Electrocardiograph and its control method

The electrocardiograph automates ECG analysis and extended examinations to streamline ACS assessment in emergency rooms, addressing the challenges of multiple ECG evaluations and personnel shortages.

JP7834852B2Active Publication Date: 2026-03-24FUKUDA DENSHI CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-04-21
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

In emergency rooms, performing the recommended electrocardiogram (ECG) tests for assessing acute coronary syndrome (ACS) is cumbersome due to simultaneous treatments and the lack of skilled personnel for evaluating multiple ECG reports, leading to inadequate assessment of ACS in patients undiagnosed initially.

Method used

An electrocardiograph with continuous acquisition, real-time display, automatic analysis, and determination functions that perform extended examinations if conditions for ACS are met, reducing the burden on medical professionals.

Benefits of technology

Facilitates early detection of ACS by automating ECG analysis and reducing the workload on medical staff, enabling objective assessment even in situations with limited expertise.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided are: an electrocardiograph having a function to reduce a burden on a medical worker associated with an electrocardiogram examination for an evaluation of the possibility of ACS and the evaluation; and a method for controlling the electrocardiograph. The electrocardiograph automatically applies an analysis processing to an electrocardiogram of a subject in conjunction with the continuous acquisition and display of the electrocardiogram. When information acquired by the analysis satisfies predetermined requirements associated with the possibility of acute coronary syndrome (ACS), the electrocardiograph performs an expanded test including the implementation of a periodic electrocardiogram examination.
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Description

Technical Field

[0001] The present invention relates to an electrocardiogram and a control method thereof.

Background Art

[0002] Acute Coronary Syndromes (ACS) is a pathological condition indicating acute myocardial ischemia due to severe stenosis or occlusion of the coronary artery. In the Acute Coronary Syndrome Guidelines (2018 Revised Edition) (Non-Patent Document 1, hereinafter simply referred to as the Guidelines), for subjects suspected of having ACS, as an electrocardiogram examination, · Evaluate a 12-lead electrocardiogram (initial electrocardiogram) within 10 minutes, · If the diagnosis cannot be made with the initial electrocardiogram, record a 12-lead electrocardiogram every 5 to 10 minutes according to symptoms, etc., · Record a 12-lead electrocardiogram over time, · In addition to the 12 leads, record the V4R lead, · Consider recording the V7 - V9 leads etc. are recommended.

Prior Art Documents

Non-Patent Documents

[0003]

Non-Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] However, in an emergency room where a wide variety of treatments are performed simultaneously on a patient who has been brought in complaining of chest pain, for example, it is not easy to perform the electrocardiogram (ECG) tests recommended by the guidelines, especially those recommended when a diagnosis cannot be made with the initial ECG. Furthermore, even if an ECG is measured, there is not always a physician in the emergency room who can evaluate the ECG. Moreover, if multiple ECGs are measured, it is cumbersome to make a diagnosis by comparing the multiple reports generated from each measurement.

[0005] Due to these factors, there was a problem in that the possibility of ACS was not adequately assessed, especially for patients who could not be diagnosed with ACS on the initial electrocardiogram.

[0006] In view of the problems of the prior art, the present invention provides, in one embodiment, an electrocardiograph and a control method thereof that have a function to reduce the burden on medical professionals involved in electrocardiogram examinations and evaluations for assessing the possibility of ACS. [Means for solving the problem]

[0007] According to one aspect of the present invention, an electrocardiograph is provided, comprising: an acquisition means for continuously acquiring an electrocardiogram of a subject; a display means for continuously displaying the electrocardiogram on a display device; an analysis means for automatically applying analysis processing to the electrocardiogram in parallel with the display of the electrocardiogram by the display means; and a determination means for determining whether the information obtained from the analysis processing satisfies predetermined conditions for the possibility of acute coronary syndrome (ACS), wherein if the determination means determines that the information obtained from the analysis processing satisfies the conditions for the possibility of ACS before predetermined termination conditions are met, the electrocardiograph further comprises a control means for controlling the electrocardiograph to perform an extended examination including the performance of a periodic electrocardiogram examination. [Effects of the Invention]

[0008] According to the present invention, it is possible to provide an electrocardiograph and a control method thereof that have a function to reduce the burden on medical professionals involved in electrocardiogram examinations and evaluations for assessing the possibility of ACS. [Brief explanation of the drawing]

[0009] The attached drawings are included in the specification and constitute part thereof, illustrating embodiments of the present invention and are used together with the description to explain the principles of the present invention. [Figure 1] This is a block diagram showing an example of the functional configuration of an electrocardiograph according to this embodiment. [Figure 2A] This is a flowchart illustrating the operation of the electrocardiograph according to the embodiment. [Figure 2B] This is a flowchart illustrating the operation of the electrocardiograph according to the embodiment. [Figure 3] This figure shows an example of a screen displayed by the electrocardiograph according to this embodiment. [Figure 4] This figure shows an example of a screen displayed by the electrocardiograph according to this embodiment. [Figure 5] This figure shows an example of a screen displayed by the electrocardiograph according to this embodiment. [Figure 6] This figure shows an example of a screen displayed by the electrocardiograph according to this embodiment. [Figure 7] This figure shows an example of a screen displayed by the electrocardiograph according to this embodiment. [Figure 8] This figure shows an example of a screen displayed by the electrocardiograph according to this embodiment. [Figure 9] This figure shows an example of a screen displayed by the electrocardiograph according to this embodiment. [Figure 10] This figure shows an example of a screen displayed by the electrocardiograph according to this embodiment. [Figure 11A] This figure shows an example of a summary report output by the electrocardiograph according to this embodiment. [Figure 11B] This figure shows an example of a summary report output by the electrocardiograph according to this embodiment. [Figure 12A] This figure shows an example of a summary report output by the electrocardiograph according to this embodiment. [Figure 12B] This figure shows an example of a summary report output by the electrocardiograph according to this embodiment. [Figure 13]It is a diagram showing an example of a summary report output by the electrocardiograph according to the embodiment.

Mode for Carrying Out the Invention

[0010] Hereinafter, the present invention will be described in detail based on its exemplary embodiments with reference to the accompanying drawings. Note that the following embodiments do not limit the invention according to the claims. Also, although a plurality of features are described in the embodiments, not all of them are essential to the invention, and the plurality of features may be arbitrarily combined. Furthermore, in the accompanying drawings, the same or similar configurations are denoted by the same reference numerals, and redundant descriptions are omitted. <N

[0011] Hereinafter, embodiments of implementing the present invention with an electrocardiograph will be described, but the present invention is applicable to any other electronic device capable of measuring and analyzing a standard 12-lead electrocardiogram. Such electronic devices include medical devices such as monitor devices, as well as general-purpose computer devices (personal computers, tablet terminals, smartphones, etc.) having an interface to which an electrocardiogram electrode can be connected and capable of executing an application for measuring and analyzing a standard 12-lead electrocardiogram.

[0012] (Configuration of Electrocardiograph) FIG. 1 is a block diagram showing a configuration example of an electrocardiograph 1 according to an embodiment of the present invention. The electrode group 110 has a configuration in which a plurality of electrodes attached to the body surface of the subject and a connector attached to the input unit 111 of the electrocardiograph are connected by lead wires. In the present embodiment, the electrocardiograph 1 measures a standard 12-lead electrocardiogram using the electrode group 110. The electrode group 110 used for measuring a standard 12-lead electrocardiogram generally has limb electrodes (4) and chest electrodes (6). Note that a signal may be input from the electrode to the electrocardiograph using wireless communication instead of lead wires.

[0013] The input unit 111 has a connector that mates with the connector of the electrode group 110. The input unit 111 further includes, for example, a protection circuit, a lead selector, and an amplification circuit, and outputs a preset type of electrocardiogram signal (in this case, an electrocardiogram signal of a standard 12-lead electrocardiogram).

[0014] The A / D conversion unit 112 converts the analog electrocardiogram signal output from the input unit 111 using A / D conversion and outputs it as electrocardiogram data. The input unit 111 and the A / D conversion unit 112 are also called the analog front end (AFE).

[0015] The filter processing unit 113 applies a noise reduction filter to the electrocardiogram data input from the A / D conversion unit 112 according to the settings of the control unit 120. In this embodiment, the filter processing unit 113 can selectively apply, for example, an electromyography noise reduction filter, an AC noise reduction filter, and a drift noise reduction filter, but the types and number of filter processes are not limited to these.

[0016] The speaker 114 is used by the control unit 120 to output, for example, a warning sound or a voice message.

[0017] The control unit 120 (control means) is a processor capable of executing programs, such as a CPU. The control unit 120 loads the program stored in the ROM 125 into the RAM 124 and executes it using the processor, thereby controlling the components of the electrocardiograph 1 and realizing the operation of the electrocardiograph 1, including the operation of the extended mode described later.

[0018] In addition to the program, ROM 125 stores unique information and settings of the electrocardiograph 1, as well as data for the graphical user interface (GUI) displayed on the display unit 118. The information and data stored in ROM 125 are used as appropriate during program execution. At least a portion of ROM 125 may be electrically rewritable.

[0019] RAM124 is used to load programs and store variables and other data during program execution. It is also used as buffer memory and video memory for the display unit 118.

[0020] At least one of the A / D conversion unit 112 and the filter processing unit 113 may be implemented by the control unit 120 executing a program, or by dedicated or existing hardware circuits.

[0021] The analysis unit 1201 (analysis means) applies predetermined analysis processing to the electrocardiogram data. The analysis unit 1201 is a functional block that describes the electrocardiogram data analysis function realized by the control unit 120 executing a program. Therefore, the operation of the analysis unit 1201 is actually executed by the control unit 120. Note that the analysis unit 1201 may be executed using a processor separate from the control unit 120.

[0022] The analysis processes applied by the analysis unit 1201 can be broadly categorized into classification processing, feature acquisition processing, and finding classification processing. Segmentation processing is the process of obtaining electrocardiogram data in predetermined units (for example, a predetermined number of beats, a predetermined time, etc.) from the measured electrocardiogram data. The feature acquisition process involves detecting the waveforms that make up one beat of an electrocardiogram (e.g., P wave, QRS complex, T wave) and their division points, and then determining predetermined feature quantities (RR interval, ST level, PQ or PR interval, QRS width, QT interval, etc.). The findings classification process determines multiple findings, including those suggestive of ACS, based on feature quantities and pre-determined classification criteria.

[0023] The features listed here are merely examples, and other features may be determined. Furthermore, there are no particular restrictions on the findings to be determined. Since the analysis process performed by the analysis unit 1201 is equivalent to that implemented as an automatic analysis function in known electrocardiographs and electrocardiogram analysis devices, further details will be omitted.

[0024] The recording medium 116 may be a removable medium such as a memory card or USB memory. The control unit 120 can record electrocardiogram (ECG) test data on the recording medium 116 or read ECG test data recorded on the recording medium 116. The ECG test data includes various data obtained in conjunction with the ECG measurement, such as subject information, ECG data, and analysis processing results. The ECG test data is generated for each test in a predetermined data format. The ECG test data may be recorded as multiple data files that are associated with each other, or as a single data file.

[0025] The control unit 117 is an input device that allows the user (medical professional) to input various settings and instructions to the electrocardiograph 1. In this embodiment, the control unit 117 is a physical switch, button, or key provided on the housing of the electrocardiograph 1. The control unit 117 has a recording button for giving start and end instructions for manual recording.

[0026] The display unit 118 is a touch display having an LCD and a touch panel. The display unit 118 displays the electrocardiogram being measured in real time, as well as patient information, analysis processing results, various GUIs, etc., according to the control of the control unit 120.

[0027] The printer 119 is, for example, a thermal printer and includes a paper transport mechanism, a recording head and its drive circuit. The printer 119, under the control of the control unit 120, outputs the electrocardiogram being measured in real time and outputs a report of the measured electrocardiogram and the results of its analysis. It should be noted that the printer 119 is not required to be built-in in this invention. The printer 119 may be an external printer that is connected to the electrocardiograph 1 in a communicative manner. In other words, the electrocardiograph 1 can use either a built-in or external printer.

[0028] The power supply unit 121 is, for example, a secondary battery or a commercial power supply (AC adapter), and supplies power to the components of the electrocardiograph 1.

[0029] External I / F123 is a communication interface with external devices and has a configuration that conforms to one or more known wired or wireless communication standards. For example, External I / F123 may conform to one or more standards such as USB, 100BASE-T, wireless LAN, and Bluetooth®.

[0030] Here, it is assumed that the electrocardiograph 1 is connected to the hospital information system 2 via the hospital's LAN 160 through an external interface 123. Therefore, the electrocardiograph 1 can communicate with the hospital information system 2 via the external interface 123. The hospital information system 2 manages medical information such as personal information, past test results, and diagnostic results, associated with the patient ID.

[0031] The electrocardiograph 1 of this embodiment has two operating modes: a normal mode in which it operates as a conventional stationary electrocardiograph, and an extended mode that provides functions to reduce the burden on medical professionals in performing electrocardiogram examinations to assess the possibility of ACS and evaluating the results of electrocardiogram examinations. The operating mode at startup can be selected, for example, by user settings via the settings screen. The operation of the normal mode will not be described, and the operation of the extended mode will be described below.

[0032] (Extended mode operation) Figures 2A and 2B are flowcharts relating to the extended mode operation of the electrocardiograph 1. The operation described in this flowchart is performed by the control unit 120 reading the program stored in the ROM 125 into the RAM 124 and executing it. In the following description, "electrocardiogram" and "lead" refer to a state in which the waveform is visible (displayed or printed), and "electrocardiogram data" and "lead data" refer to the data representing the electrocardiogram and lead, respectively. Note that "electrocardiogram" includes one or more "leads".

[0033] The control unit 120 (acquisition means) continuously acquires the subject's electrocardiogram based on signals input to the input unit 111 through the electrodes of the electrode group 110. The control unit 120 (display means) then continuously displays the acquired electrocardiogram on the display unit 118 in real time. The control unit 120 sequentially starts real-time display as each lead becomes available for display. In addition, the control unit 120 performs the operations described below in parallel with the acquisition and real-time display of the electrocardiogram.

[0034] Furthermore, when the control unit 120 detects an operation on the operation unit 117 or a touch operation on the display unit 118, it performs processing corresponding to the detected operation in parallel with the operations described below. For example, if the record button is operated, the control unit 120 outputs the electrocardiogram in real time from the printer 119, just as in normal mode operation.

[0035] In S201, the control unit 120 determines whether the electrodes of the electrode group 110 have been attached to the subject. If it determines that the attachment is complete, it executes S203; otherwise, it executes S201 again. For example, the control unit 120 can determine that the electrode attachment is complete if it has confirmed that data has been obtained from all leads that make up the electrocardiogram to be recorded (in this case, leads I-III, aVR, aVL, aVF, and V1-V6).

[0036] In S203, the control unit 120 begins storing electrocardiogram data in the RAM 124. The control unit 120 uses a predetermined area of ​​the RAM 124 as a buffer (FIFO) that always holds the most recent predetermined time (e.g., 30 seconds) of electrocardiogram data. The control unit 120 also starts performing periodic analysis processing on the electrocardiogram data. Since these processes are performed automatically without user instruction, the electrocardiogram evaluation is performed in the background even if the initial recording (output) of the electrocardiogram is not instructed through the operation unit 117.

[0037] The control unit 120 (analysis unit 1201) periodically (for example, every 30 seconds) performs analysis processing on electrocardiogram data for a predetermined time (for example, 10 seconds). If real-time analysis processing is possible, the analysis processing may be performed on the most recent predetermined time period of electrocardiogram data.

[0038] Figure 3 shows an example of the initial screen of the extended mode that the control unit 120 displays on the display unit 118 when electrode placement is complete and periodic analysis processing is being performed. The layout of the display screen and at least some of the display items may be customizable by the user.

[0039] The initial screen 100 has a waveform display area 20 that displays a standard 12-lead electrocardiogram and one lead (in this case, lead II) that is predetermined as a rhythm waveform from the standard 12 leads in real time. Below the waveform display area 20 is a function key area 30. Eight function keys, which are GUI parts that can be operated by the user via touch, are displayed in a switchable manner in the function key area 30.

[0040] A first information display area 10 is provided above the waveform display area 20 (at the very top of the initial screen 100), and a second information display area 40 is provided below the function key area 30 (at the very bottom of the initial screen 100).

[0041] The following describes each area in more detail. The first information display area 10 includes a heart rate area 11, a subject information area 12, a test type area 13, a filter type area 14, and a recording type area 15.

[0042] The heart rate area 11 displays the instantaneous heart rate (bpm), calculated from, for example, the time difference (e.g., RR interval) of the most recent two electrocardiogram features. The patient information area 12 displays patient information such as identification information (patient ID), name, and age. The patient information area 12 is touch-operable, and patient information can be entered through a sub-screen displayed by touch operation (details are described later).

[0043] The examination type area 13 displays the current examination type. In this embodiment, the electrocardiograph 1 can perform both 12-lead and 18-lead electrocardiograms in extended mode, and this shows the case where a 12-lead electrocardiogram is being performed in the initial state. When starting operation in extended mode, the user can set whether to perform a 12-lead or 18-lead electrocardiogram. The examination type can also be changed by touching the examination type area 13.

[0044] The filter type area 14 displays the type of filter that the filter processing unit 113 is applying to the electrocardiogram data. As described above, the filter processing unit 113 can selectively apply electromyography noise reduction filters, AC noise reduction filters, and drift noise reduction filters. The user can change the type of filter applied by the filter processing unit 113 by touching the filter type area 14.

[0045] The recording type area 15 displays whether automatic or manual recording will be performed when a recording command is issued via the recording button on the operation unit 117, as well as recording settings such as the number of guidances to be recorded. Automatic and manual recording can be switched by touching the automatic / manual recording switch key 36, which will be described later. Recording settings can also be configured by the user via the menu screen.

[0046] The waveform display area 20 includes an area 21 for displaying limb leads (leads I-III and aVR, aVL, and aVF), an area 22 for displaying chest leads (leads V1-V6), and an area 23 for displaying the rhythm waveform (lead II in this case). The leads displayed in the waveform display area 20 are updated in real time, and the most recent predetermined time period of leads is always displayed. The rhythm waveform is displayed to evaluate the regularity of the heartbeat, and the waveform is compressed in the time direction to display a longer period of waveform than areas 21 and 22.

[0047] The types of function keys displayed in the function key area 30 are determined according to the display screen. Furthermore, at least some of the displayed function keys are user-configurable.

[0048] The previous test result retrieval key 34 is a key used to retrieve information about past electrocardiogram (ECG) tests performed on a subject whose ECG is currently being measured. When the previous test result retrieval key 34 is operated, the control unit 120 queries the in-hospital information system 2 via the external I / F 123 for past ECG test results based on the subject ID entered in the subject information area 12. If there are matching test results, the control unit 120 receives a list of test results from the in-hospital information system 2. The control unit 120 displays a test result selection screen on the display unit 118 based on the list. The control unit 120 then retrieves the selected test result from the in-hospital information system 2 and displays it on the display unit 118.

[0049] When the automatic / manual recording switch key 36 is operated, the control unit 120 switches whether to perform automatic recording or manual recording when the recording button on the operation unit 117 is operated. The currently set recording operation is displayed in the recording type area 15.

[0050] In the case of automatic recording, the control unit 120 outputs the electrocardiogram for a certain period of time from the moment the record button is pressed, along with the analysis results from the analysis unit 1201, as a report in a predetermined format from the printer 119. On the other hand, in the case of manual recording, when the record button is pressed, the control unit 120 continuously outputs the measured electrocardiogram in real time from the printer 119 until the record button is pressed again.

[0051] When the interval recording start key 37 is pressed, the control unit 120 switches between enabling and disabling interval recording. When interval recording is enabled, the control unit 120 outputs a certain amount of electrocardiogram data from the printer 119 at predetermined intervals.

[0052] When the menu key 38 is pressed, the control unit 120 displays the menu screen on the display unit 118. The menu screen may be displayed as a sub-window superimposed on the initial screen 100, or the initial screen 100 may be replaced with the menu screen.

[0053] When the page switching key 39 is operated, the control unit 120 switches the set of function keys displayed in the function key area 30. This shows the case where two sets of function keys can be switched.

[0054] The second information display area 40 is an area that displays the current date and time, settings and status of the electrocardiograph 1, etc.

[0055] Returning to the explanation of Figure 2A, while performing periodic analysis processing, the control unit 120 determines in S205 whether or not an information input instruction has been detected. An information input instruction is, for example, a touch operation in the subject information area 12. If the control unit 120 determines that an information input instruction has been detected, it executes S207; otherwise, it executes S213.

[0056] In S207, the control unit 120 displays an information input screen on the display unit 118 and executes S209. Figure 4 shows an example of the input screen displayed in S207. In Figure 4, the control unit 120 determines that it has detected a touch operation on the subject information area 12, and displays a setting screen 200 for inputting subject information as a sub-window superimposed on the initial screen 100.

[0057] The settings screen 200 has touch-operable buttons for each input item. When a button is pressed, the control unit 120 activates the corresponding input area and displays a software keyboard or further input screens depending on the item. When the clear all button 211 is pressed, the control unit 120 resets the settings screen 200 to its initial state. When the complete button 212 is pressed, the control unit 120 closes the settings screen 200. The information entered in the settings screen 200 at the time the complete button 212 is pressed is saved by the control unit 120 to, for example, the ROM 125 or the recording medium 116. Note that only the input items for the subject information need to be entered, and additional information or changes can be made later.

[0058] Among the 200 input fields on the settings screen, "TIMI" is the TIMI (Thrombolysis In Myocardial Infarction) risk score. The TIMI risk score is a numerical value that represents the risk of non-ST-elevation ACS (NSTE-ACS), and corresponds to the number of applicable items among the following seven items. (1) Being 65 years of age or older (2) Elevated cardiac biomarkers (3) The presence of two or more episodes of angina within the past 24 hours. (4) Aspirin has been taken within the last 7 days. (5) History of coronary artery disease with a stenosis of 50% or more (6) Having three or more coronary risk factors (family history, hypertension, hypercholesterolemia, diabetes, current smoking) (7) ST deviation of 0.5 mm or more on the electrocardiogram

[0059] When the TIMI button 210 on the settings screen 200 is pressed, the control unit 120 further displays the TIMI score input screen 220 for inputting items (2) to (6) of the seven items mentioned above. Note that item (1) is entered in the age field on the settings screen 200. Also, item (7) is not entered here because it requires electrocardiogram analysis or evaluation.

[0060] The TIMI score input screen 220 is configured to allow input of items (2) to (6) by touch operation of buttons. Note that the item names are simpler than the TIMI risk score items due to factors such as the number of characters. In the example in Figure 4, the input for item (3) is set to select from three options: "none," "1 time," and "2 or more times." However, since the TIMI risk score does not distinguish between "none" and "1 time," it is also acceptable to select "less than 2 times" or "2 or more times." Note that for the TIMI score as well, only the items that can be entered need to be entered, and additional input or changes can be made later.

[0061] When the "Complete" button 227 on the TIMI score input screen 220 is pressed, the control unit 120 closes the TIMI score input screen 220. Based on the state of the buttons on the TIMI score input screen 220 at the time the "Complete" button 227 was pressed, the control unit 120 calculates the TIMI score and inputs it into the TIMI score area of ​​the settings screen 200.

[0062] The state of the buttons on the TIMI score input screen 220 at the time the completion button 227 is pressed is saved by the control unit 120, for example, in the ROM 125 or recording medium 116 when the completion button 212 on the settings screen 200 is pressed, in the same way as other subject information.

[0063] Note that the TIMI risk score is just one example of an ACS risk score, and other known ACS risk scores, such as the Global Registry of Acute Coronary Events (GRACE) risk score, may also be used.

[0064] In S209, the control unit 120 determines whether or not information input has been completed. In the example shown in Figure 4, the control unit 120 can determine that information input has been completed if the operation of the complete button 212 on the setting screen 200 is detected. If the control unit 120 determines that information input has been completed, it saves the entered subject information and then executes S211; otherwise, it repeatedly executes S209.

[0065] In S211, the control unit 120 (determination means) refers to the input subject information and determines whether the risk score is above or below the threshold. Here, the TIMI risk score is used as the ACS risk score, and the threshold is assumed to be 1 point. That is, the control unit 120 determines that the risk score is above or below the threshold if any one of the above items (1) to (6) is applicable. The threshold is determined according to the type of ACS risk score used. The threshold may also be changeable by the user. If the control unit 120 determines that the risk score is above or below the threshold, it executes S215; otherwise, it executes S213.

[0066] In S213, the control unit 120 (determination means) determines whether or not findings suggestive of ACS have been detected in the analysis process started by the analysis unit 1201 from S209. Findings suggestive of ACS include, for example, findings indicating a suspected or possible infarction, ST elevation (ST segment is above the baseline), T wave negativity (change from convex upward to convex downward), abnormal Q wave, QT interval prolongation, and atrioventricular block. Since these are findings that can be detected by known analysis processes, a detailed explanation will be omitted.

[0067] The control unit 120 executes S215 if it determines that findings suggestive of ACS have been detected during the analysis process, and S214 if it does not. Although Figure 2A shows S213 as being executed as a chronological processing step, the analysis process is executed in parallel with the processes S205 to S211. Therefore, in reality, the control unit 120 executes S213 each time the analysis process is completed, and immediately executes S215 if it determines that findings suggestive of ACS have been detected. If the information input screen is displayed, the control unit 120 may notify the user and forcibly terminate the information input process.

[0068] In S214, the control unit 120 determines whether a predetermined time has elapsed since the start of the analysis process in S203. If it determines that the predetermined time has elapsed, it terminates the extended mode operation; otherwise, it repeats from S205. Even after the extended mode operation is terminated, electrocardiogram measurement and real-time display continue until the electrodes are removed or the power is turned off. The predetermined time is the time required to determine that there is no suspicion of ACS, and can be, for example, 1 hour.

[0069] If, in S214, it is determined that no findings suggestive of ACS are detected for a predetermined period of time, the user may be asked whether to continue the extended mode operation (in this case, the execution of periodic analysis processing). If the user instructs to continue, the control unit 120 resets the elapsed time to 0 and continues executing the processing from S205.

[0070] In S215, the control unit 120 notifies the user that the risk score is above a threshold, or that findings suggestive of ACS have been detected through the analysis process. The control unit 120 also determines whether or not to proceed to an extended examination.

[0071] Figure 5 shows an example of the initial screen 100 display when the analysis process determines that findings suggestive of ACS have been detected. The control unit 120 overlays a message 51 indicating the name of the detected finding onto the initial screen 100. Here, the background color of the message 51 is varied according to the importance (severity) of the finding. The importance of the findings is pre-set. The control unit 120 also notifies the user of which lead the finding indicated in message 51 was detected by inverting the lead index 52. In addition to these displays, an alarm sound or voice may be output from the speaker 114.

[0072] As described above, the electrocardiograph 1 of this embodiment periodically performs analysis processing in parallel with the real-time display of the electrocardiogram, even without explicit instructions from the user, and notifies the user if findings suggestive of ACS are detected. Therefore, even if it takes time before the initial electrocardiogram is recorded, suspicion of ACS can be detected early. Furthermore, by utilizing the automatic analysis function of the electrocardiograph 1, it is possible to objectively understand that ACS is suspected even in situations where there are no staff or doctors skilled in interpreting electrocardiograms.

[0073] The control unit 120 further changes the function keys displayed in the function key area 30. Here, the TIMI key 32 and the 18-lead key 35 are added to the display. The TIMI key 32 is used to input items that have not yet been entered in the TIMI risk score, or to modify items that have already been entered. For example, whether or not myocardial markers are elevated may not be known when the TIMI risk score is first entered, because the examination begins after the subject is transported to the facility. Therefore, if the examination results are known at this point, the TIMI key 32 can be used to add the information. Not only elevated myocardial markers, but other unentered items can also be added in the same way. In addition, if there are errors in the entered information, they can also be corrected here. Note that adding or changing inputs can also be done from the subject information area 12 as explained earlier.

[0074] The 18-lead key 35 is used to input an instruction to perform an extended test. The control unit 120 waits while displaying the standard 12-lead electrocardiogram in real time until the 18-lead key 35 is operated. Here, the display format of the 18-lead key 35 is made different from that of the other function keys to make it easier for the user to understand that they are inputting an instruction to transition to an extended test. Here, since the initial state of extended mode operation is the measurement of a standard 12-lead electrocardiogram, the operation of the 18-lead key 35 is considered an instruction to transition to an extended test. However, if the 18-lead electrocardiogram is being measured from the beginning, a function key with a message such as "Execute Extended Test" may be displayed.

[0075] In this example, the user explicitly instructs whether or not to perform the extended inspection. However, the system may automatically proceed to the extended inspection unless an operation to refuse the extended inspection (for example, a predetermined operation on the operation unit 117) is detected. For example, the control unit 120 may automatically execute S217 if no user operation instructing not to perform the extended inspection is detected within a certain period after displaying message 51. Alternatively, the system may not ask the user whether or not to perform the extended inspection, but instead use message 51 to inform the user that the extended inspection has started along with the findings, and then automatically proceed to the extended inspection.

[0076] In S217, the control unit 120 starts an extended inspection. Specifically, the extended inspection involves: • Data from right-sided pectoral leads (at least lead V4R) and dorsal leads (leads V7-V9) are generated through a synthesis process based on measured standard 12-lead electrocardiogram data. • Periodically perform analysis processing (ECG examination) on the measured standard 12-lead electrocardiogram data. • Periodically detect ST levels in synthetic induction data. • For each of the 18 leads, display the representative waveform and ST level. • Output the results of multiple analysis processes in a single report. Includes processing.

[0077] The following describes the operation of extended testing. In S219, the control unit 120 changes the screen display from the initial screen 100 to the extended inspection screen. Figure 6 shows an example of the extended inspection screen 300. In the extended inspection screen 300, the area corresponding to the waveform display area 20 in the initial screen 100 has a measured waveform display area 310 (first display area), a composite waveform display area 320 (second display area), and an ST level display area 330 (third display area).

[0078] The measurement waveform display area 310 is the area that displays the standard 12-lead electrocardiogram being measured by the electrocardiograph 1. Unlike the waveform display area 20 of the initial screen 100, the measurement waveform display area 310 has a representative waveform display area 311 in addition to the real-time display area 312. The real-time display area 312 is the same as the waveform display area 20 of the initial screen 100, and is the area that displays the standard 12-lead electrocardiogram being measured in real time.

[0079] The representative waveform display area 311 is an area that displays the representative waveform for each lead. The representative waveform is a single beat waveform that represents the electrocardiogram for a predetermined time period (e.g., 10 seconds) to which the analysis processing has been applied. There are no particular restrictions on the method for determining the representative waveform from the waveforms of multiple beats included in the electrocardiogram for a predetermined time period, and any known method can be used. For example, the waveform of the beat with the smallest difference from the average waveform (the largest correlation with the average waveform) can be used as the representative waveform.

[0080] In this embodiment, a representative waveform of a standard 12-lead electrocardiogram for a predetermined period of time used in the analysis process performed immediately before or immediately after the execution of S217 (start of the extended examination) is initially displayed in the representative waveform display area 311 as a control waveform (reference waveform) 311a. Subsequently, each time an analysis process is performed in the extended examination, a representative waveform 311b of the standard 12-lead electrocardiogram for a predetermined period of time used in the most recent analysis process is superimposed on the control waveform 311a. By making the display format (e.g., color) of the control waveform 311a and the most recent representative waveform 311b that is superimposed different, it becomes possible to easily grasp the waveform at the start of the extended examination and the changes in the waveform thereafter.

[0081] The composite waveform display area 320 is an area that displays a representative waveform of the leads obtained by the synthesis process. The synthesis process is a process that generates lead data that has not been measured based on the lead data that has actually been measured. Through the synthesis process, it is possible to obtain lead data (composite lead data) that would have been measured at a position on the body surface where electrodes were not attached.

[0082] By using synthesis processing, it is possible to obtain data for more types of leads than the standard 12 leads, making it possible to provide lead-related information useful for diagnosing the possibility of ACS without increasing the number of electrodes attached to the patient.

[0083] In this embodiment, electrocardiogram data for leads V3R-V5R and V7-V9, including the right pectoral leads (lead V4R) and dorsal leads (leads V7-V9) recommended in the guidelines, is generated by synthesis processing based on standard 12-lead electrocardiogram data being measured.

[0084] The synthesis process that generates data for leads V3R-V5R and V7-V9, where electrodes are not actually attached, from standard 12-lead electrocardiogram data can be performed using known methods. For example, the control unit 120 generates X, Y, and Z lead data from the measured standard 12-lead electrocardiogram data using an inverse Dower matrix. Then, the control unit 120 generates synthesized lead data at the virtual electrode position by calculating the dot product of the X, Y, and Z lead data and the x, y, and z components of the lead vector at the virtual electrode position for each sample of lead data. For specific examples of the synthesis process, please refer to, for example, Japanese Patent Publication No. 4664068 and Japanese Patent Publication No. 4955153.

[0085] The control unit 120 generates data for leads V3R to V5R and V7 to V9 for a predetermined time period by performing a synthesis process using standard 12-lead electrocardiogram data for a predetermined time period to which the analysis process is applied. The control unit 120 then determines a representative waveform for each lead obtained from the synthesis process and displays the determined representative waveform in the synthesized waveform display area 320. The method for determining the representative waveform may be the same as the method for determining the representative waveform of the standard 12-lead electrocardiogram. Alternatively, the control unit 120 may use data for one beat of leads V3R to V5R and V7 to V9 generated by applying the synthesis process to the representative waveform data of the standard 12-lead electrocardiogram to display the representative waveform of the synthesized lead.

[0086] Furthermore, the control unit 120 displays a representative waveform for the first synthesis process as a control waveform 321 in the synthesized waveform display area 320, and for subsequent synthesis processes, it superimposes the representative waveform 322 for the most recent synthesis process onto the control waveform. Here again, the display format is made different so that the control waveform 321 and the most recent representative waveform 322 can be distinguished.

[0087] The ST level display area 330 is the area for displaying the ST levels for both the standard 12-lead and composite-lead lead leads. Here, the ST level is a relative value with the baseline level set to 0. In Figure 6, the maximum ST level corresponding to the maximum amplitude of the ST interval is displayed as the ST level. For example, by using a straight line connecting the Q wave start point and the T wave end point of the beat containing the target ST interval as the baseline, the ST level at which the absolute value of the difference between each sample value of the ST interval and the corresponding baseline level is maximized can be determined as the maximum ST level. The maximum ST level is an example of a representative value of an ST interval based on amplitude.

[0088] In this embodiment, the 18 leads are classified into 6 limb leads (I, II, III, aVL, aVR, aVF) and 12 chest leads (V1-V6, V3R, V4R, V5R, V7-V9), and the ST level for each lead is displayed according to the classification. Figure 6 shows an example of displaying the ST level for each lead by plotting the maximum ST level on separate radar charts 331a and 331b for each lead classification.

[0089] Here, the maximum ST level detected in the 18-lead electrocardiogram data (measured standard 12-lead and composite 6-lead) for a predetermined time period subject to analysis is displayed for each lead. In this embodiment, further, for each lead, • The maximum ST level (control value) detected in the analysis process immediately before or after the start of the extended test (the first analysis in the extended test), • The maximum ST level detected in the most recent analysis process in the extended inspection, The ST levels shall be displayed in the ST level display area 330 (plotted on a radar chart) for comparison. If the electrocardiogram data for a predetermined time period includes two or more beats, the maximum ST level across all beats shall be displayed.

[0090] Radar chart 331a shows the maximum ST level of the six leads of the limbs. Radar chart 331a has three concentric circles 332-334, with circle 333 representing ST level 0. Negative ST levels are shown towards the center of circle 333, and positive ST levels are shown towards the outer edge. For each axis, the distance between the intersection of circle 333 and circle 334 is equal to the distance between the intersection of circle 333 and circle 332. Radar chart 331b is similar to radar chart 331a, except that the types and number of leads plotted are different.

[0091] The axis scales of radar charts 331a and 331b are dynamically determined according to the absolute value of the maximum ST level of lead 18. Specifically, if the maximum ST level is positive, the scale of each axis is determined so that the maximum absolute value is plotted on circle 334. On the other hand, if the maximum ST level is negative, the scale of each axis is determined so that the maximum absolute value is plotted on circle 332. The axis scales are the same for radar charts 331a and 331b.

[0092] Each axis of radar charts 331a and 331b is labeled with the lead name. For the standard 12-lead radar, the maximum ST level 335 detected in the analysis process performed immediately before or immediately after the start of the extended scan is plotted as the control value (reference value) on radar charts 331a and 331b, respectively. On the other hand, for the 6-lead radar generated by the synthesis process, the maximum ST level 335 detected in the analysis process performed immediately after the start of the extended scan (the first analysis in the extended scan) is plotted as the control value (reference value) on radar charts 331a and 331b, respectively. Furthermore, for analysis processes performed after obtaining the control value, the maximum ST level 336 (latest value) detected in the most recent analysis process for all 18 leads is plotted on radar charts 331a and 331b, respectively, visually distinguishing it from the control value. In Figure 6, the control value (cont.) is represented by a dotted line, and the latest value (curt.) is represented by a solid line.

[0093] Figure 7 shows a modified version of the extended examination screen 300, which differs from Figure 6 in the configuration of the ST level display area 330, specifically in the arrangement of the axes. In the example shown in Figure 6, the axes for each lead were evenly spaced, but in this modified version, the axes are arranged in a positional relationship that mimics the positional relationship of the electrodes on the body surface corresponding to each lead.

[0094] In other words, in the 6-lead limb radar chart 331a, the axes corresponding to each lead are arranged to mimic the electrode placement positions on the limbs in an upright position, while in the 12-lead chest radar chart 331b, the axes corresponding to each lead are arranged to mimic the electrode placement positions on the chest surface.

[0095] The method for plotting the maximum ST level in radar charts 331a and 331b is the same as the example shown in Figure 6, so the explanation is omitted. Similarly, the display in areas other than the ST level display area 330 is the same as the example shown in Figure 6, so the explanation is omitted.

[0096] Alternatively, other ST levels may be plotted on the radar chart instead of the maximum ST level. Figure 8 shows another modified example of the extended inspection screen 300, which displays the ST level at a specific timing in a radar chart instead of the maximum ST level. Except for the ST level display area 330', it is the same as the examples shown in Figures 6 and 7. The ST levels displayed in the example in Figure 8 are examples of representative values ​​for ST intervals based on timing.

[0097] In the example shown in Figure 8, the ST level corresponding to the amplitude at a predetermined specific timing within the ST interval is displayed. For example, the ST level corresponding to the amplitude at a predetermined time after the start of the ST interval is shown. This predetermined time may be an absolute value (fixed value) or a value that is dynamically determined based on something other than the ST level. An example of a value that is dynamically determined based on something other than the ST level is a value determined according to the QT time of the beat containing the target ST interval (for example, a predetermined percentage such as 1 / 10 or 1 / 5 of the QT time).

[0098] In the example shown in Figure 8, the ST levels detected in the most recent analysis are displayed for each lead. If the electrocardiogram data for a predetermined time period subject to analysis includes two or more beats, representative values ​​(e.g., average or maximum) of the multiple ST levels detected are displayed. As in the examples in Figures 6 and 7, the ST levels detected in the first analysis may also be displayed as control values ​​for comparison.

[0099] Note that the ST level may be displayed using a method other than the radar chart. Figure 9 shows an example of an extended inspection screen 300' having an ST level display area 340 that does not use a radar chart. The ST level display area 340 shows the ST level using bar graphs 341a to 341c.

[0100] Bar graph 341a shows the ST levels of the 6-lead limbs. Bar graphs 341b and 341c show the ST levels of the 12-lead chest microscope, divided into 6 measured leads (V1-V6) and 6 composite leads (V3R-V5R, V7-V9), respectively. When using bar graphs, the control value 342 and the most recent value 343 are displayed for comparison for each lead. Note that the displayed ST level may be the maximum ST level or the ST level at a specific timing.

[0101] The user can switch at any time between the display mode of the ST level display area (e.g., either a radar chart or a bar graph) and at least one of the types of ST levels to display.

[0102] In the extended inspection screen 300, the function keys displayed in the function key area 30 are changed. A typical example of a function key is described below. When the TIMI key 35 is operated, the control unit 120 displays a screen for adding or modifying the risk score (in this case, the TIMI risk score) (details will be described later).

[0103] When the report key 41 is pressed, the control unit 120 terminates the extended inspection at that point and outputs a summary report (described later) based on the analysis processing results performed up to that point from the printer 119.

[0104] When the 12-lead key 42 is operated, the control unit 120 terminates the extended mode operation. However, even after terminating the extended mode operation, the real-time display of the standard 12-lead electrocardiogram continues. When the 12-lead key 42 is operated, the control unit 120 displays a message on the display unit 118 asking the user if they want to stop the extended examination, and the extended examination is stopped only if the user explicitly instructs to stop it. In this case, the summary report described later will not be output.

[0105] Returning to the explanation of Figure 2B, in S221, the control unit 120 determines whether the conditions for performing the analysis process (electrocardiogram examination) have been met. If the conditions are met, S223 is executed; otherwise, S225 is executed. Here, the conditions for performing the analysis process may be, for example, the elapsed time since the most recent analysis process was performed. Since the guidelines recommend electrocardiogram examinations every 5 to 10 minutes, the elapsed time can also be set to 5 to 10 minutes. However, it is thought that the guidelines set a longer examination cycle assuming that medical personnel will perform manual recording. Therefore, in this embodiment, the analysis process is performed at a shorter cycle (for example, 30 seconds) than the cycle recommended by the guidelines, thereby achieving a more detailed electrocardiogram examination.

[0106] Furthermore, if the operation of the record button on the operation unit 117 is detected, it can be determined that the conditions for executing the analysis process have been met. In this case, the control unit 120 executes the analysis process in response to the operation of the record button, in addition to the periodically performed analysis process. Note that the conditions for executing the analysis process in the extended inspection may be set by the user.

[0107] In S223, the control unit 120 (analysis unit 1201) copies the most recent predetermined time (e.g., 10 seconds) of 12-lead electrocardiogram data buffered in RAM 124 to another area of ​​RAM 124 or ROM 125, and then applies the analysis process. The reason for copying the electrocardiogram data is that the electrocardiogram data to which the analysis process has been applied may be used for outputting the summary report. If the measured electrocardiogram data is not erased, for example, if the buffer of RAM 124 can hold several hours' worth of 12-lead electrocardiogram data, then copying the electrocardiogram data is unnecessary.

[0108] The analysis process applied here may be the same as the analysis process started in S203. The analysis process includes the detection of the type of ST level to be displayed for each lead.

[0109] Furthermore, the control unit 120 generates synthesized lead data for a predetermined time period by performing a synthesis process using 12-lead electrocardiogram data for a predetermined time period to which the analysis process is applied, and stores it in the RAM 124. Therefore, the synthesized lead data is generated intermittently. The control unit 120 (analysis unit 1201) also applies the analysis process to the generated synthesized lead data and detects the type of ST level to be displayed for each lead. In this embodiment, only the analysis process necessary for ST level detection is applied to the synthesized lead data. However, the same analysis process applied to standard 12-lead electrocardiogram data may also be applied to the synthesized lead data. In this case, the synthesis process may be performed first, and then the analysis process may be applied to the 18-lead electrocardiogram data.

[0110] Furthermore, the control unit 120 updates the representative waveform of the standard 12-lead probe, the representative waveform of the composite 6-lead probe, and the ST level on the extended examination screen 300, and then executes S225. In this way, the display of the representative waveform and the magnitude of the ST deviation is updated each time the analysis process is performed.

[0111] In S225, the control unit 120 determines whether or not it has detected an instruction to input a risk score. If it has detected an instruction, it executes S227; otherwise, it executes S231. The instruction to input a risk score may be an operation of the TIMI key 35.

[0112] In S227, the control unit 120 displays a screen for additional input or modification of the risk score (re-input screen) on the display unit 118. Figure 10 shows an example of the TIMI score re-input screen 230. The TIMI score re-input screen 230 is similar to the TIMI score input screen 220, but for items that have already been entered, the entered content is displayed in gray instead of a selection option. In the example shown in Figure 10, all items except the myocardial marker are shown to have been entered.

[0113] When the re-entry button 228 is pressed, the control unit 120 changes the display for the already entered item to include options other than the already entered content (similar to the TIMI score input screen 220). However, the already entered content is displayed as selected from the options.

[0114] In S229, the control unit 120 determines whether it has detected an instruction to end the input or modification of the TIMI score. If it does not detect such an instruction, it repeatedly executes S227. The instruction to end may be an operation of the complete button 227.

[0115] If the control unit 120 determines that the "Complete" button 227 has been pressed, it updates the input content of the TIMI score stored in, for example, the ROM 125 or the recording medium 116, according to the state of the button on the TIMI score re-entry screen 230. The control unit 120 also terminates the display of the TIMI score re-entry screen 230 and executes S231.

[0116] In S231, the control unit 120 determines whether the termination conditions for the extended inspection have been met. If it determines that the termination conditions have been met, it executes S233; otherwise, it executes S221 again. The termination conditions for the extended inspection may be the elapsed time since the start of the extended inspection or the operation of the report key 41 as described above.

[0117] The guidelines recommend a minimum measurement of 15 minutes, so the elapsed time should be 15 minutes or longer. There is no specific upper limit, but it could be, for example, 1 hour. If the extended test is terminated due to the elapsed time, the user may be asked whether they wish to extend the extended test, and the user may be allowed to do so.

[0118] Note that while Figures 2A and 2B depict individual processes chronologically for illustrative purposes, some processes can be executed in parallel. For example, while waiting for the completion of information input in S209, the automated analysis started in S203 is executed periodically, and the determination of whether or not findings suggestive of ACS have been detected (S213) and the processing according to the determination result (S214, S215) are executed in parallel. Also, while additional input or modification of the risk score is being performed in the loops of S227 and S228, the determination of whether or not the conditions for performing the analysis process (electrocardiogram examination) have been met (S221) and the automated analysis process according to the determination result (S223) are executed in parallel.

[0119] When the report key 41 is operated, the control unit 120 may determine whether the number of analysis processes performed in the extended examination is less than a predetermined number (for example, 4 times). If it is determined that the number is less than the predetermined number, the control unit 120 may display a message on the display unit 118 indicating that a sufficient number of electrocardiogram examinations have not been performed and ask the user whether it is OK to terminate the extended examination.

[0120] In step S233, the control unit 120 outputs a summary report from the printer 119 and terminates the extended mode operation. However, even after terminating the extended mode operation, the real-time display of the 12-lead electrocardiogram continues.

[0121] Next, let's discuss the summary report. The summary report is a report that consolidates information useful for diagnosing the possibility of ACS from the results of multiple electrocardiogram (ECG) tests (analysis processing) performed during the extended examination into a single page. Conventionally, diagnosing the possibility of ACS from the results of multiple ECG tests required comparing individual reports output for each ECG test, which was very cumbersome. In this embodiment, a summary report is output that consolidates information useful for diagnosing the possibility of ACS from the results of multiple ECG tests into a single page, eliminating the need to compare multiple reports and providing high convenience.

[0122] Figures 11A and 11B show an example of a summary report 400 output in S233. The summary report 400 has a subject information area 401, a waveform area 410 (first area), an ST level area 420 (second area), and a findings area 430 (third area).

[0123] Subject information area 401 is an area that presents subject information, including the ACS risk score (in this case, the TIMI risk score).

[0124] The waveform region 410 is a region that displays a list of representative waveforms for each lead of a standard 12-lead electrocardiogram for a predetermined period of time to which analysis processing has been applied, for each of the multiple electrocardiogram tests to be recorded in the report. In this embodiment, the control unit 120 selects four electrocardiogram tests (analysis processing) that meet the following conditions from among the electrocardiogram tests performed in the extended examination as multiple electrocardiogram tests to be recorded in the report. (1) Electrocardiogram performed immediately before or after the start of the extended examination (2) Electrocardiogram in which the maximum ST level was detected after the start of the dilation test. (3) Electrocardiogram tests in which abnormal electrocardiogram findings were detected after the start of the extended examination. (4) Electrocardiogram performed at the end of the diastolic examination

[0125] Of conditions (1) to (4), (1) and (4) are mutually exclusive. However, the other combinations of conditions can be satisfied by the same electrocardiogram (ECG) test. Therefore, the number of ECG tests that satisfy conditions (1) to (4) may be less than four. If the number of ECG tests that satisfy conditions (1) to (4) is less than four, two or more ECG tests that satisfy condition (2) or (3) may be included in the summary report 400.

[0126] The control unit 120 then records representative waveforms 411 to 414 for each lead of a standard 12-lead electrocardiogram for a predetermined period of time, after applying analysis processing to each of the four selected electrocardiogram tests, in the waveform area 410.

[0127] The representative waveform 411 of the electrocardiogram test in (1) is the control waveform described above. (1) and (4) are important for understanding the temporal changes in the electrocardiogram at the start and end of the diastolic test. In addition, (2) and (3) are both important for diagnosing the possibility of ACS. Regarding (3), if abnormal findings are detected in two or more electrocardiogram tests, the electrocardiogram test in which the predetermined finding of the highest importance was detected shall be used.

[0128] Note that while the number of electrocardiogram (ECG) tests used to record waveforms in Summary Report 400 is set to four, it may also be three, such as (1)(2)(4) or (1)(3)(4). Alternatively, it may be five or more tests, including two or more instances of (3). Increasing the number of ECG tests used to record waveforms makes it more difficult to grasp subtle changes in the waveform, so if five or more tests are used, it is desirable to consider visibility.

[0129] The control unit 120 generates the summary report 400 so that it fits on one page, ensuring both readability and ease of viewing. The size of one page depends on the size of the printer 119, but the control unit 120 generates the summary report 400 so that it fits on one A4 or B4 size page. The control unit 120 generates print data for the summary report 400 according to the paper size and supplies it to the printer 119, thereby outputting the summary report from 400.

[0130] The waveforms displayed in waveform region 410 should ideally be the same as, or as close to as possible, the same scale as, the electrocardiogram output from printer 119 in normal mode operation. On the other hand, to eliminate the need to compare multiple reports and support efficient diagnosis, it is necessary to consolidate the results of multiple electrocardiogram tests onto a single page. Therefore, waveform region 410 does not include waveforms from synthetic 6-lead ECGs, and only standard 12-lead ECGs are displayed. However, the maximum ST level is displayed including that from synthetic 6-lead ECGs.

[0131] However, the control unit 120 can also output the waveforms of the standard 12-lead and synthetic 6-lead electrocardiograms that were the subject of the electrocardiogram tests described in (1) to (4) above, as a separate report from the summary report 400, via the printer 119, in response to user instructions.

[0132] The ST level region 420 displays the maximum ST level for each lead. Similar to the ST level display region 330 in Figure 6, the ST level region 420 uses separate radar charts for the 6 limb leads and the 12 chest leads, including the composite leads, to display the maximum ST level for each lead. However, the ST level region 420 displays the maximum ST level (cont) from the electrocardiogram examination (1) used as a control waveform and the maximum ST level (MAX-ST) detected in the electrocardiogram examination (2) (maximum ST level throughout the entire dilatation examination) for comparison.

[0133] Findings area 430 presents a list of abnormal electrocardiogram findings detected by the analysis process performed during the dilation examination, in order of importance.

[0134] Similar to the modified versions of the extended inspection screen 300, the summary report 400 may also have at least one of the following characteristics: the form of the radar chart in the ST level area and the type of ST levels plotted. Figures 12A and 12B show modified versions of the summary report 400 having an ST level area 420' with a different radar chart form and type of ST levels plotted.

[0135] In the modified examples shown in Figures 12A and 12B, the arrangement of the radar chart axes is changed to mimic the positional relationship of the electrodes on the body surface corresponding to each lead, similar to Figures 7 and 8. Furthermore, the types of ST levels plotted are changed to only the maximum ST level detected in the extended examination. Note that only the arrangement of the axes or only the types of ST levels plotted may also be changed.

[0136] Figure 13 shows an example of a summary report 400' having an ST level region 425 using bar graphs 341a-341c similar to those in Figure 9. The ST level region 425 records ST levels, similar to the bar graphs 341a-341c on the dilated examination screen 300'. The ST level region 425 presents the maximum ST level (cont) from the electrocardiogram examination (1) used as a control waveform and the maximum ST level (MAX-ST) detected in the electrocardiogram examination (2) (maximum ST level throughout the entire dilated examination). Even when using bar graphs, it may be possible to modify the display to show only the maximum ST level detected in the dilated examination.

[0137] The user can select the form of the ST level area in the summary report and the type of ST level to plot. The control unit 120 outputs the summary report from the printer 119 using the form of the ST level area according to the settings made during execution in S233.

[0138] The electrocardiograph according to this embodiment has an extended mode that automatically performs an electrocardiogram examination to assess the possibility of ACS without explicit instruction from the user. In extended mode, the electrocardiograph continuously performs electrocardiogram measurement and real-time display, periodically performs electrocardiogram examination (analysis processing), and performs a more detailed extended examination if it detects findings that suggest ACS. The electrocardiograph also performs an extended examination if the input subject's ACS risk score is above a predetermined value.

[0139] Thus, the electrocardiograph according to this embodiment determines whether a subject is suspected of having ACS based on analysis processing or a risk score, without any specific instructions from the user. Therefore, the user can know whether a subject should undergo a more detailed electrocardiogram examination without having to instruct the electrocardiograph to perform an examination at predetermined intervals or ask a doctor to interpret the examination result report output by the electrocardiograph.

[0140] During the extended examination, the electrocardiograph continuously measures and displays the electrocardiogram in real time, while periodically performing electrocardiogram analysis. In the extended examination, the electrocardiograph generates right precordial leads and dorsal leads, which are recommended to be recorded in the guidelines, through synthesis processing, and detects the ST level for each lead, including the standard 12 leads. Furthermore, once the extended examination is complete, the electrocardiograph outputs a summary report on one page that consolidates the results of multiple electrocardiogram tests performed periodically during the extended examination that are useful for diagnosing the possibility of ACS.

[0141] Patients who are brought to the emergency room complaining of chest pain often require a variety of treatments to be performed simultaneously, which can easily lead to a shortage of human resources for electrocardiogram (ECG) testing. Therefore, for patients who cannot be diagnosed with ACS based on the initial ECG, additional ECG tests and evaluations recommended by guidelines may not be adequately performed. A failure to properly diagnose the possibility of ACS in a patient due to insufficient longitudinal ECG testing is something that should be avoided for both the patient and the healthcare professionals.

[0142] The electrocardiograph of this embodiment automatically assesses the risk of ACS without user intervention and automatically performs detailed electrocardiogram examinations recommended by guidelines for subjects for whom the possibility of ACS cannot be ruled out. Furthermore, by outputting a summary report that aggregates the results of multiple electrocardiogram examinations, which is useful when a physician ultimately diagnoses the possibility of ACS, it reduces the burden on the user of managing and comparing multiple reports while contributing to an appropriate diagnosis by the physician. Thus, the electrocardiograph of this embodiment makes it possible to perform appropriate electrocardiogram examinations while reducing the burden on healthcare professionals, especially for subjects for whom ACS cannot be diagnosed in the initial electrocardiogram but the possibility of ACS cannot be ruled out.

[0143] (Other embodiments) The present invention can also be implemented as a program that causes a computer to function as an electrocardiogram analysis device as described in the embodiments described above. Furthermore, the present invention is not limited to the embodiments described above, and various modifications and alterations are possible without departing from the spirit and scope of the invention. Accordingly, claims are attached to disclose the scope of the invention.

[0144] This application claims priority based on Japanese Patent Application No. 2022-70086, filed on April 21, 2022, and all of its contents are incorporated herein by reference.

Claims

1. A means for continuously acquiring the electrocardiogram of a subject, Display means for continuously displaying the electrocardiogram on a display device, An analysis means that automatically applies analysis processing to the electrocardiogram in parallel with the display means of the electrocardiogram, An electrocardiograph having a determination means for determining whether the information obtained in the aforementioned analysis process satisfies predetermined conditions regarding the possibility of acute coronary syndrome (ACS), The analysis process by the analysis means and the determination by the determination means are repeatedly performed. An electrocardiograph further comprising control means for controlling the electrocardiograph to perform an extended examination, including the performance of a periodic electrocardiogram, if the determination means determines that the information obtained in the analysis process satisfies the conditions for the possibility of the ACS before a predetermined termination condition is met.

2. The electrocardiograph according to claim 1, wherein the analysis means periodically applies the analysis process to the electrocardiogram for a period of time until the termination condition is met or the determination means determines that the information obtained in the analysis process satisfies the conditions for the possibility of ACS.

3. The electrocardiograph according to claim 1, wherein the control means waits to perform the extended test until a user gives an instruction to perform the extended test.

4. The information obtained from the aforementioned analysis process is the findings. The control means displays the findings that the determination means has determined to satisfy the conditions on the display device. The electrocardiograph according to claim 1.

5. The electrocardiograph according to claim 1, wherein, when the termination conditions for the extended examination are met, the control means outputs a report from the output device that aggregates the results of a predetermined number of analysis processes performed in the extended examination.

6. The electrocardiograph according to claim 5, wherein the predetermined number of analysis processes includes an analysis process performed immediately before or immediately after the start of the extended examination and an analysis process performed at the end of the extended examination.

7. The electrocardiograph according to claim 5, wherein the predetermined number of analysis processes includes at least one of the analysis process in which the maximum ST level is detected in the augmented examination and the analysis process in which abnormal findings are detected.

8. The electrocardiograph according to claim 5, wherein the results of the analysis process include a representative waveform and maximum ST level for each lead.

9. When the extended inspection is performed, the control means changes the screen displayed on the display device to the extended inspection screen, The electrocardiograph according to claim 1, wherein the extended examination screen has a first display area for displaying the electrocardiogram, a second display area for displaying the waveform of the composite lead generated by the synthesis process, and a third display area for displaying the ST level for each lead.

10. The control means further generates a report for diagnosing the possibility of acute coronary syndrome (ACS) based on the results of multiple analysis processes automatically performed in the extended examination, and outputs the report. The aforementioned report states, For each of the aforementioned multiple analysis processes, a first region presents the waveforms in the electrocardiogram for a predetermined time period to which the analysis process was applied, for each lead of the electrocardiogram. It has a second area that presents the ST level for each lead, The lead presenting the ST level in the second region includes the electrocardiogram lead obtained from the subject and the composite lead generated by a synthesis process based on the electrocardiogram obtained from the subject. The electrocardiograph according to claim 1, wherein the control means generates the report so that it fits on one page output from the printer.

11. Acquisition means for continuously acquiring an electrocardiogram of a subject, Display means for continuously displaying the electrocardiogram on a display device, An analysis means that automatically applies analysis processing to the electrocardiogram in parallel with the display means of the electrocardiogram, An electrocardiograph having a determination means for determining whether the information obtained in the aforementioned analysis process satisfies predetermined conditions regarding the possibility of acute coronary syndrome (ACS), The system further includes control means for controlling the electrocardiograph to perform an extended examination, including the performance of a periodic electrocardiogram, if the determination means determines that the information obtained in the analysis process satisfies the conditions for the possibility of the ACS before a predetermined termination condition is met. The determination means further determines whether the ACS risk score for the subject is above a predetermined threshold, The control means controls the electrocardiograph to perform the extended test even if the determination means determines that the ACS risk score for the subject is above a predetermined threshold before the termination condition is met.

12. The electrocardiograph according to claim 11, wherein the ACS risk score is the TIMI risk score or the GRACE risk score.

13. Acquisition means for continuously acquiring an electrocardiogram of a subject, Display means for continuously displaying the electrocardiogram on a display device, An analysis means that automatically applies analysis processing to the electrocardiogram in parallel with the display means of the electrocardiogram, An electrocardiograph having a determination means for determining whether the information obtained in the aforementioned analysis process satisfies predetermined conditions regarding the possibility of acute coronary syndrome (ACS), The system further includes control means for controlling the electrocardiograph to perform an extended examination, including the performance of a periodic electrocardiogram, if the determination means determines that the information obtained in the analysis process satisfies the conditions for the possibility of the ACS before a predetermined termination condition is met. The aforementioned extended examination is performed in parallel with the continuous display of the electrocardiogram by the display means, The analysis means periodically applies an analysis process to the electrocardiogram, The control means generates lead data not included in the electrocardiogram by synthesis processing based on the electrocardiogram, The control means detects the ST level for each of the electrocardiogram leads and the leads generated by the synthesis process, An electrocardiograph, including one.

14. The electrocardiograph according to claim 13, wherein the electrocardiogram is a standard 12-lead electrocardiogram, and the leads not included in the electrocardiogram include right chest leads and dorsal leads.

15. The electrocardiograph according to claim 13, wherein the leads not included in the aforementioned electrocardiogram include lead V4R and leads V7 to V9.

16. The electrocardiograph according to claim 13, wherein the ST level is a representative value of the ST level based on amplitude or timing.

17. The electrocardiograph according to claim 16, wherein the representative value of the ST level based on the amplitude is the maximum ST level.

18. The electrocardiograph according to claim 16, wherein the representative value of the ST level based on the aforementioned timing is the ST level at a timing after a predetermined time has elapsed from the start of the ST interval.

19. A method for controlling an electrocardiograph, Continuously acquire electrocardiograms of the subject, The electrocardiogram is continuously displayed on the display device, In parallel with the continuous display of the electrocardiogram, The automatic application of analysis processing to the aforementioned electrocardiogram, The information obtained from the aforementioned analysis process is used to determine whether it meets predetermined conditions regarding the possibility of acute coronary syndrome (ACS), Repeated execution and If, before the predetermined termination conditions are met, the information obtained in the analysis process is determined to satisfy the conditions regarding the possibility of ACS, the electrocardiograph is controlled to perform an extended examination, including the execution of a periodic electrocardiogram. A method for controlling an electrocardiograph having [a specific feature / function].

20. A program for causing the computer of an electrocardiograph to function as each of the means of the electrocardiograph described in any one of claims 1 to 18.

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