MULTICAMERA VIDEO ALARM SYSTEM FOR REMOTE MONITORING AND METHOD
20170323544 ยท 2017-11-09
Inventors
Cpc classification
G08B13/19643
PHYSICS
G08B13/1966
PHYSICS
G08B13/19634
PHYSICS
G08B13/19645
PHYSICS
G08B13/19697
PHYSICS
International classification
Abstract
A television based alarm system provides video streams from multiple cameras produced at a first location that is transmitted via a radio transmitter to a secondary location. Motion detector signals from a plurality of motion detectors at the first location are utilized to indicate when and which cameras are likely to see an intruder based on when and which motion detectors are tripped. In a first type of encoder/decoder, motion detectors are connected to LEDS for encoding and then decoded utilizing photo electric cells. In another encoder/decoder, motion detector signals are used to produce a digital word that is added to the video signal and then decoded as a digital word. An output device such as a printer can be used to print the motion detector number, date, and time print out and sound an alarm.
Claims
1. A surveillance system for radio transmission of surveillance information from a first location to a second location, comprising: a plurality of cameras mountable at said first location in a plurality of different positions, said plurality of cameras being operable to produce video information; a plurality of motion detectors, respective of said plurality of motion detectors being positioned in a known relationship for association with respective of said plurality of cameras whereby when a respective motion detector is tripped then a respective camera is indicated, said plurality of motion detectors producing a plurality of motion detector outputs; an encoder that receives said video information and combines said video information with said plurality of motion detector outputs to produce said surveillance information; a radio transmitter to transmit said surveillance information from said first location; a radio receiver to receive said surveillance information at said second location; a decoder at said second location that decodes said surveillance information to produce an alert signal indicative of when and which motion detector is tripped from said plurality of motion detectors; and a monitor at said second location connected to said radio receiver, said monitor being operable to display a portion of said video information based on said alert signal indicative of when and which motion detector is tripped from said plurality of motion detectors.
2. The surveillance system of claim 1, further comprising a DVR operable to store said video information at said first location, and an additional monitor at said first location operable to display said video information.
3. The surveillance system of claim 1, wherein said radio transmitter is a spread spectrum transmitter.
4. The surveillance system of claim 1, wherein said encoder comprises a plurality of inputs, each of said plurality of inputs being operatively connected to respective ones of said plurality of motion detectors, said encoder comprises a plurality of LEDs mounted in an enclosure, said LEDs being responsive to said plurality of motion detectors to indicate which of said plurality of motion detectors have been tripped and which of have not been tripped, an encoder camera mounted to said enclosure and being positioned to produce an encoder video showing which LEDs are activated, said encoder camera being interconnected with said plurality of cameras to produce said surveillance information.
5. The surveillance system of claim 4, wherein said decoder comprises a plurality of photo cells mounted to a display screen, said display screen receiving said encoder video of said plurality of LEDs, said plurality of photo cells producing a plurality of photo cell outputs that indicate which of said plurality of motion detectors have been tripped and which of have not been tripped.
6. The surveillance system of claim 1, wherein said encoder comprises a plurality of inputs, each of said plurality of inputs being operatively connected to respective ones of said plurality of motion detectors, said encoder comprising an integrated circuit register operable to produce a digital word, said digital word being representative of which said plurality of motion detectors have been tripped and which of have not been tripped, said encoder being configured to add said digital word to said video information prior to said video information being broadcast by said radio transmitter.
7. The surveillance system of claim 6, further comprising a spread spectrum receiver, said decoder retrieving said digital word for connection to an output device.
8. The surveillance system of claim 7, further comprising a printer connected to print out when and which motion detector is tripped from said plurality of motion detectors.
9. A method for providing a surveillance system for radio transmission of surveillance information from a first location to a second location, comprising: providing a plurality of cameras mountable at said first location in a plurality of different positions, said plurality of cameras being operable to produce video information; providing a plurality of motion detectors to be positioned in a known relationship for association with respective of said plurality of cameras whereby when a respective motion detector is tripped then a respective camera is indicated, said plurality of motion detectors producing a plurality of motion detector outputs; providing an encoder that receives said video information and combines said video information with said plurality of motion detector outputs to produce said surveillance information; providing a radio transmitter to transmit said surveillance information from said first location; providing a radio receiver to receive said surveillance information at said second location; providing a decoder at said second location that decodes said surveillance information to produce an alert signal indicative of when and which motion detector is tripped from said plurality of motion detectors; and connecting a monitor at said second location to said radio receiver, said monitor being operable to display a portion of said video information based on said alert signal indicative of when and which motion detector is tripped from said plurality of motion detectors.
10. The method of claim 9, further comprising providing a DVR operable to store said video information at said first location, and providing an additional monitor at said first location operable to display said video information.
11. The method of claim 9, further providing said radio transmitter is a spread spectrum transmitter.
12. The method of claim 9, further comprising operatively connecting a plurality of inputs, to respective ones of said plurality of motion detectors, said encoder comprises a plurality of LEDs mounted in an enclosure, said LEDs being responsive to said plurality of motion detectors to indicate which of said plurality of motion detectors have been tripped and which of have not been tripped, mounting an encoder camera to said enclosure and positioning said encoder camera to produce an encoder video showing which LEDs are activated, said encoder camera being interconnected with said plurality of cameras to produce said surveillance information.
13. The method of claim 12, further comprising providing said decoder comprises a plurality of photo cells mounted to a display screen, said display screen receiving said encoder video of said plurality of LEDs, said plurality of photo cells producing a plurality of photo cell outputs that indicate which of said plurality of motion detectors have been tripped and which of have not been tripped.
14. The method of claim 9, further comprising providing said encoder comprises a plurality of inputs, each of said plurality of inputs being operatively connected to respective ones of said plurality of motion detectors, said encoder comprising an integrated circuit register operable to produce a digital word, said digital word being representative of which said plurality of motion detectors have been tripped and which of have not been tripped, said encoder being configured to add said digital word to said video information prior to said video information being broadcast by said radio transmitter.
15. The method of claim 14, further comprising providing a spread spectrum receiver, said decoder retrieving said digital word for connection to an output device.
16. The method of claim 15, further comprising operatively connecting a printer to print out when and which motion detector is tripped from said plurality of motion detectors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The above general description and the following detailed description are merely illustrative of the generic invention, and additional modes, advantages, and particulars of this invention will be readily suggested to those skilled in the art without departing from the spirit and scope of the invention. A more complete understanding of the invention and many of the attendant advantages thereto will be readily appreciated by reference to the following detailed description when considered in conjunction with the accompanying drawings, wherein like reference numerals refer to like parts and wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0040] Detailed descriptions of the preferred embodiment are provided herein. It is to be understood, however, that the present invention may be embodied in various forms. Therefore, specific details disclosed herein are not to be interpreted as limiting, but rather as a basis for the claims and as a representative basis for teaching one skilled in the art to employ the present invention in virtually any appropriately detailed system, structure or manner.
[0041] Referring now to the drawings and more specifically to
[0042] As indicated in
[0043] Multiple detectors 22 are positioned in a known physical relationship with respect to plurality of cameras 12 as indicated in
[0044] Generally it will be understood that there will be more than two cameras and perhaps typically six or more cameras. If an alarm is tripped by one of the motion detectors to produce an alert signal at second location 20, then due to the known physical association between cameras and detectors, a user will know which camera feed to review if the user knows which detector was tripped.
[0045] While the term motion detector is used in the claims, it will be understood that other types of sensors or detectors could also be used such as smoke, fire, CO2 detectors, temperature, wind speed, rain, gas, pollution, radiation, and the like so that motion detectors refers to other types of detectors which could produce information viewed by a particular camera. As well, many types of motion sensor detectors could be used such as radar, thermal, magnetic, ultrasonic or the like. Detectors may or may not be automatically reset after time or may require manual resetting.
[0046] Referring again to
[0047] In more detail, the anode of each LED in array 40 in one embodiment is connected to a one megaohm resistor or other suitable resistor and then connected to +12 vdc. The cathode of each LED is connected to ground so that the LED would turn on if not for the normally closed switches of the detectors 22 that connect to ground. A switch of a respective detector is also connected to the anode to normally prevent power to each LED, thereby resulting in the LED being off. When the respective detector is tripped, the connection to ground is opened and the respective LED lights up. In one embodiment, LED 45 may or another LED may not be connected to a switch but instead may be permanently connected on to indicate that the circuit is operational even when all LEDs are off. In this way, LED 45 or another LED indicates either an active link or off to indicate the link is not active. In another embodiment, all LEDs in the array could be on unless their respective detector is tripped, whereupon when tripped the LED would turn off. The LEDs may be mounted on a flat black PC board within enclosure 42 to provide contrast for encoder camera 44.
[0048] The video output 48 of encoder camera 44 is connected to DVR 50 in the same manner as video streams 15 from multiple surveillance cameras 12. The output of DVR 50 connects to radio transmitter 52. Although not shown in
[0049] In one possible embodiment, radio transmitter 52 comprises a spread spectrum transmitter for audio and video. A representative model TRD02124RS may be paired with radio receiver 54. The use of spread spectrum transmitter greatly reduces interference especially in crowded regions. The audio channel could be used for encoding and decoding the data in this embodiment or as described in the embodiment of system 100.
[0050] The video streams, which may include both video and audio, are combined with the information from the motion detectors to produce what may be referred to herein as surveillance information that is then transmitted from location 14 to location 20.
[0051] The transmitter antenna 16 at location 14 and receiver antenna 18 at location 20 are chosen based on the desired range. This could be from 400 ft. to 3 miles or any desired range within that of the transmitter/receiver capability. The transmitted power is regulated/limited by the FCC so that transmitting very long distances may require an FCC license. Radio receiver 54 receives the surveillance information, which is despread to produce audio and video from each of the cameras.
[0052] Receiver 54 at location 20 is connected to one or more video monitors, TV set, or the like including decoder monitor 56 and view monitor 58. View monitor 58 may be utilized to view any of the streams of video which may also include audio. If desired and depending on the cost of data, video of the system could also be transmitted over the Internet and viewed on a computer screen instead of and/or in conjunction with or to replace monitor 56 given that information is known as to which camera to view.
[0053] Decoder monitor 56 and photo cell decoder 60 are utilized together to obtain the detector information at location 20 that includes which detectors are tripped and when they are tripped. When a detector is tripped at location 14, then an alert signal may be provided at location 20 indicative of when and which motion detector is tripped from the plurality of motion detectors 22. For this purpose, decoder monitor 56 is connected to or used as part of photo cell decoder 60.
[0054] Output from photo cell decoder 60 may sound alarm 70 and be sent to printer 68 to print out the time and date of detectors that are tripped or active. The status of all detectors may be printed each time an alert occurs. As well, a user may utilize monitor 58 to view a particular camera video feed from location 14 that is associated with a particular detector.
[0055] An example of wiring is shown with photo cell (1, N) although all photo cells may be wired in a similar manner. The resistance of the photo cells varies from around 100 k ohms when the corresponding LED is dark to 1 k ohms when the LED is turned on. The (1, N) photo cell can be operatively connected to printer 68 to print the time date and sound an alarm 70. The printer may be an ADRINO or CANNON P23DHV. Also the video output from radio receiver 54 could be used to print a surveillance picture with time date on the video when actuated, which could make the printing of detector status unnecessary. System 10 provides a reliable means to remotely monitor a multiple camera/multiple detector system and is low in cost to implement. For fire and police, any problem at location 14 can be identified and a solution can be planned before taking action.
[0056] In another embodiment shown in
[0057] Surveillance system 10 and system 100 described herein could operate with any standard NTSC TV system and operates with many of the visual security TV multi camera systems currently available in the market place. However, the present invention could utilize other TV standards such as but not limited to PAL & SECAM. NTSC is the standard used in the USA while other standards are used in different countries. The primary difference between standards is line numbers and timing. Accordingly, the timing of the NTSC video can be changed to operate with other non-NTSC standards.
[0058] Referring now to
[0059] Multiple video cameras 112 and detectors 122 are the same as those described hereinbefore. The streams of video feeds produce video information (which may also include audio) that may be applied to DVR 150 or watched from monitor 151. In this embodiment, the video information is connected to an encoder 138 that interleaves the output (normally closed relay contacts) of up to seven motion type detectors 122. Utilizing the same equipment, an array of up to 2.sup.7 detectors could be utilized instead of simply providing a one to one relationship between seven bits and seven detectors. It will be appreciated that any number of detectors and/or video cameras may be utilized and the use of seven detectors is given as an example. The seven bits make up what is referred to herein as a digital word representative of which motion detectors have been tripped and which have not been tripped. The encoder and decoder described herein each comprise an integrated circuit with a register to store and transmit the digital word.
[0060] The status of the seven motion detectors 122 is added to video line #14 as indicated in
[0061] At the remote monitoring site location 120, the composite video or surveillance information is routed through decoder 160 before being displayed by monitor 158, printed on printer 168 or recorded on a viewing or recording device. Decoder 160 decodes the status of the seven motion detector signals from detectors 122 that were previously encoded. Decoder 160 provides seven discrete outputs, one for each of the seven motion detectors. It also provides an OR function output of the seven signals that can be used to activate an audio alarm as indicated at 172 and generally produce an alert signal indicative that includes the seven outputs for when and which motion detector is tripped from the plurality of motion detectors 122.
[0062] The system response time is one TV field time, 16.6 ms.
[0063] Another part of the system is printer 168, which in one embodiment may directly interface with the decoder 160 output. The printer employs thermal type roll paper. The software in the printer controller is presently configured to print the status of the seven motion detectors anytime the status of anyone of the seven changes along with the date and time of day. Printer 168 also employs a uSD memory card that records every print of the printer. The uSD memory card can be removed to transfer data for further data processing and/or storage.
[0064] Encoder 138 provides a parallel input as indicated by the parallel inputs of detectors 122. Encoder 138 puts the information into a serial register with outputs that are added to the video signal blanking signal. Decoder 160 does the reverse, provides a serial to parallel register whereby the parallel outputs are provided to printer 168.
[0065] In more detail,
[0066] The gate (count 7) opened by the CD4022, circuit 602, and is used to generate eight clock pulses. These eight clock pulses are used to clock out the status of the seven motion detectors that are presented to the inputs of circuit 604, a parallel to serial shift register. The circuit requires the last bit OUT of the register to be a zero; hence only seven status lines can be accommodated. The output of the register is then summed into the video signal via an adder component 606 and video amplifier 608.
[0067] Encoder inputs 610 are optically coupled for protection and the unit provides seven alarm status lights 612 and a test switch 614 that forces an alarm on anyone of the lines. Encoder 138 is powered by any 9V to 12 VDC wall type power supply.
[0068] In more detail,
[0069] Decoder 160 employs video sync tip clamping via driver 702 and an analog comparator 704 that slices at the center of the inserted data and feeds the serial input to circuit 700. The status of the motion detectors is provided at the outputs of circuit 700 which is used to illuminate status LED's 706 and turn ON a MOSFET driver for each output to provide parallel outputs 708 that correspond to the parallel inputs 610. Circuit 710 provides the OR function, providing a low output when any alert condition is detected. The Decoder is also powered by any 9V to 12 VDC wall power supply.
[0070] In summary, surveillance systems 10, 100 provide video streams from multiple cameras at a first location that is transmitted via a radio transmitter. Motion detector signals from a plurality of motion detectors are utilized to indicate when and which cameras are likely to see an intruder based on when and which motion detectors are tripped. In a first type of encoder, motion detectors are connected to LEDS in one camera that when a detector is activated that LED is turned on. The light is picked up by that camera and the video is sent to the TV monitor. A photo electric cell resistance drops due to the TV monitor light which causes the printer to print the detector number, date, and time and emit a sound alarm. Another method described is the video signal is passed thru at the transmitter, but the detector signal is added to the audio band width, 4.5 MHz, by the encoder. The detector signal is decoded at the receiver then connected to the printer for the detector number, date, and time print out with sound alarm.
[0071] The foregoing description of the preferred embodiments of the invention has been presented for purposes of illustration and description only. It is not intended to be exhaustive nor to limit the invention to the precise form disclosed; and obviously many modifications and variations are possible in light of the above teaching. While redundant, different methods discussed above could be utilized together if desired. Such modifications and variations that may be apparent to a person skilled in the art are intended to be included within the scope of this invention as defined by the accompanying claims.