Home occupant detection and monitoring system

Information

  • Patent Grant
  • 10989806
  • Patent Number
    10,989,806
  • Date Filed
    Thursday, March 8, 2018
    6 years ago
  • Date Issued
    Tuesday, April 27, 2021
    3 years ago
Abstract
A home occupant detection and monitoring system has a sensor unit having a radio wave transmitter, a radio wave receiver, and a wireless transmitter configured to detect and receive vital signs of an occupant; a user interface having a microcontroller, a wireless receiver configured to receive the wireless signals transmitted from the sensor unit, a means for user input, and a network card; and a means for alerting occupants and third-parties to a triggering event; wherein the microcontroller, based upon logic, activates the alerting means at the triggering event.
Description
TECHNICAL FIELD

The present disclosure relates to home security systems. More particularly, the present disclosure is directed to a system for detecting, identifying, and monitoring individuals in a home by using their heartbeat, respiration, or other vital signals.


BACKGROUND

Modern home and commercial security systems are generally comprised of three primary detection methods to detect intruders: door/window sensors, motion sensors, and glass break sensors. While these technologies can be effective in some situations, they are all possible to defeat so as to miss an intruder or unwanted occupant. As an example, glass break sensors can be defeated by a glass cutter or by simply breaking a window with minimal sound; motion sensors can be defeated by crawling or otherwise keeping a low profile while moving close to walls; and door/window sensors can be overcome with the use of magnets. Other means and methods may be available to defeat these technologies. In addition to these problems, intruders can gain access to a home or business when an alarm is not activated, lying in wait until other occupants have gone to sleep or left the business. In addition, such systems require time money and time in installing and maintaining a sensor at each door, window or other potential entry point.


Therefore, there is a need for a security system that is not limited to monitoring entry points, and that can constantly monitor occupants in a home, business, or other structure to prevent an unwanted occupant from entering, or remaining, in a structure.


Further, there are currently no systems for simultaneously monitoring the health status of each occupant within a structure. In other words, many deaths occur each year that may have been preventable, had other occupants in the home been alerted to a health emergency. For example, several children die each year from suffocation. If someone would have been alerted to the child's distress, the child might have been saved. As such, there is a need for a system that not only monitors a home for intrusion purposes, but that monitors the occupants' health statuses as well.


SUMMARY OF EXAMPLE EMBODIMENTS

In one embodiment, a home occupant detection and monitoring system comprises a sensor unit comprising a radio wave transmitter, a radio wave receiver, and a wireless transmitter; a user interface comprising a microcontroller, a wireless receiver configured to receive the wireless signals transmitted from the sensor unit, a means for user input, and a network card; and, a means for alerting occupants and third-parties to a triggering event; wherein the microcontroller, based upon logic, activates the alerting means at a triggering event.


In one embodiment, a home occupant detection and monitoring system further comprises one or more cameras aligned with the sensor unit, the camera configured to activate and/or record at a triggering event.


In one embodiment, a home occupant detection and monitoring system comprises a radio wave transmitter capable of transmitting Frequency Modulated Continuous Wave (FMCW) signals; one or more radio wave receivers positioned in orthogonal locations (or, in general, non-parallel locations) around an environment to be monitored; a user interface comprising a microcontroller, a wireless transceiver, a means for user input, and a network card; and, a means for alerting occupants and third-parties to a triggering event; wherein the microcontroller, based upon logic, activates the alerting means at a triggering event.


In one embodiment, a home occupant detection and monitoring system comprises a radio wave transmitter capable of transmitting FMCW, wherein the FMCW is configured to map walls of a structure by measuring distance of walls and objects with maximum return.


In one embodiment, an antenna of the radio wave transmitter, receiver, or transceiver rotates, either electronically or mechanically, to monitor an environment using narrow beam scanning (e.g., +/−45 deg.). In an alternate embodiment, the antenna would use wide (e.g., 90 deg.) beam scanning with a moveable, higher gain antenna to scan the environment for vital signals.


In one embodiment, a method of detecting occupants in a structure comprises using radar to detect one or more occupants within a structure, comparing the total number of occupants within the structure with the total number of occupants allowed in the structure as programmed by a user; and, alerting one or more individuals when the number of occupants within a structure drops below, or exceeds, a predetermined threshold.


In one embodiment, a method of detecting occupants in a structure comprises using radar to detect one or more occupants within a structure, using programmed logic to compare the radar signals with one or more stored signals, and identifying the occupants based upon the radar signals.


In one embodiment, a method of detecting, identifying, and monitoring users comprises using radar to detect one or more occupants within a structure, using programmed logic to compare the radar signals with one or more stored signals, and identifying the occupants based upon the radar signals, wherein when an irregular radar signal is received from one or more known occupants, alerting one or more occupants to the irregular radar signal received.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a flowchart of a home occupant detection and monitoring system;



FIG. 2 is a flowchart of a home occupant detection and monitoring system;



FIG. 3 is a flowchart of a home occupant detection and monitoring system;



FIG. 4 is a flowchart of a home occupant detection and monitoring system;



FIG. 5 is a block diagram showing components of a sensor for use with a home occupant detection and monitoring system; and



FIG. 6 is a schematic diagram of certain components of a home occupant detection and monitoring system.





DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS

The following descriptions depict only example embodiments and are not to be considered limiting in scope. Any reference herein to “the invention” is not intended to restrict or limit the invention to exact features or steps of any one or more of the exemplary embodiments disclosed in the present specification. References to “one embodiment,” “an embodiment,” “various embodiment,” and the like, may indicate that the embodiment(s) so described may include a particular feature, structure, or characteristic, but not every embodiment necessarily includes the particular features, structure, or characteristic. Further, repeated use of the phrase “in one embodiment,” or “in an embodiment,” do not necessarily refer to the same embodiment, although they may.


Reference to the drawings is done throughout the disclosure using various numbers. The numbers used are for the convenience of the drafter only and the absence of numbers in an apparent sequence should not be considered limiting and does not imply that additional parts of that particular embodiment exist. Numbering patterns from one embodiment to the other need not imply that each embodiment has similar parts, although it may. Further, not all drawings may be drawn to scale.


Accordingly, the particular arrangements disclosed are meant to be illustrative only and not limiting as to the scope of the invention. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation. Unless otherwise expressly defined herein, such terms are intended to be given their broad, ordinary, and customary meaning not inconsistent with that applicable in the relevant industry and without restriction to any specific embodiment hereinafter described. As used herein, the article “a” is intended to include one or more items. When used herein to join a list of items, the term “or” denotes at least one of the items, but does not exclude a plurality of items of the list. For exemplary methods or processes, the sequence and/or arrangement of steps described herein are illustrative and not restrictive.


It should be understood that the steps of any such processes or methods are not limited to being carried out in any particular sequence, arrangement, or with any particular graphics or interface. Indeed, the steps of the disclosed process or methods generally may be carried out in various different sequences and arrangements while still falling within the scope of the present invention.


The term “coupled” may mean that two or more elements are in direct physical or electrical contact. However, “coupled” may also mean that two or more elements are not in direct contact with each other, but yet still cooperate or interact with each other.


The terms “comprising,” “including,” “having,” and the like, as used with respect to embodiments, are synonymous, and are generally intended as “open” terms (e.g., the term “including” should be interpreted as “including but not limited to,” the term “having” should be interpreted as “having at least,” the term “includes” should be interpreted as “includes but is not limited to,” etc.).


While the term “home” may be used throughout the disclosure, the scope of the invention is not so limited. In other words, the system disclosed herein may be used in any structure or environment. Further, as used herein, an “occupant” may refer to a person or an animal.


As will be appreciated from the below disclosure, the home occupant detection and monitoring system solves the problems in the prior art—namely, the ability to monitor more than entry/exit points, and detecting the presence of an individual without the shortcomings of motion sensors. Further, the ability to monitor various health aspects of individuals within a home is an added benefit of the system disclosed herein. Some benefits of using heartbeat and breathing detection to monitor occupants include: 1) the ability to penetrate walls and concrete using radio waves so that an intruder cannot hide from detection, which would more readily detect and deter intruders from entering a premise; 2) the ability to detect when an individual has left the premise, such as a child sneaking out at night or other similar situations; and 3) the ability to monitor the health of individuals within a home or structure and potentially prevent injury or death by alerting occupants or authorities to potential health events, such as a child choking, an infant not breathing while asleep, an occupant experiencing a stroke, cardiac event, or respiratory distress, or other health event. This system disclosed herein is programmable to the specific occupants of the home and is able to alert other occupants of the home when one of the occupants is experiencing a health issue, has left the premises, or other programmable event. It also has the ability to alert the occupants to the entry of an unknown occupant.


In one embodiment, as illustrated by the block diagram of FIG. 5, a home occupant detection and monitoring system comprises a sensor unit 500 comprising a radio wave transmitter 502, a radio wave receiver 504, and a wireless transmitter 506. It will be appreciated that the radar components (e.g., radio wave transmitter and receiver) may comprise components known in the industry; i.e., a radar system comprises a transmitter producing electromagnetic radio waves, a transmitting antenna, a receiving antenna, and a receiver. Additionally, it will be understood that the transmitter 502 and receiver 504 may use the same antenna for transmitting and receiving. Further, the wireless transmitter may be capable of both sending and receiving signals. The sensor unit 500 may include electronic circuitry 508 as would be understood by one of ordinary skill in the art. Such circuitry 508 may include provisions for transforming, analyzing, digitizing or otherwise manipulating signals or information received by the sensor unit 500. The circuitry 508 may comprise an analog-to-digital converter, a digital-to-analog converter, memory, logic circuits or other components. The circuitry 508 may comprise individual components or one or more integrated circuit boards having one or more such components. The sensor unit(s) 500 may be placed at any number of locations, as discussed in more detail below. The transmitter 502 then transmits a radio wave signal and the receiver 504 receives the returned signal.


As shown by the schematic diagram of FIG. 6, a monitoring system may comprise a number of elements connected into a network. The monitoring system may comprise multiple sensors 500A, 500B. While two sensors 500A, 500B are illustrated, the system may employ many more sensors distributed in a single room or in multiple rooms. As described above, the sensor transmitter 502 transmits a radio wave signal and the receiver 504 receives the returned signal. The returned signal received by the sensor 500, or a signal representative of information contained in the returned signal, is transmitted to a control unit 602 for analysis via the wireless transmitter 506. It will be appreciated that while wireless transmitters are preferred, they are not required, and wired connections may be used. Further, the network need not require the internet and may be a local area network, mesh network, or other method of communication. The control unit 602 ideally comprises a user interface, a microcontroller, a wireless receiver 606 configured to receive the wireless signals transmitted from the sensor unit 500A, 500B, a user input device, and a network communication device such as a network card (wired, wireless, or equivalent communication protocol, including, Bluetooth, ZigBee, wifi, cellular, LoRa, IR, UART, ASK, FSK and others). The user interface, microcontroller, user input device and other elements of the control unit 602 may form part of a user terminal 604. The user terminal 604 may be a personal computer, a personal electronic device such as a tablet or smartphone, including apps for such, a dedicated hardware interface, or another appropriate user interface mechanism. The user input device may be a physical device or software application, including a keyboard, a touchscreen, voice commands, or wireless connections with a smart device (e.g., smartphone app or similar). As shown in FIG. 1, the sensor unit of the system transmits a radio wave signal and then receives the signal back in step 102 (i.e., radar). The received signals are transmitted to a control unit, where, in step 104, they are analyzed using logic programmed on the microcontroller or other processor. The received signals may also be stored in memory (e.g., flash memory). The microcontroller, in step 106, is configured to identify whether a signal received is static (i.e., non-moving) or dynamic/phase varying signal (e.g., heartbeat, lungs, skin displacement, etc.). This may be accomplished using a human-determining radar application (software that is programmed to extract and compare the dynamic signal to the dynamic signals stored in memory). While the foregoing radar description is not exhaustive, an exemplary radar system is disclosed in U.S. Patent Application US20140316261A1 titled, “Life Detecting Radars” to Lux et al., which is incorporated herein by reference in its entirety. Continuing, if no human signal is present (i.e., all radio wave signals received were static), then the structure is secure (step 108). If a signal is dynamic (i.e., consistent with that of an occupant (e.g., heartbeat and/or breathing detected)), then the signal is compared in step 110 to signals stored in memory. The signals in memory were recorded at installation of the system, according to the user's desires. If in steps 112 and 114, the signal is authorized (i.e., the received signal matches a signal in memory), then the house is secure. In steps 112 and 116, if, based upon the logic, a triggering event has occurred (i.e., the received signal does not match a signal in memory), an alert is activated. Triggering events may vary according to user desire and according to the number of sensor units deployed in the house. Example triggering events are as follows: the number of heartbeats in a home drops below, or exceeds, a predetermined threshold; an unrecognized heartbeat enters the home; a known heartbeat is in the home during unauthorized hours; a known heartbeat becomes irregular; and others. The alert may comprise an alert device that provides an alert to a user of the monitoring system, including: 1) a home alarm such as an audible speaker or visually detectable indicator or light; 2) a notification to an internet connected device (e.g., smartphone, tablet, vehicle, etc.); 3) contacting emergency responders or other third-parties; and others.


A significant improvement over the prior art is the ability to monitor the home constantly, without the need to “arm” or “disarm” the system. For example, the control unit may be programmed to recognize heartbeats of specific people. This may be accomplished during an initial configuration of the system. For example, each occupant's unique heartbeat and/or breathing pattern may be read and stored in memory of the system. For example, a particular sensor may be used for a calibration mode, wherein when a heartbeat is received by the control unit from the sensor in calibration mode, an option is made available to name the received signal and set a trust level. Various trust levels may be assigned by a user, allowing the user to distinguish between occupants who live there and visitors. For example, a user may not want an alert if a known neighbor enters the home during the day (neighbor child), but would wish to be alerted if the neighbor is entering at night. As such, when the control unit analyzes the received signal and compares it with signals stored in memory, it “recognizes” each individual.


In another embodiment, rather than pre-programming neighbors, friends, and others, a control unit may be programmed to recognize familiar heartbeats based upon the number of visits to the house, and, if the user desires, the alert may be deactivated. For example, if a neighbor frequently visits the home, the homeowner, rather than formally entering the neighbor into the system, may simply set the system to not activate an alert after the fourth separate entry of the occupant (or whatever number the homeowner desires). Also, it will be appreciated that the homeowner/user can select the type of alerting means to be activated. For example, a user may select a mobile alert (e.g., text message) vs. house alarm (e.g., audible alarm using speakers) vs. contacting emergency responders, etc., depending upon the triggering event. For example, an unknown heartbeat being detected in the middle of the night may warrant more aggressive alerting means (e.g., home loudspeaker) than during the late afternoon when friends are known to visit (e.g., text message). Again, the types of alerts are selectable by a user, along with the triggering events, using programmed computer software.


In one embodiment, a method of detecting occupants in a structure comprises using radar (e.g., radio waves) to detect one or more occupants within a structure and compares the total number of occupants within the structure with the total number of occupants allowed in the structure, as programmed by a user. FIG. 4 illustrates a flowchart of this embodiment. As shown in step 402, radio wave signals are received by a sensor unit and are transmitted to a control unit, where, in step 404, the number of human signals (e.g., received signals that are indicative of human life, such as a heartbeat or breathing patterns, etc.) are compared against the total number of authorized individuals. In step 406, if the number of received signals do not exceed the number of allowed signals, the system loops. However, if the microcontroller concludes that the number of received signals exceeds the number authorized, an alert is initiated in step 408. For example, a user having a house with four occupants may configure the control unit to activate the alerting means if the number of heartbeats exceeds four within the structure. To prevent unwanted alerts, a user may choose a timeframe for notification (e.g., 10 pm to 7 am) or another parameter. Likewise, the system may be programmed to initiate an alert/alarm if the number of human signals received drops below a given number, which may be useful in detecting when, for example, teens are sneaking out, when a handicapped or otherwise impaired individual (e.g., Alzheimer's disease) wanders off, or other uses, as desired by a user. It will likewise be appreciated that the sensor unit may continuously transmit (e.g., continuous radio wave/FMCW) and receive signals, or may do so intermittently.


Further, the sensor unit(s) may be placed in one or more locations, depending upon the structure and the notifications desired by a user. For example, in one embodiment, a single sensor unit may be placed in the apex of an attic, where it may transmit radio wave signals downward throughout an entire house for the purpose of monitoring the entire house with a single sensor unit. However, such a system may have limitations in some configurations, such as health monitoring or undesired wandering off. For example, with a single sensor system, the control unit may not be able to adequately detect when an occupant has left the structure vs. suffered from cardiac arrest. Therefore, in another embodiment, a user may place additional sensors at thresholds so as to accurately identify who and when an occupant exits the home. For example, in a home having an Alzheimer's patient, it may be desirable to only sound an alarm when that patient exits a threshold, rather than sounding when anyone leaves. Further, there may be events when the control unit no longer detects a signal which was previously present, which has not exited through a threshold. In such a circumstance, it would be desirable to initiate an alert/alarm so that others in the house may check on the individual in case of a health problem (e.g., cardiac arrest, suffocation, etc.).



FIG. 2 illustrates a flowchart wherein the system both verifies that the human is authorized to be in the home, and likewise compares the signal against known, previously inputted signals, to verify the health status of the individual. In step 212, signals indicative of health concerns (i.e., an irregular radar signal) may be when the heart rate is increased or decreased beyond a set of preprogrammed parameters (which may be known standards in healthcare or specific to an individual—which may be accomplished during calibration by taking several readings over the course of time and perhaps days, and including pre- and post-workout, etc.), when the respiration rate is outside of programmed parameters, and others.


In another embodiment, a plurality of sensor units (or separate transmitter and receivers) may be used and may be placed in individual rooms for more direct readings and for the purpose of more easily identifying the location of the heartbeat. The sensor units may also be concealed behind walls, ceilings, in fixtures (e.g., appliances, light bulbs) or personal items (e.g., picture frames). For example, each sensor unit may be uniquely identifiable (e.g., MAC address, IP address, etc.) such that the control unit is able to determine which sensor unit sent the signal to the control unit. In other words, a control unit may be programmed at installation/calibration when the sensor units are installed (e.g., sensor unit “Five” is located in the “living room”). In such a scenario, the alerting means may indicate to a user not only that an unknown heartbeat has entered the structure, but may also actively determine which room the stranger is located. Further, if the system is also configured to monitor health (as discussed elsewhere herein), the system may be able to identify the occupant and the location of the occupant having an emergency (e.g., respiratory distress in a child's room). Each sensor unit may be in direct communication with the control unit, or may be configured in a mesh network with signals being relayed to the control unit for analysis. Further, it will be appreciated that the sensor units may be omnidirectional, unidirectional, fixed, pivotable, etc. Further, the antenna of the sensor unit may be pivotable in relation to the sensor unit.


In one embodiment, a method of detecting occupants in a structure comprises using radar to detect one or more occupants within a structure, using programmed logic to compare the received radar signals with one or more stored signals, and identifying the occupants based upon the radar signals.


In one embodiment, as shown in FIG. 3, the system may be used to only identify health concerns. In other words, it is not necessary for the system to be used as both security and health monitoring. A health monitoring system as shown in FIG. 3, may be well suited for care facilities, schools, or other situations where the need to monitor specific/special needs individuals is critical. In such a scenario, radar may be used to generate a signal of each individual that needs monitoring. The returned radar signal (i.e., the received signal) may then be stored in memory of the control unit. As the control unit then continues to receive signals, it compares those received signals with the signals in memory (step 306) to determine if the received signals are irregular radar signals (e.g., increased heart rate, increased respiration, etc.). If an irregular signal is received, an alert/alarm is initiated in step 308. Likewise, the system may be configured to monitor thresholds to help prevent unwanted wandering off of specific/special needs individuals, which may be particularly beneficial in schools and care facilities where it may be difficult for adults to maintain constant care of individuals.


In one embodiment, a method of detecting, identifying, and monitoring users comprises using radar to detect one or more occupants within a structure, using programmed logic to compare the radar signals with one or more stored signals, and identifying the occupants based upon the radar signals, wherein when an irregular radar signal is received from one or more known occupants, alerting one or more occupants to the irregular radar signal received. Again, the alerts may take the form of phone calls, text messages or emails, third-party contact, audible house alarms or verbal information via speakers, or contacting emergency responders.


In addition to the above uses of the technology, received signals (e.g., heartbeat and respiration patterns) may be recorded/stored for additional uses, such as by law enforcement in prosecuting an individual. For example, an invader's heartbeat data would be collected and stored by the control unit. The information may then be used to verify that the correct individual has been apprehended—like fingerprint or DNA evidence is currently used. Convenience stores or other establishments may place a sensor at the threshold for the purpose of cataloging individuals. If an individual were to attempt to rob the store, the data may be used in combination with video cameras and timestamps to identify the signal of the thief. If a repeat offender, the authorities could more quickly locate the individual—no disguise would shield the would-be thief from vital sign detection. Further, if a suspect is apprehended, the radar signals may be compared for confirmation.


In one embodiment, a home occupant detection and monitoring system comprises a radio wave transmitter capable of transmitting Frequency Modulated Continuous Wave (FMCW) signals; one or more radio wave receivers positioned in orthogonal locations (or, in general, non-parallel locations) around an environment to be monitored; a user interface comprising a microcontroller, a wireless transceiver, a means for user input, and a network card; and, a means for alerting occupants and third-parties to a triggering event; wherein the microcontroller, based upon logic, activates the alerting means at a triggering event. The FMCW allows for discrimination of multiple targets at distinct distances. Further, placing the receivers (or receiving antennas) at non-parallel locations, allows for the disambiguation of subjects that may be at the same distance from one of the receivers.


In one embodiment, a home occupant detection and monitoring system comprises a radio wave transmitter capable of transmitting FMCW, wherein the FMCW is configured to map walls of a structure by measuring distance of walls and objects with maximum return. By mapping a home, a user may be presented with the map and location of subjects on the map. For example, the map and subject location may be transmitted to a user's smartphone, allowing the user to identify locations of occupants in any given structure. In one, non-limiting example, a user may transmit a signal from a smartphone to a server or other network-connected device requesting the map. The map may then be transmitted to the user, wherein occupants are displayed on the map. In another example, an alert and the map are transmitted to a user at a triggering event (i.e., home should be vacant when away on vacation, and an occupant is detected). In one embodiment, cameras may coupled to the system such that a user may view the room/occupant in real-time.


In one embodiment, an antenna of the radio wave transmitter, receiver, or transceiver rotates, either electronically or mechanically, to monitor an environment using narrow beam scanning (e.g., +/−45 deg.). In an alternate embodiment, the antenna would use wide (e.g., 90 deg.) beam scanning with a moveable, higher gain antenna to scan the environment for vital signals. In other words, the higher gain antenna would continually sweep the room, detecting vital signs of occupants.


One example radar technology capable of detecting heartbeats is NASA's Finder technology. The Finder technology is a mobile system intended for locating live occupants in disaster scenarios. For example, if a building collapses as the result of an earthquake, the Finder system may be used to scan the rubble and detect any living individuals. The technology is disclosed in U.S. Patent Publication US20140316261A1 and is incorporated herein by reference in its entirety. While this system is very beneficial for that use, it is not capable of detecting occupants in a home and activating alerting means in response to triggering events.


Another technology, known as HERMA and disclosed in U.S. Patent Publication US20160048672A1, discloses the use of radio wave authentication and is also incorporated herein by reference in its entirety. That disclosure is aimed at user authentication, such as biometrics. While the above two references discuss similar technologies, which may be incorporated into the current invention, neither system discloses, or is capable of, detecting, identifying, and monitoring users in a home or other structure. As such, the present disclosure solves those problems.


Therefore, as appreciated from the above disclosure, the home occupant detection and monitoring system solves the problems in the prior art, namely, the ability to detect an occupant without the need of monitoring structural items (e.g., doors and windows), the ability to determine the number of occupants within a structure, their location, and their current health status.


Exemplary embodiments are described above. No element, act, or instruction used in this description should be construed as important, necessary, critical, or essential unless explicitly described as such. Although only a few of the exemplary embodiments have been described in detail herein, those skilled in the art will readily appreciate that many modifications are possible in these exemplary embodiments without materially departing from the novel teachings and advantages herein. Accordingly, all such modifications are intended to be included within the scope of this invention as defined in the appended claims. Additionally, it is not intended that the scope of patent protection afforded the present invention be defined by reading into any claim a limitation found herein that does not explicitly appear in the claim itself.

Claims
  • 1. A method of detecting and monitoring occupants in a building comprising: using radar to detect human signals of multiple occupants within the building, wherein the step of using radar to detect the human signals comprises using a transmitter having an antenna to transmit a narrow beam radio frequency signal and receiving a return of the narrow beam radio frequency signal;rotating the antenna such that the narrow beam of the radio frequency sweeps one or more rooms of the building;comparing a number of occupants whose human signals were detected by the radar within the building to a number of occupants previously allocated by a user; andupon determining that the number of occupants detected is greater than the number of occupants allocated, alerting one or more individuals.
  • 2. The method of claim 1, wherein the antenna is rotated mechanically.
  • 3. The method of claim 1, wherein the antenna is rotated electronically.
  • 4. The method of claim 1, wherein the one or more individuals are alerted via a mobile alert.
  • 5. The method of claim 1, wherein the one or more individuals are alerted via a house alarm.
  • 6. The method of claim 1, wherein the human signal comprises information with regard to a heartbeat of the occupant.
  • 7. The method of claim 1, wherein the human signal comprises information with regard to a breathing pattern of the occupant.
  • 8. A method of detecting and monitoring occupants in a building, comprising: producing a signal and transmitting the signal comprising radio waves from a transmitting antenna to one or more rooms of a building;receiving a returned signal in a receiving antenna, wherein the returned signal comprises information with regard to a returned human signal of an occupant of the one or more rooms;comparing the returned human signal information with information contained in or more stored signals comprising stored human signal information; andidentifying the occupant based upon the comparison of the returned human signal information to the stored human signal information.
  • 9. The method of claim 8, wherein upon determining that the returned human signal information does not correlate to the stored human signal information, activating an alert device.
  • 10. The method of claim 8, further comprising the step of comparing the returned human signal information with the stored human signal information to determine if the returned human signal information comprises an irregular signal; and wherein when an irregular signal is received, alerting one or more occupants to the irregular signal received.
  • 11. The method of claim 8, further comprising initiating an alert or alarm when an occupant leaves the structure.
  • 12. The method of claim 8, wherein the human signal information comprises information regarding an occupant's heartbeat.
  • 13. The method of claim 8, wherein the human signal information comprises information regarding an occupant's breathing pattern.
  • 14. The method of claim 10, wherein the irregular signal comprises information indicating an increase in heart rate.
  • 15. The method of claim 10, wherein the irregular radar signal comprises an information indicating an increase in respiration.
  • 16. The method of claim 8, further comprising a step of storing stored human signal information for an occupant when the occupant visits the one or more rooms of a building a predetermined number of times.
  • 17. The method of claim 12, wherein the stored human signal information comprises information indicative of an occupant's unique heartbeat.
  • 18. The method of claim 13, wherein the stored human signal information comprises information indicative of an occupant's unique breathing pattern.
  • 19. The method of claim 8, wherein the step of transmitting the signal comprises transmitting a Frequency Modulated Continuous Wave signal, and the step of receiving the returned signal comprises receiving a return of the Frequency Modulated Continuous Wave signal.
  • 20. The method of claim 8, wherein the step of transmitting the signal comprises the step of transmitting a narrow beam radio frequency signal, and the step of receiving the returned signal comprises receiving a return of the narrow beam radio frequency signal.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application claims the benefit of U.S. Provisional Application Ser. No. 62/468,805 filed on Mar. 8, 2017, and U.S. Provisional Application Ser. No. 62/520,258 filed on Jun. 15, 2017, both of which are incorporated herein by reference.

US Referenced Citations (120)
Number Name Date Kind
3524058 Robertson et al. Aug 1970 A
3796208 Bloice Mar 1974 A
3875929 Grant Apr 1975 A
3993995 Kaplan et al. Nov 1976 A
4085740 Allen, Jr. Apr 1978 A
4197856 Northrop Apr 1980 A
4289142 Kearns Sep 1981 A
4958638 Sharpe et al. Sep 1990 A
5107845 Guern et al. Apr 1992 A
6062216 Corn May 2000 A
6150941 Geiger et al. Nov 2000 A
6359597 Haj-Yousef Mar 2002 B2
6483929 Murakami et al. Nov 2002 B1
6583730 Lang et al. Jun 2003 B2
6693535 Van Bosch et al. Feb 2004 B2
6753780 Li Jun 2004 B2
6922147 Viksnins et al. Jul 2005 B1
6922622 Dulin et al. Jul 2005 B2
7036390 Tsuchihashi et al. May 2006 B2
7348880 Hules et al. Mar 2008 B2
7536557 Murakami et al. May 2009 B2
7903020 Lin et al. Mar 2011 B2
7948361 Bennett et al. May 2011 B2
8031912 Dennis et al. Oct 2011 B2
8044782 Saban Oct 2011 B2
8232874 Aneiros et al. Jul 2012 B1
8428696 Foo Apr 2013 B2
8494615 Melamed et al. Jul 2013 B2
8562526 Heneghan et al. Oct 2013 B2
8611954 Gross Dec 2013 B2
8740793 Cuddihy et al. Jun 2014 B2
8922342 Ashenfelter et al. Dec 2014 B1
8932217 Gibson et al. Jan 2015 B2
9000907 Rembach et al. Apr 2015 B1
9184773 Nadiri et al. Nov 2015 B2
9195799 Sze et al. Nov 2015 B2
9227484 Justice et al. Jan 2016 B1
9244021 Melamed Jan 2016 B2
9530080 Glazer Dec 2016 B2
9547070 Corcos et al. Jan 2017 B2
9552469 Jin et al. Jan 2017 B2
9553621 Nadiri et al. Jan 2017 B2
9577992 Zizi et al. Feb 2017 B2
9589106 Bangera et al. Mar 2017 B2
9590986 Zizi et al. Mar 2017 B2
9595143 Ashenfelter et al. Mar 2017 B1
9615765 Chayat Apr 2017 B2
9625508 Chayat Apr 2017 B2
9735899 Moshe Aug 2017 B2
9813281 Nadiri et al. Nov 2017 B2
9853976 Zizi et al. Dec 2017 B2
9869707 Cohen Jan 2018 B2
9876590 Lomnitz Jan 2018 B2
9964505 Melamed May 2018 B2
10020836 Chayat et al. Jul 2018 B2
10041986 Nadiri et al. Aug 2018 B2
10054096 Berkson Aug 2018 B2
10056186 Rosenfeld Aug 2018 B2
10061911 Zizi et al. Aug 2018 B2
10153531 Chayat Dec 2018 B2
10154422 Chayat Dec 2018 B2
10182738 Melamed Jan 2019 B2
10401490 Gillian Sep 2019 B2
10813809 Sauser et al. Oct 2020 B2
10912693 Baker et al. Feb 2021 B2
20020057202 Luzon May 2002 A1
20030098784 Bosch et al. May 2003 A1
20030201894 Li Oct 2003 A1
20040020314 Tsuchihashi et al. Feb 2004 A1
20040056954 Crandall et al. Mar 2004 A1
20050024188 Sider Feb 2005 A1
20060025897 Shostak Feb 2006 A1
20070013531 Hules et al. Jan 2007 A1
20090203972 Heneghan et al. Aug 2009 A1
20090227882 Foo Sep 2009 A1
20100241018 Vogel Sep 2010 A1
20120059268 Tupin, Jr. Mar 2012 A1
20120203078 Sze et al. Aug 2012 A1
20130001422 Lavon et al. Jan 2013 A1
20130065641 Gross Mar 2013 A1
20130173926 Morese et al. Jul 2013 A1
20130201013 Schoenberg Aug 2013 A1
20140089007 Sim Mar 2014 A1
20140159912 Fraden Jun 2014 A1
20140207282 Angle Jul 2014 A1
20140266704 Dalley, Jr. Sep 2014 A1
20140276031 Lomnitz et al. Sep 2014 A1
20150170503 Wedig Jun 2015 A1
20150185314 Corcos et al. Jul 2015 A1
20150266395 Bradley et al. Sep 2015 A1
20150274036 Arad et al. Oct 2015 A1
20150287296 Hall Oct 2015 A1
20150288877 Glazer Oct 2015 A1
20150311591 Golombek Oct 2015 A1
20160090958 Berkson Mar 2016 A1
20160167479 Morin Jun 2016 A1
20160232778 Honjo Aug 2016 A1
20160313259 Shayovitz Oct 2016 A1
20160356877 Melamed et al. Dec 2016 A1
20170013069 Grohman Jan 2017 A1
20170033469 Hoffman et al. Feb 2017 A1
20170033808 Lomnitz et al. Feb 2017 A1
20170068863 Rattner Mar 2017 A1
20170153324 Lomnitz Jun 2017 A1
20170184647 Chayat Jun 2017 A1
20170238835 Melamed Aug 2017 A1
20180000408 Heinrich et al. Jan 2018 A1
20180029591 Lavoie Feb 2018 A1
20180050575 Campbell Feb 2018 A1
20180053392 White et al. Feb 2018 A1
20180053393 White et al. Feb 2018 A1
20180089975 Amir et al. Mar 2018 A1
20180225956 Chen Aug 2018 A1
20180235542 Yun Aug 2018 A1
20190024350 Silverstein Jan 2019 A1
20190049570 Xiong Feb 2019 A1
20190066464 Wedig Feb 2019 A1
20190254544 Chayat Aug 2019 A1
20200233079 Silverstein Jul 2020 A1
20210007921 Sauser et al. Jan 2021 A1
Foreign Referenced Citations (6)
Number Date Country
103021118 Apr 2013 CN
205068696 Mar 2016 CN
2013108639 Jun 2013 JP
2009083017 Jul 2009 WO
2013155661 Oct 2013 WO
2018035540 Feb 2018 WO
Non-Patent Literature Citations (3)
Entry
International Search Report and Written Opinion of the International Searching Authority for PCT Application No. PCT/US2017/47870 (dated Dec. 26, 2017).
International Search Report and Written Opinion of the International Searching Authority for PCT Application No. PCT/US2018/021629 (dated Jun. 27, 2018).
International Search Report and Written Opinion of the International Searching Authority for PCT Application No. PCT/US2018/064273 (dated Feb. 14, 2019).
Related Publications (1)
Number Date Country
20180259638 A1 Sep 2018 US
Provisional Applications (2)
Number Date Country
62468805 Mar 2017 US
62520258 Jun 2017 US