PORTABLE ELECTROCARDIOGRAPHIC DEVICE, ELECTROCARDIOGRAM MEASUREMENT SYSTEM, AND NON-TRANSITORY RECORDING MEDIUM HAVING PROGRAM RECORDED THEREIN
20230011154 · 2023-01-12
Inventors
Cpc classification
A61B5/02438
HUMAN NECESSITIES
A61B5/7282
HUMAN NECESSITIES
G16H50/20
PHYSICS
A61B5/743
HUMAN NECESSITIES
A61B5/746
HUMAN NECESSITIES
A61B5/352
HUMAN NECESSITIES
International classification
Abstract
A portable electrocardiographic device configured to measure an electrocardiographic waveform using a plurality of types of lead systems includes an electrode unit configured to be brought into contact with a subject's body and measure an electrocardiographic waveform, an analysis unit configured to analyze the electrocardiographic waveform measured by the electrode unit in accordance with a lead system at a time of measurement of the electrocardiographic waveform, a storage unit configured to store the electrocardiographic waveform measured at the electrode unit, the lead system, and an analysis result of the electrocardiographic waveform analyzed by the analysis unit in association with one another, and a remeasurement facilitating unit configured to prompt a user, when the analysis result or a state of the measured electrocardiographic waveform satisfies a predetermined condition, for remeasurement in a predetermined lead system different from the lead system at the time of the measurement of the electrocardiographic waveform.
Claims
1. A portable electrocardiographic device configured to measure an electrocardiographic waveform using a plurality of types of lead systems, the portable electrocardiographic device comprising: an electrode unit configured to be brought into contact with a predetermined location of a subject's body and measure an electrocardiographic waveform; an analysis unit configured to analyze the electrocardiographic waveform measured by the electrode unit in accordance with a lead system at a time of measurement of the electrocardiographic waveform; a storage unit configured to store the electrocardiographic waveform measured at the electrode unit, the lead system, and an analysis result of the electrocardiographic waveform analyzed by the analysis unit in association with one another; and a remeasurement facilitating unit configured to prompt a user, when the analysis result or a state of the measured electrocardiographic waveform satisfies a predetermined condition, for remeasurement in a predetermined lead system different from the lead system at the time of the measurement of the electrocardiographic waveform.
2. The portable electrocardiographic device according to claim 1, wherein the remeasurement facilitating unit includes a display unit configured to display the lead system to be set at a time of the remeasurement.
3. The portable electrocardiographic device according to claim 2, wherein the display unit further displays indicating that the predetermined condition is satisfied.
4. The portable electrocardiographic device according to claim 1, further comprising: a setting unit configured to set lead system used in measurement of the electrocardiographic waveform, among the plurality of types of lead systems, wherein at the time of the measurement and at a time of the remeasurement, the user sets the lead system using the setting unit.
5. The portable electrocardiographic device according to claim 1, wherein the lead system at the time of the measurement is lead I in a 12-lead system, the predetermined condition is that arrhythmia is observed in the analysis result, and the predetermined lead system is lead V4 in the 12-lead system.
6. The portable electrocardiographic device according to claim 1, wherein the lead system at the time of the measurement is lead I in a 12-lead system, the predetermined condition is that atrial fibrillation is observed in the analysis result, and the predetermined lead system is lead V1 in the 12-lead system.
7. The portable electrocardiographic device according to claim 1, wherein the lead system at the time of the measurement is lead I in a 12-lead system, the predetermined condition is that a defect in waveform quality is observed in the analysis result, and the predetermined lead system is lead V1 or lead V4 in the 12-lead system.
8. An electrocardiographic measurement system configured to measure an electrocardiographic waveform using a plurality of types of lead systems, the electrocardiographic measurement system comprising: a portable electrocardiographic device provided with an electrode unit configured to be brought into contact with a predetermined location of a subject's body and detect an electrocardiographic waveform; and a portable communication terminal provided communicably with the portable electrocardiographic device, wherein the electrocardiographic measurement system further includes an analysis unit configured to analyze the electrocardiographic waveform measured by the electrode unit in accordance with a lead system at a time of measurement of the electrocardiographic waveform, a storage unit configured to store the electrocardiographic waveform measured at the electrode unit, the lead system, and an analysis result of the electrocardiographic waveform analyzed by the analysis unit in association with one another, and a remeasurement facilitating unit configured to prompt a user, when the analysis result or a state of the measured electrocardiographic waveform satisfies a predetermined condition, for remeasurement in a predetermined lead system different from the lead system at the time of the measurement of the electrocardiographic waveform.
9. The electrocardiographic measurement system according to claim 8, wherein the remeasurement facilitating unit includes a display unit provided at either the portable electrocardiographic device or the portable communication terminal, the display unit is configured to display the lead system to be set at a time of the remeasurement.
10. The electrocardiographic measurement system according to claim 9, wherein the display unit further displays indicating that the predetermined condition is satisfied.
11. The electrocardiographic measurement system according to claim 8, further comprising: a setting unit configured to set lead system used in measurement of the electrocardiographic waveform, among the plurality of types of lead systems, wherein at the time of the measurement and at a time of the remeasurement, the user sets the lead system using the setting unit.
12. The electrocardiographic measurement system according to claim 8, wherein the lead system at the time of the measurement is lead I in a 12-lead system, the predetermined condition is that arrhythmia is observed in the analysis result, and the predetermined lead system is lead V4 in the 12-lead system.
13. The electrocardiographic measurement system according to claim 8, wherein the lead system at the time of the measurement is lead I in a 12-lead system, the predetermined condition is that atrial fibrillation is observed in the analysis result, and the predetermined lead system is lead V1 in the 12-lead system.
14. The electrocardiographic measurement system according to claim 8, wherein the lead system at the time of the measurement is lead I in a 12-lead system, the predetermined condition is that a defect in waveform quality is observed in the analysis result, and the predetermined lead system is lead V1 or lead V4 in the 12-lead system.
15. A non-transitory recording medium having a program recorded therein wherein the display unit in the electrocardiographic measurement system according to claim 9 is provided at the portable communication terminal, and the program is for controlling the portable communication terminal to cause the display unit to display the lead system to be set at the time of the remeasurement.
16. A non-transitory recording medium having a program recorded therein wherein the display unit in the electrocardiographic measurement system according to claim 10 is provided at the portable communication terminal, and the program is for controlling the portable communication terminal to cause the display unit to display indicating that the predetermined condition is satisfied.
17. A non-transitory recording medium having a program recorded therein wherein the setting unit in the electrocardiographic measurement system according to claim 11 is provided at the portable communication terminal, and the program is for controlling the portable communication terminal to allow the user to set the lead system using the setting unit at the time of the measurement and at the time of the remeasurement.
18. The portable electrocardiographic device according to claim 2, further comprising: a setting unit configured to set lead system used in measurement of the electrocardiographic waveform, among the plurality of types of lead systems, wherein at the time of the measurement and at the time of the remeasurement, the user sets the lead system using the setting unit.
19. The portable electrocardiographic device according to claim 3, further comprising: a setting unit configured to set lead system used in measurement of the electrocardiographic waveform, among the plurality of types of lead systems, wherein at the time of the measurement and at the time of the remeasurement, the user sets the lead system using the setting unit.
20. The portable electrocardiographic device according to claim 2, wherein the lead system at the time of the measurement is lead I in a 12-lead system, the predetermined condition is that arrhythmia is observed in the analysis result, and the predetermined lead system is lead V4 in the 12-lead system.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
DESCRIPTION OF EMBODIMENTS
[0044] Embodiments of the present invention will be specifically described below with reference to the drawings. Hereinafter, an example of the embodiments of the present invention will be described. It should be noted, however, that the dimension, material, shape, relative arrangement, and the like of the components described in the present embodiment are not intended to limit the scope of this invention to them alone unless otherwise stated.
First Embodiment
[0045] Configuration of Portable Electrocardiographic Device.
[0046] As illustrated in
[0047] At the front surface of the main body 1 of the portable electrocardiographic device 100, a measurement notification LED 5 and an abnormal waveform detection LED 6 are disposed vertically side by side. The measurement notification LED 5 is a light-emitting element that is turned on or blinks during electrocardiographic waveform measurement. The abnormal waveform detection LED 6 is a light-emitting element that is turned on when an abnormal waveform is detected for the measured electrocardiographic waveform. Through the turning on of the abnormal waveform detection LED 6, the subject is notified of the presence or absence of an abnormal waveform detected from electrocardiographic waveform measurement data.
[0048] On the left side surface as viewed from the front surface of the main body 1 of the portable electrocardiographic device 100, a power switch 7, a power LED 8, a BLE communication button 9, a communication LED 10, a residual memory display LED 11, and a battery replacement LED 12 are disposed vertically side by side. The power switch 7 is a depression switch configured to turn on the power of the portable electrocardiographic device 100. The power LED 8 is a light-emitting element that is turned on when the power is turned on. The BLE communication button 9 is an operation part configured to cause communication with Bluetooth (trade name) Low Energy (BLE) scheme-compliant apparatuses to function. The communication LED 10 is a light-emitting element that is turned on during communication. Note that the communication function that the portable electrocardiographic device 100 has is not limited to that of the BLE-scheme, and may be of a wireless communication method such as infrared communications or information transmission via ultrasonic waves, or of a wired communication scheme in which connections are established via cables, connectors, and the like. The residual memory display LED 11 is a light-emitting element that indicates the state of the remaining capacity of a memory unit to be described later. The battery replacement LED 12 is a light-emitting element that is turned on to prompt for battery replacement when the power of the power source (battery) included in the portable electrocardiographic device 100 falls below a predetermined value.
[0049] A lead type setting input unit 13 and a lead type display LED 14 are disposed on the right side surface as viewed from the front surface of the main body 1 of the portable electrocardiographic device 100. The lead type display LED 14 displays, among the plurality of lead systems, which lead system is used to detect the electrocardiographic waveform. The lead type display LED 14 includes a display LED 14a for lead I, a display LED 14b for lead II, a display LED 14c for lead III, a display LED 14d for lead V1, a display LED 14e for lead V2, a display LED 14f for lead V3, a display LED 14g for lead V4, a display LED 14h for lead V5, and a display LED 14i for lead V6. On the right side surface of the main body 1, indications indicating the respective lead systems are provided in the vicinity of the display LEDs 14a to 14i. The lead type setting input unit 13 is a button that is depressed to switch among the lead types. For example, when the power of the portable electrocardiographic device 100 is turned on, lead I is set as the initial setting, and the display LED 14a for lead I is turned on. However, selecting and depressing the button of the lead type setting input unit 13 causes lead II to be set and the display LED 14b for lead II to be turned on. Similarly, each time the button of the lead type setting input unit 13 is depressed, the set lead type sequentially switches among lead III, lead V1, lead V2, lead V3, lead V4, lead V5, and lead V6, and the corresponding lead type display LEDs 14c to 14i are sequentially turned on. The lead type display LED 14 and the lead type setting input unit 13 correspond to the setting unit of the present invention.
The lead type display LED is not limited to the one in which an LED is provided for each lead type as described above, and may be one in which one LED is provided that emits light in a different color for each of the lead types and in which the lead type is distinguished by the light emission color of the LED.
[0050] Furthermore, a removable battery cover 15 is provided at the rear surface of the main body 1 of the portable electrocardiographic device 100.
[0051] Here, for example, when measurement with lead I is performed in electrocardiographic measurement, with the portable electrocardiographic device 100 held by the right hand, the first electrode 2 provided at the bottom of the main body 1 is brought into contact with the left palm. When holding the portable electrocardiographic device 100, the tip of the right hand index finger is brought into contact with the second electrode 3, and the middle phalanx of the right hand index finger is brought into contact with the third electrode 4. For example, the subject performs electrocardiographic measurement while pushing the first electrode 2 provided at the bottom, from the top side of the main body 1 at which the second electrode 3 and the third electrode 4 are provided, in the pressing direction that is the direction to the left palm. Here, the tip and the middle phalanx of the right hand index finger and the left palm correspond to the predetermined location of the subject's body in the present invention.
[0052] When measurement with lead II is performed in electrocardiographic measurement, with the portable electrocardiographic device 100 held by the right hand, the first electrode 2 provided at the bottom of the main body 1 is brought into contact with the left upper thigh (or left ankle). When holding the portable electrocardiographic device 100, the tip of the right hand index finger is brought into contact with the second electrode 3, and the middle phalanx of the right hand index finger is brought into contact with the third electrode 4. Here, the tip and the middle phalanx of the right hand index finger and the left upper thigh (or left ankle) correspond to the predetermined location of the subject's body in the present invention.
[0053] Furthermore, when measurement with lead III is performed in electrocardiographic measurement, with the portable electrocardiographic device 100 held by the left hand, the first electrode 2 provided at the bottom of the main body 1 is brought into contact with the left upper thigh (or left ankle). When holding the portable electrocardiographic device 100 by the left hand, the tip of the left hand index finger is brought into contact with the third electrode 4, and the middle phalanx of the left hand index finger is brought into contact with the second electrode 3. For example, the subject performs electrocardiographic measurement while pushing the first electrode 2 provided at the bottom, from the top side of the main body 1 at which the second electrode 3 and the third electrode 4 are provided, in the pressing direction that is the direction to the left upper thigh (or left ankle). Here, the tip and the middle phalanx of the left hand index finger and the left upper thigh (or left ankle) correspond to the predetermined location of the subject's body in the present invention.
[0054] Furthermore, when measurement with lead V4 is performed in electrocardiographic measurement, with the portable electrocardiographic device 100 held by the right hand, the subject brings the first electrode 2 provided at the bottom of the main body 1 into contact with the skin of the left chest slightly to the left of the epigastric region and on the lower side of the left nipple. When holding the portable electrocardiographic device 100, the right hand index finger is brought into contact with the second electrode 3, and the middle phalanx of the right hand index finger is brought into contact with the third electrode 4. Then, the electrocardiographic measurement is performed while the first electrode 2 provided at the bottom is being pushed, from the top side of the main body 1 at which the second electrode 3 and the third electrode 4 are provided, in the pressing direction that is the direction to the measurement site. Here, the tip and the middle phalanx of the right hand index finger and the skin of the left chest slightly to the left of the epigastric region and on the lower side of the left nipple correspond to the predetermined location of the subject's body in the present invention.
Configuration of Portable Electrocardiographic Device
[0055] Next, the configuration of the portable electrocardiographic device 100 will be described.
[0056] As illustrated in
[0057] The electrode unit 101 includes the first electrode 2 and the third electrode 4 that function as a pair of measurement electrodes, and the second electrode 3 that functions as ground (GND) electrode. Through the electrode unit 101 brought into contact with the skin of the subject, an electrocardiographic waveform in a predetermined period is detected. The electrocardiographic waveforms detected by each of the electrodes of the electrode unit 101 are each input to the amplifier unit 102 connected to the electrode unit. The amplifier unit 102 amplifies a signal detected by the electrode unit 101, and outputs the resultant signal to the AD conversion unit 103. The AD conversion unit 103 performs digital conversion on the detection signal of the electrocardiographic waveform amplified by the amplifier unit 102, and outputs the resultant signal to the control unit 104.
[0058] The control unit 104 is a processor such as a central processing unit (CPU) that controls the portable electrocardiographic device 100. The control unit 104 executes a program stored in the memory unit 106, whereby various processing is executed, such as setting of the lead type, and electrocardiographic waveform measurement and analysis in accordance with the lead system. Here, the control unit 104, which executes analysis processing of electrocardiographic waveforms in accordance with the lead system, corresponds to the analysis unit of the present invention.
[0059] The timer unit 105 is a unit to receive instructions from the control unit 104, and count various time or periods related to electrocardiographic waveform measurement.
[0060] The memory unit 106 is configured by including a main storage device such as a read-only memory (ROM) and a random access memory (RAM), and also a long-term storage medium such as flash memory, for example. The memory unit 106 stores various programs related to electrocardiographic waveform measurement and analysis, and various information for detecting abnormal waveforms and the like. Here, the memory unit 106 corresponds to the storage unit of the present invention.
[0061] The display unit 107 is a unit to display various information related to electrocardiographic waveform measurement. The display unit 107 includes the measurement notification LED 5, the abnormal waveform detection LED 6, the power LED 8, the communication LED 10, the residual memory display LED 11, the battery replacement LED 12, and the lead type display LED 14. The display unit 107 may include a unit to display various information by an image and/or video, such as a liquid crystal display.
[0062] The operation unit 108 is a unit to receive operation inputs from the subject or the user. The operation unit 108 includes the power switch 7, the BLE communication button 9, and the lead type setting input unit 13. The power source unit 109 is a unit to supply power for causing the portable electrocardiographic device 100 to function, and includes a battery, a secondary battery, or the like. The communication unit 110 is a communication interface that controls signal transmission and reception to and from an apparatus such as a smartphone 200. The communication function provided by the communication unit 110 may be BLE communications, for example, but other known wireless and wired communication schemes can be employed.
Smartphone
[0063]
Basic Electrocardiographic Measurement Processing
[0064]
First, the power switch 7 of the portable electrocardiographic device 100 is depressed to turn on the power (step S1). At this time, the power LED 8 is turned on to indicate that the power is on.
[0065] Next, the subject or the user inputs, through the lead type setting input unit 13, the lead type with which the measurement is to be performed (step S2). For example, when the subject is to measure the electrocardiographic waveform with lead V5, from the state in which the display LED 14a for lead I is turned on by the initial setting, the button of the lead type setting input unit 13 is depressed six times. This sequentially switches the lead type to II, III, and the like until the display LED 14g for lead V4 is turned on, indicating that electrocardiographic measurement with lead V4 is set (step S2-1).
[0066] In lead V4, the tip of the right hand index finger is brought into contact with the second electrode 3, and the middle phalanx of the right hand index finger is brought into contact with the third electrode 4. Then, the first electrode 2 is brought into contact with the skin of the left chest slightly to the left of the epigastric region and on the lower side of the left nipple. Electrical signals respectively acquired via the electrodes 2, 3, and 4 are amplified in the amplifier unit 102 and digitally converted in the AD conversion unit 103 to generate a contact state detection signal. The contact state detection signal generated in this way is transmitted to the control unit 104, and the contact state between the subject and each of the electrodes 2, 3, and 4 is detected (step S3).
[0067] The control unit 104 determines whether a predetermined time has elapsed with the electrode contact state being maintained (step S4). If a “NO” determination is made in step S4, step S4 is repeated. If a “YES” determination is made in step S4, the control unit 104 determines the lead type (step S5).
[0068] When lead V4 is set in step S2, the control unit 104 determines that the lead type is lead V4 in step S5, and proceeds to step S17 to start electrocardiographic waveform measurement with lead V4.
[0069] The control unit 104 causes the time elapsed since the start of measurement to be counted in the timer unit 105, and determines whether a predetermined measurement time has elapsed (step S18).
In the case of “NO” in step S18, the processing returns to step S17 to continue electrocardiographic waveform measurement.
In the case of “YES” in step S18, the control unit 104 analyzes the electrocardiographic waveform with lead V4 (step S19). Upon completion of electrocardiographic waveform analysis, the measurement notification LED 5 is turned on to notify the subject of measurement completion.
Since the characteristics of the identifying parameters for the electrocardiographic waveform vary depending on the lead system, it is desirable that a lead system be set with which electrocardiographic waveform data suited to the information desired to be acquired can be obtained. Furthermore, in electrocardiographic waveform data analysis, analyzing the electrocardiographic waveform in accordance with the lead system allows optimal electrocardiographic waveform analysis.
[0070]
[0071]
[0072] As illustrated in
[0073] Upon completion of electrocardiographic waveform analysis, the control unit 104 stores the electrocardiographic waveform with lead V4 and the analysis result in association with each other in a predetermined region of the memory unit 106 (step S20).
Then, the control unit 104 displays the result of electrocardiographic waveform analysis (step S21). Specifically, when an abnormal waveform is detected as a result of electrocardiographic waveform analysis, the abnormal waveform detection LED 6 is turned on to notify the subject that an abnormal waveform is detected.
After the analysis result of the electrocardiographic waveform is displayed and the electrocardiographic measurement processing is completed, the subject or the user depresses the power switch 7 again to turn off the power. The power may be caused to be turned off when a predetermined time has elapsed since the analysis result of the electrocardiographic waveform is displayed without any operation on the power switch 7.
[0074] In the example described above, a case in which lead V4 is set as the lead type in step S2 has been described. However, even when lead I is set as the lead type in step S2, the control unit 104 executes the processing in the same or similar procedures. In other words, an electrocardiographic waveform is measured with lead I (step S6), the elapse of a predetermined measurement time is waited for (step S7), the electrocardiographic waveform with lead I is analyzed (step S8), and the electrocardiographic waveform with lead I and the analysis result are stored in a predetermined region of the memory unit 106 (step S9). Then, when an abnormality is detected in the electrocardiographic waveform, the abnormal waveform detection LED 6 is turned on and the analysis result is displayed (step S10) and then the electrocardiographic measurement processing is terminated. Depressing the power switch 7 turns off the power (step S11).
[0075]
Processing for Adding Electrocardiographic Waveform Remeasurement in Different Lead System
[0076] Hereinafter, of the electrocardiographic waveform measurement processing using the portable electrocardiographic device 100, the processing for adding electrocardiographic waveform remeasurement in a different lead system will be described with reference to
[0077] Step S1 to step S10 are the same as or similar to the electrocardiographic waveform measurement processing illustrated in
[0078] Electrocardiographic waveform measurement with lead I is performed in step S6 and step S7. The electrocardiographic waveform is analyzed in step S8. Then, in step S9, the electrocardiographic waveform with lead I and the analysis result are stored in a predetermined region of the memory unit 106. If there is an abnormality in the electrocardiographic waveform with lead I in step S8, the abnormal waveform detection LED 6 is turned on in step S10. If there is no abnormality in the electrocardiographic waveform with lead I in step S8, the measurement analysis result is displayed in step S10. That there is no abnormality in the analysis result is indicated by not turning on the abnormal waveform detection LED 6, or turning on or causing to blink the abnormal waveform detection LED 6 in a manner different from when there is an abnormality in the analysis result. Here, the abnormal waveform detection LED 6 corresponds to the display unit of the present invention.
[0079] Here, in the next step S31, the control unit 104 determines, as a result of the electrocardiographic waveform analysis, whether there is an abnormality in the electrocardiographic waveform with lead I. Here, as a result of the electrocardiographic waveform analysis, whether there is an abnormality in the electrocardiographic waveform is determined by whether the analysis result of the electrocardiographic waveform satisfies a predetermined condition. Examples of predetermined conditions include conditions such as that arrhythmia is observed, that atrial fibrillation is observed, and that a defect in waveform quality is observed. When any of such conditions is satisfied, the control unit 104 determines that there is an abnormality in the electrocardiographic waveform.
[0080] If a “NO” determination is made in step S31, the electrocardiographic measurement process is terminated. Depressing the power switch 7 turns off the power (step S41). If a “YES” determination is made in step S31, the processing proceeds to step S32.
[0081] In lead I, whether there is an irregular pulse wave can be approximately determined by the interval between R waves, which have high peak values (see
[0082] For example, when it is desired to more precisely grasp and analyze the electrocardiographic waveform pattern, electrocardiographic waveform remeasurement with lead V4 is added and the corresponding display lead 14g is caused to blink. In this way, the processing in step S33 to step S35 after remeasurement with lead V4 is set is the same as or similar to that in step S3 to step S5 in
[0083] The lead system added to the electrocardiographic waveform measurement with lead I is not limited to lead V4 described above, and various lead systems can be set. For example, when the control unit 104 determines, as a result of electrocardiographic waveform analysis in step S8, that there is a possibility of atrial fibrillation (AF), it is difficult to make a more reliable determination on atrial fibrillation with lead I, and it is preferable to check the presence or absence of P waves or F waves (irregular baseline fluctuations). In this case, electrocardiographic waveform remeasurement with lead V1 is added in step S32. The electrocardiographic waveform with lead V1 is a waveform illustrated by
Basic Electrocardiographic Measurement Processing in Which Portable Electrocardiographic Device and Smartphone Cooperate with Each Other
[0084]
[0085] First, the power switch 7 of the portable electrocardiographic device 100 is depressed to turn on the power (step S301). On the other hand, in the smartphone 200, an application for electrocardiographic measurement is opened (step S401). The description herein assumes that registration of the ID of the subject and the like has been completed at the time of the initial setting described above.
[0086] Next, a BLE connection is established between the portable electrocardiographic device 100 and the smartphone 200 in accordance with a predetermined procedure (step S302 and step S402).
Once a BLE connection is established between the portable electrocardiographic device 100 and the smartphone 200, the smartphone 200 transmits a communication start request to the portable electrocardiographic device 100 (step S403).
[0087] Next, in the smartphone 200, the control unit 201 receives the input of the lead type (step S404).
[0088] The lead type set in step 5404 is transmitted from the smartphone 200 to the portable electrocardiographic device 100. The portable electrocardiographic device 100 receives the lead type (step S303), and stores the same in a predetermined region of the memory unit 106.
[0089] Next, in the portable electrocardiographic device 100, the control unit 104 detects the electrode contact state (step S304). Specifically, when measurement with lead V4 is performed with the portable electrocardiographic device 100, the tip of the right hand index finger is brought into contact with the second electrode 3, and the middle phalanx of the right hand index finger is brought into contact with the third electrode 4. Then, the first electrode 2 is brought into contact with the skin of the left chest slightly to the left of the epigastric region and on the lower side of the left nipple. Furthermore, when measurement with lead I is performed with the portable electrocardiographic device 100, the tip of the right hand index finger is brought into contact with the second electrode 3, and the middle phalanx of the right hand index finger is brought into contact with the third electrode 4. Then, the left palm is brought into contact with the first electrode 2. As described above, the subject respectively brings the electrodes 2, 3, and 4 into contact with the measurement sites in accordance with the set lead type. Electrical signals respectively acquired via the electrodes 2, 3, and 4 are amplified in the amplifier unit 102 and digitally converted in the AD conversion unit 103 to generate a contact state detection signal. The contact state detection signal generated in this way is transmitted to the control unit 104, and the contact state between the subject and each of the electrodes 2, 3, and 4 is detected.
[0090] In the portable electrocardiographic device 100, information indicating the electrode contact state is transmitted to the smartphone 200 (step S305). Upon receiving the information indicating the electrode contact state (step S405), the smartphone 200 displays the electrode contact state on the touch panel display 202 and the like (step S406) to notify the subject that normal contact is maintained with each of the electrodes 2, 3, and 4.
[0091] The control unit 104 determines whether a predetermined time has elapsed with the electrode contact state being maintained (step S306).
If a “NO” determination is made in step S306, the processing returns to step S304.
If a “YES” determination is made in step S306, the control unit 104 starts electrocardiographic measurement in accordance with the set lead type (step S307).
[0092] Once electrocardiographic measurement is started, the portable electrocardiographic device 100 performs streaming communication to and from the smartphone 200, and transmits lead type information, electrocardiographic waveform information, and measurement time information to the smartphone 200 (step S308). The measurement time information is information related to the time elapsed since the start of electrocardiographic measurement, which is counted in the timer unit 105. Here, the measurement time information is information indicating the remaining measurement time obtained by subtracting, from a predetermined time, the time elapsed since the start of electrocardiographic measurement. The information on the time elapsed since the start of electrocardiographic measurement may be transmitted from the portable electrocardiographic device 100 to the smartphone 200, and the processing of subtracting the elapsed time from the predetermined time may be performed on the smartphone 200 side. On the other hand, the smartphone 200 receives the lead type information, the electrocardiographic waveform information, and the measurement time information from the portable electrocardiographic device 100 (step S407).
[0093] The smartphone 200 displays the lead type, the electrocardiographic waveform, and the measurement time on the touch panel display 202 (step S408). In this way, the subject is notified of the lead type, that the electrocardiographic measurement is being normally performed, and the remaining measurement time.
The lead type displayed on the touch panel display 202 can be utilized to instruct the subject on the proper measurement posture. Furthermore, when a lead type different from the lead system intended by the subject is displayed on the touch panel display 202, a prompt for remeasurement in the proper measurement posture can be performed.
[0094] Whether a predetermined measurement time (e.g., 30 seconds) has elapsed since the start of electrocardiographic waveform measurement is determined (step S309).
If a “NO” determination is made in step S309, the processing returns to step S307 to continue electrocardiographic measurement.
If a “YES” determination is made in step S309, the control unit 104 analyzes the electrocardiographic waveform in accordance with the set predetermined lead system (step S310). Analyzing the electrocardiographic waveform in accordance with the set predetermined lead system allows accurate analysis.
[0095] During electrocardiographic waveform analysis, the control unit 104 transmits information indicating that electrocardiographic waveform analysis is in execution to the smartphone 200 (step S311). Upon receiving the information indicating that electrocardiographic waveform analysis is in execution from the portable electrocardiographic device 100 (step S409), the smartphone 200 displays information indicating that electrocardiographic waveform analysis is in execution on the touch panel display 202 (step S410).
[0096] Upon completion of electrocardiographic waveform analysis, the control unit 104 stores the lead type, the electrocardiographic waveform, and the analysis result in association with one another in a predetermined region of the memory unit 106 (step S312). Storing the lead type in association with the electrocardiographic waveform and the analysis result in the predetermined region of the memory unit 106 allows useful information to be provided when the physician reads out the electrocardiographic waveform and utilizes the same for diagnosis or the like. The lead type, the electrocardiographic waveform, and the analysis result associated with one another may be stored only on the smartphone 200 side without being stored in the memory unit 106 of the portable electrocardiographic device 100. Furthermore, only one of the lead type, the electrocardiographic waveform, and the analysis result may be stored in the memory unit 106 of the portable electrocardiographic device 100. When an abnormal waveform is detected by electrocardiographic waveform analysis, the control unit 104 may cause the abnormal waveform detection LED 13 to blink to notify the subject of the abnormal waveform detection.
[0097] Furthermore, upon completion of electrocardiographic waveform analysis, the control unit 104 transmits the analysis result to the smartphone 200 by high-speed data communication (step S314). At this time, the smartphone 200 receives the analysis result transmitted from the portable electrocardiographic device 100 (step S411), and displays the analysis result, that is, whether the electrocardiographic measurement result is normal and without any problems or whether an abnormal waveform has been detected, on the touch panel display 202 (step S412).
[0098] Then, if there is any electrocardiographic waveform data, lead type determination result data, or analysis result that has not yet been transmitted to the portable electrocardiographic device 100, the control unit 104 transmits such information to the smartphone 200 in the descending chronological order by high-speed data communication (step S315). At this time, the smartphone 200 receives the untransmitted electrocardiographic waveform data, lead type data, and analysis result from the portable electrocardiographic device 100 (step S413), and stores the same in a predetermined region of the memory unit 204. Then, the smartphone 200 displays the analysis result, such as whether the latest electrocardiographic waveform and electrocardiographic measurement result are normal or whether an abnormal waveform has been detected, on the touch panel display 202 (step S414).
[0099] Upon completion of transmission of the untransmitted electrocardiographic waveform data, lead type determination result data, and analysis result (step S316), in response to a communication end request transmitted from the smartphone 200 (step S415), the portable electrocardiographic device 100 disconnects the BLE communication (step S317). In response to the disconnection of the BLE communication in the portable electrocardiographic device 100, the BLE communication is also disconnected on the smartphone 200 side (step S416).
[0100] After the BLE communication is disconnected, the power switch 7 is turned off in the portable electrocardiographic device 100 (step S318). The control unit 104 may automatically turn off the power switch 7 when a predetermined time has elapsed since BLE disconnection, or the subject or the user may depress the power switch 7 to turn off the same. On the other hand, in the smartphone 200, the application is closed after the BLE communication is disconnected (step S417). In this way, electrocardiographic measurement in the portable electrocardiographic device 100 in cooperation with the smartphone 200 is completed.
Processing in which Portable Electrocardiographic Device and Smartphone Cooperate with Each Other to Add Electrocardiographic Waveform Remeasurement in Different Lead System
[0101]
[0102] First, the processing of step S301 and step S302 in the portable electrocardiographic device 100 and step S401 to step S403 in the smartphone 200 is the same as or similar to that illustrated in
[0103] Subsequently, in the smartphone 200, the control unit 201 receives the input of the lead type (step S604). At this time, lead I is selected and input on the smartphone 200. At this time, the subject or the user touches the button 2022a for setting lead I on the touch panel display 202 of the smartphone 200. Once lead I is set, the touch panel display 202 displays a guide screen 2024 that describes, using a figure and characters, the position (measurement site) with which the subject is to bring the electrode 2 of the portable electrocardiographic device 100 into contact in accordance with the set lead I, as illustrated in
[0104] The lead type set in step S604 is transmitted from the smartphone 200 to the portable electrocardiographic device 100. The portable electrocardiographic device 100 receives the lead type (step S503), and stores the same in a predetermined region of the memory unit 106.
[0105] Next, in the portable electrocardiographic device 100, the control unit 104 detects the electrode contact state (step S504). Specifically, when measurement with lead I is performed with the portable electrocardiographic device 100, the tip of the right hand index finger is brought into contact with the second electrode 3, and the middle phalanx of the right hand index finger is brought into contact with the third electrode 4. Then, the left palm is brought into contact with the first electrode 2. As described above, the subject respectively brings the electrodes 2, 3, and 4 into contact with the measurement sites in accordance with the set lead type. Electrical signals respectively acquired via the electrodes 2, 3, and 4 are amplified in the amplifier unit 102 and digitally converted in the AD conversion unit 103 to generate a contact state detection signal. The contact state detection signals generated in this manner are transmitted to the control unit 104, and the contact states between the subject and each of the electrodes 2, 3, and 4 are detected.
[0106] In the portable electrocardiographic device 100, information indicating the electrode contact state is transmitted to the smartphone 200 (step S505). Upon receiving the information indicating the electrode contact state (step S605), the smartphone 200 displays the electrode contact state on the touch panel display 202 and the like (step S606) to notify the subject that normal contact is maintained with each of the electrodes 2, 3, and 4.
[0107] The control unit 104 determines whether a predetermined time has elapsed with the electrode contact state being maintained (step S506).
If a “NO” determination is made in step S506, the processing returns to step S504.
If a “YES” determination is made in step S506, the control unit 104 starts electrocardiographic measurement in the set lead I (step S507).
[0108] Once electrocardiographic measurement is started, the portable electrocardiographic device 100 performs streaming communication to and from the smartphone 200, and transmits lead type information indicating that the lead type is lead I, electrocardiographic waveform information, and measurement time information to the smartphone 200 (step S508). The measurement time information is information related to the time elapsed since the start of electrocardiographic measurement, which is counted in the timer unit 105. Here, the measurement time information is information indicating the remaining measurement time obtained by subtracting, from a predetermined time, the time elapsed since the start of electrocardiographic measurement. The information on the time elapsed since the start of electrocardiographic measurement may be transmitted from the portable electrocardiographic device 100 to the smartphone 200 to perform the processing of subtracting the same from the predetermined time on the smartphone 200 side. On the other hand, the smartphone 200 receives the lead type information, the electrocardiographic waveform information, and the measurement time information from the portable electrocardiographic device 100 (step S607).
[0109] The smartphone 200 displays the lead type, the electrocardiographic waveform, and the measurement time on the touch panel display 202 (step S608). In this way, the subject is notified that the lead type is lead I, that the electrocardiographic measurement is being normally performed, and of the remaining measurement time.
[0110] Whether a predetermined measurement time (e.g., 30 seconds) has elapsed since the start of electrocardiographic waveform measurement is determined (step S509).
If a “NO” determination is made in step S509, the processing returns to step S507 to continue electrocardiographic measurement.
If a “YES” determination is made in step S509, the control unit 104 analyzes the electrocardiographic waveform in accordance with the set predetermined lead system (step S510). Analyzing the electrocardiographic waveform in accordance with the set lead I allows accurate analysis.
[0111] During electrocardiographic waveform analysis, the control unit 104 transmits information indicating that electrocardiographic waveform analysis is in execution to the smartphone 200 (step S511). Upon receiving the information indicating that electrocardiographic waveform analysis is in execution from the portable electrocardiographic device 100 (step S609), the smartphone 200 displays information indicating that electrocardiographic waveform analysis is in execution on the touch panel display 202 (step S610).
[0112] Upon completion of electrocardiographic waveform analysis, the control unit 104 stores the lead type, which is lead I, the electrocardiographic waveform, and the analysis result in association with one another in a predetermined region of the memory unit 106 (step S512). Storing the lead type in association with the electrocardiographic waveform and the analysis result in the predetermined region of the memory unit 106 allows useful information to be provided when the physician reads out the electrocardiographic waveform and utilizes the same for diagnosis or the like. The lead type, the electrocardiographic waveform, and the analysis result associated with one another may be stored only on the smartphone 200 side without being stored in the memory unit 106 of the portable electrocardiographic device 100. Furthermore, only one of the lead type, the electrocardiographic waveform, and the analysis result may be stored in the memory unit 106 of the portable electrocardiographic device 100.
When an abnormal waveform is detected in electrocardiographic waveform analysis, the control unit 104 may cause an abnormal waveform detection LED 13 to blink to notify the subject of the abnormal waveform detection.
[0113] Furthermore, upon completion of electrocardiographic waveform analysis, the control unit 104 transmits the analysis result to the smartphone 200 by high-speed data communication (step S514). At this time, the smartphone 200 receives the analysis result transmitted from the portable electrocardiographic device 100 (step S611), and displays the analysis result, that is, whether the electrocardiographic measurement result is normal and without any problems or whether an abnormal waveform has been detected, on the touch panel display 202 (step S612).
[0114] The control unit 104 determines, as a result of electrocardiographic waveform analysis, whether there is an abnormality in the electrocardiographic waveform with lead I (step S515).
If a “NO” determination is made in step S515, the electrocardiographic measurement processing is terminated. Depressing the power switch 7 turns off the power (step S516).
If a “YES” determination is made in step S515, that is, if an abnormality is observed in the electrocardiographic waveform with lead I, the control unit 104 transmits the addition of remeasurement in another lead system to the smartphone 200 to perform electrocardiographic measurement in a more correct lead system (step S517).
[0115] An example of the analysis result displayed on the touch panel display 202 when it is determined that there is an abnormality in the electrocardiographic waveform with lead I in step S515 is illustrated in
[0116] As illustrated in
[0117] When the subject or the user touches the touch panel display 202 on which the indication 2026 prompting for electrocardiographic waveform measurement in another lead system illustrated in
[0118] The portable electrocardiographic device 100 receives information on measurement with another lead (step S518). Thereafter, electrocardiographic measurement with lead V4, which has been set as another lead system, is performed. The processing procedures of step S519 and beyond are the same as the processing procedures of step S304 and step S405 and beyond illustrated in
[0119] The lead system added to the electrocardiographic waveform measurement with lead I is not limited to lead V4 described above, and various lead systems can be set. For example, when the control unit 104 determines, as a result of electrocardiographic waveform analysis in step S518, that there is a possibility of atrial fibrillation (AF), it is difficult to make a more reliable determination on atrial fibrillation with lead I, and it is preferable to check the presence or absence of P waves or F waves (irregular baseline fluctuations). In this case, electrocardiographic waveform remeasurement with lead V1 is added in step S32. The electrocardiographic waveform with lead V1 is a waveform illustrated in
[0120] In this way, in addition to electrocardiographic measurement in one lead system, electrocardiographic waveform remeasurement in another lead system can be performed. This allows the electrocardiographic waveform pattern to be correctly measured, and information beneficial for correct diagnosis to be collected. An example in which electrocardiographic waveform remeasurement with lead V4 is added to electrocardiographic measurement with lead I, and an example in which electrocardiographic waveform remeasurement with lead V1 is added to the electrocardiographic measurement with lead I have been described. However, lead systems used when performing electrocardiographic waveform remeasurement in addition to the electrocardiographic measurement with lead I is not limited thereto. The combination of the lead system when performing the initial electrocardiographic measurement and the lead system when electrocardiographic waveform remeasurement is added is not limited thereto either. When accurate analysis cannot be expected in the electrocardiographic measurement with one lead system for reasons such as poor waveform quality, much noise, and unclear waveform pattern, electrocardiographic waveform remeasurement with a lead system, in which an electrocardiographic waveform having a property complementary to that of the electrocardiographic waveform with the one lead system can be measured, can be added to improve the accuracy of electrocardiographic measurement.
REFERENCE NUMERALS LIST
[0121] 1: Portable electrocardiographic device main body [0122] 2, 3, 4: Electrode [0123] 13: Lead type setting input unit [0124] 14: Lead type display LED [0125] 100: Portable electrocardiographic device [0126] 200: Smartphone [0127] 202: Touch panel display