Video monitoring and conferencing system
Abstract
A PC-based system (220) for monitoring and storingrepresentative images from video cameras (252, 254) maybe utilized for security and other monitoring applications. Camera inputs from digital or analog sources are individu-ally and independently digitized and displayed at a first setof image sizes, sampling rates, and frame rates, and may bestored in digital form on various recording media at a sec-ond set of image sizes, sampling rates and frame rates, andthese two sets of sizes and rates may or may not be identi-cal. Provisions are included for adding detection or alarmsystems which will automatically alter image size, sam-pling rate and/or frame rate of an individual input source,or activate other physical responses. In addition to securitysystem monitoring, further applications of the invention aredisclosed for process monitoring in manufacturing environ-ments and also for applications in videoconferencing.

Term
Term ended
Expired 4 April 2016, 10.5 years ago.
- Priority
- Filed
- Granted
- Expired
- Today
16 claims: 3 independent, 13 dependent
- 1CA 02215741 2004-07-22 - 23 CLAIMS :1. A video storage and display system, comprising: a plurality of video cameras, each outputting a signal representative of a video image;means to receive the signal from each camera and digitally compress the image of which the signal is representative;a computer interfaced to the following devices: a display screen, means to receive an operator input, and a high-capacity storage medium, the computer being programmed to perform the following functions : display the digitally compressed images from the cameras in different windows on the display screen, each window having a dimension in pixels, CA 02215741 2004-07-22 - 24 vary the dimensions and the rate at which a particular image is updated in its window in accordance with an externally derived command input, store the digitally compressed images in the highcapacity storage medium, and vary the dimensions and the rate at which a particular image is stored in accordance with an externally command derived input.
- 10A method of simultaneously displaying and storing multiple video images, comprising the steps of:receiving video images from a plurality of sources;digitizing one or more of the images if not already in digital form;displaying at least some of the digitized images in separate windows on a display device, using a first, predetermined frame rate and resolution associated with each window;simultaneously storing the displayed images using a second, predetermined frame rate and resolution associated with each image.
- 14The method of simultaneously displaying and storing multiple video images, comprising the steps of:receiving video images from a plurality of sources;digitizing one or more of the images if not already in digital form;displaying at least some of the digitized images in separate windows on a display device, using a first set of temporal and spatial parameters associated with each image in each window;simultaneously storing the displayed images using a second set of temporal and spatial parameters associated with each image.
Independent claims3
134 paragraphs in 51 sections, as filed
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- 1 VIDEO MONITORING AND CONFERENCING SYSTEM
Field of the Invention
This invention relates generally to video monitoring, and, more particularly, to such systems employing means for digitizing camera images for display at a first image size, sampling rate, and frame rate, and for digital storage at a second image size, sampling rate, and frame rate.
Background of the Invention
Existing systems for monitoring video signals from multiple sources either have relied upon switching means to sequence through each of the sources in a predetermined pattern, or else implement some form of split screen display, in which a conventional video monitor displays, for example, the output of four cameras, each occupying a portion of the display screen. Often, the video output is also supplied to signal storage means such as a VCR which is operated in a single-frame recording mode, providing a time-lapse record of the camera outputs. These types of systems are in common usage, and are well known in the art.
More recently, the availability of digital techniques for video signal processing and data compression has opened new video monitoring alternatives. Mathisen, for example, U.S. Pat. No. 4,198,655, describes a system employing a signal selector which is controlled by signal storage means, including a VCR functioning as a time-lapse frame recorder, and disc storage means functioning as a frame-store type device which provides continuity in the display while the selector is advancing through its
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- 2 sequence to the next signal source, or to the next recorded signal from one particular source. Each image is further provided with a digital code, which enables the image source to be identified upon playback.
Katz (U.S. Pat. No. 5,216,502) discloses a system for monitoring and recording transactions at multiple cashier lanes. According to the preferred embodiment, output signals from four cameras are fed to a four-quadrant multiplexer, which contains a frame store having provisions for reducing each camera image to one-quarter size and then displaying it in one of the four quadrants of the video monitor. The combined output signal is then recorded on a Video Cassette Recorder (VCR) to provide a more permanent record of the transaction. No description is given of the size-reduction method, but this kind of display may be implemented by employing a time-compression scheme for the horizontal lines, and eliminating alternate scan lines from the vertical dimension of the video frame. Data from the individual cash registers is encoded digitally, and then either recorded on lines of video in the vertical-interval or else recorded on the audio tracks of the VCR. The monitoring provisions include a video overlay generator, so that transaction information may be displayed concurrently with images of the event. Provisions are also included for selective recording of representative frames of video, as triggered by transaction events at individual cashier lanes. This further reduces the number of frames recorded, and extends the recording duration of the video cassette.
Neither of these two inventions disclose the use of image data compression schemes, nor of image resizing by digital means. Katz does disclose selective recording of
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PCT/ÜS96/04652 frames of video, but only in analog form, and using conventional video recording means, such as a VCR.
Blum et al. (U.S. Pat. No. 5,237,408) disclose a system employing multiple interface circuit boards containing provisions for capturing and digitizing images from a plurality of cameras, further storing a slow-scan sequence of images for each camera in active buffer memory means as RAM on each of the interface boards. The display of these image sequences is preferably controlled by a PC 10 with disk storage capabilities, and individual images selectively may be recorded on the hard disk, under operator control. Storage capacity is limited, however, because no image data compression is provided, and it is not practical to store large quantities or sequences of 15 images. There are no provisions for automatic recording of images, nor any provision for storing these images in a data form differing from the display format image size.
Gormley (U.S. Pat. No. 5,258,837) discloses video compression means as a method for fitting multiple camera 20 images within a single video display screen. However,
Gormley clearly indicates that the system relies on fixed image-size compression of the digitized incoming video signal, and does not perform any kind of bandwidth compression. Provisions are included for storing images on 25 a video recorder, but, as in other systems, these images are stored by taking the screen display as a whole, rather than storing independently constituted representations of the individual camera outputs.
In general, these conventional systems, regardless of the subsequent signal processing employed, accept analog video signals from the camera sources for
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PCT/US96/04652 input to the monitoring system. As such, these signals are susceptible to disturbances such as RF interference, ground-loop noise, and high-frequency signal loss due to long runs of coaxial cables. Automatic video switcher 5 units sequence the source signals at a relatively slow rate, requiring as much as 16 seconds delay between successive viewings of a particular source when using a one source-per-second rate to sequence through 16 sources. When such a system is equipped with a time-lapse video 10 recorder, the recording medium is expensive, has low resolution, and is limited in recording capacity.
Other systems, such as video conferencing arrangements, use multiple camera images and audio sources which are coordinated through electronic switching means 15 and image display means, with interconnections between conferencing rooms locally or at remote sites via telephone lines or other communications links. Fabris et al. (U.S.
Pat. No. 4,516,156) discloses a sophisticated implementation of such a system, employing satellite links 20 for long-distance communications, a full range of camera remote controls (including lens controls and pan-tilt-head controls), and touch-screen monitor facilities for system controls of cameras and signal switching. This system, however, has no provisions for image storage, or any 25 application of image data compression means coupled with display means or image storage means.
Summary of the Invention
The present invention implements an automated video monitoring system by way of a PC-based platform 30 employing display windowing software, with camera sources
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PCI7US96/04652 being interfaced to an input circuit board which includes provisions for image data compression. Using a basic image size in pixels of 320 x 240, and optionally including color processing employing a Y-U-V 4:1:1 or 4:2:2 sampling technique, a range of performance standards are established. An economical simultaneous display of 4 sources in a 2 x 2 configuration on a conventional 10 VGA-format (640 x 480 pixels) monitor may be upgraded to a more elaborate 24-source (plus one utility window, which 10 also may be used as a graphical-based input source device for transmitting control commands to the individual cameras) display in a 5 x 5 configuration on a high-resolution 20 (1600 x 1200 pixels) monitor. Other combinations are possible, including arrays of images of 15 size 640 x 480 pixels or even 800 x 600 pixels, depending on the screen size of the display monitor and the capabilities of the video display adapter circuit card. In addition, not all image windows need to be of the same size, nor updated at the same rate, but rather they may be mixed and combined based on particular applications.
Remote controls for implemented by way of touch-screen devices.
the individual cameras may be windowing software and/or monitor
Automatic sensing of particular events (representing security alarms, equipment or process disturbances, or a change in the person speaking in a videoconferencing environment) may be employed to cause reconfiguration by way of resizing the image or modifying the update rate of individual windows on the display screen, or by modifying the data format of recording images on a storage device.
Storage of images may be implemented by way of a
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PCT/US96/04652 monitoring preferably tape backwhich are
<td colspan="8"> up device, such as a DAT or 8-mm tape recorder,</td>
<td> capable</td><td> of</td><td> storing</td><td> as</td><td> much</td><td> as 960</td><td> hours</td><td> of</td>
<td> r images,</td><td> or</td><td> by way</td><td> of</td><td> , disk</td><td> storage</td><td colspan="2"> devices,</td>
<td colspan="2"> including</td><td colspan="2"> removable</td><td> disk</td><td> drives</td><td> such</td><td> as</td>
or PCMCIA-compatible disk-drive magneto-optical disks modules. Images are preferably stored as a succession of data-compressed representations, corresponding to various window sizes sampled at diverse update rates; however, though the image representations need not be identical to the sizes and rates used for video monitors displaying the various images. In an alternative embodiment, cameras are provided with data compression means at the camera location, with a bi-directional data link providing control signals from the PC, and accepting data-compressed images from the cameras. Depending on the data rates selected, the transmission of these signals may be by means of coaxial cables, twisted-pair lines, or fiber-optic cables. These signals may alternatively be transmitted over internal PBX telephone lines, or over greater distances, including satellite links, as would be the case for remote monitoring of facilities or videoconferencing. The use of digital images allows the application of various useful techniques, such as digital noise reduction and motion-sensing, to trigger security alarms, for example.
It is an object of the invention to provide a more efficient method for monitoring camera outputs by means of a multiple-window display system implemented on a computer platform.
It is another object of the invention to provide an improved recording system for event-logging or security applications, by means of storing data-compressed digital
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PCT/US96/04652 images, including identifying information, which are more representative of events than typical analog time-lapse recordings, and further to implement this system on a computer platform.
It is a further object of the invention to provide extended recording time for event-logging or security applications by means of either tape-based, or disk-based, or both tape-based and. disk-based data recording means .
It is yet another object of the invention to provide a system for remote monitoring of cameras by means of transmission of data-compressed digital images over communication links .
It is yet a further object of the invention to provide a convenient method of implementing videoconferencing facilities by means of a PC-based platform.
Brief Description of the Drawings
FIGURES 1-6 show various possible screen display configurations according to the invention;
FIGURE 7 is a functional diagram of a PC-based system wherein plug-in printed-circuit boards implement digital processing for analog input signals;
FIGURE 8 is a functional diagram of a plug-in printed-circuit board introduced with reference to Figure 7;
FIGURE 9 is a functional diagram of a universal camera adapter having digital output signals;
FIGURE 10 is a diagram of an integrated camera system;
FIGURE 11 is a functional diagram of a PC-based
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- 8 monitoring system adapted, for videoconferencing at multiple remote locations ;
FIGURE 12 is an overhead view of a physical layout of the system of Figure 11;
FIGURES 13A and 13B are drawings of a multiplecamera monitoring unit for table-top use in videoconferencing;
FIGURE 14 is a side-view of an expanded multiplecamera monitoring unit implemented for videoconferencing;
FIGURE 15 is a table listing a variety of possible operating modes, depending on computer monitor display facilities, in either a monitoring or a videoconferencing version of the invention.
Detailed Description of the Preferred Embodiment
The present invention implements an automated video monitoring system by way of a PC-based platform employing display windowing software, with camera sources being interfaced to an input circuit board which includes provisions for image data compression. The basic video window size of 320 x 240 pixels from each camera source can be displayed on a variety of video monitors, in a number of formats, depending on system complexity. The preferred recording medium is a 4-mm helical-scan data cartridge, commonly referred to as a digital audio tape (DAT). Each tape cartridge is capable of storing 10 GB (gigabytes) of data. All recording times in the explanation below are based a data-compression ratio of 100:1, utilizing a 4:2:2 Y/U/V sampling method for color images. Other higher capacity media, such as 8-mm tapes capable of 2 0 GB of data storage, may be employed when longer times are desired.
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- 9 Figure 15 shows a variety of possible operating modes, depending on the particular implementation of the PC-based monitoring system. These six representative modes will be explained in detail with the understanding that the 5 invention is by no means limited to the specific examples shown, and that many different alternatives are possible. It should be noted also that in certain of the implementations shown, the entire screen may not be occupied by the various windows, and any unused areas at 10 the top, bottom, or sides may be utilized to display warning messages, control buttons, or other such facilities .
Figure 1 shows a computer monitor display for a system configured in accordance with Mode I as listed, in 15 Figure 15. Using a commonly available 14 VGA-format computer monitor with a dimension in pixels of 640 x 480, four windows having a dimension in pixels of 320 x 240 may be displayed simultaneously. Recording this data at the rate of one frame per second (1 fps) in black and white 20 (B/W) and with 100:1 data-compression on a 10 GB DAT tape provides approximately 960 hours of images per tape, or alternatively more than 480 hours of color images. A second monitor optionally may be used to display utility windows including various system operating controls, as, 25 for example, camera pan, tilt, zoom, focus, and so forth.
Figure 2 shows a computer monitor display for a system configured in accordance with Mode II as listed in Figure 15. Using a 15 to 17 SVGA-format computer monitor with a dimension in pixels of 1024 x 768, nine windows, 30 each having a dimension in pixels of 320 x 240, may be displayed simultaneously. Eight windows may be implemented
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- 10 as camera displays, and the ninth window may be used for the continuous display of the utility window, as described above. Recording of all eight windows at 1 fps will allow 480 hours of B/W images in this configuration per 10 GB DAT tape, or alternatively more than 240 hours of color images.
Figure 3 shows a computer monitor display for a system configured in accordance with Mode III as listed in Figure 15. Using a 17 to 20 high-resolution computer monitor with a dimension in pixels of 1240 x 1024, eight windows having a dimension in pixels of 320 x 240 may be displayed, in addition to two windows having a dimension in pixels of 640 x 480. One of these larger windows may be implemented as a utility window, and the other larger window may be implemented for sequential display of the eight camera inputs at full camera resolution having a dimension in pixels of 640 x 480. Recording all eight camera image windows, and also the input-scan window, at 1 fps will allow 360 hours of B/W images in this configuration per 10 GB DAT tape, or alternatively more than 180 hours of images in color.
Figure 4 shows a computer monitor display for a system configured in accordance with Mode IV as listed in Figure 15. Using a 20 high-resolution computer monitor with a dimension in pixels of 1600 x 1200, 25 windows with a dimension in pixels of 320 x 240 may be displayed simultaneously. Twenty-four windows may be implemented as camera displays, and one is implemented as a the utility window. Recording all twenty-four windows, and also the utility window, at 1 fps will allow 180 hours of B/W images in this configuration per 10 GB DAT tape. If color recording is desired, a 20 GB 8-mm data cartridge will
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- 11 allow 180 hours of color images.
Figure 5 shows a computer monitor display for a system configured in accordance with Mode V as listed in Figure 15. Using a 20 high-resolution computer monitor with a dimension in pixels of 1600 x 1200, twelve larger windows having a dimension in pixels of 400 x 300 may be displayed, as well as one large high-resolution window, with a dimension in pixels of 800 x 600, to display the sequentially scanned output of the camera images.
Recording in this format at 1 fps will provide 180 hours of B/W images in this configuration per 10 GB DAT tape. If color recording is desired, a 20 GB 8-mm data cartridge will allow 180 hours of color images.
Figure 6 shows a computer monitor display for a 15 system configured in accordance with Mode VI as listed in
Figure 15. Using a 14 to 17 SVGA computer monitor with a dimension in pixels of 1240 x 1024, and implementing a smaller window size with a dimension in pixels of 240 x 180, eight windows are available for the camera image 20 displays, and two large windows of 480 x 360 are available for sequentially-scanned camera images. Recording in this screen format at 1 fps allows 480 hours of B/W images in this configuration on a 2 0 GB 8-mm data cartridge, and allows 240 hours of images in color.
In any of the display configurations just described, it is also possible to use a video overlay technique to display the utility controls superimposed on the camera video. Regardless of which display or recording format is used, the PC based, monitoring system includes 30 various facilities and features, which will now be described in further detail.
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- 12 In operation, the user need, only observe the various display windows on the monitor screen, rather than concentrate on many monitors simultaneously, thereby reducing the risk of missing an important event. Since no video switcher is used in recording, and images from all sources are continuously recorded at the selected frame rate for each source, more information is recorded than in conventional analog systems, wherein events may be missed due to the sequential switching of input images. The digital format also improves the picture quality, as the signal-to-noise ratio will be higher than for analog systems. In addition, there is no loss of quality during recording or playback, and because the recording technique is digital, other types of information optionally may recorded along with the camera data, such as audio, time, date, location, etc.
An additional feature is the capability to implement a dual-recording-media option. This facility provides the ability to record simultaneously both on a tape (for high capacity, long term storage) and also on a removable media, such as a removable hard disk (i.e. PCMCIA) or magneto-optical disk (for short-term storage of up to 24 hours of images) . These disks facilitate highspeed searching of recorded information without interrupting the tape, as well as providing a back up for the recording on the tape. In addition, the system is capable of simultaneously searching the recorded images on the disk storage unit while continuing to store images on the tape storage unit.
It should be noted that there is no requirement that the image sizes or frame rates utilized for the video
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- 13 display match those utilized for the storage media. In practice, these two specifications may not agree, and will be determined by other factors, such as operator manipulation of the displayed image sizes or changes 5 resulting from the detection of alarm conditions.
Figure 7 shows a functional diagram of an analog input-digital processing card installed in the PC which allows the use of existing analog cameras and cables with the PC-based monitoring system. This card, which may be 10 obtained from such manufacturers as Nova, Model No. V-SW, features four video inputs 2a-2d having balanced or differential input circuitry for good noise immunity (or optically-coupled inputs for fiber-optic cabling), four video amplifiers 4a-4d, a 4x1 video switcher 6 by which any 15 one of the four video inputs may be selected as a signal source, and an analog-to-digital (A/D) converter 8. The recording of camera inputs is digital, however, there is no provision for remote control of camera functions such as pan, tilt, zoom, and so forth. If additional inputs are 2 0 desired, multiple cards may be installed in the PC. The output of the A/D converter 8 is supplied to the graphics processor and image data-compression engine 10. This unit performs the various functions required to configure the image sizes and frame rates as specified by the equipment 25 operator. Because the overall data recording bandwidth of the system is a factor in the selection of the individual picture data rates, computer software is provided to implement menu-driven management of the data bandwidth allocation to the various image sources. Based on this 30 configuration, signals are provided to the video switcher 4 to facilitate the selection of the particular image
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PCT/t 5/04652 sources as required. The data-compressed images are provided in digital form to the microprocessor data bus 12 .
The microprocessor unit (not shown) in turn provides control signals to the graphics processor 10 by way of this data bus, in accordance with the image data allocation
- 14 configuration selected.
Figure 8 is a functional diagram of a digital input/output-digital processing card which implements bidirectional digital communications to and from the camera/ adapter unit over
<img file="CA2215741C_D0001.tif" />
single transmission line, thereby greatly reducing the installation, and allowing cable and cost of
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printed-circuit implementations
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are
Various
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depending
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network interconnection
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selected. In addition, system performance will depend on the type of network interconnection media. As an example, a fiber optic network will have a higher transmission rate and better signal quality than a telephone network. Interfacing technology for these communication methods are in common usage and well known in the art. This printed-circuit card also serves four, cameras through inputs 52a-52d, and additional cards can be implemented if required. The bi-directional digital video and camera control data switcher 54 serves to select the individual image sources as explained in reference to Figure 7 . These source signals are then provided to the graphics processor and image data-compression engine 56, which provides similar functions to those provided by the graphics processor 10, discussed in reference to Figure 7. The processed data-compressed images are then provided to the microprocessor . data bus 60. However, in this
Λ
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- 15 implementation, the bi-directional nature of the data switcher 54 is exploited to provide full functional control of the camera facilities through the bi-directional controller 58. These functional controls include the cameras themselves (lens and exposure control) and the camera's physical mounting provisions (pan and tilt) . The various control signals for these functions are those traditionally provided to these kinds of equipment, and these concepts are well known in the art. In an alternative embodiment, the individual cameras are each equipped with separate image data-compression facilities, utilizing such techniques as motion-JPEG or MPEG compression. In this case, control signals for these additional functions are provided from the microprocessor bus 60 through the bi-directional controller 58 and the data switcher 54.
Figure 9 is a functional diagram of a digital output universal camera adapter. This is a fully digital version of the camera adapter as described in
U.S. Patent No. 5450140 , titled PERSONAL-COMPUTER BASED VIDEO PRODUCTION SYSTEM. The A/D-converter, digital image data-compressor, and bidirectional interface camera adapter 100 accepts analog audio and video signals from the camera 102, and converts them to digital signals in anticipation of the transmission of these signals over the interconnection network 104. The camera adapter also receives camera control commands from the PC by means of the interconnection network, and translates them into the appropriate pan, tilt, zoom, focus and iris control signals for the particular camera equipment, including the camera lens 106 and the pan/tilt
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- 16 mounting facilities 108. In addition, the camera adapter also has inputs for several alarm system type sensors 110, as, for example, motion detectors, photocell detectors, or simple switches. These alarm signals are digitized, encoded, and then transmitted to the main PC by means of the interconnection network. Power is supplied for this equipment from a local source 112 . This camera adapter is implemented to provide a full-function system, adaptable to all existing types of cameras and control equipment. However, because of the large number of interconnections involved in the adapter, camera, pan/tilt unit, and sensors, the installation process may be somewhat complicated.
By equipping an individual camera input with digital frame store capabilities, it is possible to detect an alarm condition based on deviations from the normal-state image scene. For example, if a camera is monitoring a door exit or an area of a warehouse aisle that is not utilized during evening hours, any change in the image would represent an alarm condition. To allow camera movement, this sensing process would be disabled during pan, scan, tilt, zoom, and other camera positioning controls, and the sensing would be re-enabled after camera positioning ceased, or by manual operator control.
Figure 10 is a functional diagram of an integrated camera system according to the invention including means to overcome problems associated with having a physically separate camera, pan/tilt unit, and adapter unit. The integrated system includes a camera 150 with pan/tilt control, A/D converter, digital data-compression circuitry, and requisite interfacing circuitry. Such
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- 17 provisions are preferably included in the camera base structure 152, which simplifies installation, as no separate interconnecting cables are required. The integrated camera system optionally may include provisions for supplying electrical operating power from a network coaxial cable, and thereby may be implemented with only a single interconnecting cable. An integrated camera system of this type may be implemented in a physical package which is as small as the camera itself, since most of the 10 electronics may be highly miniaturized by developing custom integrated circuits, including LSI, ASIC, DSP, and mixedsignal processing.
It will be appreciated that in any of these implementations, alarm or sensor signals may be utilized to 15 automatically re-configure the system operating mode, as, for example, increasing the frame rate or image size for an image source associated with the sensor which has initiated the alarm signal condition. As explained above, the displayed windows and image sizes may be reconfigured into 20 an operating mode different from the reconfiguration of the digital storage mode. If desired, the operator may choose to allow the system to automatically adjust the compression ratio utilized for a particular window in response to alarm signal conditions. Alternatively, the compression ratio 25 may be adjusted in response to the selection by the operator of a particular window for closer monitoring, by switching to an image window having larger dimensions in pixels. For some applications, the use of a resolutionindependent data compression scheme, such as the Fractal 30 Compression method of Iterated Systems, Inc., will be preferred, since images compressed by this method may be
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- 18 resized, to fit larger or smaller windows as desired, without loss of apparent resolution. In addition, automatic switching of the audio signals associated with a particular window in response to alarm signal condition 5 will enable the operator to fully investigate such events, and the audio signals may serve to attract the operator's attention to the event. Such switching optionally may be coupled with operator selections for monitoring purposes as well, and in both of these options may be integrated into 10 the system previously described for recording the images, with or without any associated audio signals, onto the mass-storage media.
Figure 11 illustrates a PC-based monitoring system implemented for videoconferencing at multiple remote 15 locations. In this application of the invention, a main control center, shown generally as 200, is interconnected, by way of a network, with remote locations, shown generally as 204 to 210, designated as 1 through N. The network 202 may be implemented by way of telephone lines (slow 2 0 speed) , ISDN lines (medium speed) , or alternatively coaxial cable or fiber optics cables (high speed). The higher speed implementations permit transmission at higher frame rates and higher image resolutions. As an alternative, wireless networks or microwave links 25 optionally may be used. Network communication between the main and remote locations is bi-directional; the main computer receives audio, video, and sensor data from each of the remote locations, and transmits controls for camera pan, tilt, focus, zoom, and so forth. Audio and video 30 communications for the system operators also is provided, by means of an additional camera and headset at each
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- 19 location.
The application of these PC-based monitoring techniques also may he implemented in cases in which the central monitoring area may be located at some distance from the remote site. In this case, the physical hardware and networking facilities will follow the example shown in Figure 11, with the understanding that Location 1 through Location IN ' will now refer to separate monitoring for security applications or other monitoring purposes.
The purpose of the main control center is to manage multiple cameras at multiple locations. By monitoring and controlling the remote locations from a central location 220, the system may function without an operator at each location. Optionally, additional computers shown, by way of example, as 222 and 224 at the main location may be implemented to simplify the monitoring and control of the remote locations. The main control center stores the data from remote locations in the main control storage facilities, shown, by way of example, as
238, 240 and 242, using digital tape and removable media, including, by way of example, PCMCIA-based removable media or magneto-optical (MO) media. The images may be stored at various frame rates
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resolutions, depending
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images .
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234, coordination of activities between
Intercom
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main control center and the various remote locations, and video camera units are provided at each of the computers, shown, by way of example, as 244, 246 and 248.
Each remote location includes a PC/monitor 250, with multiple video cameras, shown, by way of example, as
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- 20 252 and. 254, including provisions 256 for image and data storage utilizing digital tape and other removable media. This remote location may be operated under control from either the main location (as described above), or a local operator, or by specific software designed for automatic control. In the case of software-controlled operations, provisions are included for control to be assumed by the main control center, if necessary. As in the case of the main control computers, each of the remote computers is equipped with intercom facilities as 258 and video cameras as 260.
In the traditional videoconferencing situation, only one camera and monitor are used. Unfortunately, this results in an unnatural scene which provides the users with only a single viewing perspective. The use of a wide-angle camera lens which is needed to include many people seated around a table creates a distorted view, especially for those seated furthest from the camera. Figure 12 shows an overhead view of the typical videoconferencing arrangement, including conference table 3 00, camera and monitor 3 02, and conference participants, shown as circles as 304.
Using the PC-based monitoring system, it is possible to create a video conference that presents a much more natural viewing appearance. As shown in Figure 13A, a multiple-camera, multiple-display unit 310 preferably is preferably located directly on the conference table 312 . This reduces the camera-perspective-distorting effects just described, because conference members 314 may be seated in a more comfortable and convenient position. The resulting video image is also much more natural. Each controller remote site computer-display section 322 (as described
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PCT/OS96/04652 herein below) simultaneously shows all of the members participating in the remote conference, with an individual video window allocated for each participant, under control from the PC-based monitoring system operator. In practice, the remote site equipment operator will select one of the
15, as described in Figure display operating modes
<td colspan="4"> depending on the number of subjects</td><td> (camera views)</td><td> and the</td>
<td> capabilities</td><td> of</td><td> the</td><td> remote site</td><td colspan="2"> computer equipment.</td>
<td> Optionally,</td><td> an</td><td colspan="2"> additional camera</td><td> 316 fitted</td><td> with a</td>
<td> wide-angle</td><td> lens</td><td> will</td><td> provide an</td><td> overall view</td><td> of the</td>
<td> conference</td><td> room</td><td> , in</td><td colspan="3"> accordance with more traditional</td>
systems .
To facilitate the aiming of the individual cameras for the participants, an arrangement such as that implemented at airport gates to assist the parking of airplanes (typically an I and an O formed of neon light tubes is utilized for airplane gate parking) optionally may be included. In this case, the two indicators are mounted so as to overlap only when viewed directly along the optical axis of the camera lens system. Thus, the camera position need only be adjusted so as to cause the indicators to overlap, thereby assuring that the camera correctly is aimed at the subject. A number of microphones 318 are situated around the conference table in locations suitable for proper audio coverage of .the participants' speech.
Figure 13B shows a side-view depicting the physical layout of each of the four sides of the multiplecamera, multiple-display unit 310. The top unit 320 houses the individual cameras (2 to 8 units) and associated electronics, optionally including aiming provisions as
CA 02215741 1997-09-17
WO 96/31984
PCT7US96/04652
- 22 described herein, above. An LCD display screen 322 shows the various camera images of the conference participants.
Speakers located at positions 324 provide audio from the remote sites.
As shown in Figure 14, the multiple-camera/ display unit shown in Figure 13B preferably is modular in construction including removable side panels, in order to facilitate expansion along either horizontal axis so as to accommodate any size or shape conference table, with each section of the unit serving up to four conference participants. In the preferred, embodiment, the entire unit preferably is constructed so as to provide a low profile, by utilizing slanted LCD display panels 330 to create a minimum obstruction for the local conference participants. If a low profile design is not required, the display panels optionally could be larger, and mounted vertically. Until color LCD panels become more cost-effective, the display unit would be constructed with any of the currently available small LCD projector systems. Each conference location may include a designated PC operator, however, the implementation of the network connection facilitates control of the system from a remote location.
It should be noted that the implementation of the PC-based monitoring system is not limited to these examples of security systems or videoconferencing. Many alternative implementations, such as workplace, factory, production line, and process monitoring, would benefit from this system, and these alternative implementations should be considered to be within the scope of the invention.
Contents51
24 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10 Sheet 11 Sheet 12 Sheet 13 Sheet 14 Sheet 15 Sheet 16 Sheet 17 Sheet 18 Sheet 19 Sheet 20 Sheet 21 Sheet 22 Sheet 23 Sheet 24
43 members in 6 offices
Priority claims3
| Document | Office | Kind | Date |
|---|---|---|---|
| 08418823 | United States of America | – | |
| 41882395 | United States of America | A | |
| 9604652 | United States of America | W |
Members43
| Document | Office | Kind | |
|---|---|---|---|
| CA2161112A1 | Canada | A1 | |
| WO9424813A1 | World Intellectual Property Organization (WIPO) | A1 | |
| US5450140A | United States of America | A | |
| US5488433A | United States of America | A | |
| US5537157A | United States of America | A | |
| CA2213973A1 | Canada | A1 | |
| WO9627263A1 | World Intellectual Property Organization (WIPO) | A1 | |
| JPH08509337A | Japan | A | |
| CA2215741A1 | Canada | A1 | |
| WO9631984A1 | World Intellectual Property Organization (WIPO) | A1 | |
| US5625410A | United States of America | A | |
| CA2243859A1 | Canada | A1 | |
| WO9727704A1 | World Intellectual Property Organization (WIPO) | A1 | |
| EP0812509A1 | European Patent Office (EPO) | A1 | |
| EP0819358A1 | European Patent Office (EPO) | A1 | |
| JPH11507184A | Japan | A | |
| EP0812509A4 | European Patent Office (EPO) | A4 | |
| JPH11509996A | Japan | A | |
| EP0819358A4 | European Patent Office (EPO) | A4 | |
| EP0997039A1 | European Patent Office (EPO) | A1 | |
| EP0997039A4 | European Patent Office (EPO) | A4 | |
| JP2001501781A | Japan | A | |
| USRE37342E | United States of America | E | |
| EP0812509B1 | European Patent Office (EPO) | B1 | |
| DE69621782D1 | Germany | D1 | |
| DE69621782T2 | Germany | T2 | |
| USRE38079E | United States of America | E | |
| CA2161112C | Canada | C | |
| JP3525298B2 | Japan | B2 | |
| CA2243859C | Canada | C | |
| JP3859227B2 | Japan | B2 | |
| CA2215741CThis record | Canada | C | |
| EP0819358B1 | European Patent Office (EPO) | B1 | |
| DE69637446D1 | Germany | D1 | |
| CA2213973C | Canada | C | |
| DE69637446T2 | Germany | T2 | |
| JP4445592B2 | Japan | B2 | |
| USRE41968E | United States of America | E | |
| USRE42020E | United States of America | E | |
| USRE42160E | United States of America | E | |
| USRE42657E | United States of America | E | |
| USRE42709E | United States of America | E | |
| USRE43462E | United States of America | E |
2 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| ExpiryMKEX | MKEX | |
| Examination requestEEER | EEER |
Numbers
- Publication
- 2215741
- Application
- 2215741
Titles2
- English
- VIDEO MONITORING AND CONFERENCING SYSTEM
- French
- SYSTEME DE CONTROLE ET DE CONFERENCE VIDEO
Classification
- CPC, 47
- G06F3/14
- G06F3/1454
- G06T9/007
- G08B13/19645
- G08B13/19667
- G08B13/19673
- G08B13/19693
- G09G2340/02
- G09G2340/0407
- G09G2340/0442
- G11B27/002
- G11B27/024
- G11B27/031
- G11B27/032
- G11B27/034
- G11B27/34
- G11B2220/20
- G11B2220/2516
- G11B2220/2525
- G11B2220/41
- G11B2220/455
- G11B2220/61
- G11B2220/90
- G11B2220/913
- H04N1/00283
- H04N5/222
- H04N5/765
- H04N5/772
- H04N5/781
- H04N5/782
- H04N5/85
- H04N5/915
- H04N5/9261
- H04N7/0122
- H04N7/0125
- H04N7/10
- H04N7/142
- H04N7/147
- H04N7/15
- H04N7/181
- H04N9/641
- H04N9/642
- H04N9/8042
- G06F3/147
- H04N21/426
- H04N23/66
- H04N23/60
- IPC, 27
- H04N7 15
- G08B13 196
- H04N5 232
- H04N5 765
- H04N7 14
- G06F3 14
- H04N5 782
- H04N5 85
- H04N5 915
- H04N5 926
- H04N7 18
- G06T9 00
- G11B27 00
- G11B27 024
- G11B27 031
- G11B27 032
- G11B27 034
- G11B27 34
- H04N1 00
- H04N5 222
- H04N5 44
- H04N5 77
- H04N5 781
- H04N7 01
- H04N7 10
- H04N9 64
- H04N9 804