Patient monitor

The biological information monitor addresses reception quality issues by incorporating demodulation, field strength measurement, and alarm systems to maintain continuous monitoring and data integrity.

JP7734009B2Active Publication Date: 2025-09-04FUKUDA DENSHI CO LTD
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Patent Information

Application Number
JP2021117737
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-07-16
Publication Date
2025-09-04
Estimated Expiration
2041-07-16

AI Technical Summary

Technical Problem

Central monitors in medical institutions face challenges in correctly demodulating wirelessly transmitted biological information due to varying wireless propagation environments, obstacles, and noise interference, which can lead to incomplete or lost vital sign data.

Method used

The biological information monitor includes a demodulation unit, field strength measuring unit, S/N ratio acquisition unit, and alarm output unit to assess and alert on reception quality, ensuring accurate demodulation and notification of deteriorating reception.

Benefits of technology

The system prevents loss of biological information by detecting and alerting to poor reception quality, allowing for timely equipment inspection and maintenance, thus ensuring continuous monitoring.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a biological information monitor capable of avoiding a situation in which acquisition of biological information is disabled by deterioration of reception quality during monitoring.SOLUTION: A central monitor includes: a demodulation unit capable of demodulating biological information transmitted from a plurality of biological information acquisition terminals (bedside monitor, telemeter transmitter) by radio; an electric field intensity measurement unit for measuring electric field intensity in a medical telemeter band including at least all of target frequency bands of demodulation of the demodulation unit; an S / N ratio acquisition unit for acquiring an S / N ratio by taking, as electric field intensity of a desired wave, electric field intensity in a frequency during demodulation by the demodulation unit of frequencies during measurement by the electric field intensity measurement unit and taking, as electric field intensity of noise, electric field intensity in frequencies excluding at least the frequency during demodulation by the demodulation unit; and an alarm output unit for outputting an alarm on the basis of the S / N ratio acquired by the S / N ratio acquisition unit.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a biological information monitor that receives biological information transmitted wirelessly, for example, a central monitor. [Background technology]

[0002] Conventionally, central monitors installed in nurse stations at medical institutions have been known as vital sign monitors for monitoring the conditions of multiple patients. The central monitor receives vital sign information (e.g., electrocardiogram, blood pressure, arterial blood oxygen saturation, etc.) of each patient from bedside monitors installed at the bedside of each patient in an intensive care unit, hospital room, etc., and displays it on a screen (see, for example, Patent Document 1). The central monitor can also receive and display vital sign information wirelessly transmitted from a telemeter transmitter worn by the patient. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2005-124903 Summary of the Invention [Problem to be solved by the invention]

[0004] In order for the central monitor to collect and display the wirelessly transmitted biological information, the central monitor must, of course, be able to correctly demodulate the wirelessly transmitted biological information.

[0005] Generally, wireless communication between bedside monitors and telemeter transmitters (hereinafter referred to as "biometric information acquisition terminals") in a hospital and a central monitor is carried out via antennas installed on the central monitor or in the ceiling of a hallway, etc. Depending on the location of the biometric information acquisition terminal and the wireless propagation environment, the central monitor may not be able to correctly demodulate the biometric information. For example, if the biometric information acquisition terminal is located far from the antenna, or if there is an obstacle between the antenna and the biometric information acquisition terminal that blocks radio waves, or if noise interference occurs, the central monitor may not be able to demodulate the biometric information.

[0006] The wireless propagation environment changes from moment to moment due to the location of the biometric information acquisition terminal, malfunctions, antenna deterioration, external noise, etc. As a result, the reception quality of the biometric information at the central monitor may deteriorate, and if monitoring continues without noticing this, it may become impossible to demodulate the biometric information.

[0007] A situation in which the central monitor is unable to obtain vital signs during vital sign monitoring is something that must be avoided at all costs from a medical perspective.

[0008] The present invention has been made in consideration of the above points, and provides a biological information monitor that can avoid a situation in which biological information cannot be acquired during monitoring due to deterioration of reception quality. [Means for solving the problem]

[0009] One aspect of the biological information monitor of the present invention is a demodulation unit capable of demodulating biometric information wirelessly transmitted from a plurality of biometric information acquisition terminals; a field strength measuring unit for measuring the field strength of a medical telemetry band including at least all frequency bands demodulated by the demodulation unit; an S / N ratio acquisition unit that acquires an S / N ratio by taking the field strength of a frequency demodulated by the demodulation unit among the frequencies measured by the field strength measurement unit as the field strength of a desired wave and the field strength of a frequency excluding at least the frequency demodulated by the demodulation unit as the field strength of noise; an alarm output unit that outputs an alarm based on the S / N ratio obtained by the S / N ratio acquisition unit; Equipped with. [Effects of the Invention]

[0010] According to the present invention, it is possible to realize a biological information monitor that can avoid a situation in which biological information cannot be acquired during monitoring due to deterioration of reception quality. [Brief explanation of the drawings]

[0011] [Figure 1] FIG. 1 is a diagram showing a schematic configuration of a biological information monitoring system to which a central monitor according to an embodiment is applied. [Figure 2] FIG. 1 is a block diagram showing a configuration of a main part of a central monitor according to an embodiment of the present invention; [Figure 3] Block diagram showing the configuration of the receiving unit [Figure 4] Figure showing an example of biological information displayed on a central monitor [Figure 5] Figure showing an example of the field strength display screen on the central monitor [Figure 6] 1 is a flowchart illustrating a monitoring channel quality warning operation according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings.

[0013] Fig. 1 is a diagram showing a schematic configuration of a biological information monitoring system to which a central monitor according to the present embodiment is applied. The biological information monitoring system 10 in Fig. 1 is installed in, for example, a hospital.

[0014] A central monitor 100 is provided at the nurse's station, and the central monitor 100 receives the biometric information of each patient wirelessly transmitted from a biometric information acquisition terminal such as a bedside monitor 20 (20-1 to 20-n) or a telemeter transmitter 30-1 to 30-m via antennas AN1, AN2-1, AN2-2, and AN2-3.

[0015] Antennas AN1, AN2-1, AN2-2, and AN2-3 are attached directly to the central monitor 100 or connected to the central monitor 100 via cables. Specifically, antenna AN1 is attached directly to the central monitor 100, and antennas AN2 (AN2-1 to AN2-3) are connected to the central monitor 100 via cables 400. Antenna AN2 is installed, for example, above the ceiling of a hospital corridor.

[0016] The antenna AN2 may be configured using a so-called antenna system or a leaky coaxial cable system. The antenna system uses a whip antenna or the like as an antenna, and antennas AN2-1 to AN2-3 are connected by wire. The leaky coaxial cable system uses leaky coaxial cables as antennas AN2-1 to AN2-3. Antennas AN1 and AN2 may be of any system as long as they comply with the specified low-power radio standard. Furthermore, the number of antennas is not limited to the example shown in FIG. 1.

[0017] In practice, the biological information wirelessly transmitted from the bedside monitor 20 and the telemeter transmitter 30 (i.e., the biological information acquisition terminal) is first received by the antenna AN1 or AN2. In the example of Fig. 1, the biological information transmitted from the telemeter transmitter 30-m is received by the antenna AN1, and the biological information transmitted from the bedside monitors 20-1, 20-n and the telemeter transmitter 30-1 is received by the wired antenna AN2.

[0018] In this way, the vital signs transmitted wirelessly from medical terminals such as the bedside monitor 20 and the telemeter transmitter 30 are received and collected by the central monitor 100 and displayed on the central monitor 100 .

[0019] FIG. 2 is a block diagram showing the configuration of the main part of the central monitor 100 according to this embodiment.

[0020] The central monitor 100 inputs signals received by antennas AN1 and AN2 to the receiving unit 200. The receiving unit 200 demodulates the modulated biological information by performing predetermined wireless processing on the input signals. The receiving unit 200 also has a function of measuring the field strength of radio waves in the medical telemeter frequency band (420 MHz to 450 MHz). The detailed configuration of the receiving unit 200 will be described later.

[0021] Here, we will briefly explain the frequency bands used in medical telemeters. According to the "Operational Regulations for Low-Power Medical Telemeters" established by the Japan Electronics and Information Technology Industries Association (JEITA), 420 to 450 MHz is specified as the frequency band used in medical telemeters. Furthermore, six frequency bands (which can also be called bands) 1 to 6 are allocated within the 420 to 450 MHz range. Each of frequency bands 1 to 6 can be allocated 40, 80, or 120 channels (which can also be called "floors" or "biometric information acquisition terminals"). The spacing between each channel is 12.5 kHz.

[0022] The biological information demodulated by the receiving unit 101 is input to the biological information analyzing unit 110. The biological information analyzing unit 110 forms a biological information waveform and calculates maximum, minimum, and average values ​​from the biological information.

[0023] The output of the biological information analysis unit 110 is input to the display control unit 120 and the alarm control unit 130. The display control unit 120 switches the display based on an operation signal from the operation unit 180. The display control unit 120 displays biological information such as an electrocardiogram, SpO2, and blood pressure on the display unit 140. Furthermore, when an alarm output instruction signal is input from the alarm control unit 130, the display control unit 120 displays an alarm on the display unit 140. Furthermore, the alarm output instruction signal from the alarm control unit 130 is also input to an alarm indicator 150 consisting of an LED (Light Emitting Diode), a speaker, etc., and the alarm is output as light or sound.

[0024] Meanwhile, information on the electric field strength of the radio waves measured by the receiving unit 200 is output to the display control unit 120. The electric field strength information here is, for example, information in which the electric field strength is represented by a two-dimensional graph with the horizontal axis representing frequency and the vertical axis representing power (or voltage). This two-dimensional graph is displayed on the display unit 140 by the display control unit 120.

[0025] The central monitor 100 also has a control unit 170, an operation unit 180, and a barcode reader 190. The control unit 170 allocates and links carrier frequencies to each biometric information acquisition terminal based on biometric information acquisition terminal identification information input from the operation unit 180 or the barcode reader 190, and outputs frequency allocation information to the receiving unit 200.

[0026] In addition to this configuration, the central monitor 100 has an S / N ratio acquisition unit 401 and an alarm output unit 402.

[0027] The S / N ratio acquisition unit 401 acquires the S / N ratio by taking the field strength of the frequency demodulated by the demodulation unit 240 among the frequencies measured by the field strength measurement unit 250 as the field strength of the desired wave (monitoring channel), and by taking the field strength of the frequency other than the frequency demodulated by the demodulation unit 240 as the field strength of noise (non-monitoring channel).

[0028] The S / N ratio acquiring unit 401 of this embodiment has a monitoring channel field strength calculating unit 401a, a non-monitoring channel field strength calculating unit 401b, and an S / N ratio calculating unit 401c. Here, the monitoring channel is a channel that receives biological information (or demodulates the biological information).

[0029] The monitoring channel field strength calculation unit 401a calculates the field strength of the frequency demodulated by the demodulation unit 240 (FIG. 3) from among the frequencies measured by the field strength measurement unit 250 (FIG. 3) as the field strength of the desired wave.

[0030] Non-monitoring channel field strength calculation section 401b calculates the field strength of frequencies excluding at least the frequencies demodulated by demodulation section 240 (FIG. 3) as the field strength of noise.

[0031] The S / N ratio calculation unit 401c calculates the S / N ratio (Signal-to-Noise Ratio) by subtracting the received field strength of the noise obtained by the non-monitoring channel field strength calculation unit 401b from the field strength of the desired signal obtained by the monitoring channel field strength calculation unit 401a.

[0032] The received field strength calculated by the monitoring channel field strength calculation section 401a and the non-monitoring channel field strength calculation section 401b may be power, a voltage value, a current value, or the like.

[0033] The alarm output unit 402 outputs an alarm based on the S / N ratio obtained by the S / N ratio acquisition unit 401. Specifically, the alarm output unit 402 outputs an alarm when the S / N ratio falls below a predetermined threshold. The alarm output unit 402 is configured with, for example, an LED (Light Emitting Diode) or a speaker, and notifies by light or sound that the S / N ratio has fallen below the predetermined threshold. The alarm output unit 402 may also output an alarm using, for example, the display unit 140 or the alarm indicator 150.

[0034] The functions of the S / N ratio acquisition unit 401 and the alarm output unit 402 can be realized by a CPU (Central Processing Unit), a ROM (Read Only Memory), a RAM (Random Access Memory), etc. The CPU reads out a program corresponding to the processing content from the ROM, loads it into the RAM, and centrally controls the operation of each element in cooperation with the loaded program. In this embodiment, the S / N ratio acquisition unit 401 and the alarm output unit 402 are controlled by the control unit 170.

[0035] FIG. 3 is a block diagram showing the configuration of the receiving unit 200. As shown in FIG.

[0036] The receiver 200 inputs signals received by the antennas AN1 and AN2 to a distributor 230 via a band pass filter (BPF) 210 and an amplifier (AMP) 220.

[0037] Divider 230 outputs the input received signal to demodulator 240 and field strength measurement unit 250. Here, divider 230 may, for example, select either the signal from antenna AN1 or the signal from antenna AN2 and output it to demodulator 240 and field strength measurement unit 250, or may output a combination of the signals from antenna AN1 and antenna AN2 to demodulator 240 and field strength measurement unit 250.

[0038] The distribution of distributor 230 is controlled, for example, by a user operating operation unit 180. As a result, for example, when a user wants to know the field strength based on the signal received by antenna AN1, distributor 230 outputs the signal received by antenna AN1 to field strength measurement unit 250.

[0039] Furthermore, distributor 230 may select which of the received signals from antenna A1 and AN2 to distribute to each of demodulation circuits 1 to 12 included in demodulation unit 240. For example, if telemeter transmitter 30-1 in Fig. 1 is assigned to demodulation circuit 1, the signal from telemeter transmitter 30-1 should be larger at antenna AN2 than at antenna AN1, so distributor 230 should distribute the received signal from antenna AN2 to demodulation circuit 1.

[0040] The demodulation unit 240 has demodulation circuits (which may also be called "receiving modules") equal to the number of beds (which may also be called the "number of channels" or the "number of biometric information acquisition terminals"). In the example of FIG. 3, it has demodulation circuits 1 to 12 for 12 beds. Specifically, each of the demodulation circuits 1 to 12 demodulates the biometric information by multiplying the input signal by a different carrier frequency. For example, demodulation circuit 1 multiplies by carrier frequency 1, demodulation circuit 2 multiplies by carrier frequency 2, ..., and demodulation circuit 12 multiplies by carrier frequency 12.

[0041] The biological information of each bed (each biological information acquisition terminal) demodulated by the demodulation unit 240 is converted by the conversion circuit 270 into data suitable for analysis by the biological information analysis unit 110 (FIG. 2).

[0042] In addition to this configuration, the receiving unit 200 of the central monitor 100 of this embodiment has a field strength measuring unit 250 in addition to the demodulating unit 240 that demodulates the biological information. The field strength measuring unit 250 measures the field strength of the medical telemetry band that includes at least all of the demodulation frequency bands demodulated by the demodulating unit 240.

[0043] The field strength measurement unit 250 of this embodiment measures the field strength in the medical telemetry band using a sweep method. Field strength measurement using a sweep method is a known technique, so it will be briefly described here. The field strength measurement unit 250 converts the input signal to an IF (intermediate frequency) using a mixer and a local oscillator. At this time, the signal is converted to an IF while automatically sweeping the frequency of the local oscillator, and the power value that has passed through a narrowband IF filter is output as field strength information. Note that the field strength measurement unit 250 may measure field strength information using an FFT method instead of the sweep method.

[0044] By measuring and displaying the field strength of radio waves in the medical telemeter band using the field strength measurement unit 250, the user can grasp the radio wave environment of the channel to which the biological information acquisition terminal is assigned.

[0045] The operations of distributor 230, demodulation unit 240, and field strength measurement unit 250 are controlled by wireless control unit 260. For example, wireless control unit 260 controls which of demodulation circuits 1 to 12 to operate based on frequency allocation information from control unit 170. For example, if carrier frequency 1 is assigned to bedside monitor 20-1, carrier frequency 2 is assigned to bedside monitor 20-n, carrier frequency 7 is assigned to telemeter transmitter 30-1, and carrier frequency 9 is assigned to telemeter transmitter 30-m, then demodulation circuits 1, 2, 7, and 9 are operated.

[0046] Moreover, the wireless control unit 260 assigns floors (which may also be called "channels" or "biometric information acquisition terminals") to the demodulation circuits 1-12 by setting carrier frequencies 1-12 for the demodulation circuits 1-12.

[0047] Fig. 4 is a diagram showing an example of biological information displayed on the display unit 140 of the central monitor 100. In the example of Fig. 4, biological information for eight beds is displayed, but with the configuration of Fig. 3 described above, biological information for up to 12 beds can be displayed in relation to wireless reception.

[0048] FIG. 5 is a diagram showing an example of a received field strength display image displayed on the display unit 140 of the central monitor 100. As shown in FIG.

[0049] 5, a field strength measurement selection area AR1, a field strength graph area AR2, a band selection area AR3, an antenna selection area AR4, and a scan start position adjustment area AR5 are displayed. In this embodiment, the display unit 140 has a touch panel configuration, and an operation signal corresponding to a touch operation by the user is input to the control unit 170, and various controls are changed according to the operation signal.

[0050] A "Spectrum analyzer only" button is displayed in the reception strength measurement selection area AR1. When the "Spectrum analyzer only" button is touched, the field strength measurement unit 250 measures the field strength. In addition, buttons RF-01 to RF-12 are displayed in the reception strength measurement selection area AR1. These buttons correspond to demodulation circuits 1 to 12, and when the RF-01 button is touched, for example, the field strength is measured by demodulation circuit 1, and when the RF-02 button is touched, for example, the field strength is measured by demodulation circuit 2.

[0051] That is, the demodulation circuits 1 to 12 have the function of demodulating the biological information and also the function of measuring the field strength of the medical telemeter band, similar to the field strength measurement unit 250. That is, in order to demodulate the biological information, configurations similar to the field strength measurement unit 250, such as a mixer and a local oscillator, are required, and therefore the demodulation circuits 1 to 12 are also able to measure the field strength using these configurations. However, since the demodulation of the biological information in this embodiment is not performed and the field strength measurement unit 250 is provided exclusively for measuring the field strength, the radio wave state of the frequency band of the medical telemeter can be measured regardless of the status of monitoring the biological information.

[0052] The field strength graph area AR2 displays the field strength of each channel. In the example shown, of the six bands that make up the medical telemeter band (1000s, 2000s, 3000s, 4000s, 5000s, and 6000s), the field strength of the 2000s band is displayed. The user can determine which band's field strength to measure and display by selecting the desired band in the band selection area AR3. In the example shown, the field strength of 120 channels is displayed for each band.

[0053] The user can select the antenna for which the field strength is to be measured by touching the antenna selection area AR4. For example, touching the "Antenna 1" button will measure and display the field strength of the signal received by antenna AN1, and touching the "Antenna 2" button will measure and display the field strength of the signal received by antenna AN2. Incidentally, instead of selecting just one antenna, it is also possible to select all two or more antennas and measure and display the field strength of the combined received signal.

[0054] The user can adjust the scan start position for measuring and displaying field strength by touching the scan start position adjustment area AR5. Scanning the field strength of all channels in a band can take several tens of seconds, depending on the device's performance. Therefore, if the scan is simply started from the lowest frequency channel and the channel of interest is a high frequency channel, the user will have to wait a long time to find out the field strength around that channel.

[0055] The user can avoid this inconvenience by touching the scan start position adjustment area AR5. For example, if the channel of interest is channel 2115, the user touches the "110" button in the scan start position adjustment area AR5. As a result, the field strength is measured and displayed in order starting from channel 2110, allowing the user to quickly find out the field strength around the channel of interest, channel 2115.

[0056] FIG. 6 is a flowchart illustrating the monitoring channel quality warning operation by S / N ratio acquisition unit 401 and warning output unit 402 according to this embodiment.

[0057] First, in step S1, the control unit 170 sets a monitoring channel i and a non-monitoring channel j. In this embodiment, the monitoring channel i is set to 1, 2, 7, and 9, and the non-monitoring channels are set to channels in the medical telemetry band excluding the monitoring channel. More preferably, the non-monitoring channels are set to channels in the medical telemetry band excluding the monitoring channel and its adjacent channels.

[0058] In the next step S2, non-monitoring channel field strength calculation section 401b calculates the average field strength E2 of the non-monitoring channels. Note that in this embodiment, the average field strength of non-monitoring channel j is calculated, but the field strength of one non-monitoring channel out of one or more non-monitoring channels j may be calculated as a representative value. However, calculating the average value improves the reliability of the estimated noise.

[0059] In the following step S3, monitoring channel field strength calculation unit 401a calculates the field strength E1 of the k-th monitoring channel. In the example of this embodiment, the first monitoring channel is channel 1, the second monitoring channel is channel 2, the third monitoring channel is channel 7, and the fourth monitoring channel is channel 9. Therefore, in step S3, the field strength E1 of the first monitoring channel 1 is calculated first.

[0060] In the next step S4, the S / N ratio calculation unit 401c determines whether the S / N ratio (i.e., E1 / E2) is less than a predetermined threshold value Th0, and if it is less than the threshold value Th0 (step S4; YES), the process proceeds to step S5, where the alarm output unit 402 outputs an alarm. This alarm notifies the user that the quality of the monitoring channel 1 has deteriorated.

[0061] In practice, to achieve stable wireless monitoring of biological information, it is necessary to maintain an appropriate S / N ratio of the electric field strength. Generally, an S / N ratio of 30 dB or more is required. Therefore, the threshold value Th0 is set to, for example, 30 dB.

[0062] In the next step S6, it is determined whether the S / N ratio determination for all monitoring channels i has been completed, and if not, the process returns to step S3. When returning to step S3, the field strength E1 of the second monitoring channel 2 is calculated, and then the process of step S4 is performed. In this way, the S / N ratio is calculated individually for all monitoring channels i=1, 2, 7, 9, and a determination is made as to whether an alarm is required.

[0063] As a result, the user (nurse, medical engineer, etc.) can know whether there is a monitoring channel with poor reception quality.

[0064] As described above, according to this embodiment, the central monitor 100 includes a demodulation unit 240 capable of demodulating biological information wirelessly transmitted from a plurality of biological information acquisition terminals (bedside monitor 20, telemeter transmitter 30), a field strength measurement unit 250 that measures the field strength of a medical telemeter band including at least all frequency bands demodulated by the demodulation unit 240, an S / N ratio acquisition unit 401 that acquires an S / N ratio by defining the field strength of a frequency demodulated by the demodulation unit 240 among the frequencies measured by the field strength measurement unit 250 as the field strength of a desired wave and defining the field strength of a frequency excluding at least the frequency demodulated by the demodulation unit 240 as the field strength of noise, and an alarm output unit 402 that outputs an alarm based on the S / N ratio acquired by the S / N ratio acquisition unit 401.

[0065] This makes it possible to notify the user (nurse, medical engineer, etc.) that there is a channel with poor reception quality among the channels being monitored, and to prompt the user to inspect (and in some cases replace) the equipment with poor reception quality. As a result, the user can quickly become aware of reception-related problems caused by malfunctions in the wireless transmitter, deterioration of the antenna equipment, external noise, etc., and can prevent poor reception during monitoring.

[0066] Thus, it is possible to realize a biological information monitor that can avoid situations where biological information cannot be acquired during monitoring due to deterioration of the radio wave conditions.

[0067] In a biological information monitoring system, biological information such as electrocardiograms sent from a biological information acquisition terminal to a central monitor must be displayed and recorded on the central monitor without interruption. Taking this into consideration, this embodiment employs a method for acquiring the S / N ratio of the monitoring channel without inserting a known signal into the monitoring channel. In other words, the S / N ratio of the monitoring channel is calculated based on the idea that the received field strength of non-monitoring channels corresponds to the noise component that is also superimposed on the monitoring channel. This allows the user to be notified of a deterioration in the quality of the channel currently being monitored without interrupting the biological information being monitored by the central monitor.

[0068] The above-described embodiments are merely examples of specific embodiments of the present invention, and the technical scope of the present invention should not be construed as being limited by these embodiments. In other words, the present invention can be embodied in various forms without departing from the gist or main characteristics thereof.

[0069] In the above embodiment, the case where the S / N ratio is calculated based on the electric field strength obtained by the electric field strength measuring unit 250 has been described, but the electric field strength may also be measured by the demodulating unit 240 and the S / N ratio may be calculated based on the electric field strength.

[0070] In the above-described embodiment, the present invention is described as being applied to a central monitor, but it is not limited to this. In short, it can be widely applied to any biological information monitor that demodulates and displays multiple pieces of biological information sent wirelessly from multiple biological information acquisition terminals. [Industrial Applicability]

[0071] The present invention has the effect of preventing a situation in which biological information cannot be acquired during monitoring due to deterioration of reception quality, and is suitable for use in, for example, a central monitor. [Explanation of symbols]

[0072] 10. Biological Information Monitoring System 20(20-1~20-n) Bedside Monitor 30(30-1~30-m) Telemeter Transmitter 100 Central Monitor 110 Biological Information Analysis Department 120 Display control unit 130 Alarm control section 140 Display section 150 Alarm Indicator 170 Control Unit 180 Operation section 190 Barcode Reader 200 Receiver 210 Bandpass Filter (BPF) 220 Amplifier (AMP) 230 Distributor 240 Demodulation Section 250 Electric field strength measurement unit 260 Radio control unit 270 Conversion Circuit 401 S / N ratio acquisition section 401a Monitoring channel field strength calculation unit 401b Non-monitoring channel field strength calculation unit 401c S / N ratio calculation section 402 Alarm output unit AN1, AN2-1, AN2-2, AN2-3 antennas AR1 Field strength measurement selection area AR2 Field Strength Graph Area AR3 Band Selection Area AR4 Antenna Selection Area AR5 Scan start position adjustment area

Claims

1. a demodulation unit capable of demodulating biometric information wirelessly transmitted from a plurality of biometric information acquisition terminals; a field strength measuring unit for measuring the field strength of a medical telemetry band including at least all frequency bands demodulated by the demodulation unit; an S / N ratio acquisition unit that acquires an S / N ratio by taking the field strength of a frequency demodulated by the demodulation unit among the frequencies measured by the field strength measurement unit as the field strength of a desired wave and the field strength of a frequency excluding at least the frequency demodulated by the demodulation unit as the field strength of noise; an alarm output unit that outputs an alarm based on the S / N ratio obtained by the S / N ratio acquisition unit; Equipped with The electric field intensity of the noise is an electric field intensity excluding an electric field intensity of a frequency adjacent to the frequency being demodulated by the demodulation unit. Vital sign monitor.

2. The S / N ratio acquisition unit a first electric field strength calculation unit that calculates the electric field strength of a frequency demodulated by the demodulation unit from among the frequencies measured by the electric field strength measurement unit as the electric field strength of a desired wave; a second electric field strength calculation unit that calculates, as the electric field strength of the noise, the electric field strength of a frequency other than at least the frequency demodulated by the demodulation unit; an S / N ratio calculation unit that calculates an S / N ratio by subtracting the field strength of the desired wave from the field strength of the noise; Equipped with The biological information monitor according to claim 1 .

3. When there are a plurality of channels receiving the biological information, the S / N ratio acquisition unit acquires S / N ratios of a plurality of channels receiving the biological information, the alarm output unit controls an alarm output for each channel based on an S / N ratio of each of the plurality of channels receiving the biological information. The biological information monitor according to claim 1 or 2.

4. A display unit that displays the biometric information, The display unit displays the alarm output from the alarm output unit. The biological information monitor according to any one of claims 1 to 3.

5. A display unit that displays the biometric information, the display unit displays a field strength display area for displaying the field strength of the frequency being measured by the field strength measurement unit, and a start position adjustment area for selecting a measurement start position in the frequency band for measuring the field strength, the electric field strength measurement unit measures the electric field strength based on the measurement start position. The biological information monitor according to any one of claims 1 to 4.

Citation Information

Patent Citations

  • Tone squelch control radio device

    JP1999154881A

  • Biological information monitor, central monitor, and patient monitoring system

    JP2005124903A

  • Radio device, control method, control program and display method

    JP2014099724A

  • Biological information monitoring system

    JP2019176904A

  • Transmission path abnormality detection system and transmission path abnormality detection device

    JP2021096153A