This application claims priority to and benefit of Japanese Patent Application No. 2018-214807 filed on Nov. 15, 2018, the entire contents of which are incorporated herein by reference.
This disclosure relates to biosensors.
A known measurement apparatus is attached to a human body to measure biological information. For example, Patent Literature 1 (PTL 1) discloses an ear-worn apparatus that is worn on an ear to detect biological information and calculates the blood flow amount state value on the basis of the detected biological information.
PTL 1: JP2005-192581A
A biosensor according to an embodiment includes a main body and a measurement unit. The main body is configured to sandwich a helix of a subject between a first wearing portion and a second wearing portion.
The measurement unit measures at least one of percutaneous oxygen saturation (SpO2) and blood flow amount of the subject.
In the accompanying drawings:
When measuring the biological information of a subject, if the biological information can be measured stably while reducing physical and mental load on the subject, the convenience of the measuring instrument can be improved. The purpose of this disclosure is to provide a biosensor that can improve the convenience. According to this disclosure, a biosensor that can improve the convenience can be provided. A biosensor according to an embodiment will be described below with reference to drawings.
A biosensor according to an embodiment is worn on an ear of a subject when the biological information of the subject is measured. The biosensor according to an embodiment measures the biological information of the subject while being worn on an ear of the subject. Here, the biological information is any information on a living body, and may include, for example, oxygen saturation, percutaneous oxygen saturation (SpO2), body temperature, pulse rate, respiration rate, Perfusion Index (PI) value, blood flow amount, blood pressure, and the like. Further, the biological information may include, for example, a relax degree that indicates a physical and mental relax degree of a living body. The biosensor 1 may estimate the state of the subject on the basis of the measured biological information. The state of the subject is any state that occurs in a living body of the subject, and includes a possibility of developing an altitude sickness.
As illustrated in
The first wearing portion 10a is an elongated portion extending substantially parallel to the X-axis direction illustrated in the figure. The second wearing portion 10b is an elongated portion extending substantially parallel to the X-axis direction illustrated in the figure. In
In the main body 10, the first wearing portion 10a, the second wearing portion 10b and the connecting portion 10c may be integrally formed. On the other hand, in the main body 10, at least one of the first wearing portion 10a, the second wearing portion 10b and the connecting portion 10c may be formed separately from the other members. When at least any one of the first wearing portion 10a, the second wearing portion 10b and the connecting portion 10c is formed separately from the other member, they may be attached with appropriate materials such as adhesive.
As described later, the main body 10 of the biosensor 1 is worn on the ear of the subject when the biological information of the subject is measured. In that case, at least one of the first wearing portion 10a, the second wearing portion 10b and the connecting portion 10c may be configured by a flexible material so that physical and mental load on the subject is reduced in a state in which the main body 10 of the biosensor 1 is worn on the ear of the subject. For example, at least one of the first wearing portion 10a, the second wearing portion 10b and the connecting portion 10c may be made of a soft material such as silicone rubber or urethane. On the other hand, at least one of the first wearing portion 10a, the second wearing portion 10b and the connecting portion 10c may have a core part made of a hard material such as plastic or metal and a surface made of a soft material such as silicone rubber or urethane. The main body 10 of the biosensor 1 may be made of various materials so as not to increase the physical and mental load on the subject more than necessary when it is worn on the ear of the subject.
As illustrated in
As illustrated in
As illustrated in
In this manner, in the biosensor 1 according to an embodiment, the main body 10 is configured to sandwich the helix of the subject between the first wearing portion 10a and the second wearing portion 10b. Thus, according to the biosensor 1 of an embodiment, when the biological information of the subject is measured, the biological information can be stably measured while the physical and mental load on the subject is reduced. Therefore, according to the biosensor of an embodiment, the convenience can be improved.
In
Further, as illustrated in
On the other hand, as a variation of the embodiment illustrated in
Next, a mechanism of wearing the biosensor 1 on the ear of the subject will be described.
It is required, first, that the main body 10 of the biosensor 1 can be worn on the ear of the subject, and after that, it is required that the helix of the subject is sandwiched with a moderate force. In order to realize such configuration, in the biosensor 1 according to an embodiment, at least a part of the main body 10 may be configured to have elasticity.
For example, as illustrated in
In this manner, in the biosensor 1 according to an embodiment, the connecting portion 10c may connect the first wearing portion 10a and the second wearing portion 10b so that they are displaceable to each other. Further, in the biosensor 1 according to an embodiment, the main body 10 may be configured such that the helix of the subject is sandwiched by the elasticity of at least one of the first wearing portion 10a, the second wearing portion 10b and the connecting portion 10c.
Further, as illustrated in
Next, the measurement unit of the biosensor 1 will be described.
The biosensor 1 can measure at least one of the percutaneous oxygen saturation (SpO2) and the blood flow amount of the subject. Thus, the biosensor 1 has a measurement unit that measures at least one of the percutaneous oxygen saturation (SpO2) and the blood flow amount of the subject.
As illustrated in
The first light source 21 and the second light source 22 may emit, as measurement light, laser light having a wavelength at which a predetermined component contained in blood can be detected. The first light source 21 and the second light source 22 may respectively be configured as a Laser Diode (LD), for example. As a laser light source used by this embodiment, a Vertical Cavity Surface Emitting Laser (VCSEL) may be used, for example. However, other lasers such as a Distributed Feedback (DFB) laser and Fabry-Perot (FP) laser may be used. In an embodiment, at least one of the first light source 21 and the second light source 22 may be configured as a Light Emitting Diode (LED).
The first light source 21 and the second light source 22 emit laser light of different wavelengths. The first light source 21 emits laser light of a first wavelength (hereinafter referred to as “first laser light”). The first wavelength is a wavelength having a large difference between the absorbance of hemoglobin bound to oxygen (hereinafter also referred to as “oxygenated hemoglobin”) and the absorbance of hemoglobin not bounded to oxygen (hereinafter also referred to as “reduced hemoglobin”). The first wavelength is a wavelength of 600 nm to 700 nm, for example, and the first laser light is what is called red light. This embodiment will be described below on the assumption that the first wavelength is 660 nm. The second light source 22 emits laser light of a second wavelength (hereinafter also referred to as “second laser light”). The second wavelength is different from the first wavelength. The second wavelength has a smaller difference between the absorbance of the oxygenated hemoglobin and the absorbance of the reduced hemoglobin than the first wavelength. The second wavelength is a wavelength of 800 nm to 1000 nm, for example, and the second laser light is what is called near infrared light. In this embodiment, description will be given below on the assumption that the second wavelength is 850 nm.
The light receiver 23 receives, as a biological measurement output, the scattered light (detection light) irradiated to the measured part and scattered from the measured part. The light receiver 23 may be configured by a Photo Diode (PD), for example. In an embodiment, the light receiver 23 may be configured by a PD that can detect wavelengths of both red light and near-infrared light. The biosensor 1 may transmit a photoelectric conversion signal received at the light receiver 23 to an external device via the cable 14, for example.
As illustrated in
In the main body 10 of the biosensor 1 illustrated in
Further, as illustrated in
The sound output interface 30 makes the subject to listen to any music or announcement of instructions while the subject wears the biosensor 1 on his/her helix and measures the biological information. Further, the sound output interface 30 may output the information based on the biological information measured by the biosensor 1 by sound or voice. For example, the sound output interface 30 may make the subject to listen to the measurement result of the biological information by the biosensor 1 as a voice announcement. Further, for example, the sound output interface 30 may allow the subject to listen to the measurement results of the biological information by the biosensor 1 by predetermined warning sound or music to call attention.
In this manner, in the biosensor 1 according to an embodiment, the first wearing portion 10a may have the sound output interface 30 that outputs sound from the end (sound output hole 12) of the first wearing portion 10a. In this case, the sound output interface 30 may transmit the sound by at least one of air vibration and bone conduction.
As illustrated in
As the biosensors 1 and 1′ illustrated in
In the main body 10 of the biosensor 2 illustrated in
As illustrated in
As in the biosensors 2 and 2′ illustrated in
In this manner, the biosensor 1 according to an embodiment has the measurement unit 20. Further, in the biosensor 1 according to an embodiment, the measurement unit 20 measures at least one of the percutaneous oxygen saturation (SpO2) and the blood flow amount of the subject. Further, in the biosensor 1 according to an embodiment, the measurement unit 20 may have the light emitters (21, 22) and the light receiver 23. Further, the light emitters (21, 22) may have the first light source 21 and the second light source 22. Thus, according to the biosensor 1 of an embodiment, the biological information of the subject can be stably measured when the biological information of the subject is measured. Therefore, according to the biosensor of an embodiment, the convenience can be improved.
Further, as illustrated in
Next, the measurement apparatus, which is an external device connected to the biosensor 1, will be described.
As illustrated in
As illustrated in
As illustrated in
The controller 101 entirely controls and manages at least one of the biosensor 1 and the measurement apparatus 100, including each functional block of at least one of the biosensor 1 and the measurement apparatus 100. The controller 101 may be configured by including at least one processor. The controller 101 may be configured by including at least one processor such as a Central Processing Unit (CPU) configured to execute a program that defines a control procedure, and realizes its function. Such a program may be stored, for example, in the memory 103 or an external storage medium connected to the measurement apparatus 100.
According to various embodiments, at least one processor may be implemented as a single integrated circuit (IC), or a plurality of communicably connected integrated circuits IC and/or discrete circuits. At least one processor can be configured according to various known technologies.
In an embodiment, the processor includes one or more circuits or units configured to execute one or more data computing procedures or processes by executing instructions stored in an associated memory, for example. In other embodiments, the processor may be firmware (e.g., a discrete logic component) configured to execute one or more data computing procedures or processes.
According to various embodiments, the processor may include one or more processors, controllers, microprocessors, microcontrollers, application specific integrated circuits (ASICs), digital signal processors, programmable logic devices, field programmable gate arrays, or any combination of these devices or configurations or any combination of other known devices or configurations, and may perform the functions of the controller 101 described below.
The controller 101 controls, for example, measurement processing of the biological information. For example, the controller 101 controls measurement processing of SpO2 of the subject by the biosensor 1. The controller 101 may estimate the state of the subject on the basis of the measured information. In this embodiment, for example, the controller 101 may estimate the possibility that the subject develops altitude sickness (also called altitude impairment) on the basis of SpO2 of the subject measured. The subject is more likely to develop altitude sickness when SpO2 decreases.
The controller 101 may notify the measured biological information and/or the estimated possibility that the subject develops altitude sickness to the subject via the sound output interface 30 by controlling the sound output interface 30. Further, the controller 101 may notify such information to the subject via the display 109 by controlling the display 109. In this manner, the subject can learn the notified information. For example, when receiving a notification that the possibility that the subject develops altitude sickness is high, the subject can take a measure to prevent altitude sickness beforehand.
The memory 103 can be configured by a semiconductor memory, a magnetic memory, or the like. The memory 103 stores various kinds of information and a program for operating the measurement apparatus 100. The memory 103 may also function as a working memory. The memory 103 may store, for example, the body temperature and SpO2 of the subject calculated by the controller 101, as history information. The memory 103 may store the information about the possibility that the subject develops altitude sickness estimated by the controller 101.
In an embodiment, the memory 103 may store the information of the sound output by the sound output interface 160. Here, the information of the sound stored in the memory 103 may be a voice file of any type such as MP3 (MPEG-1 Audio Layer-3) file or WAV file, for example. In an embodiment, the memory 103 may store various kinds of sound information according to the situation of the subject who uses the measurement apparatus 100.
The communication interface 105 transmits/receives various kinds of data to/from an external device such as the biosensor 1 or an external server through wired or wireless communication. The communication interface 304 can transmit/receive information by using network of wired, wireless or combination of wired and wireless. The communication interface 105 can communicate by, for example, Bluetooth®, infrared rays, NFC, wireless LAN, wired LAN or any other communication media or any combination thereof.
The communication interface 105 may communicate with an external device that stores the biological information of the subject to control the health state. In this case, the communication interface 105 may transmit the measurement results by the biosensor 1 and/or the health state estimated by the measurement apparatus 100 to the external device. Further, when the measurement apparatus 100 is connected to the biosensor 1 via the cable 14, the communication interface 105 may be an interface connecting the cable 14, for example.
The input interface 107 may be configured by including physical keys such as a keyboard and the like or by including a touch panel. The input interface 107 is not limited thereto and may be configured by including various input devices. In an embodiment, the measurement apparatus 100 may start control of measuring the biological information of the subject by the biosensor 1 on the basis of operation input by an operator to the input interface 107.
The display 109 notifies the information by characters, images, and the like. The display 109 may be a display device such as a Liquid Crystal Display (LCD), an Organic Electro-Luminescence Display (OELD:),an Inorganic Electro-Luminescence Display (IELD), and the like. In an embodiment, the display 109 may display the biological information of the subject measured by the biosensor 1 and/or various kinds of information based on the biological information. In this manner, the subject or the inspector can recognize the biological information of the subject and/or various kinds of information based on the biological information. In an embodiment, the display 109 may display the information output from the sound output interface 30 as the information such as characters or images.
When the processing illustrated in
The controller 101 of the measurement apparatus 100 estimates the state of the subject on the basis of the measured biological information (step S2). More specifically, the controller 101 may estimate the possibility that the subject develops altitude sickness on the basis of SpO2 of the subject, for example.
In step S2, the controller 101 of the measurement apparatus 100 according to an embodiment may estimate the state of the subject on the basis of the information measured by the measurement unit 20 of the biosensor 1. For example, the controller 101 may estimate that the possibility that the subject develops altitude sickness is high when a predetermined condition that all measured values of the SpO2 of the subject exceed a predetermined threshold is met. Further, for example, when the SpO2 of the subject is within a predetermined range, the controller 101 may estimate that the subject is in a predetermined health state.
The controller 101 notifies the information to the subject via the sound output interface 30 by transmitting a control signal to the sound output interface 30 (step S3). For example, the controller 101 may notify the information by letting the subject to hear a predetermined sound or voice.
The measurement apparatus 100 may repeatedly execute from step S1 to S3 periodically, irregularly or continuously. In this manner, the measurement apparatus 100 can continuously obtain the biological information of the subject and the history of the state of the subject.
The measurement apparatus 100 may notify the information by the means other than the sound output interface 30 in step S3. For example, the measurement apparatus 100 may display the information on the display 109 to notify the information. Further, the measurement apparatus 100 may notify the information by any other means that can be recognized by the subject.
In this manner, the biosensor 1 according to an embodiment may output, as at least one of sound and voice, the information based on at least one of the percutaneous oxygen saturation (SpO2) and the blood flow amount of the subject measured by the measurement unit 20 from the sound output interface 30.
Next, the biosensor according to another embodiment will be described.
The biosensor 1 illustrated in
However, the biosensor according to another embodiment may have a function of processing the biological information by itself, for example. Such an embodiment will be described below.
As illustrated in
The biosensor 3 may output the information on the body temperature of the subject detected by the temperature detector 40 as sound or voice from the sound output interface 30, for example. Further, the biosensor 3 may consider the body temperature of the subject detected by the temperature detector 40 when detecting the state of the subject.
The controller 50 may be a function part that executes functions similar to those of the controller 101 of the measurement apparatus 100 illustrated in
In this manner, the biosensor 3 according to an embodiment may have the controller 50 that performs a predetermined processing to the information on at least one of the percutaneous oxygen saturation (SpO2) and the blood flow amount of the subject measured by the measurement unit 20. Since the biosensor 3 has the controller 50, it can estimate the state of the subject on the basis of the biological information of the subject measured by the measurement unit 20 without being connected to the external device such as the measurement apparatus 100 illustrated in
The communication interface 60 may be a function part that executes functions similar to those of the communication interface 105 of the measurement apparatus 100 illustrated in
As described above, according to the biosensor of an embodiment, when measuring the biological information of a subject, the biological information can be measured stably while reducing physical and mental load on the subject. Thus, according to the biosensor of an embodiment, the convenience can be improved.
When worn on the ear of the subject, the biosensor according to an embodiment can measure with the light intensity that is almost the same as the case where the biological information of the subject is measured by irradiating the earlobe with light. Therefore, according to the biosensor of an embodiment, measurement can be made with less light intensity compared to the case where measurement is made by irradiating the finger of the subject with light, for example. Thus, according to the biosensor of an embodiment, low power consumption can be realized compared to the conventional general measuring instrument.
Further, the biosensor according to an embodiment enables measurement of the biological information in the natural state of the subject without forcing the subject to take an uncomfortable posture and without giving a sense of discomfort to the subject. Therefore, the biosensor according to an embodiment can minimize the load on the subject such as a feeling of fatigue. Further, since the biosensor according to an embodiment is configured to be wearable, it can be used even when the subject is moving, such as during exercise. Further, according to the biosensor of an embodiment, since the biosensor is stably positioned to the helix of the subject, it can stably measure the biological information of the subject.
Although the present disclosure has been described on the basis of the drawings and the examples, it is to be noted that various changes and modifications may be made easily by those who are ordinarily skilled in the art on the basis of the present disclosure. Accordingly, it is to be noted that such changes and modifications are included in the scope of the present disclosure. For example, functions and the like included in each component or each step can be rearranged without logical inconsistency, and a plurality of components or steps can be combined into one or divided. Although the embodiment according to the present disclosure has been described mainly on the apparatus, the embodiment according to the present disclosure can also be realized as a method including steps executed by each component of the apparatus. The embodiments according to the present disclosure can also be realized as a method and a program executed by a processor included in the apparatus, or a storage medium on which a program is recorded. It should be understood that the scope of the present disclosure includes these as well. Although the present disclosure has been described on the basis of the drawings and the examples, it is to be noted that various changes and modifications may be made easily by those who are ordinarily skilled in the art on the basis of the present disclosure. Accordingly, it is to be noted that such changes and modifications are included in the scope of the present disclosure. For example, functions and the like included in each function part can be rearranged without logical inconsistency, and a plurality of function parts can be combined into one or divided. Each embodiment according to the above described disclosure is not limited to being faithfully implemented in accordance with the above described each embodiment, and may be implemented by appropriately combining each feature or omitting a part thereof. That is, those who are ordinarily skilled in the art can make various changes and modifications to the contents of the present disclosure on the basis of the present disclosure. Therefore, such changes and modifications are included in the scope of the present disclosure. For example, in each embodiment, each function, each means, each step and the like may be added to another embodiment without logical inconsistency, or replaced with each function, each means, each step and the like of another embodiment. Further, in each embodiment, a plurality of functions, means or steps can be combined into one or divided. Moreover, each embodiment according to the above described disclosure is not limited to being faithfully implemented in accordance with the above described each embodiment, and may be implemented by appropriately combining each feature or omitting a part thereof.
1, 1′, 2, 2′ Biosensor
10 Main body
10
a First wearing portion
10
b Second wearing portion
10
c Connecting portion
12 Sound output hole
14 Cable
16 Cable connecting unit
21 First light source
22 Second light source
23 Light receiver
30 Sound output interface
40 Temperature detector
50 Controller
60 Communication interface
100 Measurement apparatus
101 Controller
103 Memory
105 Communication interface
107 Input interface
109 Display
Number | Date | Country | Kind |
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2018-214807 | Nov 2018 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2019/043424 | 11/6/2019 | WO | 00 |