] Optionally, the constructing the second display scheme based on the monitoring parameter set, the one or more warning node sets, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value comprises:

[0070] obtain a first-level warning value set based on the one or more warning node sets;

[0071] respectively count a number of monitoring parameters in the monitoring parameter set and a number of warning node sets in the one or more warning node sets to obtain a monitoring number and a warning number;

[0072] calculate a ratio of the warning number to the monitoring number to obtain a warning ratio;

[0073] construct the second display scheme by using the warning ratio, the initial adjustable display area, and the initial auxiliary display area, wherein the second display scheme is as follows:

[0074] If the warning ratio is less than or equal to the preset warning ratio threshold, the initial adjustable display area is taken as an initial first warning display area;

[0075] Based on the initial first warning display area, a target display brightness value, and a preset first warning area background, a first warning display area is obtained.

[0076] Otherwise, a region adjustment operation is performed on the initial adjustable display area and the initial auxiliary display area using a preset display area adjustment mode to obtain an initial second warning display area, wherein the area of the initial second warning display area is greater than the area of the initial first warning display area.

[0077] Based on the initial second warning display area, the target display brightness value, and a preset second warning area background, a second warning display area is obtained.

[0078] The first warning display area or the second warning display area is used to display a first-level warning value set to obtain a visual warning parameter area, wherein the second display scheme includes the visual warning parameter area.

[0079] To achieve the above-mentioned purpose, the present application further provides a multi-parameter electronic control display optimization system for an exercise equipment electronic watch, comprising:

[0080] A monitoring parameter acquisition module is configured to receive a multi-parameter display optimization instruction and confirm a multi-parameter optimization system based on the multi-parameter display optimization instruction, wherein the multi-parameter optimization system includes a motion confirmation unit, a monitoring parameter acquisition unit, a multi-parameter display screen, an ambient brightness sensor, and an infrared camera.

[0081] A set of monitoring parameters is obtained, wherein the set of monitoring parameters includes a plurality of monitoring parameters, and a set of threshold nodes is obtained based on the set of monitoring parameters, wherein the set of threshold nodes includes a plurality of threshold nodes, and each threshold node includes a threshold rate, an upper threshold, and a lower threshold, wherein the threshold nodes correspond one-to-one to the monitoring parameters.

[0082] A motion period confirmation module is configured to obtain a motion mode, wherein the motion mode is a free mode or a fixed mode.

[0083] A display partition initialization module is configured to obtain a motion duration, and obtain a plurality of monitoring periods based on the motion duration, a preset motion start time, the motion mode, the motion confirmation unit, and a preset confirmation method, wherein each monitoring period includes a monitoring start time and a monitoring end time.

[0084] A display partition optimization module is configured to obtain an initial adjustable display area and an initial auxiliary display area based on the multi-parameter display screen.

[0085] The display scheme is a first display scheme or a second display scheme, and the display scheme is used to realize the multi-parameter electric control display optimization of the electronic watch of the fitness equipment.

[0086] To solve the above problems, the application further provides an electronic device, which comprises:

[0087] The memory stores at least one instruction, and the processor executes the instruction stored in the memory to realize the multi-parameter electric control display optimization method of the electronic watch of the fitness equipment.

[0088] To solve the above problems, the application further provides a computer readable storage medium, which stores at least one instruction, and the at least one instruction is executed by a processor in an electronic device to realize the multi-parameter electric control display optimization method of the electronic watch of the fitness equipment.

[0089] The application receives a multi-parameter display optimization instruction, confirms a multi-parameter optimization system based on the multi-parameter display optimization instruction, and includes a motion confirmation unit, a monitoring parameter acquisition unit, a multi-parameter display screen, an environment brightness sensor, and an infrared camera, acquires a monitoring parameter set, wherein the monitoring parameter set contains multiple monitoring parameters, acquires a threshold node set based on the monitoring parameter set, wherein the threshold node set contains multiple threshold nodes, and each threshold node contains a threshold rate, a threshold upper limit, and a threshold lower limit, wherein the threshold node corresponds to the monitoring parameter one by one, and it can be seen that the application dynamically fuses necessary parameters (used for motion safety monitoring) and user preference parameters (meet individualized monitoring needs), generates a monitoring parameter set based on intelligent threshold control, can ensure that the multi-parameter display screen completely presents necessary safety monitoring parameters, and can also display key monitoring information according to user preferences, effectively solving the dual problems of easy omission of necessary parameters and difficult focusing of massive parameters in the traditional display scheme.Through the dynamic balance mechanism, the rigidity requirement of the sports safety monitoring is guaranteed, and the efficiency of the user obtaining the key information is improved, the sports mode is obtained, the sports mode is a free mode or a fixed mode, a sports duration is obtained, a plurality of monitoring time periods are obtained based on the sports duration, a preset sports starting time, the sports mode and a preset confirmation method, each monitoring time period comprises a monitoring starting time and a monitoring ending time, an initial adjustable display area and an initial auxiliary display area are obtained based on the multi-parameter display screen, and it can be seen that the initial adjustable display area (core / warning parameter area) and the initial auxiliary display area (auxiliary parameter area) are dynamically divided by obtaining the target distance value, the software virtual partition is replaced by the hardware mechanical adjustment, the core parameter area intelligently follows the user line of sight movement, the adaptive layout of the multi-parameter display screen is realized, the display scheme is constructed based on the plurality of monitoring time periods, a threshold node set, a monitoring parameter acquisition unit, an environment brightness sensor, an infrared camera, the initial adjustable display area and the initial auxiliary display area, the display scheme is a first display scheme or a second display scheme, the multi-parameter electric control display optimization of the fitness equipment electronic watch is realized based on the display scheme, it can be seen that whether the monitoring value is too fast or out of limit in the monitoring time period is determined, the core / warning value is mainly displayed (the second display scheme is constructed) when there is a sports risk, the user is facilitated to pay attention to the current sports state when there is no risk, the first display scheme is constructed, the convenience of the user obtaining the key sports state is improved, the adaptive partition display is realized through the dynamic priority sorting, the core value is ensured to be presented preferentially, the core content is strengthened through different area backgrounds, the adaptive partition display is realized, not only the interface layout of the multi-parameter display screen is optimized, but also the information acquisition efficiency in the sports process is improved, the local / global warning mode is intelligently switched through the quantitative warning parameter proportion (warning ratio), the area expansion (display area adjustment mode) and the visual strengthening (the first / second warning area backgrounds are distinguished to realize the accurate matching of the warning intensity and the risk level, the user can obtain the key warning parameter information more quickly and conveniently, and the sports safety monitoring efficiency is improved. Therefore, the dynamic adaptability of the fitness equipment electronic watch display optimization can be improved. BRIEF DESCRIPTION OF DRAWINGS

[0090] Figure 1 A flowchart of a fitness equipment electronic watch multi-parameter electric control display optimization method provided by an embodiment of the present application is shown in the figure.

[0091] Figure 2 A functional module diagram of a fitness equipment electronic watch multi-parameter electric control display optimization system provided by an embodiment of the present application is shown in the figure.

[0092] Figure 3 A structural diagram of an electronic device for realizing the fitness equipment electronic watch multi-parameter electric control display optimization method provided by an embodiment of the present application is shown in the figure.

[0093] Reference Signs List:

[0094] 1. Electronic device; 10. Processor; 11. Storage; 12. Bus.

[0095] The implementation, functional features and advantages of the present application will be further described with reference to the embodiments in conjunction with the drawings. DETAILED DESCRIPTION

[0096] It should be understood that the specific embodiments described herein are merely exemplary and are not intended to limit the present application.

[0097] The embodiment of the present application provides a kind of fitness equipment electronic watch multi-parameter electric control display optimization method.The execution subject of the fitness equipment electronic watch multi-parameter electric control display optimization method includes but is not limited to at least one of the electronic equipment that can be configured to execute the method provided by the present application, such as server, terminal etc.In other words, the fitness equipment electronic watch multi-parameter electric control display optimization method can be executed by software or hardware installed in terminal device or server device, and the software can be blockchain platform.The server includes but is not limited to: single server, server cluster, cloud server or cloud server cluster etc.

[0098] Referring to Figure 1 As shown in the flowchart of the fitness equipment electronic watch multi-parameter electric control display optimization method provided by the embodiment of the present application.In this embodiment, the fitness equipment electronic watch multi-parameter electric control display optimization method includes:

[0099] S1, receive multi-parameter display optimization instruction, confirm multi-parameter optimization system based on the multi-parameter display optimization instruction, wherein the multi-parameter optimization system includes: movement confirmation unit, monitoring parameter acquisition unit, multi-parameter display screen, environment brightness sensor and infrared camera.

[0100] It can be understood that the multi-parameter display optimization instruction is an instruction issued by personnel who want to optimize the display layout of the multi-parameter display screen of fitness equipment.The multi-parameter optimization system is a software or APP for realizing the display optimization of the multi-parameter display screen of fitness equipment, wherein the multi-parameter optimization system includes movement confirmation unit, monitoring parameter acquisition unit, multi-parameter display screen, environment brightness sensor, infrared camera.The application of specific units and components, please refer to subsequent embodiments.

[0101] S2, obtain monitoring parameter set, wherein the monitoring parameter set contains a plurality of monitoring parameters, obtain threshold node set based on monitoring parameter set, wherein the threshold node set contains a plurality of threshold nodes, and each threshold node contains threshold rate, threshold upper limit and threshold lower limit, wherein the threshold node corresponds to the monitoring parameter one by one.

[0102] It should be explained that the set of monitoring parameters is obtained, comprising:

[0103] a set of necessary parameters is obtained, wherein the set of necessary parameters comprises a plurality of necessary parameters;

[0104] a set of preference parameter nodes is obtained, wherein the set of preference parameter nodes comprises a plurality of preference parameter nodes, and each preference parameter node comprises a preference parameter and a preference degree;

[0105] the number of the preference parameter nodes in the set of preference parameter nodes is counted to obtain a preference number;

[0106] the preference number is compared with a preset preference number threshold value;

[0107] if the preference number is less than or equal to the preference number threshold value, a set of preference parameters is obtained based on the set of preference parameter nodes, and the set of preference parameters and the set of necessary parameters are summarized to obtain the set of monitoring parameters;

[0108] otherwise, the preference parameters corresponding to the preference parameter nodes in the set of preference parameter nodes are sorted in descending order of the preference degrees to obtain a preference sequence;

[0109] a plurality of priority preference parameters are obtained based on the preference sequence, wherein the position sequence of each priority preference parameter in the preference sequence is less than or equal to the preference number threshold value;

[0110] the plurality of priority preference parameters and the set of necessary parameters are summarized to obtain the set of monitoring parameters.

[0111] It should be understood that the monitoring parameters refer to parameter values collected in real time during the operation of the fitness equipment and used to reflect the current motion state of the user. Optionally, the monitoring parameters include but are not limited to heart rate, blood oxygen, blood pressure, etc. The necessary parameters refer to parameters that must be monitored by the user during the motion to ensure the safety during the motion.

[0112] For example, assuming that the set of necessary parameters is {heart rate, blood oxygen}, the set of preference parameter nodes is {(blood pressure-86), (step length-75), (step frequency-90), (average pace-98)}, and only the preference parameter node (blood pressure-86) is taken as an example, where the preference parameter node (blood pressure-86) indicates that the user's preference for the blood pressure during exercise is 86, the number of preferences in the example is 4, and the number of preference threshold is assumed to be 5. Since the number of preferences 4 is less than or equal to the number of preference threshold 5, the set of preference parameters is {blood pressure, step length, step frequency, average pace}, and the set of monitoring parameters is the union of the set of necessary parameters {heart rate, blood oxygen} and the set of preference parameters {blood pressure, step length, step frequency, average pace}, which is represented as {heart rate, blood oxygen, blood pressure, step length, step frequency, average pace}. Assuming that the number of preference threshold is 3, and the number of preferences 4 is greater than the number of preference threshold 3, the preference sequence is {average pace, step frequency, blood pressure, step length}, and the plurality of priority preference parameters are the preference parameters with the first sequence in the preference sequence, i.e., the average pace, the preference parameter with the second sequence in the preference sequence, i.e., the step frequency, and the preference parameter with the third sequence in the preference sequence, i.e., the blood pressure. At this time, the set of monitoring parameters is the union of the set of necessary parameters {heart rate, blood oxygen} and the plurality of priority preference parameters average pace, step frequency, and blood pressure, which is represented as {heart rate, blood oxygen, average pace, step frequency, blood pressure}. The acquisition method of the preference degree includes but is not limited to analyzing the user's historical exercise behavior habits and user-defined. The embodiment of the application dynamically fuses the necessary parameters (for exercise safety monitoring) and the user preference parameters (to meet the individual monitoring needs) to generate the set of monitoring parameters based on the intelligent threshold control, which can not only ensure that the multi-parameter display screen presents the necessary safety monitoring parameters completely, but also can display the key monitoring information according to the user preference, effectively solving the dual problems of easy omission of necessary parameters and difficult focusing of massive parameters in the traditional display scheme. Through this dynamic balance mechanism, the rigid demand of exercise safety monitoring is ensured, and the efficiency of the user obtaining key information is improved.

[0113] It can be understood that the threshold rate is the maximum allowed change rate of the monitoring value per unit time set by a person. The threshold upper limit is the maximum allowed value of the monitoring parameter during exercise set by a person, and the threshold lower limit is the minimum allowed value of the monitoring parameter during exercise set by a person. For example, assuming that the threshold node corresponding to the monitoring parameter heart rate is {heart rate: 6 bpm / min-110 bpm-160 bpm}, which indicates that the threshold rate of the monitoring parameter heart rate during exercise is 6 bpm / min, the threshold lower limit is 110 bpm, and the threshold upper limit is 160 bpm.

[0114] S3, acquiring an exercise mode, wherein the exercise mode is a free mode or a fixed mode.

[0115] It can be understood that the movement mode is a movement rhythm control type mode confirmed before movement starts, the fixed mode is a fixed movement rhythm control type mode, that is, the user moves according to a predetermined monitoring time period and a predetermined interval time between adjacent monitoring time periods. The free mode is an adjustable movement rhythm control type mode, that is, the user can adjust the length of each monitoring time period or adjust the interval time between adjacent monitoring time periods according to the own condition or movement demand.

[0116] S4, acquiring a movement length, acquiring a plurality of monitoring time periods based on the movement length, a preset movement starting time, a movement mode, a movement confirmation unit and a preset confirmation method, wherein each monitoring time period comprises a monitoring starting time and a monitoring ending time.

[0117] In detail, the acquiring a plurality of monitoring time periods based on the movement length, the preset movement starting time, the movement mode, the movement confirmation unit and the preset confirmation method comprises:

[0118] acquiring an initial movement scheme based on the movement length, the movement confirmation unit and the movement starting time;

[0119] if the movement mode is the fixed mode, acquiring a plurality of fixed monitoring time periods based on the initial movement scheme;

[0120] if the movement mode is the free mode, acquiring a plurality of free monitoring time periods based on the initial movement scheme and a preset monitoring time period adjustment mode;

[0121] taking the plurality of fixed monitoring time periods or the plurality of free monitoring time periods as the plurality of monitoring time periods.

[0122] It can be understood that the exercise duration of the exercise confirmation unit is the total duration that the user plans to spend in an exercise process. For example, the user plans to spend 1 hour on a treadmill. The exercise start time is 10:00 am. The process of obtaining multiple monitoring time periods by using the confirmation method is as follows: the user inputs the exercise duration of 1 hour and the exercise start time of 10:00 am on the display page of the exercise confirmation unit. After the exercise confirmation unit receives the exercise duration and the exercise start time, the initial exercise scheme is presented on the display page: the first monitoring time period (10:00-10:10), the second monitoring time period (10:15-10:30), the third monitoring time period (10:35-10:45), and the fourth monitoring time period (10:50-11:00). The user selects the exercise mode. If the fixed mode is selected, the multiple monitoring time periods are the four monitoring time periods given in the initial exercise scheme. If the free mode is selected, the user adjusts the initial exercise scheme according to the self-state or training requirements by using a preset monitoring time period adjustment method. Optionally, the monitoring time period adjustment method includes but is not limited to: increasing or decreasing the corresponding duration of the monitoring time period, increasing or decreasing the interval time between adjacent monitoring time periods. The process of obtaining multiple free monitoring time periods is as follows. For example, it is assumed that the user adjusts the information on the display page of the exercise confirmation unit according to the habit of the user's usual exercise, for example, selects to increase by 5 minutes in the monitoring time period confirmation, and selects to remain unchanged in the interval time confirmation between adjacent monitoring time periods. Finally, the exercise confirmation unit gives the adjusted multiple free monitoring time periods as follows: the first monitoring time period (10:00-10:15), the second monitoring time period (10:20-10:40), and the third monitoring time period (10:45-11:00).

[0123] S5, obtaining an initial adjustable display area and an initial auxiliary display area based on the multi-parameter display screen.

[0124] It should be explained that the initial adjustable display area and the initial auxiliary display area are obtained based on the multi-parameter display screen, including:

[0125] respectively obtaining the display height and the display angle of the multi-parameter display screen;

[0126] obtaining the user's line-of-sight height based on a pre-constructed detection technology;

[0127] obtaining a target distance value based on the user's line-of-sight height, the display height, the display angle, and a preset target distance value calculation formula, wherein the target distance value calculation formula is as follows:

[0128]

[0129] wherein H s represents the target distance value, H erepresents the user eye height, H b represents the display height, represents the display angle, and sin represents the sine value of the display angle.

[0130] Based on the target distance value, a target center horizontal axis is obtained, an initial adjustable display area is obtained by using the target center horizontal axis and a preset area acquisition method, and an initial auxiliary display area is obtained based on the initial adjustable display area and the multi-parameter display screen.

[0131] It can be understood that the multi-parameter display screen is a human-computer interaction interface on the fitness equipment for dynamically displaying a set of monitoring parameters (including necessary parameters and user preferred parameters), and supports adaptive adjustment of layout and brightness. The display height represents the vertical distance of the bottom of the multi-parameter display screen relative to the horizontal ground. The display angle represents the inclined angle between the display plane of the multi-parameter display screen and the horizontal ground, and is used to quantify the pitch attitude of the multi-parameter display screen. The user eye height represents the vertical distance of the user's eyes in a natural standing or motion posture relative to the horizontal ground, and is used to determine the visual alignment reference of the human eye and the multi-parameter display screen. The pre-constructed detection technology is a line-of-sight tracking technology pre-established by a sensor and an algorithm, and is used to detect the spatial position of the user's eyes. Optionally, the face feature point detection algorithm of OpenCV+Dlib can be used as the detection technology to realize this process, which is prior art and will not be described here. The target distance value is a distance measured upward from the bottom of the multi-parameter display screen along the surface of the multi-parameter display screen, which is calculated according to the user eye height, the display height and the display angle, and is used to accurately determine the best layout reference position of the display screen content, so as to realize the optimal balance between visual comfort and information acquisition efficiency of human-computer interaction.

[0132] It should be understood that the target center horizontal axis is a virtual reference line determined on the multi-parameter display screen based on the target distance value. The area acquisition method is an adaptive layout method for assigning dynamic weights to the display area, and a core display area is generated symmetrically with the target center horizontal axis as the center, and the weight exponentially decays with the increase of the distance from the center line. Optionally, a dynamic focusing algorithm based on Gaussian weight distribution can be used as the area acquisition algorithm to realize this process, which is prior art and will not be described here. The embodiment of the present application dynamically divides the initial adjustable display area (core / warning parameter area) and the initial auxiliary display area (auxiliary parameter area) by obtaining the target distance value, and replaces the hardware mechanical adjustment with software virtual partitioning, so that the core parameter area intelligently follows the user's line of sight, and the adaptive layout of the multi-parameter display screen is realized.

[0133] S6, constructing a display scheme based on the plurality of monitoring time periods, the threshold node set, the monitoring parameter acquisition unit, the ambient brightness sensor, the infrared camera, the initial adjustable display area, and the initial auxiliary display area, wherein the display scheme is a first display scheme or a second display scheme, and the display scheme is used to realize multi-parameter electronic control display optimization of the fitness equipment electronic watch.

[0134] It should be explained that the display scheme is constructed based on the plurality of monitoring time periods, the threshold node set, the monitoring parameter acquisition unit, the ambient brightness sensor, the infrared camera, the initial adjustable display area, and the initial auxiliary display area, which includes:

[0135] The following operations are performed for each monitoring time period in the plurality of monitoring time periods:

[0136] The exercise time is obtained in real time, and the following operations are performed for each monitoring parameter in the monitoring parameter set when the exercise time reaches the monitoring start time corresponding to the monitoring time period:

[0137] The monitoring node set is obtained based on the monitoring parameter acquisition unit and the monitoring time period, wherein the monitoring node set includes a plurality of monitoring nodes, and each monitoring node includes a monitoring value and a monitoring time;

[0138] The plurality of monitoring node sets are obtained by aggregating the monitoring node set;

[0139] The continuous exercise duration is obtained based on the monitoring time period when the exercise time reaches the monitoring end time corresponding to the monitoring time period, wherein the continuous exercise duration is the time interval between the monitoring start time and the monitoring end time corresponding to the monitoring time period, and the target display brightness value is obtained based on the continuous exercise duration, the ambient brightness sensor, and the infrared camera;

[0140] The following operations are performed for each monitoring node set in the plurality of monitoring node sets:

[0141] The monitoring nodes in the monitoring node set are sorted in the order from the back to the front according to the monitoring time, to obtain a monitoring sequence, wherein the monitoring sequence corresponds to the monitoring parameter one by one;

[0142] The plurality of monitoring sequences are obtained by aggregating the monitoring sequences, and the monitoring sequence is extracted from the plurality of monitoring sequences in sequence, and the threshold node corresponding to the monitoring sequence is confirmed based on the monitoring sequence in the threshold node set;

[0143] It is confirmed whether the monitoring sequence and the threshold node meet a pre-constructed warning condition, wherein the warning condition is as follows:

[0144]

[0145] wherein n represents the total number of monitoring nodes in the monitoring sequence, a1, a i , ai-1 They represent the monitoring values ​​corresponding to the 1st, i-th, and i-1th monitoring nodes in the monitoring sequence, respectively. i 、T i-1 They represent the monitoring time corresponding to the 1st, i-th, and i-1th monitoring nodes in the monitoring sequence, Δa represents the threshold rate corresponding to the threshold node, and a h Indicates the upper threshold limit corresponding to the threshold node, a l Indicates the lower threshold value corresponding to the threshold node;

[0146] If no monitoring sequence and threshold node satisfy the warning condition, construct a first display scheme based on the multiple monitoring sequences, the threshold node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value; otherwise, obtain one or more warning node sets based on the multiple monitoring sequences, wherein each of the one or more warning node sets satisfies the warning condition;

[0147] constructing a second display scheme based on the monitoring parameter set, the one or more warning node sets, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value;

[0148] The first display scheme or the second display scheme is used as the display scheme.

[0149] It can be understood that the monitoring parameter acquisition unit is a module for collecting a plurality of motion parameter values in real time. Assuming that a monitoring time period is 10:00-10:10, and the monitoring parameter is heart rate, the monitoring node set corresponding to the monitoring parameter heart rate is {110bpm-10:01, 113bpm-10:03, 118bpm-10:04, 116bpm-10:05, 120bpm-10:06, 122bpm-10:08, 126bpm-10:10}, the corresponding monitoring sequence is {126bpm-10:10, 122bpm-10:08, 120bpm-10:06, 116bpm-10:05, 118bpm-10:04, 113bpm-10:03, 110bpm-10:01}, and the threshold node corresponding to the monitoring parameter heart rate is {heart rate: 6bpm / min-110bpm-160bpm}. Whether the monitoring sequence and the threshold node corresponding to the monitoring parameter heart rate in the judgment example meet the warning condition is determined. The warning condition is used to confirm which display scheme is optimal under the current condition (the monitoring sequence and the threshold node corresponding to each monitoring parameter in the monitoring parameter set). The condition for using the first display scheme is that the monitoring sequence and the threshold node corresponding to each monitoring parameter in the monitoring parameter set do not meet the warning condition. The condition for using the second display scheme is that the monitoring sequence and the threshold node corresponding to a monitoring parameter in the monitoring parameter set meet the warning condition (one or more can meet). The confirmation principle of the warning condition is that the parameter value change rate and the weighted average double threshold condition are used to evaluate the motion risk. If any monitoring parameter increases / decreases too fast (the parameter value change rate change rate is greater than a preset threshold rate) or the monitoring value is continuously high / low (the weighted average is greater than the upper threshold or less than the lower threshold, that is, the warning condition is established.

[0150] It should be understood that the first display scheme is a regular layout when there is no motion risk, and the core parameter and the auxiliary parameter are displayed in a default proportion, and the brightness is automatically adapted to the current environment. The second display scheme is a warning layout after the risk is triggered (the warning condition is established), the core / warning parameter is highlighted, and the auxiliary parameter is weakened or hidden, so that the user can capture the key warning parameter information at the first time. The embodiment of the application can determine whether the monitoring value is too fast or exceeds the limit in the monitoring time period, highlight the core / warning value when there is a motion risk (construct the second display scheme), facilitate the user to pay attention to the current motion state, and keep the regular partition when there is no risk (construct the first display scheme), thereby improving the convenience of the user to obtain the key motion state.

[0151] In detail, the target display brightness value is obtained based on the continuous motion time length, the ambient brightness sensor and the infrared camera, including:

[0152] The current ambient brightness value is obtained based on the ambient brightness sensor.

[0153] obtaining an eye fatigue coefficient by using the infrared camera;

[0154] obtaining a target display brightness value based on the current environment brightness value, the eye fatigue coefficient, the continuous motion duration and a pre-constructed target display brightness value calculation formula, wherein the target display brightness value calculation formula is as follows:

[0155]

[0156] wherein B d represents the target display brightness value, B max represents a preset maximum display brightness value, B min represents a preset minimum display brightness value, L c represents the current environment brightness value, L min represents a preset lower limit of the environment brightness value, L max represents a preset upper limit of the environment brightness value, t represents the continuous motion duration, E represents the eye fatigue coefficient, t max represents a preset maximum continuous motion duration threshold, w1, w2 and w3 respectively represent a preset first weight, a preset second weight and a preset third weight.

[0157] It can be understood that the environment brightness sensor is a photoelectric sensing module for collecting the current environment light intensity. Optionally, a sensor with a model of MAX44009 can be used as the environment brightness sensor to achieve this process, which is prior art and will not be described here. The current environment brightness value is a quantitative value of the intensity of visible light in the current environment, which is usually represented by the luminous flux per unit area. The infrared camera is a sensor that captures the eye features of the user by receiving infrared waves. The eye fatigue coefficient is a quantitative value calculated based on the eye features (such as blink frequency, eyelid closure time, pupil change, etc.) captured by the infrared camera, which is used to objectively evaluate the eye fatigue degree. The higher the value, the more significant the fatigue state (the eye fatigue coefficient is usually normalized to 0-1, 0 represents complete wakefulness, and 1 represents high fatigue). Optionally, the infrared camera combined with a machine learning model can be used to obtain the eye fatigue coefficient, which is prior art and will not be described here. The calculation principle of the target display brightness value calculation formula is as follows: the larger the current environment brightness value L c , the larger the target display brightness value B d (the brighter it needs to be to see clearly), the larger the continuous motion duration t, the smaller the target display brightness value B d (the longer the motion, the more fatigue, and the brightness is appropriately reduced), the larger the eye fatigue coefficient E, the smaller the target display brightness value B dThe smaller (reducing the brightness to reduce the user's eye load). The maximum display brightness value is the maximum display brightness allowed by the multi-parameter display screen, the minimum display brightness value is the minimum display brightness allowed by the multi-parameter display screen, the environment brightness value lower limit is the lowest environment light intensity threshold value that can be recognized by the environment illuminance sensor, and the environment brightness value upper limit is the highest environment light intensity threshold value that can be recognized by the environment illuminance sensor.

[0158] Further, the first display scheme is constructed based on the plurality of monitoring sequences, the threshold node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value, and the first display scheme comprises:

[0159] A monitoring sequence is extracted from the plurality of monitoring sequences in sequence, and a threshold node corresponding to the monitoring sequence is determined based on the monitoring sequence in the threshold node set;

[0160] A rate ratio is obtained based on the monitoring sequence, the threshold node, and a pre-constructed rate ratio calculation formula, wherein the rate ratio calculation formula is as follows:

[0161]

[0162] Wherein ε represents the rate ratio, and Δb represents the threshold rate corresponding to the threshold node.

[0163] An analysis monitoring node is extracted from the monitoring sequence, wherein the analysis monitoring node is a monitoring node with a bit sequence of one in the monitoring sequence.

[0164] The monitoring value corresponding to the analysis monitoring node is taken as an analysis value.

[0165] The monitoring parameter corresponding to the analysis monitoring node is taken as an analysis monitoring parameter.

[0166] The rate ratio, the analysis parameter value, and the analysis monitoring parameter are associated to obtain an analysis node.

[0167] The analysis nodes are summarized to obtain an analysis node set.

[0168] The first display scheme is constructed based on the analysis node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value.

[0169] It can be understood that the rate ratio is a normalized ratio of the actual change rate of the monitoring parameter in a unit time to the threshold rate, which is used to quantify the fluctuation intensity of the parameter value in the movement process. For example, assuming that the threshold node corresponding to the monitoring parameter heart rate is {heart rate: 6 bpm / min-110 bpm-160 bpm}, the threshold rate is 6 bpm / min, and the rate ratio calculation formula considers the time interval between adjacent monitoring nodes. The shorter the time interval, the greater the influence of the corresponding monitoring value on the calculation result of the rate ratio (for example, the weight of the monitoring value collected at a higher frequency during the movement is greater), which realizes accurate quantification of the dynamic change of the monitoring parameter. Assuming that the monitoring sequence is {126 bpm-10:10, 122 bpm-10:08, 120 bpm-10:06, 116 bpm-10:05, 118 bpm-10:04, 113 bpm-10:03, 110 bpm-10:01}, the analysis monitoring node with a bit sequence of one is 126 bpm-10:10, and the analysis value is 126 bpm. The rate ratio calculated from the monitoring sequence in the example is 2.58 bpm / min, so the rate ratio is the ratio of 2.58 bpm / min to the threshold rate 6 bpm / min: 2.58 / 6=43 / 100, and the analysis node corresponding to the monitoring parameter heart rate is (heart rate-43 / 100, 126). Similarly, the analysis nodes corresponding to other monitoring parameters can be obtained.

[0170] It should be explained that the first display scheme is constructed based on the analysis node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value, which includes:

[0171] The analysis values corresponding to the analysis nodes in the analysis node set are sorted in descending order of the rate ratio, and an analysis sequence is obtained;

[0172] Based on the analysis sequence and the preset bit sequence threshold, a core value set and an auxiliary value set are obtained, wherein the bit sequence of the core value in the core value set in the analysis sequence is less than or equal to the bit sequence threshold, and the bit sequence of the auxiliary value in the auxiliary value set in the analysis sequence is greater than the bit sequence threshold;

[0173] The first display scheme is constructed based on the core value set, the auxiliary value set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value, wherein the first display scheme is as follows:

[0174] Based on the initial adjustable display area, the target display brightness value, and the preset core area background, a core display area is obtained, the core parameter value set is displayed using the core display area, and a visual core parameter area is obtained;

[0175] ​obtaining the auxiliary display area based on the initial auxiliary display area, the target display brightness value and a preset auxiliary area background, and displaying the auxiliary parameter value set by using the auxiliary display area to obtain a visual auxiliary parameter area, wherein the first display scheme includes the visual core parameter area and the visual auxiliary parameter area.

[0176] For example, assuming that the analysis node set is {(heart rate-43 / 100, 126), (blood oxygen-20 / 100, 100), (average speed-30 / 100, 10)}, the analysis sequence is {(heart rate-43 / 100, 126), (average speed-130 / 100, 10), (blood oxygen-20 / 100, 100)}. The preset bit sequence threshold is a critical bit sequence number for dividing the core value set and the auxiliary value set. In the analysis sequence, the bit sequence of the core value set is less than or equal to the bit sequence threshold, and the bit sequence of the auxiliary value set is greater than the bit sequence threshold. Assuming that the bit sequence threshold is 2, the core value set is {(heart rate-43 / 100, 126), (average speed-30 / 100, 10)}, and the auxiliary value set is {(blood oxygen-20 / 100, 100). The core display area is an area in the multi-parameter display screen for preferentially displaying high-priority parameters (core value set). By setting the core area background to have a higher visual weight than the auxiliary display area, the core value is ensured to be prominently presented. The auxiliary display area is a display area in the multi-parameter display screen for displaying low-priority parameters (auxiliary value set), which has a lower visual weight than the core display area, ensuring that the interface information is complete but does not interfere with the presentation of the core value in the auxiliary display area. The preset core area background of the core display area is a background style (such as color, texture or contrast) artificially set in advance, which is used to enhance the visual recognition of the core parameter. The preset auxiliary area background is a background style (such as light color or low contrast) artificially set in advance, which is used to distinguish the auxiliary display area from the core display area. The visual core parameter area is the core display area that displays the core value set, and the visual auxiliary parameter area is the auxiliary display area that displays the auxiliary value set. The embodiment of the application realizes adaptive partition display by dynamically prioritizing, ensures that the core value is presented first, and enhances the core content by using different area backgrounds to realize adaptive partition display. Not only is the interface layout of the multi-parameter display screen optimized, but also the information acquisition efficiency during exercise is improved.

[0177] In detail, the second display scheme is constructed based on the monitoring parameter set, the one or more warning node sets, the initial adjustable display area, the initial auxiliary display area and the target display brightness value, and includes:

[0178] obtaining a first warning value set based on the one or more warning node sets;

[0179] Counting the number of monitoring parameters in the monitoring parameter set and the number of warning nodes in the one or more warning node sets, to obtain a monitoring number and a warning number;

[0180] Calculating the ratio of the warning number to the monitoring number, to obtain a warning ratio;

[0181] Using the warning ratio, the initial adjustable display area, and the initial auxiliary display area to construct a second display scheme, wherein the second display scheme is as follows:

[0182] If the warning ratio is less than or equal to a preset warning ratio threshold, the initial adjustable display area is an initial first warning display area;

[0183] Based on the initial first warning display area, a target display brightness value, and a preset first warning area background, a first warning display area is obtained;

[0184] Otherwise, using a preset display area adjustment method to perform a region adjustment operation on the initial adjustable display area and the initial auxiliary display area, to obtain an initial second warning display area, wherein the area of the initial second warning display area is greater than the area of the initial first warning display area;

[0185] Based on the initial second warning display area, the target display brightness value, and a preset second warning area background, a second warning display area is obtained;

[0186] Displaying a first-level warning value set in the first warning display area or the second warning display area, to obtain a visual warning parameter area, wherein the second display scheme includes the visual warning parameter area.

[0187] It should be understood that the first warning value set is a set of monitoring values directly triggering a warning condition, with the highest display priority, and needs to be presented visually in a dedicated warning display area (first / second warning display area) to ensure that the user can perceive the movement risk in time. The warning node set is a set of monitoring nodes that meet the warning condition, and the corresponding monitoring parameters have abnormal fluctuations (change rate exceeds the limit or weighted mean exceeds the limit) within the monitoring period. For example, assuming that there are 6 monitoring parameters (i.e., the monitoring quantity is 6), and 2 warning nodes (i.e., the warning quantity is 2), the warning ratio is 2 / 6 = 1 / 3, and the preset warning ratio threshold is a critical ratio for determining whether to expand the warning display area. When the warning ratio exceeds the warning ratio threshold, the warning area is automatically expanded to strengthen the risk prompt. If the warning ratio threshold is 1 / 2, the warning ratio 1 / 3 is less than the warning ratio threshold 1 / 2, indicating that only a small number of monitoring parameters (such as 1 / 3) trigger the warning condition, and the critical value of global strong warning is not reached. The default first warning display area (initial adjustable display area) can be used to display abnormal parameters, and the warning area does not need to be expanded. If the warning ratio is 2 / 3, the warning ratio 2 / 3 is greater than the warning ratio threshold 1 / 2, indicating that more than half of the monitoring parameters (such as 2 / 3) trigger the warning condition, and it is determined that the current movement state is in a high-risk state (multiple monitoring parameters are abnormal). The warning area is automatically expanded (upgraded from the first warning display area to the second warning display area), and all abnormal parameters are displayed in a larger area and stronger visual contrast (such as a red flashing background in the second warning area). The first warning area background is a local warning visual style (such as a yellow highlighted border) preset by a person, which is used to gently prompt a single / limited number of abnormal parameters when the warning ratio is less than or equal to the warning ratio threshold, and to maintain the stability of the overall layout of the interface. The second warning area background is a global warning visual style (such as a red dynamic flashing background) preset by a person, which is used to strongly warn and intervene in multiple parameter abnormalities when the warning ratio is greater than the warning ratio threshold, and to expand the area and enhance the contrast to forcibly attract the user's attention by using the preset display area adjustment mode. The preset display area adjustment mode includes but is not limited to horizontal expansion, vertical expansion, and dynamic breathing expansion. The visual warning parameter area is the first warning display area or the second warning display area that displays the first warning value set. The embodiment of the present application quantifies the proportion of warning parameters (warning ratio), intelligently switches between local / global warning modes, and uses area expansion (display area adjustment mode) and visual enhancement (distinguishing between first / second warning area backgrounds to accurately match warning intensity and risk level) to enable the user to quickly and conveniently obtain key warning parameter information and improve the efficiency of movement safety monitoring.

[0188] The application receives a multi-parameter display optimization instruction, confirms a multi-parameter optimization system based on the multi-parameter display optimization instruction, and includes a motion confirmation unit, a monitoring parameter acquisition unit, a multi-parameter display screen, an environment brightness sensor, and an infrared camera, acquires a monitoring parameter set, wherein the monitoring parameter set contains multiple monitoring parameters, acquires a threshold node set based on the monitoring parameter set, wherein the threshold node set contains multiple threshold nodes, and each threshold node contains a threshold rate, a threshold upper limit, and a threshold lower limit, wherein the threshold node corresponds to the monitoring parameter one by one, and it can be seen that the application dynamically fuses necessary parameters (used for motion safety monitoring) and user preference parameters (meet individualized monitoring needs), generates a monitoring parameter set based on intelligent threshold control, can ensure that the multi-parameter display screen completely presents necessary safety monitoring parameters, and can also display key monitoring information according to user preferences, effectively solving the dual problems of easy omission of necessary parameters and difficult focusing of massive parameters in the traditional display scheme.Through the dynamic balance mechanism, the rigidity requirement of the sports safety monitoring is guaranteed, and the efficiency of the user obtaining the key information is improved, the sports mode is obtained, the sports mode is a free mode or a fixed mode, a sports duration is obtained, a plurality of monitoring time periods are obtained based on the sports duration, a preset sports starting time, the sports mode and a preset confirmation method, each monitoring time period includes a monitoring starting time and a monitoring ending time, an initial adjustable display area and an initial auxiliary display area are obtained based on the multi-parameter display screen, and it can be seen that the initial adjustable display area (core / warning parameter area) and the initial auxiliary display area (auxiliary parameter area) are dynamically divided by obtaining the target distance value, the software virtual partition is used to replace the hardware mechanical adjustment, the core parameter area intelligently follows the user's line of sight to move, the adaptive layout of the multi-parameter display screen is realized, the display scheme is constructed based on the plurality of monitoring time periods, a threshold node set, a monitoring parameter acquisition unit, an environment brightness sensor, an infrared camera, the initial adjustable display area and the initial auxiliary display area, the display scheme is a first display scheme or a second display scheme, the multi-parameter electric control display optimization of the fitness equipment electronic watch is realized based on the display scheme, it can be seen that whether the monitoring value is too fast or exceeds the limit in the monitoring time period is determined, the core / warning value is mainly displayed (the second display scheme is constructed) when there is a sports risk, the user is facilitated to pay attention to the current sports state, the regular partition is maintained (the first display scheme is constructed) when there is no risk, the convenience of the user obtaining the key sports state is improved, the adaptive partition display is realized through the dynamic priority sorting, the core value is ensured to be presented preferentially, the core content is strengthened through different area backgrounds, the adaptive partition display is realized, not only the interface layout of the multi-parameter display screen is optimized, but also the information acquisition efficiency in the sports process is improved, the local / global warning mode is intelligently switched through the quantitative warning parameter proportion (warning ratio), the area expansion (display area adjustment mode) and the visual strengthening (the first / second warning area background is distinguished to realize the accurate matching of the warning intensity and the risk level, the user can obtain the key warning parameter information more quickly and conveniently, and the sports safety monitoring efficiency is improved. Therefore, the dynamic adaptability of the fitness equipment electronic watch display optimization can be improved.

[0189] As Figure 2 shown is a functional module diagram of a multi-parameter electric control display optimization system of a fitness equipment electronic watch provided by an embodiment of the application.

[0190] The fitness equipment electronic watch multi-parameter electric control display optimization system 100 can be installed in an electronic device. According to the functions to be implemented, the fitness equipment electronic watch multi-parameter electric control display optimization system 100 can include a monitoring parameter acquisition module 101, a movement period confirmation module 102, a display partition initialization module 103, and a display partition optimization module 104. The modules in the present application can also be referred to as units, which refer to a series of computer program segments that can be executed by an electronic device processor and can complete a fixed function, which are stored in the memory of the electronic device.

[0191] The monitoring parameter acquisition module 101 is configured to receive a multi-parameter display optimization instruction, and confirm a multi-parameter optimization system based on the multi-parameter display optimization instruction, wherein the multi-parameter optimization system includes a movement confirmation unit, a monitoring parameter acquisition unit, a multi-parameter display screen, an ambient brightness sensor, and an infrared camera.

[0192] A set of monitoring parameters is acquired, wherein the set of monitoring parameters includes a plurality of monitoring parameters. A set of threshold nodes is acquired based on the set of monitoring parameters, wherein the set of threshold nodes includes a plurality of threshold nodes, and each threshold node includes a threshold rate, a threshold upper limit, and a threshold lower limit, wherein the threshold nodes correspond one-to-one to the monitoring parameters.

[0193] The movement period confirmation module 102 is configured to acquire a movement mode, wherein the movement mode is a free mode or a fixed mode.

[0194] The display partition initialization module 103 is configured to acquire a movement duration, acquire a plurality of monitoring periods based on the movement duration, a preset movement start time, a movement mode, a movement confirmation unit, and a preset confirmation method, wherein each monitoring period includes a monitoring start time and a monitoring end time.

[0195] The display partition optimization module 104 is configured to acquire an initial adjustable display area and an initial auxiliary display area based on the multi-parameter display screen.

[0196] A display scheme is constructed based on the plurality of monitoring periods, the set of threshold nodes, the monitoring parameter acquisition unit, the ambient brightness sensor, the infrared camera, the initial adjustable display area, and the initial auxiliary display area, wherein the display scheme is a first display scheme or a second display scheme, and the fitness equipment electronic watch multi-parameter electric control display optimization is implemented based on the display scheme.

[0197] In detail, the modules in the fitness equipment electronic watch multi-parameter electric control display optimization system 100 in the embodiments of the present application use the same technical means as the fitness equipment electronic watch multi-parameter electric control display optimization method described in the above Figure 1 , and can produce the same technical effects, which will not be described here again.

[0198] As Figure 3 Fig. 1 is a structural schematic diagram of an electronic device for implementing the method for optimizing multi-parameter electric control display of a fitness equipment electronic watch according to an embodiment of the present application.

[0199] The electronic device 1 can include a processor 10, a memory 11 and a bus 12, and can further include a computer program stored in the memory 11 and executable on the processor 10, such as a program for optimizing multi-parameter electric control display of a fitness equipment electronic watch.

[0200] The memory 11 includes at least one type of readable storage medium, such as a flash memory, a mobile hard disk, a multimedia card, a card-type memory (e.g. an SD or DX memory, etc.), a magnetic memory, a magnetic disk, an optical disk, etc. In some embodiments, the memory 11 can be an internal storage unit of the electronic device 1, such as a mobile hard disk of the electronic device 1. In other embodiments, the memory 11 can also be an external storage device of the electronic device 1, such as a plug-in mobile hard disk, a smart media card (SMC), a secure digital (SD) card, a flash card, etc. equipped on the electronic device 1. Further, the memory 11 includes both an internal storage unit and an external storage device of the electronic device 1. The memory 11 can be used not only to store application software and various data installed on the electronic device 1, such as the code of the program for optimizing multi-parameter electric control display of a fitness equipment electronic watch, but also to temporarily store data that has been output or will be output.

[0201] The processor 10 can be composed of an integrated circuit in some embodiments, such as a single packaged integrated circuit or a plurality of packaged integrated circuits with the same or different functions, including one or more combinations of a central processing unit (CPU), a microprocessor, a digital processing chip, a graphics processor and various control chips, etc. The processor 10 is the control unit of the electronic device, which connects various components of the entire electronic device through various interfaces and lines, executes or runs programs or modules stored in the memory 11 (such as the program for optimizing multi-parameter electric control display of a fitness equipment electronic watch, etc.), and calls data stored in the memory 11 to perform various functions and process data of the electronic device 1.

[0202] The bus 12 may be a Peripheral Component Interconnect (PCI) bus or an Extended Industry Standard Architecture (EISA) bus. The bus 12 may be divided into an address bus, a data bus, a control bus, etc. The bus 12 is configured to enable communication between the memory 11 and at least one processor 10.

[0203] Figure 3 Only the electronic device with components is shown, and it can be understood by those skilled in the art that Figure 3 The structure shown does not constitute a limitation on the electronic device 1 , and may include fewer or more components than shown in the figure, or combine certain components, or arrange the components differently.

[0204] For example, although not shown, the electronic device 1 may further include a power source (such as a battery) for powering the various components. Preferably, the power source may be logically connected to the at least one processor 10 via a power management device, thereby implementing functions such as charging management, discharging management, and power consumption management through the power management device. The power source may further include any components such as one or more DC or AC power sources, a recharging device, a power failure detection circuit, a power converter or inverter, a power status indicator, etc. The electronic device 1 may further include various sensors, Bluetooth modules, Wi-Fi modules, etc., which will not be described in detail here.

[0205] Furthermore, the electronic device 1 may also include a network interface. Optionally, the network interface may include a wired interface and / or a wireless interface (such as a WI-FI interface, a Bluetooth interface, etc.), which is generally used to establish a communication connection between the electronic device 1 and other electronic devices.

[0206] Optionally, the electronic device 1 may further include a user interface, which may be a display or an input unit (such as a keyboard). Optionally, the user interface may also be a standard wired interface or a wireless interface. Optionally, in some embodiments, the display may be an LED display, a liquid crystal display, a touch-sensitive liquid crystal display, or an OLED (Organic Light-Emitting Diode) touch device. The display may also be appropriately referred to as a display screen or a display unit, which is used to display information processed in the electronic device 1 and to display a visual user interface.

[0207] The fitness equipment electronic watch multi-parameter electric control display optimization method program stored in the memory 11 in the electronic device 1 is a combination of multiple instructions, which can realize the following technical effects when running in the processor 10:

[0208] Receiving a multi-parameter display optimization instruction, and determining a multi-parameter optimization system based on the multi-parameter display optimization instruction, wherein the multi-parameter optimization system comprises a motion determination unit, a monitoring parameter acquisition unit, a multi-parameter display screen, an ambient brightness sensor, and an infrared camera.

[0209] Obtaining a monitoring parameter set, wherein the monitoring parameter set comprises multiple monitoring parameters, and obtaining a threshold node set based on the monitoring parameter set, wherein the threshold node set comprises multiple threshold nodes, and each threshold node comprises a threshold rate, a threshold upper limit, and a threshold lower limit, wherein the threshold nodes correspond to the monitoring parameters one by one.

[0210] Obtaining a motion mode, wherein the motion mode is a free mode or a fixed mode.

[0211] Obtaining a motion duration, and obtaining multiple monitoring time periods based on the motion duration, a preset motion start time, the motion mode, the motion determination unit, and a preset determination method, wherein each monitoring time period comprises a monitoring start time and a monitoring end time.

[0212] Obtaining an initial adjustable display area and an initial auxiliary display area based on the multi-parameter display screen.

[0213] Constructing a display scheme based on the multiple monitoring time periods, the threshold node set, the monitoring parameter acquisition unit, the ambient brightness sensor, the infrared camera, the initial adjustable display area, and the initial auxiliary display area, wherein the display scheme is a first display scheme or a second display scheme, and realizing fitness equipment electronic watch multi-parameter electric control display optimization based on the display scheme.

[0214] Specifically, the specific implementation method of the processor 10 to the above instructions can refer to Figures 1 to 3 The descriptions of related steps in the corresponding embodiments are not repeated here.

[0215] Further, the modules / units integrated in the electronic device 1 are implemented in the form of software function units and sold or used as independent products, which can be stored in a computer readable storage medium. The computer readable storage medium can be volatile or non-volatile. For example, the computer readable medium can include any entity or device capable of carrying the computer program code, a recording medium, a U disk, a mobile hard disk, a magnetic disk, an optical disk, a computer memory, a read-only memory (ROM).

[0216] The application further provides a computer readable storage medium, wherein the computer readable storage medium stores a computer program, and the computer program can realize the following steps when executed by a processor of an electronic device:

[0217] The multi-parameter display optimization instruction is received, and a multi-parameter optimization system is confirmed based on the multi-parameter display optimization instruction, wherein the multi-parameter optimization system comprises a motion confirmation unit, a monitoring parameter acquisition unit, a multi-parameter display screen, an ambient brightness sensor and an infrared camera.

[0218] A monitoring parameter set is acquired, wherein the monitoring parameter set comprises a plurality of monitoring parameters, a threshold node set is acquired based on the monitoring parameter set, wherein the threshold node set comprises a plurality of threshold nodes, and each threshold node comprises a threshold rate, a threshold upper limit and a threshold lower limit, wherein the threshold nodes correspond to the monitoring parameters one by one.

[0219] A motion mode is acquired, wherein the motion mode is a free mode or a fixed mode.

[0220] A motion duration is acquired, a plurality of monitoring time periods are acquired based on the motion duration, a preset motion starting time, the motion mode, the motion confirmation unit and a preset confirmation method, wherein each monitoring time period comprises a monitoring starting time and a monitoring ending time.

[0221] An initial adjustable display area and an initial auxiliary display area are acquired based on the multi-parameter display screen.

[0222] A display scheme is constructed based on the plurality of monitoring time periods, the threshold node set, the monitoring parameter acquisition unit, the ambient brightness sensor, the infrared camera, the initial adjustable display area and the initial auxiliary display area, wherein the display scheme is a first display scheme or a second display scheme, and multi-parameter electronic control display optimization of a fitness equipment electronic watch is realized based on the display scheme.

[0223] In several embodiments provided in the application, it should be understood that the disclosed devices, systems and methods can be implemented in other ways. For example, the system embodiments described above are only illustrative, and actual implementation can have another division manner.

[0224] The modules described as separate components can or can not be physically separated, and the components displayed as modules can or can not be physical units, that is, can be located in one place, or can be distributed on a plurality of network units. According to actual needs, part or all of the modules can be selected to realize the purpose of the embodiment scheme.

[0225] In addition, each function module in each embodiment of the present application can be integrated in one processing unit, or each unit can exist physically separately, or two or more units can be integrated in one unit. The integrated unit can be realized in the form of hardware or in the form of hardware plus software function module.

[0226] It is obvious for those skilled in the art that the present application is not limited to the details of the above exemplary embodiments, and the present application can be realized in other specific forms without departing from the spirit or essential characteristics of the present application.

[0227] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application and are not limiting. Although the present application has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present application can be modified or replaced equivalently without departing from the spirit and scope of the technical solutions of the present application.

Claims

1. A method for optimizing the multi-parameter electronic control display of a fitness equipment electronic meter, characterized in that: The method comprises: receiving a multi-parameter display optimization instruction, and determining a multi-parameter optimization system based on the multi-parameter display optimization instruction, wherein the multi-parameter optimization system includes: a motion confirmation unit, a monitoring parameter acquisition unit, a multi-parameter display screen, an ambient brightness sensor, and an infrared camera; Obtaining a monitoring parameter set, wherein the monitoring parameter set includes multiple monitoring parameters, and obtaining a threshold node set based on the monitoring parameter set, wherein the threshold node set includes multiple threshold nodes, and each threshold node includes a threshold rate, an upper threshold limit, and a lower threshold limit, wherein the threshold nodes correspond to the monitoring parameters one by one; Acquiring a motion mode, wherein the motion mode is a free mode or a fixed mode; Obtaining exercise duration, and obtaining multiple monitoring periods based on the exercise duration, a preset exercise start time, an exercise mode, an exercise confirmation unit, and a preset confirmation method, wherein each monitoring period includes a monitoring start time and a monitoring end time; obtaining an initial adjustable display area and an initial auxiliary display area based on a multi-parameter display screen; A display scheme is constructed based on multiple monitoring time periods, threshold node sets, monitoring parameter acquisition units, ambient brightness sensors, infrared cameras, initial adjustable display areas, and initial auxiliary display areas, wherein the display scheme is a first display scheme or a second display scheme, and multi-parameter electronic control display optimization of an electronic table of fitness equipment is achieved based on the display scheme.

2. The method for optimizing the multi-parameter electronic control display of a fitness equipment electronic watch according to claim 1, characterized in that: The obtaining of the monitoring parameter set includes: Obtaining a required parameter set, wherein the required parameter set includes multiple required parameters; Obtaining a preference parameter node set, wherein the preference parameter node set includes a plurality of preference parameter nodes, wherein each preference parameter node includes a preference parameter and a preference degree; Count the number of preference parameter nodes in the preference parameter node set to obtain the number of preferences; comparing the number of preferences with a preset threshold of the number of preferences; If the number of preferences is less than or equal to the preference number threshold, obtaining a preference parameter set based on the preference parameter node set, summarizing the preference parameter set and the necessary parameter set to obtain a monitoring parameter set; Otherwise, sort the preference parameters corresponding to the preference parameter nodes in the preference parameter node set in descending order of preference to obtain a preference sequence; Acquiring a plurality of priority preference parameters based on the preference sequence, wherein the position of each of the plurality of priority preference parameters in the preference sequence is less than or equal to the preference quantity threshold; A plurality of preferred parameters and necessary parameter sets are aggregated to obtain a monitoring parameter set.

3. The method for optimizing the multi-parameter electronic control display of a fitness equipment electronic watch according to claim 2, wherein: The acquiring of multiple monitoring time periods based on the exercise duration, the preset exercise start time, the exercise mode, the exercise confirmation unit, and the preset confirmation method includes: Acquire an initial exercise plan based on the exercise duration, the exercise confirmation unit, and the exercise start time; If the exercise mode is a fixed mode, obtaining a plurality of fixed monitoring periods based on the initial exercise plan; If the exercise mode is a free mode, multiple free monitoring periods are obtained based on the initial exercise plan and the preset monitoring period adjustment method; The multiple fixed monitoring periods or the multiple free monitoring periods are used as multiple monitoring periods.

4. The method for optimizing the multi-parameter electronic control display of a fitness equipment electronic watch according to claim 3, wherein: The obtaining of the initial adjustable display area and the initial auxiliary display area based on the multi-parameter display screen includes: Get the display height and display angle of the multi-parameter display screen respectively; Obtain the user's eye level based on pre-built detection technology; Obtaining a target distance value based on the user's sight height, display height, display angle, and a preset target distance value calculation formula; A target center horizontal axis is obtained based on the target distance value, an initial adjustable display area is obtained using the target center horizontal axis and a preset area acquisition method, and an initial auxiliary display area is obtained based on the initial adjustable display area and a multi-parameter display screen.

5. The method for optimizing the multi-parameter electronic control display of a fitness equipment electronic watch according to claim 4, characterized in that: The display scheme is constructed based on multiple monitoring time periods, a threshold node set, a monitoring parameter acquisition unit, an ambient brightness sensor, an infrared camera, an initial adjustable display area, and an initial auxiliary display area, including: Perform the following operations for each of the multiple monitoring periods: The exercise time is obtained in real time. When the exercise time reaches the monitoring start time corresponding to the monitoring period, the following operations are performed on each monitoring parameter in the monitoring parameter set: Acquire a monitoring node set based on a monitoring parameter collection unit and a monitoring period, wherein the monitoring node set includes multiple monitoring nodes, and each monitoring node includes a monitoring value and a monitoring time; Aggregate the monitoring node sets to obtain multiple monitoring node sets; When the exercise time reaches the monitoring end time corresponding to the monitoring period, the continuous exercise duration is obtained based on the monitoring period, wherein the continuous exercise duration is the time interval between the monitoring start time and the monitoring end time corresponding to the monitoring period, and the target display brightness value is obtained based on the continuous exercise duration, the ambient brightness sensor and the infrared camera; For each of the multiple monitoring node sets, perform the following operations: Sorting the monitoring nodes in the monitoring node set in order from the last to the first monitoring time to obtain a monitoring sequence, wherein the monitoring sequence corresponds to the monitoring parameters one by one; Aggregate monitoring sequences to obtain multiple monitoring sequences; Extracting monitoring sequences from a plurality of monitoring sequences in sequence, and identifying threshold nodes corresponding to the monitoring sequences in a threshold node set based on the monitoring sequences; Confirm whether the monitoring sequence and threshold nodes meet the pre-established warning conditions, where the warning conditions are as follows: Among them, n means there are n monitoring nodes in the monitoring sequence, a1, a i 、a i-1 They represent the monitoring values ​​corresponding to the 1st, i-th, and i-1th monitoring nodes in the monitoring sequence, respectively. i 、T i-1 They represent the monitoring time corresponding to the 1st, i-th, and i-1th monitoring nodes in the monitoring sequence, Δa represents the threshold rate corresponding to the threshold node, and a h Indicates the upper threshold limit corresponding to the threshold node, a l Indicates the lower threshold value corresponding to the threshold node; If no monitoring sequence and threshold node satisfy the warning condition, construct a first display scheme based on the multiple monitoring sequences, the threshold node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value; otherwise, obtain one or more warning node sets based on the multiple monitoring sequences, wherein each of the one or more warning node sets satisfies the warning condition; constructing a second display scheme based on the monitoring parameter set, the one or more warning node sets, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value; The first display scheme or the second display scheme is used as the display scheme.

6. The method for optimizing the multi-parameter electronic control display of a fitness equipment electronic watch according to claim 5, characterized in that: The acquiring of the target display brightness value based on the continuous motion duration, the ambient brightness sensor, and the infrared camera includes: Acquire a current ambient brightness value based on the ambient brightness sensor; Obtaining an eye fatigue coefficient using the infrared camera; The target display brightness value is obtained based on the current ambient brightness value, eye fatigue coefficient, continuous exercise duration, and a pre-built target display brightness value calculation formula, wherein the target display brightness value calculation formula is as follows: Among them, B d Indicates the target display brightness value, B max Indicates the preset maximum display brightness value, B min Indicates the preset minimum display brightness value, L c Indicates the current ambient brightness value, L min Indicates the preset lower limit of the ambient brightness value, L max represents the preset upper limit of the ambient brightness value, t represents the duration of the continuous exercise, E represents the eye fatigue coefficient, t max represents the preset maximum continuous exercise duration threshold, w1, w2 and w3 represent the preset first weight, second weight and third weight respectively.

7. The method for optimizing the multi-parameter electronic control display of a fitness equipment electronic watch according to claim 6, characterized in that: The first display scheme is constructed based on the plurality of monitoring sequences, the threshold node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value, including: Extracting monitoring sequences from a plurality of monitoring sequences in sequence, and identifying threshold nodes corresponding to the monitoring sequences in a threshold node set based on the monitoring sequences; Obtaining rate ratios based on monitoring sequences, threshold nodes, and a pre-built rate ratio calculation formula; Extracting an analysis monitoring node from the monitoring sequence, wherein the analysis monitoring node is a monitoring node with a position of one in the monitoring sequence; The monitoring value corresponding to the analysis monitoring node is used as the analysis value; The monitoring parameters corresponding to the analysis and monitoring nodes are used as the analysis and monitoring parameters; Associating the rate ratio, the analysis parameter value, and the analysis monitoring parameter to obtain an analysis node; Summarizing the analysis nodes to obtain an analysis node set; A first display solution is constructed based on the analysis node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value.

8. The method for optimizing the multi-parameter electronic control display of a fitness equipment electronic watch according to claim 7, wherein: The constructing of a first display solution based on the analysis node set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value includes: Sort the analysis values ​​corresponding to the analysis nodes in the analysis node set in descending order of rate ratio to obtain an analysis sequence; Acquire a core value set and an auxiliary value set based on an analysis sequence and a preset position sequence threshold, wherein the positions of the core values ​​in the core value set in the analysis sequence are all less than or equal to the position sequence threshold, and the positions of the auxiliary values ​​in the auxiliary value set in the analysis sequence are all greater than the position sequence threshold; A first display scheme is constructed based on the core value set, the auxiliary value set, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value, wherein the first display scheme is as follows: Acquire a core display area based on the initial adjustable display area, the target display brightness value, and the preset core area background, and display a core parameter value set using the core display area to obtain a visualized core parameter area; An auxiliary display area is obtained based on the initial auxiliary display area, the target display brightness value and the preset auxiliary area background, and the auxiliary display area is used to display the auxiliary parameter value set to obtain a visual auxiliary parameter area, wherein the first display scheme includes a visual core parameter area and a visual auxiliary parameter area.

9. The method for optimizing the multi-parameter electronic control display of a fitness equipment electronic watch according to claim 8, wherein: The constructing of the second display scheme based on the monitoring parameter set, the one or more warning node sets, the initial adjustable display area, the initial auxiliary display area, and the target display brightness value includes: Obtaining a first-level warning value set based on one or more warning node sets; Counting the number of monitoring parameters in the monitoring parameter set and the number of warning node sets in one or more warning node sets respectively to obtain the monitoring number and the warning number; Calculate the ratio of the number of warnings to the number of monitorings to obtain the warning ratio; A second display scheme is constructed using the warning ratio, the initial adjustable display area, and the initial auxiliary display area, wherein the second display scheme is as follows: If the warning ratio is less than or equal to the preset warning ratio threshold, the initial adjustable display area is used as the initial first warning display area; Acquire a first warning display area based on the initial first warning display area, the target display brightness value, and a preset first warning area background; Otherwise, performing a region adjustment operation on the initial adjustable display area and the initial auxiliary display area using a preset display area adjustment method to obtain an initial second warning display area, wherein the area of ​​the initial second warning display area is larger than the area of ​​the initial first warning display area; Acquire a second warning display area based on the initial second warning display area, the target display brightness value, and a preset second warning area background; The first warning value set is displayed in the first warning display area or the second warning display area to obtain a visual warning parameter area, wherein the second display scheme includes the visual warning parameter area.

10. A multi-parameter electronic control display optimization system for an electronic meter of fitness equipment, characterized in that: The system comprises: A monitoring parameter acquisition module, configured to receive a multi-parameter display optimization instruction and determine a multi-parameter optimization system based on the multi-parameter display optimization instruction, wherein the multi-parameter optimization system includes: a motion confirmation unit, a monitoring parameter acquisition unit, a multi-parameter display screen, an ambient brightness sensor, and an infrared camera; Obtaining a monitoring parameter set, wherein the monitoring parameter set includes multiple monitoring parameters, and obtaining a threshold node set based on the monitoring parameter set, wherein the threshold node set includes multiple threshold nodes, and each threshold node includes a threshold rate, an upper threshold limit, and a lower threshold limit, wherein the threshold nodes correspond to the monitoring parameters one by one; An exercise period confirmation module is used to obtain an exercise mode, wherein the exercise mode is a free mode or a fixed mode; A display partition initialization module is used to obtain exercise duration, and obtain multiple monitoring time periods based on the exercise duration, a preset exercise start time, an exercise mode, an exercise confirmation unit, and a preset confirmation method, wherein each monitoring time period includes a monitoring start time and a monitoring end time; A display partition optimization module, used to obtain an initial adjustable display area and an initial auxiliary display area based on a multi-parameter display screen; A display scheme is constructed based on multiple monitoring time periods, threshold node sets, monitoring parameter acquisition units, ambient brightness sensors, infrared cameras, initial adjustable display areas, and initial auxiliary display areas, wherein the display scheme is a first display scheme or a second display scheme, and multi-parameter electronic control display optimization of an electronic table of fitness equipment is achieved based on the display scheme.

Citation Information

Patent Citations

  • User health data monitoring and management method and system based on fitness equipment color screen

    CN116486998A

  • Intelligent control system of liquid crystal display screen

    CN118762664A

  • Workout monitor interface

    US20180078182A1