WO2016101348A1 - 用于预测士兵执行任务能力的检测***和方法 - Google Patents

用于预测士兵执行任务能力的检测***和方法 Download PDF

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Publication number
WO2016101348A1
WO2016101348A1 PCT/CN2015/070210 CN2015070210W WO2016101348A1 WO 2016101348 A1 WO2016101348 A1 WO 2016101348A1 CN 2015070210 W CN2015070210 W CN 2015070210W WO 2016101348 A1 WO2016101348 A1 WO 2016101348A1
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WIPO (PCT)
Prior art keywords
soldier
detecting
physical
ability
module
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PCT/CN2015/070210
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English (en)
French (fr)
Inventor
张贯京
陈兴明
葛新科
张少鹏
方静芳
克里斯基捏⋅普拉纽克
古列莎⋅艾琳娜
波达别特⋅伊万
高伟明
梁昊原
梁艳妮
周荣
徐之艳
周亮
肖应芬
郑慧华
唐小浪
李潇云
王海荣
程金兢
Original Assignee
深圳市前海安测信息技术有限公司
深圳市易特科信息技术有限公司
深圳市贝沃德克生物技术研究院有限公司
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Publication of WO2016101348A1 publication Critical patent/WO2016101348A1/zh

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
    • A61B5/024Detecting, measuring or recording pulse rate or heart rate
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
    • A61B5/0205Simultaneously evaluating both cardiovascular conditions and different types of body conditions, e.g. heart and respiratory condition
    • A61B5/02055Simultaneously evaluating both cardiovascular condition and temperature
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01CMEASURING DISTANCES, LEVELS OR BEARINGS; SURVEYING; NAVIGATION; GYROSCOPIC INSTRUMENTS; PHOTOGRAMMETRY OR VIDEOGRAMMETRY
    • G01C22/00Measuring distance traversed on the ground by vehicles, persons, animals or other moving solid bodies, e.g. using odometers, using pedometers
    • G01C22/006Pedometers
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/48Other medical applications
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/68Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient
    • A61B5/6801Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient specially adapted to be attached to or worn on the body surface
    • A61B5/6802Sensor mounted on worn items
    • A61B5/6804Garments; Clothes
    • A61B5/6807Footwear
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/68Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient
    • A61B5/6801Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient specially adapted to be attached to or worn on the body surface
    • A61B5/6802Sensor mounted on worn items
    • A61B5/681Wristwatch-type devices
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/68Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient
    • A61B5/6801Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient specially adapted to be attached to or worn on the body surface
    • A61B5/6813Specially adapted to be attached to a specific body part
    • A61B5/6825Hand
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/68Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient
    • A61B5/6801Arrangements of detecting, measuring or recording means, e.g. sensors, in relation to patient specially adapted to be attached to or worn on the body surface
    • A61B5/6813Specially adapted to be attached to a specific body part
    • A61B5/6829Foot or ankle

Definitions

  • the present invention relates to the field of data processing technologies, and in particular, to a detection system and method for predicting a soldier's ability to perform tasks.
  • the main purpose of the invention is to accurately grasp the physical condition of the soldier during combat, so as to accurately predict the combat capability of the soldier.
  • the present invention provides a detection system for predicting a soldier's ability to perform a task, and the detection system for predicting a soldier's ability to perform a task includes a detection device and a detection platform:
  • the detecting device is worn on the soldier for detecting physical energy consumption data of the soldier, and transmitting the physical energy consumption data to the detecting platform;
  • the detection platform compares the received physical energy consumption data with the pre-existing soldier's physical fitness model, analyzes the remaining physical fitness of the soldier according to the comparison result, and determines the soldier's ability to perform the task.
  • the detecting device comprises a step counting module, an acceleration sensing module, an altitude sensing module, a control module and a data communication module, wherein:
  • the step counting module is connected to the control module, configured to count the walking steps of the soldier, and send the counted walking steps to the control module;
  • the acceleration sensing module is connected to the control module, configured to detect an acceleration of a soldier walking, and send an acceleration of a soldier walking to the control module;
  • the altitude sensing module is connected to the control module, configured to detect altitude information of the soldier, and send the altitude information to the control module;
  • the control module is configured to control the detection mode of the detecting device, and is further configured to send the received walking step number, the acceleration of the soldier walking, and the altitude information to the data communication module;
  • the data communication module is connected to the control module, and is configured to interact with the detection platform, and send the walking steps, the acceleration of the soldier walking, and the altitude information to the detection platform, where the detection platform determines that the soldier performs the task. ability.
  • control module is a wearable wristwatch
  • control module includes a wristwatch body and a storage unit disposed in the wristwatch body;
  • the acceleration sensing module is disposed in the wristwatch body;
  • the storage unit is configured to store the vital information, the number of walking steps, the acceleration of the soldier's walking, and the altitude information.
  • the detecting device further comprises:
  • the vital sign detecting module is connected to the control module, configured to detect the physical sign information of the soldier, and send the physical sign information to the control module.
  • control module is a wearable wristwatch
  • control module includes a wristwatch body and a storage unit disposed in the wristwatch body;
  • the acceleration sensing module is disposed in the wristwatch body;
  • the storage unit is configured to store the vital information, the number of walking steps, the acceleration of the soldier's walking, and the altitude information.
  • the sign detection module is disposed at a location near the soldier's heart, the sign detection module includes a heart rate detection module for detecting a soldier's heart rate, and a body temperature detection module for detecting a soldier's body temperature.
  • control module is a wearable wristwatch
  • control module comprises a wristwatch body and a set a storage unit in the wristwatch body;
  • the acceleration sensing module is disposed in the wristwatch body; and
  • the storage unit is configured to store the physical sign information, the walking steps, the acceleration of the soldier walking, and the altitude information.
  • the step counter module is disposed within the soldier's shoe.
  • the present invention also provides a detecting method for predicting a soldier's ability to perform a task, the detecting method comprising the following steps:
  • the detecting device detects the physical energy consumption data of the soldier and transmits the physical energy consumption data to the detection platform;
  • the detection platform compares the received physical energy consumption data with the pre-existing soldier's physical fitness model, analyzes the remaining physical fitness of the soldier according to the comparison result, and determines the soldier's ability to perform the task.
  • the detecting method for predicting a soldier's ability to perform a task further comprises the steps of:
  • the vital sign detecting module of the detecting device detects the vital signs information of the soldier, and sends the physical sign information to the detecting platform for the detecting platform to determine the current physical state of the soldier; the physical sign information includes the heart rate and body temperature of the soldier.
  • the detecting device detects the physical energy consumption data of the soldier and transmits the physical energy consumption data to the detection platform:
  • the step counting module of the detecting device counts the walking steps of the soldier, and sends the counted walking steps to the detecting platform;
  • the acceleration sensing module of the detecting device detects the acceleration of the soldier walking and sends the acceleration of the soldier walking to the detecting platform;
  • the altitude sensing module of the detecting device detects the altitude information of the sensing wearer and transmits the altitude information to the detecting platform.
  • the detecting method for predicting a soldier's ability to perform a task further comprises the steps of:
  • the vital sign detecting module of the detecting device detects the vital signs information of the soldier, and sends the physical sign information to the detecting platform for the detecting platform to determine the current physical state of the soldier; the physical sign information includes the heart rate and body temperature of the soldier.
  • the detecting platform compares the received physical energy consumption data with the pre-existing physical performance model of the soldier, analyzes the remaining physical fitness of the soldier according to the comparison result, and determines the ability of the soldier to perform the task, including:
  • the detection platform judges according to the received walking steps, the acceleration of the soldiers walking, and the altitude information.
  • the soldier's remaining physical fitness is analyzed, and the soldier's ability to perform the task is determined based on the remaining physical fitness.
  • the detecting method for predicting a soldier's ability to perform a task further comprises the steps of:
  • the vital sign detecting module of the detecting device detects the vital signs information of the soldier, and sends the physical sign information to the detecting platform for the detecting platform to determine the current physical state of the soldier; the physical sign information includes the heart rate and body temperature of the soldier.
  • the invention detects the physical energy consumption data of the soldier through the wearable device detecting device worn on the soldier, and transmits the physical energy consumption data to the detection platform, and the detection platform compares the received physical energy consumption data with the pre-existing soldier's physical energy model, and analyzes according to the comparison result.
  • the remaining physical capacity of the soldier to determine the soldier's ability to complete the task currently performed. Through the detection of the remaining physical energy, the physical condition of the soldier during combat can be accurately grasped, thus ensuring accurate prediction of the soldier's combat capability.
  • FIG. 1 is a schematic structural view of a first embodiment of a detection system for predicting a soldier's ability to perform a task according to the present invention
  • Figure 2 is a schematic structural view of the detecting device of Figure 1;
  • FIG. 3 is a schematic structural diagram of a second embodiment of a detection system for predicting a soldier's ability to perform a task according to the present invention
  • Figure 4 is a schematic view of the remaining physical energy of different soldiers on the side of the detection platform of Figure 1;
  • FIG. 5 is a schematic flowchart diagram of a first embodiment of a method for detecting a soldier's ability to perform tasks according to the present invention
  • FIG. 6 is a schematic diagram of the refinement process of step S20 in FIG. 5.
  • the invention provides a medical image interpretation method based on intelligent speech recognition.
  • FIG. 1 is a diagram of a first embodiment of a detection system for predicting a soldier's ability to perform a task according to the present invention. Schematic diagram.
  • a detection system for predicting a soldier's ability to perform a task includes a detection device 10 and a detection platform 20, wherein:
  • the detecting device 10 is worn on the soldier for detecting the physical energy consumption data of the soldier and transmitting the physical energy consumption data to the detecting platform 20;
  • the detecting platform 20 compares the received physical energy consumption data with the pre-existing soldier's physical fitness model, analyzes the remaining physical fitness of the soldier according to the comparison result, and determines the soldier's ability to perform the task.
  • the remaining physical fitness of the soldier is analyzed and determined, and the execution ability of the soldier for the current task is determined according to the remaining physical fitness.
  • the physical energy consumption data of the soldier is detected by the detecting device 10, and the detecting device 10 is worn on the soldier, and the physical energy consumption data caused by the walking, running or other movement of the soldier during the execution of the task is detected in real time, and the detected data is detected.
  • the physical energy consumption data is transmitted to the detection platform 20.
  • the physical performance model of each soldier is pre-stored in the detection platform 20, and the physical fitness model is a limit value of the execution ability that can be achieved when the soldiers are in the limit state of each movement, and the limit values are combined and stored as the The physical model of the soldier, after receiving the physical energy consumption data transmitted by the detecting device 10, compares the physical energy consumed by the soldier in various sports situations with the corresponding limit value, and analyzes the remaining physical energy remaining by the soldier. The percentage is expressed in terms of the ability to further determine the soldier's ability to complete the task currently performed based on the remaining physical fitness. As shown in Figure 4, the percentage of remaining physical energy of the different soldiers displayed on the side of the detection platform 20 is detected.
  • the wearer's physical energy consumption data is detected by the wearable device detecting device 10 worn on the soldier, and the physical energy consumption data is transmitted to the detecting platform 20, and the detecting platform 20 compares the received physical energy consumption data with the pre-existing soldier's physical fitness model.
  • the remaining physical fitness of the soldier is analyzed based on the results of the comparison to determine the soldier's ability to complete the task currently being performed. Through the detection of the remaining physical energy, the physical condition of the soldier during combat can be accurately grasped, thus ensuring accurate prediction of the soldier's combat capability.
  • FIG. 2 is a schematic structural view of the detecting device of FIG. 1.
  • the detecting device 10 includes a pedometer module 11, an acceleration sensing module 12, an altitude sensing module 13, a control module 14, and a data communication module 15, wherein:
  • the step counter module 11 is connected to the control module 14 for counting the number of walking steps of the soldier and walking the statistics The number of steps is sent to the control module 14; the counting step 11 is used to count the number of walking steps generated by the soldier during walking, running or other movements during the execution of the task;
  • the acceleration sensing module 12 is connected to the control module 14 for detecting the acceleration of the soldier's walking, and transmitting the acceleration of the soldier's walking to the control module 14; detecting the acceleration of the soldier's walking, and determining the current traveling state of the soldier, such as walking or Running or more intense exercise;
  • the altitude sensing module 13 is connected to the control module 14 for detecting the altitude information of the soldier and transmitting the altitude information to the control module 14; by detecting the altitude of the soldier, the height of the soldier can be determined;
  • the control module 14 is configured to control the detection mode of the detecting device, and is further configured to send the received walking steps, the acceleration of the soldier walking, and the altitude information to the data communication module 15; the detecting device is provided with different detection modes, such as sleeping.
  • the mode, the execution task mode, and the like, the control module 14 can be configured to select a corresponding detection mode, and perform detection and determination in the detection mode; in addition, the control module 14 is further configured to receive the number of walking steps, the acceleration of the soldier walking, and After the altitude information and other data, the data is converted to the corresponding signal and sent to the data communication module 15;
  • the data communication module 15 is connected to the control module 14 for interacting with the detection platform 20, and sends the walking steps, the acceleration of the soldiers walking, and the altitude information to the detection platform 20 for the detection platform 20 to determine the ability of the soldier to perform tasks.
  • the acceleration of the soldier's walking is detected by the acceleration sensing module 12, and the current traveling state of the soldier is determined according to the magnitude of the acceleration; the height of the soldier is detected by the altitude sensing module 13 to determine the current height of the soldier. And can determine the current traveling state of the soldier, such as climbing, crossing, etc.; the detecting platform 20 will determine the current traveling state of the soldier according to the acceleration and the current traveling state of the soldier determined according to the altitude of the soldier, combined with the stepping module 11
  • the number of walking steps detected is analyzed with the pre-existing limit value of the soldier in various traveling states to determine the remaining physical fitness of the soldier, and the soldier is further determined according to the physical fitness required for the task currently performed. Whether the remaining physical energy can complete the current task and prompt.
  • the acceleration sensing module 12 detects the acceleration of the soldier's walking, but the counting module 11 does not detect the number of walking steps of the soldier, in this case, the soldier is considered to be By car or other means of transportation, statistics on the consumed physical energy are not counted;
  • the control module 14 does not detect the taxi in the sleep mode within the preset time In the sleep state of the soldier, the soldier is considered not to have a rest within the preset time, and the preset time can be set to two days, so that it is not necessary to detect the current remaining physical fitness of the soldier, but directly judge that the soldier cannot complete the current task and perform prompt.
  • FIG. 3 is a schematic structural diagram of a second embodiment of a detection system for predicting a soldier's ability to perform a task according to the present invention.
  • the detecting apparatus 10 further includes:
  • the sign detection module 16 is connected to the control module 14 for detecting the physical sign information of the soldier and transmitting the vital sign information to the control module 14.
  • the detecting device 10 further includes a vitality detecting module 16 through which the physical sign information of the soldier is detected and the physical information is sent to the control module 14 for control.
  • the module performs signal conversion on the vital information and sends it to the detection platform 20.
  • the detection platform 20 analyzes the current physical state of the soldier according to the physical information, and combines the remaining physical fitness of the soldier to determine whether the soldier can complete the currently performed task.
  • the vital sign detecting module 16 may be disposed at a portion close to the soldier's heart, and the vital sign detecting module 16 includes a heart rate detecting module and a body temperature detecting module for detecting the heart rate of the soldier and the body temperature of the soldier, respectively, which can be reflected by the heart rate and the body temperature.
  • the soldier's physical state such as the soldier's temperature is too high, and the heart rate is too fast, indicating that the soldier's running state exceeds his physical limit at this time, to determine that the soldier can not complete the current task, and prompts.
  • the soldier's heart rate is detected to be too fast, but the body temperature is not detected to have a significant increase, the soldier may not be considered to have a heart rate that is too fast due to walking or exercise. It may be caused by excessive scare. This indicates that the soldier's physical condition is still normal, and it is not possible to determine that the soldier's physical condition is abnormal.
  • the soldier's ability to execute the current task is further judged based on the detected remaining physical fitness of the soldier, and the judgment of the soldier's ability to perform the task is more accurately ensured, and It can prevent soldiers from being in danger due to abnormal physical condition.
  • the control module 14 can be configured as a wearable wristwatch.
  • the control module 14 includes a wristwatch body and a storage unit disposed in the wristwatch body.
  • the acceleration sensing module 12 can be The altitude sensing module 13 and the data communication module 15 are disposed in the wristwatch body and are worn by the soldiers.
  • the acceleration and altitude information of the soldier's walking are detected at any time during the process; the storage unit is used for storing when receiving the storage sign information, the number of walking steps, the acceleration of the soldier walking, and the altitude information.
  • the detecting device 10 can be set as a special clothing that can be worn on the soldier, and each detecting module is disposed at a corresponding position of the detection, for example, the position detecting module 16 is disposed at a position close to the heart, and each of them is electrically connected.
  • the detection module is connected to the control module 14.
  • the control module 14 is a wearable wristwatch, and the data detected by each detection module can be directly sent to the control module 14.
  • one piece can be set, that is, all the detection modules are disposed at a position where the clothes are attached to the body part of the person, and all the detection modules are electrically connected to the control module 14 through the sleeves of the clothes;
  • the special clothes can be set into two pieces, that is, the vest worn by the body and the outer casing connected thereto, and the corresponding part of the vest is placed in contact with the human body to set the detecting module, and the outer casing is connected with the vest through the conductive button or other parts, and the outer casing is passed through the outer casing. It is connected to the control module 14 to electrically connect each detection module with the control module 14.
  • the step module 11 can be disposed in the soldier's shoe or on the soldier's sole, thus ensuring more accurate detection of the number of walking steps during the soldier's walking; of course, the step module 11 can also be Soldier's shoes are integrated as an arrangement.
  • the present invention also provides a detection method for predicting a soldier's ability to perform a task.
  • FIG. 5 is a schematic flowchart diagram of a first embodiment of a method for detecting a soldier's ability to perform tasks according to the present invention.
  • the method for detecting a soldier's ability to perform a task includes:
  • Step S10 the detecting device detects the physical energy consumption data of the soldier, and transmits the physical energy consumption data to the detecting platform;
  • step S20 the detection platform compares the received physical energy consumption data with the pre-existing soldier's physical fitness model, analyzes the remaining physical fitness of the soldier according to the comparison result, and determines the soldier's ability to perform the task.
  • the remaining physical fitness of the soldier is analyzed and determined, and the execution ability of the soldier for the current task is determined according to the remaining physical fitness.
  • the physical energy consumption data of the soldier is detected by the detecting device, and the detecting device is worn on the soldier, and the physical energy consumption data caused by the walking, running or other movement of the soldier during the execution of the task is detected in real time, and the detected physical energy is detected.
  • Consumption data is transmitted to the detection platform; each of the detection platforms is pre-stored
  • the physical fitness model of a soldier which is the limit value of the ability to perform the force that can be achieved when the soldier is in the limit state of each type of exercise.
  • the limit values are combined and stored as the physical fitness model of the soldier, upon receiving After detecting the physical energy consumption data transmitted by the device, the physical energy consumed by the soldier in various sports situations is compared with the corresponding limit value, and the remaining physical energy remaining by the soldier is analyzed, and the remaining body energy can be expressed in a percentage form, thereby further based on the remaining Physical fitness determines the soldier's ability to complete the task currently performed.
  • the wearer's physical energy consumption data is detected by the wearable device detecting device worn on the soldier, and the physical energy consumption data is transmitted to the detection platform, and the detection platform compares the received physical energy consumption data with the pre-existing soldier's physical energy model according to the comparison result. Analyze the remaining physical fitness of the soldier to determine the soldier's ability to complete the task currently performed. Through the detection of the remaining physical energy, the physical condition of the soldier during combat can be accurately grasped, thus ensuring accurate prediction of the soldier's combat capability.
  • step S10 is specifically:
  • the step counting module of the detecting device counts the walking steps of the soldier and sends the statistical walking steps to the detecting platform;
  • the acceleration sensing module of the detecting device detects the acceleration of the soldier walking and sends the acceleration of the soldier walking to the detecting platform;
  • the altitude sensing module of the detecting device detects the altitude information of the sensing wearer and sends the altitude information to the detecting platform.
  • the step counting module is connected with the control module for counting the number of walking steps of the soldier, and sending the statistical walking steps to the control module; counting the walking, running or other movements generated by the soldiers during the execution of the task by the step counting module Number of walking steps;
  • the step counter module counts the number of walking steps of the soldier, and sends the counted walking steps to the control module, and counts the number of walking steps generated by the walking, running or other movements of the soldier during the execution of the task through the step counting module;
  • the acceleration sensing module Detect the acceleration of the soldier's walking, and send the acceleration of the soldier's walking to the control module to detect the acceleration of the soldier's walking, and then determine the current state of the soldier's travel, such as walking or running or more intense movement;
  • the altitude sensing module detects the soldier's Altitude information and altitude information is sent to the control module to determine the height of the soldier by detecting the altitude of the soldier.
  • the control module controls the detection mode of the detecting device, and the number of walking steps received and the acceleration of the soldier walking are And altitude information is sent to the detection platform.
  • the detection device is provided with different detection modes, such as a sleep mode, a task execution mode, etc., and the control module can be used to select a corresponding detection mode, and perform detection and determination in the detection mode; in addition, the control module is further configured to receive After the number of walking steps, the acceleration of the soldiers walking, and the altitude information, the data is converted into corresponding data and sent to the data communication module; the data communication module interacts with the detection platform, and the walking steps and the acceleration of the soldiers walking And the altitude information is sent to the detection platform for the detection platform to determine the ability of the soldier to perform the task.
  • the control module can be used to select a corresponding detection mode, and perform detection and determination in the detection mode
  • the control module is further configured to receive After the number of walking steps, the acceleration of the soldiers walking, and the altitude information, the data is converted into corresponding data and sent to the data communication module; the data communication module interacts with the detection platform, and the walking steps and the acceleration of the soldiers walking And the altitude information is sent to the detection platform for
  • FIG. 6 is a schematic diagram of the refinement process of step S20 in FIG.
  • step S20 specifically includes:
  • Step S21 the detecting platform determines the current action state of the soldier according to the received walking steps, the acceleration of the soldier walking, and the altitude information;
  • step S22 the remaining physical fitness of the soldier is analyzed according to the physical model of the pre-existing soldier and the current operational state of the soldier, and the ability of the soldier to perform the task is determined according to the remaining physical fitness.
  • the acceleration sensing module detects the acceleration of the soldier's walking, and determines the current traveling state of the soldier according to the magnitude of the acceleration; and the altitude sensing module detects the altitude of the soldier, and the current height of the soldier can be determined, and The current state of travel of the soldier can be judged, such as climbing, crossing, etc.; the detection platform will determine the current traveling state of the soldier determined according to the acceleration and the current traveling state of the soldier determined according to the altitude of the soldier, detected by the step counting module. The number of walking steps, and the pre-existing limit value of the soldier in various traveling states, determine the remaining physical fitness of the soldier, and further determine the remaining physical fitness of the soldier according to the physical energy required for the task currently performed. Can complete the current task and prompt.
  • the acceleration sensor module detects the acceleration of the soldier's walking, but the step counter module does not detect the number of walking steps of the soldier, in this case, the soldier is considered to be riding. Or other vehicles, will not count the physical fitness consumed;
  • the control module does not detect the sleep state of the soldier in the sleep mode within the preset time, the soldier is considered not to rest within the preset time.
  • the preset time can be set to two days, so that it is not necessary to detect the soldier's current remaining physical capacity, but directly judge that the soldier cannot complete the current task and prompts.
  • a first embodiment for detecting a soldier's ability to perform a task based on the present invention in the second embodiment The method further includes:
  • Step S30 the vital sign detecting module of the detecting device detects the physical sign information of the soldier, and sends the physical sign information to the detecting platform for the detecting platform to determine the current physical state of the soldier; the physical sign information includes the heart rate and the body temperature of the soldier.
  • the detecting device further includes a vitality detecting module, and the physical sign detecting module detects the soldier's vital sign information, and sends the vital sign information to the control module, and the control module signs the physical sign.
  • the information is converted and sent to the detection platform.
  • the detection platform analyzes the current physical state of the soldier based on the physical information, and combines the remaining physical fitness of the soldier to determine whether the soldier can complete the currently performed task.
  • the vital sign detecting module may be disposed near the soldier's heart, and the vital sign detecting module includes a heart rate detecting module and a body temperature detecting module respectively for detecting the soldier's heart rate and the soldier's body temperature, and the heart rate and the body temperature can reflect the soldier's body temperature.
  • the physical state such as the soldier's body temperature is too high, and the heart rate is too fast, indicating that the soldier's running state exceeds his body limit at this time, to determine that the soldier can not complete the current task, and prompts.
  • the soldier's heart rate is detected to be too fast, but the body temperature is not detected to have a significant increase, the soldier may not be considered to have a heart rate that is too fast due to walking or exercise. It may be caused by excessive scare. This indicates that the soldier's physical condition is still normal, and it is not possible to determine that the soldier's physical condition is abnormal.
  • the soldier's ability to execute the current task is further judged based on the detected remaining physical fitness of the soldier, and the judgment of the soldier's ability to perform the task is more accurately ensured, and It can prevent soldiers from being in danger due to abnormal physical condition.

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Abstract

一种用于预测士兵执行任务能力的检测***,该***包括:检测装置(10),佩戴在士兵身上,用于检测士兵的体能消耗数据,并将体能消耗数据传输至检测平台(20);检测平台(20),对比接收的体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,确定士兵执行任务的能力。通过剩余体能的检测,可以准确掌握士兵在作战时的身体状况,从而保证了准确对士兵的作战能力进行预测。

Description

用于预测士兵执行任务能力的检测***和方法 技术领域
本发明涉及数据处理技术领域,尤其涉及一种用于预测士兵执行任务能力的检测***和方法。
背景技术
自古以来,有关研究和改进战场上士兵的行为信息的控制一直被关注,研究的主要目标一直没有改变,就是更科学的野外作业方式和在战斗时使士兵损失降到最低,这涉及一个士兵的反馈信息。在过去的实际战斗中,通常是通讯员携带笨重的无线站与每个士兵进行通信,同时,每个士兵都需要穿着例如头盔等简易短距离无线电通信装备,以便进行无线电交流。除了音频信号或视频信号等所必需的与通讯员的通信外,通常还会发送士兵的身体生理参数,如温度和心电图给总部,使总部实时得知士兵的作战能力。
目前,也有一些可自动控制士兵身体的装置,如可自动控制向士兵体内注入强效镇痛剂或其他急求药品等,在士兵的衣服上安装自动注射装置,通过编辑程序自动判断士兵的身体状况,并在需要注射药物时控制注射装置注射所需剂量的药物。但是这种方法由于对士兵的身体状况的判断方法比较单一,不能准确确定当前士兵所处的状态,而导致注射的时间和注射的剂量不够准确。
发明内容
本发明的主要目的在于准确掌握士兵在作战时的身体状况,从而准确对士兵的作战能力进行预测。
为实现上述目的,本发明提供一种用于预测士兵执行任务能力的检测***,所述用于预测士兵执行任务能力的检测***包括检测装置和检测平台:
所述检测装置佩戴在士兵身上,用于检测士兵的体能消耗数据,并将所述体能消耗数据传输至所述检测平台;
所述检测平台对比接收的所述体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,确定士兵执行任务的能力。
优选地,所述检测装置包括计步模块、加速度传感模块、海拔高度传感模块、控制模块和数据通讯模块,其中:
所述计步模块,与所述控制模块连接,用于统计士兵的行走步数,并将统计的所述行走步数发送至所述控制模块;
所述加速度传感模块,与所述控制模块连接,用于检测士兵行走的加速度,并将士兵行走的加速度发送至所述控制模块;
所述海拔高度传感模块,与所述控制模块连接,用于检测士兵的海拔高度信息,并将所述海拔高度信息发送至所述控制模块;
所述控制模块,用于控制所述检测装置的检测模式,还用于将接收的所述行走步数、士兵行走的加速度以及海拔高度信息发送至所述数据通讯模块;
所述数据通讯模块,与所述控制模块连接,用于与检测平台交互,将所述行走步数、士兵行走的加速度以及海拔高度信息发送至检测平台,供所述检测平台确定士兵执行任务的能力。
优选地,所述控制模块为可穿戴腕表,所述控制模块包括腕表本体和设置在所述腕表本体中的存储单元;所述加速度传感模块设置在所述腕表本体中;所述存储单元用于存储所述体征信息、行走步数、士兵行走的加速度以及海拔高度信息。
优选地,所述检测装置还包括:
体征检测模块,与所述控制模块连接,用于检测士兵的体征信息,并将所述体征信息发送至所述控制模块。
优选地,所述控制模块为可穿戴腕表,所述控制模块包括腕表本体和设置在所述腕表本体中的存储单元;所述加速度传感模块设置在所述腕表本体中;所述存储单元用于存储所述体征信息、行走步数、士兵行走的加速度以及海拔高度信息。
优选地,所述体征检测模块设置在靠近士兵心脏的部位,所述体征检测模块包括用于检测士兵心率的心率检测模块,以及用于检测士兵体温的体温检测模块。
优选地,所述控制模块为可穿戴腕表,所述控制模块包括腕表本体和设置在所 述腕表本体中的存储单元;所述加速度传感模块设置在所述腕表本体中;所述存储单元用于存储所述体征信息、行走步数、士兵行走的加速度以及海拔高度信息。
优选地,所述计步模块设置在士兵的鞋内。
此外,为实现上述目的,本发明还提供一种用于预测士兵执行任务能力的检测方法,该检测方法包括以下步骤:
检测装置检测士兵的体能消耗数据,并将所述体能消耗数据传输至检测平台;
检测平台对比接收的所述体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,确定士兵执行任务的能力。
优选地,所述用于预测士兵执行任务能力的检测方法还包括步骤:
检测装置的体征检测模块检测士兵的体征信息,并将所述体征信息发送至所述检测平台,供检测平台确定士兵当前的身体状态;所述体征信息包括士兵的心率和体温。
优选地,所述检测装置检测士兵的体能消耗数据,并将所述体能消耗数据传输至检测平台的步骤包括:
检测装置的计步模块统计士兵的行走步数,并将统计的所述行走步数发送至检测平台;
和,检测装置的加速度传感模块检测士兵行走的加速度,并将士兵行走的加速度发送至检测平台;
和,检测装置的海拔高度传感模块检测感应佩戴者的海拔高度信息,并将所述海拔高度信息发送至所述检测平台。
优选地,所述用于预测士兵执行任务能力的检测方法还包括步骤:
检测装置的体征检测模块检测士兵的体征信息,并将所述体征信息发送至所述检测平台,供检测平台确定士兵当前的身体状态;所述体征信息包括士兵的心率和体温。
优选地,所述检测平台对比接收的所述体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,确定士兵执行任务的能力的步骤包括:
检测平台根据接收的所述行走步数、士兵行走的加速度和海拔高度信息,判断 士兵的当前行动状态;
根据预存的士兵的体能模型与士兵的当前行动状态,分析该士兵的剩余体能,根据该剩余体能确定士兵执行任务的能力。
优选地,所述用于预测士兵执行任务能力的检测方法还包括步骤:
检测装置的体征检测模块检测士兵的体征信息,并将所述体征信息发送至所述检测平台,供检测平台确定士兵当前的身体状态;所述体征信息包括士兵的心率和体温。
本发明通过佩戴在士兵身上的可穿戴设备检测装置检测士兵的体能消耗数据,并将体能消耗数据传输至检测平台,检测平台对比接收的体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,以确定士兵对当前所执行的任务的完成能力。通过剩余体能的检测,可以准确掌握士兵在作战时的身体状况,从而保证了准确对士兵的作战能力进行预测。
附图说明
图1为本发明用于预测士兵执行任务能力的检测***第一实施例的结构示意图;
图2为图1中检测装置的结构示意图;
图3为本发明用于预测士兵执行任务能力的检测***第二实施例的结构示意图;
图4为图1中检测平台侧的不同士兵的剩余体能的示意图;
图5为本发明用于预测士兵执行任务能力的检测方法第一实施例的流程示意图;
图6为图5中步骤S20的细化流程示意图。
本发明目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
应当理解,此处所描述的具体实施例仅仅用以解释本发明,并不用于限定本发明。
本发明提供一种基于智能语音识别的医学影像解读方法。
参照图1,图1为本发明用于预测士兵执行任务能力的检测***第一实施例的结 构示意图。
在一实施例中,用于预测士兵执行任务能力的检测***包括检测装置10和检测平台20,其中:
检测装置10,佩戴在士兵身上,用于检测士兵的体能消耗数据,并将体能消耗数据传输至检测平台20;
检测平台20,对比接收的体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,确定士兵执行任务的能力。
本实施例中,通过实时检测士兵在执行任务过程中所消耗的各项体能,分析判断士兵的剩余体能,并根据剩余体能确定士兵对当前任务的执行能力。具体地,通过检测装置10检测士兵的体能消耗数据,将该检测装置10佩戴在士兵身上,实时检测士兵在执行任务过程中由于走路、跑步或其他运动而导致的体能消耗数据,并将检测到的体能消耗数据传输至检测平台20。检测平台20中预先存储了每一个士兵的体能模型,该体能模型是在士兵处于每一种运动的极限状态下所能达到的执行任力能力的极限值,将这些极限值结合起来存储为该士兵的体能模型,在接收到检测装置10传输的体能消耗数据后,将士兵在各种运动情况下所消耗的体能与对应的极限值相比较,分析士兵所剩余的剩余体能,该剩余体能以百分比的形式表现,从而进一步根据剩余体能确定士兵对当前所执行任务的完成能力。如图4所示,为检测平台20侧所显示的不同士兵的剩余体能的百分比。
本实施例通过佩戴在士兵身上的可穿戴设备检测装置10检测士兵的体能消耗数据,并将体能消耗数据传输至检测平台20,检测平台20对比接收的体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,以确定士兵对当前所执行的任务的完成能力。通过剩余体能的检测,可以准确掌握士兵在作战时的身体状况,从而保证了准确对士兵的作战能力进行预测。
参照图2,图2为图1中检测装置的结构示意图。
在上述实施例中,检测装置10包括计步模块11、加速度传感模块12、海拔高度传感模块13、控制模块14和数据通讯模块15,其中:
计步模块11,与控制模块14连接,用于统计士兵的行走步数,并将统计的行走 步数发送至控制模块14;通过计步模块11统计士兵在执行任务过程中走路、跑步或其他运动所产生的行走步数;
加速度传感模块12,与控制模块14连接,用于检测士兵行走的加速度,并将士兵行走的加速度发送至控制模块14;检测士兵行走的加速度,即可判断士兵当前的行进状态,如走路或跑步或更加剧烈的运动;
海拔高度传感模块13,与控制模块14连接,用于检测士兵的海拔高度信息,并将海拔高度信息发送至控制模块14;通过检测士兵的海拔高度,可以确定士兵所处的高度;
控制模块14,用于控制检测装置的检测模式,还用于将接收的行走步数、士兵行走的加速度以及海拔高度信息发送至数据通讯模块15;检测装置中设置有不同的检测模式,如睡眠模式、执行任务模式等,控制模块14可以用于选择相应的检测模式,并在该检测模式下进行检测和判断;此外,控制模块14还用于在接收到行走步数、士兵行走的加速度以及海拔高度信息等数据后,将这些数据进行相应的信号转换,并发送至数据通讯模块15;
数据通讯模块15,与控制模块14连接,用于与检测平台20交互,将行走步数、士兵行走的加速度以及海拔高度信息发送至检测平台20,供检测平台20确定士兵执行任务的能力。
本实施例中,通过加速度传感模块12检测士兵行走的加速度,根据加速度的大小判断该士兵当前的行进状态;通过海拔高度传感模块13检测士兵的海拔高度,可以确定士兵当前所处的高度,并且可判断出士兵当前的行进状态,如爬高、跨越等动作;检测平台20将根据加速度确定的士兵当前的行进状态以及根据士兵的海拔高度确定的士兵当前的行进状态,结合计步模块11所检测出的行走步数,与预存的该士兵在各种行进状态下的极限值进行分析,确定该士兵所的剩余体能,根据其当前所执行的任务所需要的体能,进一步确定该士兵所剩余的体能能否完成当前任务,并进行提示。在此,有几种特殊情况:第一、如加速度传感模块12检测到士兵行走的加速度,但此时计步模块11并没有检测到士兵的行走步数,这种情况则认为该士兵是乘车或其他交通工具,不会对消耗的体能进行统计;第二、如控制模块14在预置的时间内未在睡眠模式下检测到士 兵的睡眠状态,则认为该士兵在预置的时间内未休息,预置的时间可设置为两天,这样,无需检测士兵当前的剩余体能,而直接判断该士兵不能完成当前任务,并进行提示。
参照图3,图3为本发明用于预测士兵执行任务能力的检测***第二实施例的结构示意图。
在上述本发明用于预测士兵执行任务能力的检测***第一实施例的基础上,第二实施例中,检测装置10还包括:
体征检测模块16,与控制模块14连接,用于检测士兵的体征信息,并将体征信息发送至控制模块14。
为了配合士兵的剩余体能以进一步确定士兵对当前任务的执行能力,检测装置10还包括体征检测模块16,通过该体征检测模块16检测士兵的体征信息,并将体征信息发送至控制模块14,控制模块将该体征信息进行信号转换,并发送至检测平台20,检测平台20根据体征信息分析士兵当前的身体状态,结合士兵的剩余体能,判断该士兵能否完成当前所执行的任务。
进一步地,体征检测模块16可以设置在靠近士兵心脏的部位,体征检测模块16包括心率检测模块和体温检测模块,分别用于检测士兵的心率和士兵的体温,通过心率和体温即可反映出该士兵的身体状态,如该士兵的体温过高,且心率也过快,表明士兵此时的运行状态超出了其身体极限值,确定该士兵不能完成当前所执行的任务,并进行提示。此处,也存在一种特殊情况,即如检测到士兵的心率过快,但并未检测到其体温有明显的升高,则可认为该士兵可能不是因为行走或运动导致心率过快,有可能是因为惊吓过度而导致的,这样,表明士兵的身体状态仍然是正常状态,不能因此而确定士兵的身体状态为异常。
通过对士兵的心率和体温等体征信息的检测,进一步在所检测到的士兵的剩余体能的基础上判断士兵对当前任务的执行能力,更准确地保证了对士兵执行任务的能力的判断,并且可避免士兵因身体状态异常而导致发生危险。
基于上述本发明第一、第二实施例,控制模块14可以设置为可穿戴腕表,该控制模块14包括腕表本体和设置在腕表本体中的存储单元;可将加速度传感模块12、海拔高度传感模块13和数据通讯模块15设置在腕表本体中,在士兵行走的过 程中随时检测士兵行走的加速度和海拔高度信息;存储单元用于在接收到存储体征信息、行走步数、士兵行走的加速度以及海拔高度信息时进行存储。
进一步地,可以将检测装置10设置为可穿戴在士兵身上的特制服装,将各检测模块设置在检测的相应位置,如将体征检测模块16设置在靠近心脏的位置,通过电连接的方式将各检测模块与控制模块14连接起来,控制模块14为可穿戴腕表,各检测模块所检测到的数据可直接发送至控制模块14。对于该特制衣服,可以设置为一件,即将所有的检测模块设置在衣服与人的身体部分相贴合的位置,通过衣服袖子以电连接的方式将所有检测模块与控制模块14电连接;也可将特制衣服设置为两件,即贴身穿戴的背心和与其连接的外套,在背心上设置与人体接触的相应部位设置检测模块,通过导电的纽扣或其他部件将外套与背心相连,并通过外套与控制模块14连接,从而将各检测模块与控制模块14电连接。
进一步地,计步模块11可以设置在士兵的鞋内,也可设置在士兵的鞋底,这样保证在士兵行走的过程中更准确的检测到行走步数;当然,也可将计步模块11与士兵的鞋作为一体化设置。
本发明还提供一种用于预测士兵执行任务能力的检测方法。
参照图5,图5为本发明用于预测士兵执行任务能力的检测方法第一实施例的流程示意图。
在一实施例中,用于预测士兵执行任务能力的检测方法包括:
步骤S10,检测装置检测士兵的体能消耗数据,并将体能消耗数据传输至检测平台;
步骤S20,检测平台对比接收的体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,确定士兵执行任务的能力。
本实施例中,通过实时检测士兵在执行任务过程中所消耗的各项体能,分析判断士兵的剩余体能,并根据剩余体能确定士兵对当前任务的执行能力。具体地,通过检测装置检测士兵的体能消耗数据,将该检测装置佩戴在士兵身上,实时检测士兵在执行任务过程中由于走路、跑步或其他运动而导致的体能消耗数据,并将检测到的体能消耗数据传输至检测平台;检测平台中预先存储了每一 个士兵的体能模型,该体能模型是在士兵处于每一种运动的极限状态下所能达到的执行任力能力的极限值,将这些极限值结合起来存储为该士兵的体能模型,在接收到检测装置传输的体能消耗数据后,将士兵在各种运动情况下所消耗的体能与对应的极限值相比较,分析士兵所剩余的剩余体能,该剩余体能以百分比的形式表现,从而进一步根据剩余体能确定士兵对当前所执行任务的完成能力。
本实施例通过佩戴在士兵身上的可穿戴设备检测装置检测士兵的体能消耗数据,并将体能消耗数据传输至检测平台,检测平台对比接收的体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,以确定士兵对当前所执行的任务的完成能力。通过剩余体能的检测,可以准确掌握士兵在作战时的身体状况,从而保证了准确对士兵的作战能力进行预测。
在上述实施例中,步骤S10具体为:
检测装置的计步模块统计士兵的行走步数,并将统计的行走步数发送至检测平台;
和,检测装置的加速度传感模块检测士兵行走的加速度,并将士兵行走的加速度发送至检测平台;
和,检测装置的海拔高度传感模块检测感应佩戴者的海拔高度信息,并将海拔高度信息发送至检测平台。
计步模块,与控制模块连接,用于统计士兵的行走步数,并将统计的行走步数发送至控制模块;通过计步模块统计士兵在执行任务过程中走路、跑步或其他运动所产生的行走步数;
计步模块统计士兵的行走步数,并将统计的行走步数发送至控制模块,通过计步模块统计士兵在执行任务过程中走路、跑步或其他运动所产生的行走步数;加速度传感模块检测士兵行走的加速度,并将士兵行走的加速度发送至控制模块,检测士兵行走的加速度,即可判断士兵当前的行进状态,如走路或跑步或更加剧烈的运动;海拔高度传感模块检测士兵的海拔高度信息,并将海拔高度信息发送至控制模块,通过检测士兵的海拔高度,可以确定士兵所处的高度。控制模块控制检测装置的检测模式,将接收的行走步数、士兵行走的加速度以 及海拔高度信息发送至检测平台。
检测装置中设置有不同的检测模式,如睡眠模式、执行任务模式等,控制模块可以用于选择相应的检测模式,并在该检测模式下进行检测和判断;此外,控制模块还用于在接收到行走步数、士兵行走的加速度以及海拔高度信息等数据后,将这些数据进行相应的信号转换,并发送至数据通讯模块;数据通讯模块与检测平台交互,将行走步数、士兵行走的加速度以及海拔高度信息发送至检测平台,供检测平台确定士兵执行任务的能力。
参照图6,图6为图5中步骤S20的细化流程示意图。
在上述实施例中,步骤S20具体包括:
步骤S21,检测平台根据接收的行走步数、士兵行走的加速度和海拔高度信息,判断士兵的当前行动状态;
步骤S22,根据预存的士兵的体能模型与士兵的当前行动状态,分析该士兵的剩余体能,根据该剩余体能确定士兵执行任务的能力。
本实施例中,通过加速度传感模块检测士兵行走的加速度,根据加速度的大小判断该士兵当前的行进状态;通过海拔高度传感模块检测士兵的海拔高度,可以确定士兵当前所处的高度,并且可判断出士兵当前的行进状态,如爬高、跨越等动作;检测平台将根据加速度确定的士兵当前的行进状态以及根据士兵的海拔高度确定的士兵当前的行进状态,结合计步模块所检测出的行走步数,与预存的该士兵在各种行进状态下的极限值进行分析,确定该士兵所的剩余体能,根据其当前所执行的任务所需要的体能,进一步确定该士兵所剩余的体能能否完成当前任务,并进行提示。在此,有几种特殊情况:第一、如加速度传感模块检测到士兵行走的加速度,但此时计步模块并没有检测到士兵的行走步数,这种情况则认为该士兵是乘车或其他交通工具,不会对消耗的体能进行统计;第二、如控制模块在预置的时间内未在睡眠模式下检测到士兵的睡眠状态,则认为该士兵在预置的时间内未休息,预置的时间可设置为两天,这样,无需检测士兵当前的剩余体能,而直接判断该士兵不能完成当前任务,并进行提示。
基于本发明用于预测士兵执行任务能力的检测方法第一实施例,第二实施例中 ,该方法还包括:
步骤S30,检测装置的体征检测模块检测士兵的体征信息,并将体征信息发送至检测平台,供检测平台确定士兵当前的身体状态;体征信息包括士兵的心率和体温。
为了配合士兵的剩余体能以进一步确定士兵对当前任务的执行能力,检测装置还包括体征检测模块,通过该体征检测模块检测士兵的体征信息,并将体征信息发送至控制模块,控制模块将该体征信息进行信号转换,并发送至检测平台,检测平台根据体征信息分析士兵当前的身体状态,结合士兵的剩余体能,判断该士兵能否完成当前所执行的任务。
进一步地,体征检测模块可以设置在靠近士兵心脏的部位,体征检测模块包括心率检测模块和体温检测模块,分别用于检测士兵的心率和士兵的体温,通过心率和体温即可反映出该士兵的身体状态,如该士兵的体温过高,且心率也过快,表明士兵此时的运行状态超出了其身体极限值,确定该士兵不能完成当前所执行的任务,并进行提示。此处,也存在一种特殊情况,即如检测到士兵的心率过快,但并未检测到其体温有明显的升高,则可认为该士兵可能不是因为行走或运动导致心率过快,有可能是因为惊吓过度而导致的,这样,表明士兵的身体状态仍然是正常状态,不能因此而确定士兵的身体状态为异常。
通过对士兵的心率和体温等体征信息的检测,进一步在所检测到的士兵的剩余体能的基础上判断士兵对当前任务的执行能力,更准确地保证了对士兵执行任务的能力的判断,并且可避免士兵因身体状态异常而导致发生危险。
以上仅为本发明的优选实施例,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本发明的专利保护范围内。

Claims (14)

  1. 一种用于预测士兵执行任务能力的检测***,其特征在于,所述用于预测士兵执行任务能力的检测***包括检测装置和检测平台:
    所述检测装置佩戴在士兵身上,用于检测士兵的体能消耗数据,并将所述体能消耗数据传输至所述检测平台;
    所述检测平台对比接收的所述体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,确定士兵执行任务的能力。
  2. 如权利要求1所述的用于预测士兵执行任务能力的检测***,其特征在于,所述检测装置包括计步模块、加速度传感模块、海拔高度传感模块、控制模块和数据通讯模块,其中:
    所述计步模块,与所述控制模块连接,用于统计士兵的行走步数,并将统计的所述行走步数发送至所述控制模块;
    所述加速度传感模块,与所述控制模块连接,用于检测士兵行走的加速度,并将士兵行走的加速度发送至所述控制模块;
    所述海拔高度传感模块,与所述控制模块连接,用于检测士兵的海拔高度信息,并将所述海拔高度信息发送至所述控制模块;
    所述控制模块,用于控制所述检测装置的检测模式,还用于将接收的所述行走步数、士兵行走的加速度以及海拔高度信息发送至所述数据通讯模块;
    所述数据通讯模块,与所述控制模块连接,用于与检测平台交互,将所述行走步数、士兵行走的加速度以及海拔高度信息发送至检测平台,供所述检测平台确定士兵执行任务的能力。
  3. 如权利要求2所述的用于预测士兵执行任务能力的检测***,其特征在于,所述控制模块为可穿戴腕表,所述控制模块包括腕表本体和设置在所述腕表本体中的存储单元;所述加速度传感模块设置在所述腕表本体中;所述存储单元用于存储所述体征信息、行 走步数、士兵行走的加速度以及海拔高度信息。
  4. 如权利要求2所述的用于预测士兵执行任务能力的检测***,其特征在于,所述检测装置还包括:
    体征检测模块,与所述控制模块连接,用于检测士兵的体征信息,并将所述体征信息发送至所述控制模块。
  5. 如权利要求4所述的用于预测士兵执行任务能力的检测***,其特征在于,所述控制模块为可穿戴腕表,所述控制模块包括腕表本体和设置在所述腕表本体中的存储单元;所述加速度传感模块设置在所述腕表本体中;所述存储单元用于存储所述体征信息、行走步数、士兵行走的加速度以及海拔高度信息。
  6. 如权利要求4所述的用于预测士兵执行任务能力的检测***,其特征在于,所述体征检测模块设置在靠近士兵心脏的部位,所述体征检测模块包括用于检测士兵心率的心率检测模块,以及用于检测士兵体温的体温检测模块。
  7. 如权利要求6所述的用于预测士兵执行任务能力的检测***,其特征在于,所述控制模块为可穿戴腕表,所述控制模块包括腕表本体和设置在所述腕表本体中的存储单元;所述加速度传感模块设置在所述腕表本体中;所述存储单元用于存储所述体征信息、行走步数、士兵行走的加速度以及海拔高度信息。
  8. 如权利要求2所述的用于预测士兵执行任务能力的检测***,其特征在于,所述计步模块设置在士兵的鞋内。
  9. 一种用于预测士兵执行任务能力的检测方法,该检测方法包括以下步骤:
    检测装置检测士兵的体能消耗数据,并将所述体能消耗数据传输至检测平台;
    检测平台对比接收的所述体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,确定士兵执行任务的能力。
  10. 如权利要求9所述的用于预测士兵执行任务能力的检测方法,其特征在于,所述用于预测士兵执行任务能力的检测方法还包括步骤:
    检测装置的体征检测模块检测士兵的体征信息,并将所述体征信息发送至所述检测平台,供检测平台确定士兵当前的身体状态;所述体征信息包括士兵的心率和体温。
  11. 如权利要求9所述的用于预测士兵执行任务能力的检测方法,其特征在于,所述检测装置检测士兵的体能消耗数据,并将所述体能消耗数据传输至检测平台的步骤包括:
    检测装置的计步模块统计士兵的行走步数,并将统计的所述行走步数发送至检测平台;
    和,检测装置的加速度传感模块检测士兵行走的加速度,并将士兵行走的加速度发送至检测平台;
    和,检测装置的海拔高度传感模块检测感应佩戴者的海拔高度信息,并将所述海拔高度信息发送至所述检测平台。
  12. 如权利要求11所述的用于预测士兵执行任务能力的检测方法,其特征在于,所述用于预测士兵执行任务能力的检测方法还包括步骤:
    检测装置的体征检测模块检测士兵的体征信息,并将所述体征信息发送至所述检测平台,供检测平台确定士兵当前的身体状态;所述体征信息包括士兵的心率和体温。
  13. 如权利要求9所述的用于预测士兵执行任务能力的检测方法,其特征在于,所述检测平台对比接收的所述体能消耗数据与预存的士兵的体能模型,根据对比结果分析士兵的剩余体能,确定士兵执行任务的能力的步骤包括:
    检测平台根据接收的所述行走步数、士兵行走的加速度和海拔高度信息,判断士兵的当前行动状态;
    根据预存的士兵的体能模型与士兵的当前行动状态,分析该士兵 的剩余体能,根据该剩余体能确定士兵执行任务的能力。
  14. 如权利要求13所述的用于预测士兵执行任务能力的检测方法,其特征在于,所述用于预测士兵执行任务能力的检测方法还包括步骤:
    检测装置的体征检测模块检测士兵的体征信息,并将所述体征信息发送至所述检测平台,供检测平台确定士兵当前的身体状态;所述体征信息包括士兵的心率和体温。
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