MEASUREMENT DEVICE, MEASUREMENT DEVICE CONTROL METHOD, AND MEASUREMENT SYSTEM

The measurement device uses a magnetic field-controlled switching between LDO and DCDC regulators to reduce harmonic noise and maintain power efficiency, ensuring accurate measurement results.

JP7739046B2Active Publication Date: 2025-09-16CANON KK
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Patent Information

Application Number
JP2021086883
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-05-24
Publication Date
2025-09-16
Estimated Expiration
2041-05-24

AI Technical Summary

Technical Problem

In measurement devices using wireless communication, harmonic noise from DC-DC converters can distort measurement results, and existing solutions do not adequately address this issue while maintaining power efficiency.

Method used

A measurement device configuration that selectively uses a linear regulator (LDO) during data acquisition and a switching regulator (DCDC) during non-acquisition periods, controlled by a magnetic field-based control signal, to minimize harmonic noise and maintain power efficiency.

Benefits of technology

The solution enables highly accurate measurement results without reducing power efficiency by minimizing harmonic noise during data acquisition and optimizing power usage.

✦ Generated by Eureka AI based on patent content.

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Abstract

To obtain highly accurate measurement results without lowering power efficiency in a measurement device.SOLUTION: A measurement device 201 senses a signal to be measured to acquire measurement data, selects a linear regulator 210 in a first period including a period in which the measurement data is acquired, and selects and drives a switching regulator 209 in a second period other than the first period.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a power supply configuration for a measurement device. [Background technology]

[0002] Measurement technologies for quantifying and visualizing invisible physical phenomena are advancing in a variety of fields. Examples include measurement technologies that use imaging devices, such as sonar using ultrasound, X-rays using X-rays, and radar using radio waves. These measurement technologies capture sound waves or electromagnetic waves using sensing elements and convert them into energy to obtain electrical signals. Currently, most electrical signals obtained by sensing elements are digitized using analog-to-digital converters (hereinafter referred to as A / D converters). Digitization makes it possible to store, transmit, convert, and perform other processes at high speed without worrying about data degradation.

[0003] As in other technical fields, the field of measurement technology is also seeing an increasing number of cases where digitized data / signals are transmitted wirelessly. By replacing wired connections with wireless, there are advantages such as greater freedom in the placement of measurement equipment, and the ability to quickly transmit data to other high-performance devices for digital processing, enabling near-real-time confirmation even from remote locations. On the other hand, wireless technology also has an impact on the power supply, requiring measurement equipment to be equipped with a battery to power its internal components.

[0004] In measuring devices that use wireless communication, the voltage supplied from the battery is generally higher than the voltage required to drive the components used in wireless communication, so a voltage regulator is used to stabilize the voltage.Voltage regulators include, for example, low dropout regulators (hereinafter referred to as LDO), which are linear regulators, and DC / DC converters (hereinafter referred to as DCDC), which are switching regulators.

[0005] LDOs are characterized by high power consumption (i.e., poor voltage conversion efficiency), but low ripple and harmonic noise. On the other hand, DCDCs are characterized by low power consumption (i.e., good voltage conversion efficiency), but high ripple and harmonic noise. However, when the output current is small, the relationship between the voltage conversion efficiency of LDOs and DCDCs is reversed. Based on these characteristics, Patent Document 1 discloses a method for switching power supplies by determining whether the function mode to be provided is a light load or a heavy load. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-302710 Summary of the Invention [Problem to be solved by the invention]

[0007] In a measurement device that uses wireless communication, it is desirable to obtain highly accurate measurement results without reducing power efficiency. As mentioned above, DC-DC converters have good voltage conversion efficiency but are characterized by large ripples and harmonic noise. Harmonic noise can become noise in the signal obtained by the sensing element in the measurement device, but Patent Document 1 does not take harmonic noise into consideration. There was a problem in that noise could be mixed into the analog electrical signal obtained by the sensing element, causing distortion in the digital signal obtained as a measurement result.

[0008] As a means for achieving the above object, the measuring device of the present invention has the following configuration: a linear regulator, a switching regulator, De an acquiring means for acquiring data; and a control means for selectively driving the linear regulator or the switching regulator; receiving means for receiving a signal from the control device via a magnetic field;the control means selects and drives the linear regulator during a first period in which the measurement data is acquired by the acquisition means, and selects and drives the switching regulator during a second period different from the first period; The first period is set based on information regarding acquisition of the data received by the receiving means. do. [Means for solving the problem]

[0009] As one means for achieving the above object, the measurement device of the present invention has the following configuration: a linear regulator, a switching regulator, acquisition means for sensing a signal to be measured and acquiring measurement data, and control means for selectively driving the linear regulator or the switching regulator, wherein the control means selects the linear regulator during a first period that includes a period during which the measurement data is acquired by the acquisition means, and selects and drives the switching regulator during a second period other than the first period. [Effects of the Invention]

[0010] According to the present invention, it is possible to obtain highly accurate measurement results in a measurement device without reducing power efficiency. [Brief explanation of the drawings]

[0011] [Figure 1] An example of the configuration of a general measurement system is shown below. [Figure 2] 1 shows an example of the configuration of a measurement system according to a first embodiment. [Figure 3] 4 shows a timing chart of the measurement system according to the first embodiment. [Figure 4] 4 is a flowchart of a process executed by the measurement device according to the first embodiment. [Figure 5] 10 shows an example of the configuration of a measurement system according to a second embodiment. [Figure 6] 10 shows an example of a circuit configuration of a DCDC according to a second embodiment. [Figure 7] 10 shows an example of a circuit configuration of a sensing unit according to a second embodiment. [Figure 8] 10 is a flowchart of a process executed by a measurement device according to a second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, with reference to the accompanying drawings, a detailed description will be given of an embodiment for carrying out the present invention. Note that the embodiment described below is an example of a means for realizing the present invention, and should be appropriately modified or changed depending on the configuration of the device to which the present invention is applied and various conditions, and the present invention is not necessarily limited to the following embodiment. Furthermore, not all of the combinations of features described in the present embodiment are necessarily essential to the solution of the present invention. Note that the same components will be described with the same reference numerals.

[0013] Figure 1 shows an example of the configuration of a typical measurement system. The measurement system is composed of a control device 100 and a measurement device 101. The control device 100 transmits a control signal to the measurement device 101 to instruct it to acquire measurement data. After receiving the control signal from the control device 100, the measurement device 101 acquires the measurement data and transmits the measurement data to the control device 100 as the measurement results. Communication between the control device 100 and the measurement device 101 can be performed via wireless communication such as a wireless LAN (Local Area Network). Here, it is assumed that a wireless LAN is used.

[0014] The measuring device 101 includes an antenna 102, a wireless communication unit 103, a control unit 104, a sensing unit 105, an A / D converter 106, a battery 107, and a constant voltage supply unit 108. The wireless communication unit 103 communicates (transmits and receives) via wireless LAN via the antenna 102. The control unit 104 drives the sensing unit 105 and the A / D converter 106 based on a control signal received by the wireless communication unit 103 from the control device 100. The sensing unit 105 is configured using a sensing element. The sensing unit 105 performs sensing, detects a signal to be measured (sensing signal), such as a sound wave or an electromagnetic wave, and converts the signal into an analog electrical signal. The A / D converter 106 converts the analog electrical signal converted by the sensing unit 105 into a digital signal. The digital signal can be transmitted to the control device 100 by the wireless communication unit 103 as a measurement result. The battery 107 functions as a power source for the measuring device 101. The constant voltage supply unit 108 supplies a constant voltage to each component from the battery 107. The constant voltage supply unit 108 can be configured using a low dropout regulator (hereinafter referred to as LDO), which is a linear regulator, or a DC / DC converter (hereinafter referred to as DCDC), which is a switching regulator.

[0015] In order to obtain measurement data without distortion as a measurement result, it is necessary to avoid as much as possible the mixing of noise into the analog electrical signal obtained by the sensing unit 105 before it is converted into a digital signal by the A / D converter 106. However, when the constant voltage supply unit 108 uses a DCDC, harmonic noise generated by the DCDC can be superimposed on the analog electrical signal, degrading the signal-to-noise ratio (S / N) of the measurement data. On the other hand, when the constant voltage supply unit 108 uses an LDO, such harmonic noise is not generated and does not affect the measurement data. Taking these characteristics into consideration, measurement systems according to several embodiments will be described below.

[0016] [First embodiment] (Measurement system configuration) An example configuration of a measurement system according to this embodiment is shown in Fig. 2. In the measurement system shown in Fig. 2, a control device 200 generates a magnetic field (magnetic field) and can use the magnetic field to transmit a control signal to a measurement device 201. The measurement device 201 can transmit measurement data to the control device 200 via a wireless LAN.

[0017] The measuring device 201 shown in FIG. 2 includes an antenna 202, a wireless communication unit 203, a control unit 204, a sensing unit 205, an A / D converter 206, a battery 207, a constant voltage supply unit 208, and a magnetic detection unit 211. The antenna 202, the wireless communication unit 203, the control unit 204, the sensing unit 205, the A / D converter 206, and the battery 207 have the same functions as the antenna 102, the wireless communication unit 103, the control unit 104, the sensing unit 105, the A / D converter 106, and the battery 107 in the measuring device 101 of FIG. 1. The magnetic detection unit 211 is configured with a magnetic switch or a magnetic sensor capable of detecting a magnetic field. The magnetic detection unit 211 can convert the state of the magnetic field into an electrical signal (corresponding to a control signal in this embodiment). The constant voltage supply unit 208 is configured using a DCDC 209 and an LDO 210. The constant voltage supply unit 208 functions as a voltage conversion unit that converts the voltage from the battery 107 (power supply) and supplies it to the measuring device 201, and the DCDC 209 and LDO 210 are configured to be switchable (for example, connected in parallel). The control unit 204 can selectively drive the DCDC 209 and the LDO 210.

[0018] As described above, the control device 200 can generate a magnetic field and transmit a control signal to the measuring device 201 using the magnetic field. The control signal includes an acquisition period (acquisition timing) set by the control device 200 for the measuring device 201 to acquire measurement data, and a delay time (standby time) for the acquisition period. Acquiring the measurement data includes sensing by the sensing unit 205, generation of an analog electrical signal, and conversion of the analog electrical signal into a digital signal by the A / D converter 206. When the magnetic detection unit 211 of the measuring device 201 detects the magnetic field and determines that it has received a control signal, it notifies (outputs) the control unit 204 of the control signal. The delay time indicates the time from the output of the control signal by the magnetic detection unit 211 to the control unit 204 (i.e., detection of the control signal by the control unit 204) to the start timing of the acquisition period.

[0019] The magnetic detection unit 211 can determine that it has received (detected) a control signal from the control device 200 when it has detected a magnetic field having a strength (level) equal to or greater than a predetermined threshold a predetermined number of times. This can prevent erroneous detection of a magnetic field. For example, if the object to be measured by the measuring device 201 is a weak magnetic field, the magnetic detection unit 211 may erroneously detect the weak magnetic field as a magnetic field (i.e., a control signal) from the control device 200. In order to prevent such erroneous detection, the predetermined threshold for the magnetic field that the magnetic field detection unit 211 can detect can be set to be smaller than the magnetic field from the control device 200 and larger than the weak magnetic field of the object to be measured.

[0020] Based on the control signal received and output by the magnetic detection unit 211, the control unit 204 switches between the DCDC 209 and the LDO 210 in the constant voltage supply unit 208 in accordance with the operation timing of the sensing unit 205 and the A / D converter 206. Specifically, the control unit 204 drives the LDO 210 and stops the DCDC 209 during the period (acquisition period) when the sensing unit 205 and the A / D converter 206 are acquiring measurement data. In this way, from the viewpoint of power consumption, the measuring device 201 is driven by the DCDC 209 as much as possible (i.e., outside the measurement data acquisition period), while driving by the LDO 210 during measurement data acquisition, i.e., when the sensing unit 205 and the A / D converter 206 are operating, in order to obtain high-quality measurement data. This makes it possible to perform power drive taking into account the limited power supply capacity of the battery 207.

[0021] (Switching timing between DCDC and LDO) The timing of switching between the DCDC and the LDO by the control unit 204 will be described with reference to Fig. 3. Fig. 3 is a timing chart of the operations of the magnetic detection unit 211, the sensing unit 205, the A / D converter 206, the LDO 210 of the constant voltage supply unit 208, and the DCDC 209. In this embodiment, it is assumed that the acquisition period (corresponding to acquisition period 301 in Fig. 3) for the measurement device 201 to acquire measurement data and the delay time for the acquisition time (corresponding to delay time 302 in Fig. 3) are set and managed by the control device 200.

[0022] The control device 200 notifies the measuring device 201 of a control signal including information on an acquisition period 301 and a delay time 302 using a magnetic field. When the magnetic detection unit 211 determines that it has received the control signal, the magnetic detection unit 211 outputs the control signal to the control unit 204. The control unit 204 waits for the delay time 302 after detecting the control signal from the magnetic detection unit 211, and then controls switching between the DCDC 209 and the LDO 210. Note that, in order to avoid noise due to voltage fluctuations when switching from the DCDC 209 to the LDO 210, a time offset 303 that is a certain time earlier than the start timing of the acquisition period 301 may be set, as in the example of FIG. 3 . The time offset may be included in the control signal transmitted from the control device 200, or may be set by the control unit 204.

[0023] During the acquisition period 301, the control unit 204 controls the sensing unit 205 and the A / D converter 206 to operate to acquire measurement data. Because digital signals are not generated and analog electrical signals are discarded during periods when the A / D converter 206 is not operating, the period during which the DCDC 209 is stopped can be limited to the acquisition period 301. Therefore, the control unit 204 drives the DCDC 209, which has high voltage conversion efficiency, outside the acquisition period 301, and drives the LDO 210, which has low harmonic noise, during the acquisition period 301. In the example of FIG. 3 using the time offset 303, the control unit 204 stops the DCDC 209 after the delay time 302 ends and drives the LDO 210 for the duration of the time offset 303 and the acquisition period 301. In this way, the control unit 204 quickly switches from the LDO 210 to the DCDC 209 as soon as the acquisition period 301 ends, enabling control that takes power efficiency into consideration.

[0024] (Processing flow by measuring device) Fig. 4 is an example flowchart of processing executed by the measuring device 201 according to this embodiment. The control device 200 and the measuring device 201 are connected via a wireless LAN. The processing shown in Fig. 4 is started when the control device 200 sets an acquisition period for measuring data acquisition by the measuring device 201 and notifies the measuring device 201 of a control signal including the acquisition period and a delay time (and optionally a time offset) for the acquisition period using a magnetic field. In explaining Fig. 4, the timing chart shown in Fig. 3 will be referred to.

[0025] The magnetic detection unit 211 detects a magnetic field, and when it determines that it has detected (received) a control signal from the control device 200 (Yes in S401), it outputs the control signal to the control unit 204. When the control unit 204 receives the control signal from the magnetic detection unit 211, it stops the DCDC 209 and drives the LDO 210 based on the timing chart shown in Fig. 3 (S402). That is, the control unit 204 stops the DCDC 209 and drives the LDO 210 after the delay time 302 has elapsed since the control signal was output and detected by the magnetic detection unit 211.

[0026] Next, the control unit 204 controls the sensing unit 205 and the AD converter 206 during the acquisition period 301 to perform sensing and acquire digitally converted measurement data (S403). At this time, because the LDO 210 is operating, harmonic noise is not generated, and noise caused by the constant voltage supply unit 208 is not mixed into the measurement data. When the acquisition period 301 ends, the control unit 204 switches the drive from the LDC 210 to the DCDC 209 (S404). That is, the control unit 204 stops the LDO 210 and drives the DCDC 209. The wireless communication unit 203 transmits the measurement data output from the A / D converter 206 to the control device 200 via the antenna 202 and wireless LAN (S405).

[0027] As described above, the measurement device according to this embodiment includes a magnetic detector for detecting magnetic fields, and drives the LDO 210 and stops the DCDC 209 during the period when measurement data is being acquired based on a control signal received via the magnetic detector. This prevents a decrease in power efficiency, and prevents noise from being mixed into the analog signal obtained by the sensing unit due to the DCDC during the period when the signal obtained by the sensing unit is captured by the A / D converter, making it possible to obtain highly accurate measurement results.

[0028] [Second embodiment] As the present embodiment, a configuration will be described in which the magnetic field detection function does not use the magnetic detection unit 211. Below, differences from the first embodiment will be described, and a description of similar points will be omitted.

[0029] (Measurement system configuration) An example configuration of a measurement system according to this embodiment is shown in Fig. 5. In the measurement system shown in Fig. 5, a control device 500 generates a magnetic field (magnetic field) and can use the magnetic field to transmit a control signal to a measurement device 501. The measurement device 501 can transmit measurement data to the control device 500 via a wireless LAN.

[0030] 5 includes an antenna 502, a wireless communication unit 503, a control unit 504, a sensing unit 505, an A / D converter 506, a battery 507, and a constant voltage supply unit 508. The antenna 502, the wireless communication unit 503, the control unit 504, the A / D converter 506, and the battery 507 have functions similar to those of the antenna 102, the wireless communication unit 103, the control unit 104, the A / D converter 106, and the battery 107 in the measuring device 101 in FIG. 1. The constant voltage supply unit 508 is configured using a DCDC 509 and an LDO 510. In the constant voltage supply unit 508, the DCDC 509 and the LDO 510 are connected in parallel, for example. The DCDC 509 and / or the sensing unit 505 in the measuring device 501 according to this embodiment are configured to be able to detect a magnetic field. The control unit 504 can determine whether or not a control signal has been received from the control device 500 based on the output from the DCDC 509 and / or the sensing unit 505, and detect the control signal when it is determined that the control signal has been received. For example, the control unit 504 can determine that a control signal has been received (detected) from the control device 500 when a magnetic field having an intensity (level) equal to or greater than a predetermined threshold has been detected a predetermined number of times based on the output from the DCDC 509 and / or the sensing unit 505. An example of the circuit configuration of the DCDC 509 and / or the sensing unit 505 according to this embodiment will be described with reference to FIGS. 6 and 7, respectively.

[0031] As described above, the control device 500 can generate a magnetic field and use the magnetic field to send a control signal to the measuring device 501. The control signal according to this embodiment includes an acquisition period set by the control device 500, during which the measuring device 501 acquires measurement data. In this embodiment, a delay time relative to the acquisition period is set and managed by the control unit 504 of the measuring device 501. For example, the control unit 504 sets a delay time corresponding to a magnetic field pattern (magnetic field pattern / measurement sequence) having a strength (level) equal to or greater than a predetermined threshold, detected by the DC / DC unit 509 and / or the sensing unit 505, and manages the delay time as a table. The magnetic field pattern can be configured from multiple magnetic fields.

[0032] When the control unit 504 detects a control signal from the control device 500 based on the output from the DCDC unit 509 and / or the sensing unit 505, it switches between the DCDC 509 and the LDO 510 in the constant voltage supply unit 508 based on the control signal. Specifically, the control unit 504 drives the LDO 510 and stops the DCDC 509 while the sensing unit 505 and the A / D converter 506 are acquiring measurement data. In this way, from the viewpoint of power consumption, the measuring device 501 is driven by the DCDC 509 as much as possible, while also driving by the LDO 510 when acquiring measurement data, i.e., when the sensing unit 505 and the A / D converter 506 are operating, in order to obtain high-quality measurement data. This makes it possible to perform power driving taking into account the limited power supply capacity of the battery 507.

[0033] 6 is a diagram showing an example of the circuit configuration of the DCDC 509 according to this embodiment. The DCDC 509 receives voltage from the battery 507 at contact a, smooths it through an FET and a diode with an inductor in the output stage, and then outputs the desired voltage from contact c. Contacts b and d are grounds. Contacts e and f are drawn from both ends of the inductor. The DCDC 509 amplifies the voltage difference (potential difference) between contacts e and f with an amplifier (not shown) and outputs the amplified voltage to the control unit 504 as the magnetic field pattern described above. In this way, the output from the DCDC 509 enables the control unit 504 to detect a magnetic field using voltage fluctuations and detect a control signal.

[0034] FIG. 7 is a diagram showing an example of the circuit configuration of the sensing unit 505 according to this embodiment. The sensing unit 505 has contacts g and h that form a closed loop, and is capable of detecting a magnetic field penetrating the closed loop. The sensing unit 505 has a bidirectionally connected diode. When the magnetic field is strong, a parallel resonance between the capacitor and inductor occurs, resulting in high impedance, while when the magnetic field is weak, current flows. Contacts k and m are drawn from both ends of the inductor. The sensing unit 505 amplifies the voltage difference between contacts k and m using an amplifier (not shown) and outputs the amplified voltage difference to the control unit 504 as the magnetic field pattern described above. In this way, the output from the sensing unit 505 enables the control unit 504 to detect the magnetic field and detect control signals using voltage fluctuations.

[0035] (Processing flow by measuring device) 8 is an example flowchart of processing executed by the measuring device 501 according to this embodiment. The control device 500 and the measuring device 501 are connected via a wireless LAN. The processing shown in FIG. 8 starts when the control device 500 sets an acquisition period for measuring data acquisition by the measuring device 501 and notifies the measuring device 501 of a control signal including the acquisition period (and optionally a time offset) using a magnetic field.

[0036] When the DCDC 509 and / or the sensing unit 505 detect a magnetic field and the control unit 504 determines that it has detected (received) a control signal from the control device 200 (Yes in S801), the control unit 504 stops the DCDC 509 and drives the LDO 210 (S802). In this embodiment, the control unit 504 refers to the delay time corresponding to the detected magnetic field pattern from the table it holds, and stops the DCDC 509 and drives the LDO 510 after the delay time has elapsed since the control signal was detected (S802).

[0037] Next, the control unit 504 controls the sensing unit 505 at the start timing of the acquisition period included in the control signal to attempt to detect the desired sensing signal (S803). If the sensing signal is detected (Yes in S803), the control unit 504 controls the A / D converter 506 to perform sensing and acquire digitally converted measurement data (S804). If the measurement data is acquired, the control unit 504 switches from the LDO 510 to the DCDC 509 at the end timing of the acquisition period (S806). The wireless communication unit 503 transmits the measurement data output from the A / D converter 506 to the control device 500 via the antenna 502 over wireless LAN (S807).

[0038] On the other hand, in S803, if the sensing signal is not detected after a certain time has elapsed (No in S803), the control unit 504 switches the drive from the LDO 510 to the DCDC 509 (S805). If the measurement data cannot be acquired, the wireless communication unit 503 notifies the control device 500 that measurement is not possible via wireless LAN (S808). Note that this notification can be made using an LED, a warning sound, a GUI, or the like.

[0039] In this way, the measurement device according to this embodiment drives the LDO 210 and stops the DCDC 209 during the period when measurement data is being acquired, based on the control signal received from the magnetic field detected by the DCDC or the sensing unit. This prevents a decrease in power efficiency, and prevents noise from being mixed into the analog signal obtained by the sensing unit during the period when the signal obtained by the sensing unit is taken in by the A / D converter, making it possible to obtain highly accurate measurement results.

[0040] In the above embodiment, an example has been described in which the control signal from the control device is transmitted using a magnetic field, but the control signal may be transmitted by other means. For example, in Fig. 2, the control signal may be transmitted and received using communication that is distinct from the transmission of measurement data, such as communication using frequency division duplex, time division duplex, or spatial separation via antenna 202. [Explanation of symbols]

[0041] 200;500: control device, 201;501: measuring device, 202;502: antenna, 203;503: wireless communication unit, 204;504: control unit, 205;505: sensing unit, 206;506: A / D converter, 207;507: battery, 208;508: constant voltage supply unit, 209;509: DCDC (DC / DC converter), 210;510: LDO (low dropout regulator), 211: magnetic detection unit

Claims

1. A linear regulator; A switching regulator; An acquisition means for acquiring data; a control means for selectively driving the linear regulator or the switching regulator; receiving means for receiving a signal from the control device via a magnetic field; and The control means selects the linear regulator during a first period in which the data is acquired by the acquisition means, and selects and drives the switching regulator during a second period different from the first period, and the first period is set based on information regarding the acquisition of the data received by the receiving means.

2. The measuring device according to claim 1, wherein the receiving means determines that the signal has been received when the magnetic field having a strength equal to or greater than a predetermined threshold is received a predetermined number of times, and outputs the signal to the control means.

3. 3. The measuring device according to claim 2, wherein when the measurement target is a magnetic field, the predetermined threshold is set to be larger than the magnetic field to be measured and smaller than the magnetic field from the control device.

4. 2. The measuring device according to claim 1, wherein the information relating to the data acquisition includes information about a period during which the data is acquired by the acquisition means.

5. 5. The measuring device according to claim 1, further comprising a transmitting means for wirelessly transmitting the data to the control device.

6. 6. The measuring device according to claim 1, wherein the selection of the regulator by the control means is performed each time the data is acquired.

7. 7. The measuring device according to claim 1, wherein the control means switches from the switching regulator to the linear regulator before the first period starts.

8. 8. The measurement device according to claim 1, wherein the control means switches from the linear regulator to the switching regulator when the acquisition means fails to acquire the data during the first period.

9. 9. The measurement device according to claim 1, wherein the control means determines that acquisition of the data by the acquisition means has failed if a certain period of time has elapsed during which no data is acquired during the first period.

10. 10. The measurement device according to claim 1, further comprising a notification unit that notifies the user when the acquisition unit fails to acquire the data.

11. A method for controlling a measurement device including a linear regulator and a switching regulator, comprising: an acquisition step of acquiring data; a control step of selectively driving the linear regulator or the switching regulator; receiving a signal from the control device via a magnetic field; and In the control step, the linear regulator is selected during a first period in which the data is acquired in the acquisition step, and the switching regulator is selected and driven during a second period different from the first period, and the first period is set based on information relating to the acquisition of the data received in the receiving step. A control method comprising:

12. A measurement system having a control device and a measurement device, The control device a transmitting means for transmitting a signal including information regarding data acquisition to the measuring device using a magnetic field; The measuring device is A linear regulator, A switching regulator; An acquisition means for acquiring data; a control means for selectively driving the linear regulator or the switching regulator; The control means selects the linear regulator during a first period in which the data is acquired by the acquisition means, and selects and drives the switching regulator during a second period different from the first period, and the first period is set based on the signal.

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