The present disclosure relates to a monitoring system and a monitoring method using an infrared camera.
In hospitals or nursing homes, there is a possibility that if a care recipient such as an elderly person falls from a bed while sleeping, it may lead to a serious injury. It is therefore desired to prevent or promptly detect a fall accident. Thus, in hospitals or nursing homes, a monitoring system in which various kinds of sensors such as a pressure sensitive sensor are attached around beds has been introduced. However, there is a possibility that contact type sensors may be removed by care recipients who do not like to be monitored. Thus, a system that performs monitoring from a position unreachable by care recipients is desired.
A method for remotely monitoring inside a room using a visible camera is not preferred in terms of protection of privacy of care recipients. Further, in a case where the inside of the room is darkened in a bedtime, sufficient image information cannot be obtained with a visible camera. Thus, as a monitoring method which is capable of night vision and which gives consideration to privacy, a monitoring system using an infrared camera has been proposed.
A system in which an infrared camera is attached right beside a bed and which captures an image of a care recipient from right beside the care recipient has been proposed. This system can detect that the care recipient is sitting up but cannot detect falling or presage of falling from a bed. On the other hand, a system which captures an image of a care recipient from right above, divides a detection range into areas in advance and performs monitoring depending on in which area the care recipient is located has also been proposed (see, for example, PTL 1).
[PTL 1] JP 6828703 B
In the system that captures an image from right above, a thermal image in a plane of a bed is acquired. However, it is difficult to distinguish between heat of a care recipient and heat remaining on the bed in the thermal image. Thus, whether the care recipient is sitting up in the bed or just turns over in bed cannot be distinguished, and a state of the care recipient cannot be accurately determined.
The present disclosure has been made to solve the problem as described above, and an object thereof is to provide a monitoring system and a monitoring method capable of accurately determining a state of a care recipient.
A monitoring system according to the present disclosure includes a thermal image acquisitor attached to a wall or a ceiling on a side of a head of a care recipient in a case where the care recipient lies on a bed, and capturing an image of the bed and its surroundings from diagonally above to acquire a thermal image; reference setting circuitry setting two reference lines respectively corresponding to a left end and a right end of the bed in the thermal image, and a reference height for determining sitting-up of the care recipient: heat source detection circuitry detecting a mass of a heat source in the thermal image: state determination circuitry determining a state of the care recipient from a positional relationship between a safe area enclosed with the reference lines and the reference height and the mass of the heat source; and a determination result output device outputting a determination result of the state determination circuitry.
A monitoring method according to the present disclosure by a thermal image acquisitor attached to a wall or a ceiling on a side of a head of a care recipient in a case where the care recipient lies on a bed, capturing an image of the bed and its surroundings from diagonally above to acquire a thermal image: setting two reference lines respectively corresponding to a left end and a right end of the bed in the thermal image, and a reference height for determining sitting-up of the care recipient, by reference setting circuitry: detecting a mass of a heat source in the thermal image by heat source detection circuitry: determining a state of the care recipient from a positional relationship between a safe area enclosed with the reference lines and the reference height and the mass of the heat source by state determination circuitry: and outputting a determination result of the state determination circuitry by a determination result output device.
In the present disclosure, an image of the bed and its surroundings is captured from diagonally above to acquire a thermal image, and a state of the care recipient is determined from a positional relationship between the safe area enclosed with the two reference lines and the reference height in the thermal image and the mass of the heat source. By this means, the state of the care recipient can be accurately determined.
A monitoring system and a monitoring method according to the embodiments of the present disclosure will be described with reference to the drawings. The same components will be denoted by the same symbols, and the repeated description thereof may be omitted.
A thermal image acquisitor 3 is attached to a wall 4 on a side of the head of the care recipient 1 in a case where the care recipient 1 lies on the bed 2. However, the thermal image acquisitor 3 may be attached to a ceiling 5. The thermal image acquisitor 3 captures an image of the bed 2 and its surroundings from diagonally above to acquire a thermal image. The thermal image acquisitor 3 is, for example, an infrared array sensor. As the infrared array sensor, for example, a sensor in which infrared sensors such as bolometers, thermopiles and thermal diodes are arranged in a matrix can be used. Use of the infrared array sensor makes it possible to capture an image of the care recipient 1 even within a dark room while giving consideration to privacy.
A determination device 6 analyzes the thermal image acquired by the thermal image acquisitor 3 to determine a state of the care recipient 1. A determination result output device 7, which is, for example, a display, a mobile phone or a tablet terminal that displays the thermal image, outputs a determination result by the determination device 6. Note that the determination result output device 7 may be a speaker, or the like, which notifies a caregiver of the determination result through speech. Information is transmitted from the determination device 6 to the determination device 7 through wireless connection such as Wi-Fi (registered trademark), Bluetooth, 4G or 5G or through wired connection such as a communication cable or a wired LAN.
The determination device 6 includes a reference setter 12, a heat source detector 13 and a state determinator 14. The reference setter 12 sets the two reference lines 8 and 9 respectively corresponding to the left end and the right end of the bed 2 in the thermal image, and the reference height 10 for determining sitting-up of the care recipient 1.
The heat source detector 13 detects a region in which a temperature is equal to or higher than a predetermined temperature in the acquired thermal image as the mass 11 of the heat source corresponding to the care recipient 1. The predetermined temperature is a temperature higher than a reference temperature by equal to or greater than a designated temperature. The reference temperature is a temperature of a mechanical shutter incorporated into the infrared camera or a room air temperature and is acquired from the thermal image, a temperature sensor IC attached to the thermal image acquisitor 3, or the like. The designated temperature is arbitrarily set by the caregiver and input upon initial setting. Note that it is preferable to count the number of pixels of the mass 11 of the heat source and exclude a mass whose size does not reach a predetermined minimum size. This can reduce erroneous detection.
The state determinator 14 determines a state of the care recipient 1 from a positional relationship between a safe area 15 enclosed with the reference lines 8 and 9 and the reference height 10 and the mass 11 of the heat source. As will be described below, the state of the care recipient 1 to be determined by the state determinator 14 includes four of “normal”, “falling”, “warning for falling” and “warning for leaving bed”. In a case of “falling”, a degree of urgency is high, and thus, a caregiver needs to hastily rush to the scene. On the other hand, in a case of “warning for falling” and “warning for leaving bed”, a degree of urgency is low. In this manner, priorities are set for determination results.
In a case where a small heat source such as a smartphone or tea is located within an imaging range, as illustrated in
Here, there are various ways of attaching the thermal image acquisitor 3 depending on an installation place, and there is a possibility that a position of the bed 2 may move. Thus, the caregiver needs to set the reference lines 8 and 9 and the reference height 10 as necessary. Thus, a method for setting the reference lines 8 and 9 and the reference height 10 will be described.
Then, as illustrated in
As described above, in the present embodiment, an image of the bed 2 and its surroundings is captured from diagonally above to acquire a thermal image, and a state of the care recipient 1 is determined from a positional relationship between the safe area 15 enclosed with the two reference lines 8 and 9 and the reference height 10 in the thermal image and the mass 11 of the heat source. By this means, the state of the care recipient 1 can be accurately determined.
Further, if the care recipient 1 sits up in the bed 2, heat remains in the mattress. Thus, it is difficult to determine whether the care recipient 1 is sitting up or is sleeping if the thermal image is captured from directly above. In contrast, in the present embodiment, the thermal image is captured from diagonally above, and thus, it is possible to discriminate a sitting-up state only from whether a height of the mass 11 of the heat source exceeds the reference height 10 in the thermal image.
Further, in a case where the care recipient 1 is sleeping without being covered with a blanket, the whole body including the toes of the care recipient 1 is detected as the mass 11 of the heat source. Thus, in the present embodiment, the imaging angle of the thermal image acquisitor 3 and the reference height 10 are set so that a height of part of the mass 11 of the heat source corresponding to the care recipient 1 who is sitting up in the bed 2 becomes higher than the reference height 10, and a height of the mass 11 of the heat source corresponding to the whole body including the toes of the care recipient 1 who lies on the bed 2 becomes lower than the reference height 10. This enables determination while distinguishing between a state where the care recipient 1 is sitting up and a state where the care recipient 1 is sleeping without being covered with a blanket.
Specifically, in a case where a height of half of the thermal image is set as the reference height 10, the imaging angle θ of the thermal image acquisitor 3 is set as follows. Here, as the thermal image acquisitor 3, an infrared sensor with a horizontal angle of view of 78° and a vertical angle of view of 53° is used. The bed 2 is assumed to be a single bed having a width of 97 cm, a length of 195 cm, and a height from the floor to an upper surface of the bed 2 of 50 cm. It is assumed that the thermal image acquisitor 3 is attached at a height of 50 cm from the upper surface of the bed 2. In a case where the horizontal angle of view is 78°, it is necessary to separate the thermal image acquisitor 3 from the position of the head by equal to or greater than 60 cm to monitor from the left end to the right end of the bed 2. It is necessary to set the imaging angle θ of the thermal image acquisitor 3 at greater than 13.3° so that the top of the head of the care recipient 1 is at a lower end of the thermal image. On the other hand, it is necessary to set the imaging angle θ of the thermal image acquisitor 3 at smaller than 21.4º so that the toes of the care recipient 1 are located below the reference height 10. Thus, the thermal image acquisitor 3 is set to capture an image of the bed 2 and its surroundings from the angle θ of 13.3° to 21.4° with respect to the upper surface of the bed 2.
Further, in another method for determining the state of the care recipient 1, the thermal image acquisitor 3 periodically acquires a reference thermal image while the care recipient 1 is sleeping. The state determinator 14 stores the reference thermal image and determines the state of the care recipient 1 from a difference between the thermal image acquired during monitoring operation and the reference thermal image. Also with this determination method, the state of the care recipient 1 can be accurately determined.
Thus, in the present embodiment, the state determinator 14 calculates respective central coordinates 11a and 18a of the plurality of masses 11 and 18 of the heat sources. The state determinator 14 has a function of storing the central coordinates 11a and 18a in the latest thermal image. Further, in a case where any one of the central coordinates move outside from the region between the reference lines 8 and 9, the state determinator 14 determines the state as a “dangerous state”. In a case where the central coordinates move only within the region between the reference lines 8 and 9, the state determinator 14 does not determine the state as the “dangerous state”. This can prevent erroneous determination by heat remaining on the bed 2, so that it is possible to improve accuracy of the monitoring system.
Further, in a case where the caregiver approaches the care recipient 1 on the bed 2, as illustrated in
Further, in a case where the caregiver is in the room, a monitoring function of the monitoring system is turned off. By this means, it is possible to prevent the state from being erroneously determined as the dangerous state in a case where the caregiver finishes care and moves from inside to outside of the bed 2. After the care is finished, the monitoring function is turned on to start monitoring.
Note that functions of the heat source detector 13, the reference setter 12 and the state determinator 14 may be implemented by recording a program for implementing the functions of the heat source detector 13, the reference setter 12 and the state determinator 14 in a computer-readable recording medium and causing a computer system or a programmable logic device to read the program recorded in the recording medium. Note that the “computer system” described here includes an OS and hardware such as peripheral equipment. Further, the “computer system” includes a WWW system including an environment where a home page is provided (or displayed). Further, the “computer-readable recording medium” refers to a portable medium such as a flexible disk, a magnetooptical disk, a ROM and a CD-ROM, or a recording device such as hard disk incorporated into the computer system. Still further, the “computer-readable recording medium” includes a medium that stores a program for a fixed period, such as a volatile memory (RAM) inside the computer system that becomes a server or a client in a case where the program is transmitted through a network such as the Internet or a communication line such as a telephone line. Further, the above-described program may be transmitted from a computer system that stores the program in a storage device, or the like, to another computer system through a transmission medium or using a transmission carrier in the transmission medium. Here, the “transmission medium” that transmits the program refers to a medium having a function of transmitting information, like a network (communication network) such as the Internet or a communication line (communication wire) such as a telephone line. Further, the above-described program may be a program for implementing part of the functions described above. Still further, the above-described program may be a program capable of implementing the functions described above in combination with a program that has already been recorded in the computer system, that is, a so-called difference file (difference program).
1 care recipient; 2 bed; 3 thermal image acquisitor; 4 wall; 5 ceiling; 7 determination result output device; 8,9 reference line; 10 reference height; 11,17,18 mass of heat source; 11a, 18a central coordinate; 12 reference setter; 13 heat source detector; 14 state determinator; 15 safe area
Filing Document | Filing Date | Country | Kind |
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PCT/JP2021/033969 | 9/15/2021 | WO |