surveillance system
The monitoring system uses beacon signals to control the imaging shutter based on RSSI detection, addressing privacy concerns in medical and welfare facilities by ensuring patient privacy during monitoring.
Patent Information
- Application Number
- JP2021137914
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-08-26
- Publication Date
- 2025-08-07
- Estimated Expiration
- 2041-08-26
AI Technical Summary
In medical and welfare facilities, continuous monitoring with surveillance cameras poses a challenge in protecting the privacy of patients or care recipients, leading to stress and discomfort.
A monitoring system with a transmitter worn by the treatment provider, a monitoring device near the room entrance, and a second beacon detector near the treatment position, uses beacon signals to control the opening and closing of an imaging unit shutter based on RSSI detection to ensure privacy protection during monitoring.
The system effectively monitors treatment status while ensuring patient privacy by accurately determining the presence or absence of the treatment provider, thereby reducing stress and maintaining confidentiality.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a surveillance system. [Background technology]
[0002] Patent Document 1 discloses an indoor location estimation method that derives accurate location information of a mobile terminal from radio wave strength measured by the mobile terminal at an arbitrary location based on a previously determined indoor radio wave strength distribution. Specifically, in a preparation stage, radio wave strength from a fixedly installed transmitter is measured at multiple known measurement locations, and the indoor radio wave strength distribution is determined by applying a radial basis function to the measurement results. In an actual use stage, the arbitrary location of the mobile terminal is estimated based on the radio wave strength measured by the mobile terminal and the radio wave strength distribution obtained in the preparation stage. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2019-144120 Summary of the Invention [Problem to be solved by the invention]
[0004] For example, in medical facilities, welfare facilities, etc., in order to record various troubles, it is required to monitor the treatment status of patients, care recipients, etc., by treatment providers such as doctors, nurses, and caregivers using surveillance cameras. However, if the treatment recipients are constantly monitored with surveillance cameras, it becomes difficult to protect the privacy of the treatment recipients. In particular, the treatment recipients may feel a great deal of stress when they see the situation being captured by the surveillance camera.
[0005] Therefore, one object of the present invention is to provide a monitoring system that can protect the privacy of a patient while monitoring the treatment status of the patient. [Means for solving the problem]
[0006] The monitoring system of the present invention includes a transmitter carried by a treatment person treating a treatment recipient in a room; a monitoring device installed at a position closer to the entrance of the room than the treatment position where the treatment recipient is treated; and a second beacon detector installed closer to the treatment position than the monitoring device. The transmitter transmits a beacon signal. The second beacon detector detects a second RSSI based on the beacon signal from the transmitter. The monitoring device includes an imaging element, an opening / closing body, a first beacon detector, an acquisition unit, and an opening / closing body control unit. The imaging element captures an image of the treatment recipient being treated through the opening. The opening / closing body opens and closes the opening. The first beacon detector detects a first RSSI based on the beacon signal from the transmitter. The acquisition unit acquires the second RSSI detected by the second beacon detector. The opening / closing body control unit controls the opening and closing of the opening / closing body based on the first RSSI detected by the first beacon detector and the second RSSI acquired by the acquisition unit. [Effects of the Invention]
[0007] According to the present invention, it is possible to protect the privacy of a patient while monitoring the treatment status of the patient. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a schematic diagram illustrating a configuration example and an application example of a monitoring system according to an embodiment. [Figure 2A] FIG. 2 is a schematic diagram illustrating an example of a problem in a monitoring system that serves as a comparative example to that in FIG. 1. [Figure 2B] FIG. 2 is a schematic diagram showing another example of a problem in the monitoring system serving as a comparative example to that in FIG. 1. [Figure 3A] FIG. 2 is a perspective view showing an example of the external shape of the monitoring device in FIG. [Figure 3B] 3B is a plan view showing an example of the external shape of the internal structure of the monitoring device of FIG. 3A. FIG. [Figure 4]2 is a block diagram showing an example of the functional configuration of the main parts around the monitoring device in FIG. 1. FIG. [Figure 5] 2 is a block diagram showing an example of the functional configuration of a main part of the transmitter shown in FIG. 1. [Figure 6] 2 is a block diagram showing an example of the functional configuration of a main part of the beacon detector shown in FIG. 1. FIG. [Figure 7] 5 is a flowchart showing an example of processing performed by the shutter control unit in FIG. 4 in a closed state. FIG. [Figure 8] 5 is a flowchart showing an example of processing performed by the shutter control unit in FIG. 4 in a ready state. [Figure 9] 5 is a flowchart showing an example of processing performed by the shutter control unit in FIG. 4 in an open state. [Figure 10] FIG. 10 is a flowchart showing an example of the contents of advance preparation processing carried out as a prerequisite for the processing of FIGS. 7 to 9. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. In all drawings for explaining the embodiments, the same components are generally designated by the same reference numerals, and repeated description thereof will be omitted.
[0010] <Outline of the monitoring system> Fig. 1 is a schematic diagram showing an example of the configuration and application of a monitoring system according to one embodiment. Fig. 1 shows a facility in which two rooms 2a and 2b are installed on one side of an aisle 1 and two rooms 2c and 2d are installed on the other side. The facility may be, for example, a medical facility or a welfare facility. In Fig. 1, a person receiving treatment 7 is walking along the aisle 1 while carrying a transmitter TR, for example, in a front pocket or on a neck strap.
[0011] The transmitter TR transmits a beacon signal BC to a transmission area AR. The transmission area AR represents an area where the beacon signal BC can be detected and where the minimum required RSSI (Received Signal Strength Indicator) for reception can be obtained. Ideally, the transmission area AR is a circular area centered on the transmitter TR. The RSSI decreases as you move from the center of the circle to the periphery.
[0012] However, in reality, the beacon signal BC may be blocked by the body of the treatment person 7. For this reason, the transmission area AR is not a circular area. That is, the area of the rear transmission area ARb behind the treatment person 7 may be smaller than the area of the front transmission area ARf in front of the treatment person 7.
[0013] Meanwhile, taking room 2a as a representative example, a bed 5, a monitoring device 10, and a beacon detector BD2 are installed in room 2a. The monitoring device 10 and the beacon detector BD2, together with the transmitter TR, constitute a monitoring system. A treatment recipient 6 lies on the bed 5. A treatment provider 7 enters the room through the entrance 3 and then treats the treatment recipient 6 at a treatment position in room 2a, which in this example is the position of the bed 5. The monitoring device 10 is installed in a position closer to the entrance 3 of room 2a than the treatment position, i.e., the position of the bed 5, and in this example, is installed immediately adjacent to the entrance 3.
[0014] The monitoring device 10 includes an imaging unit IM, a beacon detector BD1, and an opening / closing body 11. The imaging unit IM includes an imaging element (not shown) that captures images through an opening. The opening / closing body 11 opens and closes the opening of the imaging unit IM. The opening / closing body 11 may be any member that can open and close the opening, such as a shutter, a barrier, or a cover. In the embodiment, a shutter is used as the opening / closing body 11. The imaging element in the imaging unit IM captures images of the overall situation in the room 2a, including the treatment situation of the treatment recipient 6 by the treatment provider 7, while the treatment provider 7 is inside the room 2a.
[0015] This makes it possible for the monitoring device 10 to record various problems associated with the actions of the treatment provider 7 in the room 2a, including the details of the treatment given to the treatment recipient 6. However, if the imaging unit IM constantly captures images of the treatment recipient 6, it may be difficult to protect the privacy of the treatment recipient 6. In particular, the treatment recipient 6 may feel a great deal of stress when they see the situation where they are being imaged by the imaging unit IM. For this reason, it is desirable to stop imaging by the imaging unit IM during periods when the treatment recipient 7 is not in the room 2a, and to clearly make the treatment recipient 6 aware that imaging has been stopped.
[0016] Therefore, a shutter (opening / closing body) 11 is provided. The shutter 11 enables imaging by opening the opening while the treatment person 7 is in the room 2a. On the other hand, the shutter 11 disables imaging by closing the opening while the treatment person 7 is not in the room 2a, and also makes the treatment recipient 6 visually aware that imaging is disabled. In order to control the opening and closing of the shutter 11, at least one beacon detector BD2 is provided in addition to the beacon detector BD1 in the monitoring device 10.
[0017] The beacon detector BD1 detects RSSI[1] for the beacon signal BC from the transmitter TR. Similarly, the beacon detector BD2 detects RSSI[2] for the beacon signal BC from the transmitter TR. The beacon detector BD2 is installed closer to the treatment position for the treatment recipient 6, i.e., the position of the bed 5, than the monitoring device 10, specifically the beacon detector BD1, and in this example, is installed immediately adjacent to the bed 5. The monitoring device 10 controls the opening and closing of the shutter 11 based on RSSI[1] and RSSI[2]. That is, the monitoring device 10 determines the entry and exit status of the treatment recipient 7 into the room 2a based on RSSI[1] and RSSI[2].
[0018] <Comparative example monitoring system and its problems> 2A and 2B are schematic diagrams illustrating an example of a problem in a monitoring system that serves as a comparative example to that of FIG. 1. FIGS. 2A and 2B show the configuration around room 2a in FIG. 1. First, as a comparative example, assume that beacon detector BD2 in FIG. 1 is not provided. In this case, monitoring device 10 must perform control such that shutter 11 is open during a period when beacon signal BC is detected using beacon detector BD1, and shutter 11 is closed during a period when beacon signal BC is not detected.
[0019] 2A, the treatment person 7 may not necessarily enter the room 2a, but may pass through the entrance / exit 3 of the room 2a while walking along the passage 1. Even in this case, the monitoring device 10 may detect the beacon signal BC using the beacon detector BD1. Therefore, the monitoring device 10 controls the shutter 11 to open even though the treatment person 7 is simply walking along the passage 1.
[0020] 2B, the treating person 7 may be standing beside the bed 5 with his / her back to the monitoring device 10 while providing treatment to the treated person 6. In this case, as described in FIG. 1, the beacon detector BD1 may not detect the beacon signal BC because the area of the rear transmission area ARb is smaller than the area of the front transmission area ARf. As a result, the monitoring device 10 controls to close the shutter 11 even though treatment is being provided to the treated person 6.
[0021] As another comparative example, for example, a case where the beacon detector BD1 in Fig. 1 is not provided is assumed. In this case, the monitoring device 10 needs to perform control such that the shutter 11 is opened during a period when the beacon signal BC is detected using the beacon detector BD2, and the shutter 11 is closed during a period when the beacon signal BC is not detected.
[0022] However, although not shown, the treatment person 7 may change direction or move away from the treatment location for the treatment recipient 6, i.e., the bed 5, while remaining in the room 2a. In this case, there may be a period during which the beacon detector BD2 does not detect the beacon signal BC. As a result, the monitoring device 10 controls the shutter 11 to close even though the treatment person 7 remains in the room 2a. Therefore, as will be described in detail later, it is beneficial to provide two or more beacon detectors BD1 and BD2 and control the opening and closing of the shutter 11 based on the detection results thereof.
[0023] <Details of the monitoring system> FIG. 3A is a perspective view showing an example of the external shape of the monitoring device in FIG. 1. FIG. 3B is a plan view showing an example of the external shape of the internal structure of the monitoring device in FIG. 3A. As shown in FIG. 3A, monitoring device 10 has a housing 12 that is approximately rectangular parallelepiped. As shown in FIGS. 3A and 3B, housing 12 of monitoring device 10 contains an imaging unit IM, in other words, an imaging element 13 and a lens 14 that constitute a monitoring camera. Imaging element 13 is a CCD (Charge Coupled Device) type or CMOS (Complementary Metal Oxide Semiconductor) type image sensor. Lens 14 collects light from a subject onto imaging element 13.
[0024] As shown in Fig. 3A, an opening 15 is formed in the housing 12 to allow light to enter the imaging element 13 via the lens 14. A shutter (opening / closing body) 11 that opens and closes this opening 15 is movably attached to the housing 12. When imaging is being performed by the imaging unit IM, the shutter 11 moves to a position that opens the opening 15, as shown in Fig. 3A. On the other hand, when imaging by the imaging unit IM is stopped, the shutter 11 moves to a position that closes the opening 15, as shown in Fig. 3B. Note that the imaging unit IM does not necessarily have to have the lens 14.
[0025] 3A, a lamp LP that lights up when shooting, a card slot CS into which a memory card is inserted, a power port PW to which a power cable is connected, etc. are attached to housing 12. Also, as shown in Figures 3A and 3B, two wireless communication modules 21 and 22 are housed within housing 12. The two wireless communication modules 21 and 22 constitute a beacon detector BD1.
[0026] Each wireless communication module 21, 22 includes a printed circuit board 21a, 22a including an antenna, and an integrated circuit component 21b, 22b mounted on the printed circuit board 21a, 22a. The integrated circuit component 21b, 22b includes various wireless communication circuits, such as an RF (Radio Frequency) circuit that modulates transmitted radio waves and demodulates received radio waves, and a power amplifier that generates transmitted radio waves with a predetermined radio wave intensity. In this example, the two printed circuit boards 21a, 22a, and thus the two antennas, are arranged orthogonal to each other within the housing 12. This allows the antenna sensitivity to be maintained regardless of the polarization direction of the radio waves.
[0027] Fig. 4 is a block diagram showing an example of the functional configuration of the main parts around the monitoring device in Fig. 1. The monitoring device 10 shown in Fig. 4 includes a shutter 11, an imaging unit IM, a memory 17, wireless communication modules 21 and 22, an infrared receiving unit 23, a microphone 24, a drive unit 25, a control unit 30, a power supply unit 28, and a card slot CS. The memory 17 is configured by combining a volatile memory such as RAM (Random Access Memory) with a non-volatile memory such as a flash memory, SSD (Solid State Drive), or HDD (Hard Disk Drive).
[0028] The control unit 30 is configured, for example, by a microcontroller including a processor and various peripheral circuits. In this case, part of the memory 17 is also mounted on the microcontroller. The control unit 30 is responsible for the control function of the entire monitoring device 10. Note that the control unit 30 is not limited to a microcontroller, and may be configured by an FPGA (Field Programmable Gate Array), ASIC (Application Specific Integrated Circuit), or the like.
[0029] The imaging unit IM includes the imaging element 13 and lens 14 described above, as well as an image processing unit 16. As described in FIG. 1 , the imaging element 13 captures an image of the overall situation in the room 2a, including the treatment situation of the treatment recipient 6 by the treatment provider 7, through the opening 15. The image processing unit 16 is, for example, an ISP (Image Signal Processor). The image processing unit 16 converts the image data from the imaging element 13, i.e., the RAW data, into image data in a predetermined format, typically RGB (Red Green Blue), and stores the converted data in the memory 17.
[0030] The wireless communication modules 21 and 22 receive a beacon signal BC based on a predetermined wireless communication standard from the transmitter TR. The beacon signal BC may be based on, for example, the BLE (Bluetooth Low Energy) (registered trademark) standard, the RFID (Radio Frequency IDentification) standard, the ZigBee (registered trademark) standard, etc. In the embodiment, the beacon signal BC based on the BLE standard is used, particularly to reduce the power consumption of the transmitter TR.
[0031] Furthermore, the wireless communication modules 21 and 22 receive a transmission signal TX based on a predetermined wireless communication standard from the beacon detector BD2. At this time, the beacon detector BD2 detects the RSSI[2] and identifier (ID) of the beacon signal BC, and transmits a transmission signal TX including the detected RSSI[2] and ID to the wireless communication modules 21 and 22. In this embodiment, the transmission signal TX based on the BLE standard is used, as with the beacon signal BC. However, other wireless communication standards, such as Wi-Fi (registered trademark), may be used for communication between the monitoring device 10 and the beacon detector BD2, and further, wired communication may be used instead of wireless communication.
[0032] The infrared receiving unit 23 receives commands via infrared rays from, for example, a remote control and transmits them to the control unit 30. The microphone 24 detects voice. The detected voice may be stored in the memory 17 via the control unit 30, for example, or may be used when the control unit 30 performs various controls based on voice recognition.
[0033] The power supply unit 28 is configured, for example, by a power supply management IC or the like, and receives power from the power supply port PW shown in FIG. 3A and supplies power at a predetermined power supply voltage value to each component of the monitoring device 10. The power supply unit 28 also controls the power supply to each component based on commands from the control unit 30. As one example, the power supply unit 28 may perform power saving control, such as cutting off the power supply to unnecessary components during periods when image capture is not being performed. Note that the power supply unit 28 is not limited to receiving power from the power supply port PW, and may also receive power from a battery.
[0034] A memory card MC that can be accessed by the control unit 30 is inserted into the card slot CS. The control unit 30 can, for example, copy image data stored in the memory 17 by the imaging unit IM to the memory card MC.
[0035] The control unit 30 includes, for example, an RSSI detection unit 31, an ID detection unit 32, an acquisition unit 33, and a shutter control unit 34, which are realized by a processor executing a program stored in a memory, and a counter 35. The RSSI detection unit 31 and the ID detection unit 32, together with the wireless communication modules 21 and 22, constitute a beacon detector BD1.
[0036] The RSSI detection unit 31 detects RSSI[1] of the beacon signal BC from the transmitter TR via the wireless communication modules 21 and 22, an analog-to-digital converter, etc. The ID detection unit 32 detects an identifier (ID) included in the beacon signal BC to identify the transmitter TR and, ultimately, the medical practitioner 7. The acquisition unit 33 acquires the RSSI[2] and ID detected by the beacon detector BD2 based on the transmission signal TX received by the wireless communication modules 21 and 22.
[0037] The shutter control unit (opening / closing member control unit) 34 generally controls the opening and closing of the shutter (opening / closing member) 11 via the drive unit 25 based on the RSSI[1] and ID detected by the RSSI detection unit 31 and the ID detection unit 32, and the RSSI[2] and ID acquired by the acquisition unit 33. In addition, the shutter control unit 34 controls the opening and closing of the shutter 11 using a counter 35 that counts a predetermined time (Tmax). The drive unit 25 drives the shutter 11 to open and close via the actuator 26 and the link mechanism 27 in response to an opening or closing command from the shutter control unit 34.
[0038] FIG. 5 is a block diagram showing an example of the functional configuration of the main parts of the transmitter in FIG. 1. The transmitter TR shown in FIG. 5 includes a beacon generator 40, an ID setting unit 41, a memory 42, and a battery 43. ID information and the like are stored in advance in the memory 42. The ID setting unit 41 sets an ID for a beacon signal BC based on the ID information stored in the memory 42. The beacon generator 40 transmits a beacon signal BC including the set ID. In detail, the beacon generator 40 transmits a beacon signal BC based on, for example, the BLE standard, as described in FIG. 4. The battery 43 supplies power to the entire transmitter TR. The ID setting unit 41 and the memory 42 may be realized by, for example, a DIP switch or the like.
[0039] For example, the transmitter TR may be a portable information terminal such as a smartphone, a mobile phone terminal, or a PHS (Personal Handy-phone System) terminal. The ID information is a combination of the serial number (IMEI number) and telephone number of the terminal, which are used to identify the owner (person performing the treatment), and the name and employee number. The ID information is also managed in a unified manner in a list or other format by a central control device such as a server (not shown).
[0040] Fig. 6 is a block diagram showing an example of the functional configuration of the main parts of the beacon detector in Fig. 1. The beacon detector BD2 shown in Fig. 6 includes a wireless communication module 50, a control unit 51, and a memory 52. The memory 52 is configured by combining a volatile memory and a non-volatile memory. The wireless communication module 50 receives a beacon signal BC based on, for example, the BLE standard from a transmitter TR, similar to the wireless communication modules 21 and 22 in Fig. 4.
[0041] The control unit 51 is configured with a microcontroller or the like, as in the case of Fig. 4. The control unit 51 includes an RSSI detection unit 55, an ID detection unit 56, and a transmission signal generation unit 57, which are realized, for example, by a processor executing a program stored in the memory 52. The RSSI detection unit 55 detects the RSSI[2] of the beacon signal BC from the transmitter TR via the wireless communication module 50, an analog-to-digital converter, or the like. The ID detection unit 56 identifies the person 7 to be treated by detecting an identifier (ID) included in the beacon signal BC.
[0042] The transmission signal generation unit 57 generates a transmission signal TX including the RSSI[2] detected by the RSSI detection unit 55 and the ID detected by the ID detection unit 56. Then, the transmission signal generation unit 57 transmits the generated transmission signal TX to the wireless communication modules 21 and 22 in Fig. 4 via the wireless communication module 50. At this time, the wireless communication module 50 transmits the transmission signal TX based on, for example, the BLE standard, as in the case of Fig. 4.
[0043] <Details of the shutter control unit> Fig. 7 is a flow chart showing an example of processing contents in the closed state of the shutter control unit in Fig. 4. Fig. 8 is a flow chart showing an example of processing contents in the ready state of the shutter control unit in Fig. 4. Fig. 9 is a flow chart showing an example of processing contents in the open state of the shutter control unit in Fig. 4.
[0044] The shutter control unit 34 has three internal control states: a closed state, a ready state, and an open state. When the control state is the closed state, the shutter 11 is controlled to be closed. When the control state is the open state, the shutter 11 is controlled to be open. The ready state is a state provided to determine whether or not to transition from the closed state to the open state.
[0045] First, when the shutter 11 is closed, the shutter control unit 34 executes the process in the closed state shown in Fig. 7, and then executes the process in the ready state shown in Fig. 8. In Fig. 7 and Fig. 8, the shutter control unit 34 generally controls the shutter 11 to open when the RSSI[1] at the beacon detector BD1 becomes higher than the threshold Rth1, and then the RSSI[2] at the beacon detector BD2 also becomes higher than the threshold Rth2 within a predetermined time (Tmax).
[0046] 7, the shutter control unit 34 detects the RSSI[1] of the beacon signal BC using the beacon detector BD1, i.e., the RSSI detection unit 31 (step S101). Subsequently, the shutter control unit 34 compares the detected RSSI[1] with a threshold value Rth1 (step S102). Then, the shutter control unit 34 repeatedly executes the processes of steps S101 and S102 until the detected RSSI[1] becomes higher than the threshold value Rth1 (step S102: No).
[0047] On the other hand, if RSSI[1] becomes higher than the threshold Rth1 (step S102: Yes), the shutter control unit 34 detects the ID of the beacon signal BC using the ID detection unit 32 and sets the detected ID as a candidate ID (step S103). The candidate ID means the ID of the transmitter TR that may enter the room, and therefore the ID of the medical practitioner 7. Thereafter, the shutter control unit 34 transitions from the closed state to the ready state of FIG. 8 (step S104).
[0048] 8, the shutter control unit 34 activates the counter 35 (step S201). Subsequently, the shutter control unit 34 compares the count value of the counter 35 with a predetermined time Tmax (step S202). The time Tmax is set arbitrarily, for example, to 20 seconds. If the count value does not exceed the time Tmax (step S202: Yes), the shutter control unit 34 proceeds to step S203. If the count value exceeds the time Tmax (step S202: No), the shutter control unit 34 proceeds to step S208.
[0049] In step S203, the shutter control unit 34 acquires the RSSI[2] and ID detected by the beacon detector BD2 using the acquisition unit 33. Next, the shutter control unit 34 determines whether the acquired ID is equal to the candidate ID determined in step S103 of Fig. 7 (step S204). If the acquired ID is equal to the candidate ID (step S204: Yes), the shutter control unit 34 compares the acquired RSSI[2] with a threshold value Rth2 (step S205).
[0050] Here, if the acquired RSSI[2] is higher than the threshold Rth2 (step S205: Yes), the shutter control unit 34 sets the candidate ID as the monitoring ID (step S206). The monitoring ID means the ID of the treatment person 7 who has entered the room. Thereafter, the shutter control unit 34 opens the shutter 11 via the drive unit 25, transitions to the open state, and proceeds to step S301 in FIG. 9 (step S207). On the other hand, if the acquired RSSI[2] is lower than the threshold Rth2 (step S205: No) or if the acquired ID is different from the candidate ID (step S204: No), the shutter control unit 34 returns to step S202.
[0051] The shutter control unit 34 executes the processes of steps S203 to S205 again unless the count value exceeds the time Tmax. On the other hand, if the count value exceeds the time Tmax (step S202: No), the shutter control unit 34 stops and initializes the counter 35 (step S208). Then, the shutter control unit 34 transitions from the ready state to the closed state, and returns to step S101 in FIG. 7 (step S209).
[0052] When the shutter 11 is open, the shutter control unit 34 executes the process in the open state shown in Fig. 9. In Fig. 9, the shutter control unit 34 generally controls the shutter 11 to close when the RSSI[2] at the beacon detector BD2 falls below a threshold Rth4 and the RSSI[1] at the beacon detector BD1 falls below a threshold Rth3.
[0053] 9, the shutter control unit 34 detects the RSSI[1] of the beacon signal BC using the beacon detector BD1, i.e., the RSSI detection unit 31 (step S301). Subsequently, the shutter control unit 34 detects the ID of the beacon signal BC using the ID detection unit 32 (step S302). Next, the shutter control unit 34 determines whether the detected ID is equal to the monitoring ID determined in step S206 of FIG. 8 (step S303).
[0054] If the detected ID is equal to the monitoring ID (step S303: Yes), the shutter control unit 34 acquires the RSSI[2] and ID detected by the beacon detector BD2 using the acquisition unit 33 (step S304). Then, the shutter control unit 34 determines whether the acquired ID is equal to the monitoring ID (step S305).
[0055] If the acquired ID is equal to the monitoring ID (step S305: Yes), the shutter control unit 34 compares the RSSI[2] acquired in step S304 with a threshold Rth4 (step S306). If the acquired RSSI[2] is lower than the threshold Rth4 (step S306: Yes), the shutter control unit 34 compares the RSSI[1] detected in step S301 with a threshold Rth3 (step S307).
[0056] Then, if the detected RSSI[1] falls below the threshold Rth3 (step S307: Yes), the shutter control unit 34 closes the shutter 11 via the drive unit 25, transitions to a closed state, and proceeds to step S101 in Fig. 7. On the other hand, if the detected RSSI[1] is higher than the threshold Rth3 (step S307: No) or if the acquired RSSI[2] is higher than the threshold Rth4 (step S306: No), the shutter control unit 34 returns to step S301.
[0057] In this way, the shutter control unit 34 repeats the processes of steps S301 to S307 until the acquired RSSI[2] falls below the threshold Rth4 and the detected RSSI[1] falls below the threshold Rth3. Here, the threshold Rth3 is set lower than the threshold Rth1 shown in Fig. 7. The threshold Rth4 is also set lower than the threshold Rth2 shown in Fig. 8.
[0058] If the detected ID is different from the monitoring ID (step S303: No) or if the acquired ID is different from the monitoring ID (step S305: No), the shutter control unit 34 returns to step S301. This corresponds to, for example, a case where the beacon detectors BD1 and BD2 detect a beacon signal BC from a new medical practitioner 7. In this case, the shutter control unit 34 waits for the processes of steps S303 and S305 to detect RSSI[1] and RSSI[2] of the beacon signal BC including the monitoring ID.
[0059] By using the shutter control unit 34 as described above, it is possible to determine with high accuracy the status of the treatment person 7 entering and leaving the room, and to appropriately control the opening and closing of the shutter 11. As a specific example, as shown in FIG. 2A, it is assumed that the treatment person 7 passes through the entrance 3 of the room 2a while walking along the corridor 1. In this case, step S102 in FIG. 7 is "Yes", but steps S204 and S205 in FIG. 8 are "No". As a result, it is determined that no person has entered the room, and the shutter 11 remains closed.
[0060] Also, assume that the treating person 7 enters the room 2a through the entrance 3 and then performs treatment on the treated person 6 as shown in Fig. 2B. In this case, after step S102 in Fig. 7 becomes "Yes", steps S204 and S205 in Fig. 8 also become "Yes" within a predetermined time (Tmax). As a result, it is determined that someone has entered the room, and the shutter 11 changes from a closed state to an open state.
[0061] However, the practitioner 7 may move or change direction within the room 2a. Even in this case, at least one of the beacon detectors BD1 and BD2 may detect the beacon signal BC from the practitioner 7, although the signal may be weak. That is, at least one of steps S306 and S307 in FIG. 9 may return "No." As a result, it is determined that the practitioner 7 remains in the room 2a, and the shutter 11 remains open.
[0062] Thereafter, the treatment person 7 leaves the room 2a through the entrance 3 and moves away from the entrance 3 while walking along the passage 1. At this stage, neither of the beacon detectors BD1 nor BD2 detects even a weak radio wave, and steps S306 and S307 in FIG. 9 may both be "Yes." As a result, it is determined that the person has left the room, and the shutter 11 changes from an open state to a closed state. To make such a determination, the threshold value Rth3 is set lower than the threshold value Rth1, and the threshold value Rth4 is set lower than the threshold value Rth2.
[0063] The determination method of the shutter control unit 34 is not necessarily limited to the methods shown in Figures 7 to 9 and may be changed as appropriate. For example, the transition condition to the open state is not limited to the condition using the ready state, i.e., a stateful condition, as shown in Figure 8, but a stateless condition may also be used. For example, the transition condition to the stateless open state may simply be a condition such as RSSI[1]>threshold A and RSSI[2]>threshold B.
[0064] In this case, however, the area that satisfies the transition condition may be a limited, narrow area within the room 2a. For example, this area may be a narrow area that exists on the way from the entrance 3 to the head side of the patient 6. In this case, when the patient 7 heads from the entrance 3 to the foot side of the patient 6, there is a possibility that the patient 7 will not pass through this narrow area. From this perspective, it is more preferable to use stateful transition conditions such as those shown in FIGS. 7 and 8.
[0065] Alternatively, for example, a method may be used in which the correspondence between RSSI[1], RSSI[2] and the position and orientation of the practitioner 7 in the room 2a is mapped in advance. In this case, the shutter control unit 34 determines the position and orientation of the practitioner 7 based on the mapping information, and controls the opening and closing of the shutter 11 based on the determination result. However, when using such a method, there is a risk that the creation of the mapping information and the process of determining the position based on the mapping information may become complicated. From this perspective, it is more preferable to use a simple method such as that shown in FIGS. 7 to 9.
[0066] Fig. 10 is a flow diagram showing an example of the contents of the advance preparation process performed as a prerequisite for the processes of Figs. 7 to 9. First, a predetermined ID (referred to as IDx) is set in the transmitter TR (step S401). The IDx of the transmitter TR is also set in the beacon detectors BD1 and BD2 (step S402). Specifically, for example, the IDx is stored in the memories 17 and 52 of the beacon detectors BD1 and BD2.
[0067] Next, the owner of the transmitter TR is placed in a predetermined position in the room 2a or on the passage 1 in a predetermined orientation (step S403). In this state, the beacon detectors BD1 and BD2 detect the RSSI[1] and RSSI[2] of the beacon signal BC including IDx, respectively (step S404). The detected RSSI[1] and RSSI[2] are stored in, for example, the memory 17 of the monitoring device 10 (step S405).
[0068] The processes of steps S404 and S405 are repeatedly executed until a predetermined number of detections is reached (step S406). This is to calculate the average values of RSSI[1] and RSSI[2], taking into account the instability of radio waves, etc. Next, the processes of steps S403 to S406 are repeatedly executed while changing the owner's orientation and position until all predetermined orientations and positions are covered (step S407).
[0069] By the processing of steps S403 to S407, RSSI map data is created which indicates the correspondence between the owner's position and orientation and RSSI[1], RSSI[2]. The thresholds Rth1 to Rth4 shown in FIGS. 7 to 9 are determined based on this RSSI map data (step S408). The determined thresholds Rth1 and Rth3 are then stored in memory 17 of monitoring device 10, and the determined thresholds Rth2 and Rth4 are stored in memory 52 of beacon detector BD2. The processing of step S408 is performed by, for example, an administrator or the like.
[0070] <Various modified examples> In the example of Fig. 1, two beacon detectors are installed in one room 2a, but two or more beacon detectors may be installed depending on the size of the room 2a, the number of beds 5 in the room 2a, etc. For example, if two beds 5 are installed in the room 2a, a total of three or more beacon detectors may be installed, including one beacon detector that detects RSSI[1] at the entrance 3 and two beacon detectors that detect RSSI[2] and RSSI[3] at the two beds, respectively.
[0071] In this case, when determining whether to transition to the open state, for example, an OR decision may be made in step S205 of Fig. 8, such as when RSSI[2] is higher than the threshold or when RSSI[3] is higher than the threshold. On the other hand, when determining whether to transition to the closed state, for example, an AND decision may be made in step S306 of Fig. 9, such as when RSSI[2] is lower than the threshold and RSSI[3] is also lower than the threshold. Furthermore, if there is an area in room 2a where none of the beacon detectors can detect the beacon signal BC, a separate beacon detector may be installed to cover that area.
[0072] <Major Effects of the Embodiment> As described above, in the monitoring system of the embodiment, by providing two or more beacon detectors in the room, it is possible to accurately determine the entry and exit status of the treatment person 7, and based on the determination result, it is possible to appropriately control the opening and closing of the shutter 11. As a result, it is possible to monitor the treatment status of the treatment recipient 6 while the treatment person 7 is in the room, and to protect the privacy of the treatment recipient 6 while the treatment person 7 is not in the room.
[0073] Furthermore, the monitoring system can be realized at low cost. For example, a method can be considered in which many beacon detectors are installed in a mesh pattern within a room to determine the position of the person being treated 7 with high accuracy. However, such a method increases costs and may complicate the position determination process. On the other hand, in applications such as those described in the embodiments, it is not necessary to determine the position of the person being treated 7 with high accuracy; it is sufficient to know the status of the person being treated 7 entering and exiting the room. Taking advantage of this property, the method of the embodiments achieves cost reduction by installing a smaller number of beacon detectors (two or more) within a room. Furthermore, processing is simplified by simply comparing the RSSI with a threshold value.
[0074] The present invention is not limited to the above-described embodiment, and various modifications can be made without departing from the spirit and scope of the present invention. [Explanation of symbols]
[0075] 1...passageway, 2a to 2d...room, 3...entrance / exit, 5...bed, 6...person receiving treatment, 7...person treating, 10...monitoring device, 11...shutter, 12...housing, 13...imaging element, 14...lens, 15...opening, 16...image processing unit, 17...memory, 21, 22...wireless communication module, 21a, 22a...printed circuit board, 21b, 22b...integrated circuit component, 23...infrared receiving unit, 24...microphone, 25...drive unit, 26...actuator, 27...link mechanism, 28...power supply unit, 30...control unit, 31...RSSI detection unit, 32... ID detection unit, 33...acquisition unit, 34...shutter control unit, 35...counter, 40...beacon generator, 41...ID setting unit, 42...memory, 43...battery, 50...wireless communication module, 51...control unit, 52...memory, 55...RSSI detection unit, 56...ID detection unit, 57...transmission signal generation unit, AR...transmission area, BC...beacon signal, BD1, BD2...beacon detectors, CS...card slot, IM...imaging unit, LP...lamp, MC...memory card, PW...power port, Rth1 to Rth4...threshold, TR...transmitter, TX...transmission signal
Claims
1. A transmitter carried by a person providing treatment to a person receiving treatment in a room; A monitoring device installed at a position closer to an entrance of the room than a treatment position where the patient is treated; a second beacon detector located closer to the treatment location than the monitoring device; Equipped with The transmitter transmits a beacon signal; the second beacon detector detects a second RSSI for the beacon signal from the transmitter; The monitoring device an imaging element that captures an image of the treatment recipient being treated by the treatment person through an opening; an opening / closing body that opens and closes the opening; a first beacon detector that detects a first RSSI of the beacon signal from the transmitter; an acquisition unit that acquires the second RSSI detected by the second beacon detector; an opening / closing body control unit that controls opening / closing of the opening / closing body based on the first RSSI detected by the first beacon detector and the second RSSI acquired by the acquisition unit; Equipped with Surveillance system.
2. 2. The monitoring system according to claim 1, The opening / closing body control unit controls the opening / closing body to open when, with the opening / closing body closed, the first RSSI becomes higher than a first threshold value, and then the second RSSI also becomes higher than a second threshold value within a predetermined time. Surveillance system.
3. 2. The monitoring system according to claim 1, the opening / closing body control unit controls the opening / closing body to close when the second RSSI falls below a fourth threshold and the first RSSI falls below a third threshold while the opening / closing body is open. Surveillance system.
4. 2. The monitoring system according to claim 1, The opening / closing body control unit is When the first RSSI becomes higher than a first threshold value in a state where the opening / closing body is closed, and the second RSSI also becomes higher than a second threshold value within a predetermined time, the opening / closing body is controlled to be opened; When the second RSSI falls below a fourth threshold and the first RSSI falls below a third threshold in a state where the opening / closing body is open, the opening / closing body is controlled to be closed. Surveillance system.
5. 5. The monitoring system according to claim 4, the third threshold is lower than the first threshold; The fourth threshold is lower than the second threshold. Surveillance system.
6. The monitoring system according to any one of claims 1 to 5, The beacon signal is a beacon signal based on the BLE (Bluetooth low energy) standard. Surveillance system.
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