US20050231128A1 - Method and apparatus for the zonal transmission of data using building lighting fixtures - Google Patents

Method and apparatus for the zonal transmission of data using building lighting fixtures Download PDF

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Publication number
US20050231128A1
US20050231128A1 US11/154,317 US15431705A US2005231128A1 US 20050231128 A1 US20050231128 A1 US 20050231128A1 US 15431705 A US15431705 A US 15431705A US 2005231128 A1 US2005231128 A1 US 2005231128A1
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Prior art keywords
data
lamps
modulation
radio
lamp
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US11/154,317
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Philip Franklin
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Convergence Wireless Inc
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Franklin Philip G
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Priority to US11/154,317 priority Critical patent/US20050231128A1/en
Publication of US20050231128A1 publication Critical patent/US20050231128A1/en
Priority to US11/351,308 priority patent/US7352972B2/en
Assigned to CONVERGENCE WIRELESS, INC. reassignment CONVERGENCE WIRELESS, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: FRANKLIN, PHILIP G.
Priority to US11/982,304 priority patent/US20090226176A1/en
Priority to US12/799,221 priority patent/US20110006877A1/en
Priority to US13/750,219 priority patent/US20130243425A1/en
Priority to US14/163,199 priority patent/US20140285091A1/en
Abandoned legal-status Critical Current

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/11Arrangements specific to free-space transmission, i.e. transmission through air or vacuum
    • H04B10/114Indoor or close-range type systems
    • H04B10/116Visible light communication
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/11Arrangements specific to free-space transmission, i.e. transmission through air or vacuum
    • H04B10/114Indoor or close-range type systems
    • H04B10/1149Arrangements for indoor wireless networking of information
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B41/00Circuit arrangements or apparatus for igniting or operating discharge lamps
    • H05B41/14Circuit arrangements
    • H05B41/36Controlling
    • H05B41/38Controlling the intensity of light
    • H05B41/39Controlling the intensity of light continuously
    • H05B41/392Controlling the intensity of light continuously using semiconductor devices, e.g. thyristor
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/175Controlling the light source by remote control
    • H05B47/19Controlling the light source by remote control via wireless transmission

Definitions

  • This invention relates to the transmission of data by the modulation of the light output of fluorescent and other arc lamps; including the visible or invisible light output of fluorescent lamps, neon lamps, mercury vapor lamps, high or low-pressure sodium lamps, or other high-intensity discharge lamps, or any metal-halide based lamps.
  • low-powered radio transmission can be used to transmit and receive data messages within a building, or the optical and infrared spectrum can be used for the transceiving of data.
  • radio frequencies require licensing and coordination for their use. Given the overcrowded radio spectrum in some areas, said licensing may be nearly impossible.
  • radio facilitates the transmission of data, in general that data transmission is limited in bandwidth and therefore limited in the speed of transmission. Additionally, radio energy is hard to confine, and there it is not practical to limit data transmission to the confines of any one building or office within a building or office.
  • infrared transmission of data has the benefit of no licensing requirement, higher available bandwidth, and ease of confinement.
  • infrared energy is not transparent to walls or other structures, the cost of installation of an independent building-wide infrared-based transmission system is extreme. That is, each office and hallway within a building must be equipped with one or more infrared transmitters in order to provide coverage to the entire building.
  • Each infrared transmitter will require lines for it's operating power and a data line for the data that is to be transmitted, thus requiring a supporting infrastructure that is both extensive and expensive.
  • FIG. 1 is a block diagram of some possible circuitry for implementation of my invention.
  • FIG. 2A is a graphic representation of the output from a typical fluorescent tube operated by a circuit similar to that represented in FIG. 1 .
  • FIG. 2B illustrates one method of data encoding anticipated by my invention: Frequency Shift Keying (FSK).
  • FSK Frequency Shift Keying
  • FIG. 3 is a block diagram of the main embodiment of my invention.
  • FIG. 4 diagrams a building floor plan showing a possible arrangement of lighting luminaries incorporating the invention.
  • FIG. 5 illustrates one of many applications of the invention: application to pagers.
  • FIG. 6 is a block diagram of an alternate embodiment of the invention: frequency multiplexed optical transmission.
  • This invention proposes to modulate the light generated by gas-discharge lamps, such as fluorescent lamps, mercury vapor lamps, and sodium vapor lamps, commonly found in and around offices and buildings, with control, location, and other data messages.
  • gas-discharge lamps such as fluorescent lamps, mercury vapor lamps, and sodium vapor lamps, commonly found in and around offices and buildings.
  • the modulated light is then received by various types and configurations of devices, and used for the determination of their location, to control their operational parameters, or to simply receive data messages.
  • ballast and fluorescent or arc lamps In addition to data transmission and determination of location, some, but not all, of the anticipated applications of the method of zonal data transmission by ballast and fluorescent or arc lamps include their use in:
  • part names as used herein are descriptive only, and should not be taken as limiting their function or purpose. It is important to note that functional blocks in the figures are shown for purposes of discussion only, and nothing therein should be construed to imply their necessary configuration or even presence for my invention to work. In addition, similar embodiments based on infrared, visible, or ultra-violet optical communications, or a combination thereof, or a mix of one spectrum for transmission and a different spectrum for reception, are anticipated by this invention.
  • the main embodiment of the invention describes an fluorescent lamp lighting ballast that uses the output of the lamp or lamps under it's control to transmit data to one or more receivers.
  • the configuration allows for the transmission of fixed data messages, such as a serial number, while allowing for the transmission of data messages that can be modified in the field.
  • This embodiment while not the most basic embodiment of my invention; is never-the-less one of the more useful and lesser expensive embodiments.
  • FIG. 1 is a diagram showing the basic circuitry necessary to implement a basic embodiment of the invention.
  • Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ) typically contains a full-wave diode rectifier and filter that converts the incoming AC mains power from AC to DC power. The rectified and filtered voltage is passed out of the Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ) as the high-voltage (150-350 Volt) supply. Also within Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ) is a low-voltage circuit that taps some of the high-voltage, regulates it, and then passes it out as a low-voltage (typically around 5 volts DC) supply.
  • a low-voltage circuit typically taps some of the high-voltage, regulates it, and then passes it out as a low-voltage (typically around 5 volts DC) supply.
  • the high-voltage supply is passed to Switching Circuit ( 104 ).
  • Switching Circuit ( 104 ) is under control of the Microprocessor Control Circuit ( 106 ).
  • Microprocessor Control Circuit ( 106 ) enables Switching Circuit ( 104 )
  • the high-voltage output from Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ) is passed on to the primary windings of Transformer ( 108 ).
  • Switching Circuit ( 104 ) facilitates Microprocessor Control Circuit ( 106 ) controlling the switching rate and waveform of the voltage supplied to Transformer ( 108 ), and hence determines the output voltage and waveform from the secondary windings of Transformer( 108 ); namely, Heater Winding ‘A’ ( 110 ), Heater Winding ‘B’ ( 112 ), and Arc Winding ( 114 ).
  • Heater Winding ‘A’ ( 110 ), and Heater Winding ‘B’ ( 112 ), are lower voltage windings used to supply the voltages necessary for the operation of filament heaters (cathodes) of Fluorescent Tube ( 4 ).
  • the higher-voltage output of Arc Winding ( 114 ) is coupled to each of the filament windings so as to place a high-voltage potential between the cathodes of Fluorescent Tube ( 4 ).
  • Fluorescent Tube ( 4 ) is any fluorescent lamp tube or type, including straight or curved heated cathode fluorescent bulbs, compact fluorescent bulbs (CFL), or cold cathode fluorescent bulbs (CCFL).
  • the Fluorescent Tube ( 4 ) first used was a F4T5, and later the circuitry was modified to accommodate two Philips brand F8T5/CW lamps.
  • Microprocessor Control Circuit ( 106 ) consists of a core microprocessor circuit, memory circuitry, timing or frequency source and circuitry, and other auxiliary circuitry.
  • the timing source and circuitry is used to clock the microprocessor, and potentially through other circuits, provide the frequencies that will be used for toggle rates of Switching Circuit ( 104 ), and therefore the toggle rates of the lamp and associated light output.
  • Microprocessor Control Circuit ( 106 ) is powered by the low-voltage output of Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ), and also holds the data to be transmitted within the memory circuitry.
  • the memory circuitry can consist of Random Access Memory (RAM) and/or Read-Only Memory (ROM). Both the RAM and ROM can be of any configuration and of any type.
  • RAM Random Access Memory
  • ROM Read-Only Memory
  • Both the RAM and ROM can be of any configuration and of any type.
  • the memory is programmed at the factory and/or from one or more sources in the field.
  • Lamp and Switching Assembly ( 150 ) represents the switching, transformer, and lamp function blocks as defined herein. That is, Switching Circuit ( 104 ), Transformer ( 108 ), and Fluorescent Tube ( 4 ), are within Lamp and Switching Assembly ( 150 ).
  • the Lamp and Switching Assembly ( 150 ) function block serves to simplify some of the remaining discussion by not having to repeat the descriptions of repeating common function blocks.
  • FIG. 2A is a graph of the output from a typical fluorescent tube operated on a circuit similar to that diagrammed in FIG. 1 .
  • the diagram shows the output from a Philips F8T5/CW fluorescent tube, operated at a 40 kHz flash rate.
  • Graph Line ( 202 ) shows that while some noise and harmonic frequencies are present, the basic flash-rate signal is never-the-less evident, and easily recoverable by filtering and limiting.
  • FIG. 2B illustrates one method of data encoding: Frequency Shift Keying (FSK).
  • FSK Frequency Shift Keying
  • FSK is chosen here for ease of application and data recovery, but any modulation method is applicable.
  • the use of FSK herein should not be taken as to in any way limit the modulation method anticipated by the invention.
  • the microprocessor controls an external timing or frequency circuit [outside of the microprocessor, but within the Microprocessor Control Circuit ( 106 ) of FIG. 1 ], that in-turn generates the toggle frequencies for application to Switching Circuit ( 104 ) of FIG. 1 .
  • the invention also anticipates the microprocessor directly generating the toggle frequencies without the need for an external timing or frequency circuit.
  • the Raw Binary Data ( 252 ) to be transmitted is shown to be “101001”.
  • This binary data is typically translated to a logic-level voltage shown therein as Binary Voltage Level ( 254 ) generated by the microprocessor.
  • the Binary Voltage Level ( 254 ) is then applied to an timing circuit whereby one of two toggle frequencies are generated.
  • the two frequencies are arbitrarily chosen to represent binary 1's and 0's. For our discussion, we will use a toggle frequency of 50 kHz to represent a binary data “1”, and a 40 kHz frequency to represent a binary data “0”.
  • the output of the timing circuit whether 40 kHz or 50 kHz is applied to Switching Circuit ( 104 ) of FIG. 1 .
  • the required Frequency Series ( 258 ) for the representation of binary data “101001” is shown. These series of frequencies are applied to Switching Circuit ( 104 ) of FIG. 1 , which in-turn controls the output of the fluorescent lamp.
  • the output of the fluorescent lamp is represented as Lamp Output ( 256 ).
  • FIG. 3 is a block diagram of the main embodiment of my invention.
  • Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ) performs the same power supply functions as before.
  • the low voltage output of the Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ) is distributed to the Power Line Carrier Transceiver ( 302 ) circuitry, the Microprocessor Control Circuit ( 106 ) circuitry, and the Radio Transceiver ( 306 ) circuitry.
  • Power Line Carrier Transceiver ( 302 ) is circuitry that receives and transmits either data or audio (or both data and audio) signals by way of a modulated carrier wave superimposed on the power line connections.
  • the use of any carrier frequency with any modulation scheme in the invention is possible, although certain combinations may have limitations that are not acceptable.
  • an Echelon® PLT-10A Power Line Transceiver (manufacturer's model number 50080-02) is a possible choice for use in the Power Line Carrier Transceiver ( 302 ) circuitry, and is compatible with a standard that exists in the marketplace.
  • the PLT-10A facilitates a 10 kilobits per second network rate using direct sequence spread-spectrum in the 100 kHz to 450 kHz spectrum.
  • the use of an Echelon® PLT-10A Power Line Transceiver would also facilitate operation of the ballast unit on a LonWorks® compatible network which is also a present standard in the marketplace. [Echelon® and LonWorks® are Registered Trademarks of the Echelon Corporation.]
  • the bottom-line significance of the Power Line Carrier Transceiver ( 302 ) is that it is a circuit that facilitates communication via the power line wiring, thus allowing communications to and from the ballast invention, without requiring separate communications wiring to be installed to each ballast.
  • Microprocessor Control Circuit ( 106 ) is powered by the low-voltage output of Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ), and also holds the data to be transmitted within the memory circuitry.
  • the memory circuitry can consist of Random Access Memory (RAM) and/or Read-Only Memory (ROM). Both the RAM and ROM can be of any configuration and of any type.
  • Microprocessor Control Circuit ( 106 ) now also receives and transmits data via Power Line Carrier Transceiver ( 302 ).
  • Radio Transceiver ( 306 ) can receive data or signals from any radio source, and said data or signals are then sent to Microprocessor Control Circuit ( 106 ).
  • the data can be used to either program the operation or function of Microprocessor Control Circuit ( 106 ), or enter data that is to be stored and later transmitted by Microprocessor Control Circuit ( 106 ) via the lighting circuitry, or be transmitted via Power Line Carrier Transceiver ( 302 ), or any other use of the data can be made of by Microprocessor Control Circuit ( 106 ).
  • Radio Transceiver ( 306 ) can also transmit data or signals to any radio receiver that is in range.
  • the transmission of said radio transmitted data or signals is under the control of Microprocessor Control Circuit ( 106 ).
  • the radio transmitted data can be used to control or send data to remote devices that may or may not have compatible optical receivers.
  • FIG. 3 defines a ballast assembly that can transmit and/or receive zonal data by radio means, and not necessarily rely on optical transmission means or pathways.
  • Lamp and Switching Assembly ( 150 ) again represents the switching, transformer, and lamp function blocks as defined before in FIG. 1 . That is, Switching Circuit ( 104 ), Transformer ( 108 ), and Fluorescent Tube ( 4 ), all of FIG. 1 , are within Lamp and Switching Assembly ( 150 ).
  • FIG. 3 diagrams a ballast assembly that contains microprocessor and memory circuitry, that can receive data either by radio or power line carrier, and can transmit data either by power line carrier, radio carrier, or by arc lamp output.
  • the primary spectrum anticipated for application under this invention is optical (visible, infrared, and ultraviolet); the use of the radio and/or electro-magnetic spectrum emissions of fluorescent and other arc lamps is also anticipated as a possible carrier of data for use in the invention. That is, the emissions in the radio spectrum often classified as noise or Radio Frequency Interference (RFI), and the radiation of other electromagnetic spectrum signals often classified as noise or Electro-Magnetic Interference (EFI); are in fact in this invention anticipated as being useful for some applications, and therefore are not necessarily considered to be noise.
  • RFID Radio Frequency Interference
  • EFI Electro-Magnetic Interference
  • FIG. 4 diagrams a building floor plan showing a possible arrangement of lighting ballasts incorporating the invention.
  • Fluorescent Ballast Assembly 11 ( 402 ) and Fluorescent Ballast Assembly 12 ( 404 ) each represents one of the ballast assemblies of the invention.
  • the data messages being transmitted by light are their serial numbers as “11” for Fluorescent Ballast Assembly 11 ( 402 ), and “12” for Fluorescent Ballast Assembly 12 ( 404 ).
  • FIG. 5 illustrates one of many applications of the invention.
  • Ceiling ( 502 ) represents the ceiling of a typical office.
  • Lamp Assembly 1 ( 504 ) corresponds to Fluorescent Ballast Assembly 11 ( 402 ) of FIG. 4
  • Lamp Assembly 2 ( 506 ) corresponds to Fluorescent Ballast Assembly 12 ( 404 ) of FIG. 4 .
  • Each of Lamp Assembly 1 ( 504 ) and Lamp Assembly 2 ( 506 ) are assemblies which house the ballasts and fluorescent lamps as described herein.
  • the ballast of Lamp Assembly 1 ( 504 ) is modulating it's fluorescent lamps to output a serial number of “11”.
  • the ballast of Lamp Assembly 2 ( 506 ) is modulating it's fluorescent lamps to output a serial number of “12”.
  • Pager A ( 508 ), Pager B ( 510 ), and Pager C ( 512 ), are pagers that are capable of receiving and decoding the optical output of a ballast of the invention.
  • the power from the AC mains of the building enters into the ballast assembly and is applied to Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ) wherein it is rectified and filtered and outputted as two voltages: Low Voltage and High Voltage.
  • the High Voltage is primarily used by the fluorescent lamp operating power supply circuitry to operate Fluorescent Tube ( 4 ).
  • the High Voltage is switched by Switching Circuit ( 104 ) and applied to Transformer ( 108 ) where it is boosted and applied to the cathodes of Fluorescent Tube ( 4 ).
  • the filaments of Fluorescent Tube ( 4 ) also derive their operating voltage from Transformer ( 108 ).
  • the switched high voltage supply from Switching Circuit ( 104 ) is applied to the primary winding of Transformer ( 108 ).
  • the higher voltage secondary winding Arc Winding ( 114 ), supplies the voltages necessary to form and maintain the arc through Fluorescent Tube ( 4 ).
  • the output of Arc Winding ( 114 ) are coupled one each to the lower voltage secondary filament windings Heater Winding ‘A’ ( 110 ), and Heater Winding ‘B’ ( 112 ).
  • Heater Winding ‘A’ ( 110 ), and Heater Winding ‘B’ ( 112 ) generate the voltages necessary to cause the heater/filaments of Fluorescent Tube ( 4 ) to operate.
  • Fluorescent Tube ( 4 ) the actual circuitry that is used to operate Fluorescent Tube ( 4 ) is not important to this invention in as much as any high voltage fluorescent tube circuitry can be used, so long as the switching rate can be modified under control of the controller or microprocessor circuit. Further note that the actual type of fluorescent or arc lamp that is used as Fluorescent Tube ( 4 ) is not important to this invention in as much as any arc lamp bulb will function in the invention, so long as the circuitry and specifications of the voltages and waveforms are so adjusted.
  • the Low Voltage is distributed to Microprocessor Control Circuit ( 106 ) and to other circuits and assemblies that are auxiliary to Microprocessor Control Circuit ( 106 ). Note that in FIG. 1 that while their are no auxiliary and/or support circuits shown, many are possible, and indeed some are discussed herein.
  • Microprocessor Control Circuit ( 106 ) consists of a microprocessor, clock, and other support circuitry, and also includes both operating program memory, and memory used to store data messages that are to be transmitted.
  • the microprocessor in Microprocessor Control Circuit ( 106 ) generates signals that are used to control the switching rate of Switching Circuit ( 104 ) and thus cause the output of Switching Circuit ( 104 ) to frequency shift from one frequency to another. Therefore, the light output of Fluorescent Tube ( 4 ) frequency shifts from one frequency to another under the direct control of Microprocessor Control Circuit ( 106 ).
  • optical flash rates or frequencies are generated or used, nor as to how those optical flash rates or frequencies are generated.
  • Generation of the optical flash rates or frequencies used herein can be directly as an output of the microprocessor, or by a separate generation circuit under control of the microprocessor.
  • the use of more than two optical flash rates or frequencies to represent more than two data symbols is anticipated by the invention.
  • FIG. 3 represents the main embodiment of the invention, and is an expansion of circuitry as compared to FIG. 1 .
  • Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ); Switching Circuit ( 104 ); Microprocessor Control Circuit ( 106 ); Transformer ( 108 ); and Lamp and Switching Assembly ( 150 ); are as described above in the discussion of FIG. 1 .
  • the Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ) outputs (High and Low Voltages) are distributed as appropriate and as needed to power the circuitry represented in this diagram.
  • Lamp and Switching Assembly 150
  • the actual circuitry and fluorescent or arc lamp type used within Lamp and Switching Assembly 150 is not of major significance to the invention, and many variations of such circuitry is anticipated.
  • Power Line Carrier Transceiver ( 302 ) is used both to receive data transmitted by a message generating device or controller that is sending message or controlling data over a carrier frequency superimposed on the AC mains, and to transmit back to said message generating device or controller data generated by Microprocessor Control Circuit ( 106 ) or data received by other means.
  • Radio Transceiver ( 306 ) is a radio transceiver used to monitor and receive radio signals from devices that are compatible with the invention. If so desired and configured, Radio Transceiver ( 306 ) can also transmit data or signals to any radio receiver that is in range.
  • the transmission of said radio transmitted data or signals is under the control of Microprocessor Control Circuit ( 106 ).
  • the radio transmitted data can be used to control or send data to remote devices that may or may not have compatible optical receivers.
  • Radio Transceiver ( 306 ) can be used to transceive zonal data to compatible devices that are within radio range, but not line-of-sight optical range. For example, a remote device that is within a brief case or purse.
  • FIG. 3 is a ballast assembly which in part generates microprocessor controlled FSK signals that are effectively amplified and applied to a fluorescent lamp, which in turn generates an optical output that contains at minimum a signature of the originating switching frequency that can be read by remote devices compatible with the invention (reference Graph Line ( 202 ) in FIG. 2A ). Furthermore, the ballast assembly of FIG. 3 contains a power line carrier transceiver for sending and receiving data via the power line wiring of a building, and a radio transceiver that is capable of transceiving radio signals with remote devices.
  • Microprocessor Control Circuit ( 106 ) contains in memory stored data which is to be routinely transmitted.
  • data may consist of a lamp assembly serial number, an alpha-numeric string describing the location of the lamp assembly and therefore the location of the device receiving the lamp output, the closest telephone extension to that location, and which audible public address paging zone the user is presently in.
  • the main embodiment is also capable of receiving other message strings (“Variable Messages”) or command strings by either the receiver in Power Line Carrier Transceiver ( 302 ) or Radio Transceiver ( 306 ).
  • a remotely located controlling device (“Base Station”) will generate a Variable Message that is to be broadcasted by one or more ballast assemblies.
  • the Base Station will first format said message string, add the necessary addressing information, and then transmit said string via a power line carrier transmitter to one or more ballasts or power line fed devices that are embodiments of the invention.
  • the addressing information contained in the formatted string is any data header or data type that facilitates the identification of which device or devices compatible with the invention are to transmit the string, how often said string is to be transmitted, which remote devices are to receive the data, as well as other control and/or formatting data that are necessary for operation of the system. Control messages are similarly formatted and processed.
  • the formatted Variable Message is received by the receiver portion of Power Line Carrier Transceiver ( 302 ), and then passed to Microprocessor Control Circuit ( 106 ) for decoding, storing, and processing. Microprocessor Control Circuit ( 106 ) then controls Switching Circuit ( 104 ) whereby the voltages (waveforms) applied to Fluorescent Tube ( 4 ) cause it (or them, as Fluorescent Tube ( 4 ) can represent more than one fluorescent lamp tube) to discharge an optical signal that is frequency shifted (or otherwise modulated) to encode the desired message.
  • Target Once a remote device (“Target”) receives the optical signal, and successfully decodes the message string, if so designed and commanded the Target will employ a low-power radio transmitter compatible with Radio Transceiver ( 306 ) of FIG. 3 to acknowledge the reception of the message, or transmit other data that is requested (such as what is the serial number of the lamp assembly it is presently near).
  • Radio Transceiver 306
  • the transmitted radio signal from the Target is received by Radio Transceiver ( 306 ), and is decoded and passed to Microprocessor Control Circuit ( 106 ). If so designated, Microprocessor Control Circuit ( 106 ) causes the transmitter in Power Line Carrier Transceiver ( 302 ) to transmit to the appropriate Base Station.
  • the diagram of the main embodiment of FIG. 3 represents circuitry that can handshake and communicate with both Target devices and Base Station devices.
  • FIG. 4 shows a typical office floor plan where in fluorescent lamp assemblies form a quasi X-Y coordinate system. That is, while not precisely symmetrical, fluorescent lamp assemblies in offices and other facilities tend to be well distributed, so that if it is known to which assembly a person or Target is nearest, the location of said Target or person will be determined with reasonable accuracy for most applications.
  • Fluorescent Ballast Assembly 11 ( 402 ) and Fluorescent Ballast Assembly 12 ( 404 ) are both located in Office #1 of Building #1; while the other fluorescent ballast assemblies are not. Therefore, if Fluorescent Ballast Assembly 11 ( 402 ) is transmitting it's serial number as “11”, and if a suitably designed Target device is decoding the serial number “11”, then the Target device is next to or very near Fluorescent Ballast Assembly 11 ( 402 ), and most probably is within Office #1 of Building #1. Furthermore, the Target device is most probably located in the left or center of said office as viewed in the floor plan of FIG. 4 .
  • Fluorescent Ballast Assembly 11 ( 402 ) is optically transmitting that it's serial number is “11”, while Fluorescent Ballast Assembly 12 ( 404 ) is optically transmitting that it's serial number is “12”. Therefore, any device nearest Fluorescent Ballast Assembly 11 ( 402 ) is most probably receiving it's light signal at a higher amplitude than the output of any other lamp assembly, and therefore is decoding the serial number “11”.
  • Fluorescent Ballast Assembly 11 ( 402 ) and Fluorescent Ballast Assembly 12 ( 404 ) in this discussion are most probably (but not necessarily) using a modulation method that facilitates a capture effect. That is, whichever light signal is received at the highest amplitude, will supply the optical data that is eventually decoded. Note however, that using timed transmissions with non-capture effect modulation is another method that would also be suitable for application to the invention, and in conjunction with received signal strength measurements could be used to further improve the accuracy of determination of location.
  • FIG. 5 is illustrative of one of the applications of the invention.
  • Pager A ( 508 ) is closest to Lamp Assembly 1 ( 504 ) and therefore will decode a lamp assembly serial number of “11”. If Pager A ( 508 ) is paged, it responds by transmitting an acknowledgment of the page which incorporates the decoded serial number. The transmitted acknowledgment is via an incorporated radio transmitter compatible with the Radio Transceiver ( 306 ) of FIG. 3 . The ballast assembly then transmits the received pager acknowledgment to the appropriate base or controller station by way of the Power Line Carrier Transceiver ( 302 ), also of FIG. 3 .
  • Pager C ( 512 ) is closest to Lamp Assembly 2 ( 506 ). If Pager C ( 512 ) is paged, it responds by transmitting an acknowledgment of the page which incorporates the decoded serial number. The transmitted acknowledgment is by an incorporated radio transmitter compatible with the Radio Transceiver ( 306 ) of FIG. 3 . The ballast assembly then transmits the received pager acknowledgment to the appropriate base or controller station by way of the Power Line Carrier Transceiver ( 302 ), also of FIG. 3 .
  • Pager C ( 510 ) may be decoding either the serial number of Lamp Assembly 1 ( 504 ) or Lamp Assembly 2 ( 506 ). Pager C ( 510 ) will decode the serial number of whichever lamp assembly the optical detector of Pager C ( 510 ) is receiving the strongest.
  • Lamp Assembly 1 ( 504 ) and Lamp Assembly 2 ( 506 ) use an amplitude modulation scheme (or other appropriate modulation method), and their transmissions are appropriately staggered in timing windows, both of their serial numbers could be decoded and reported to the appropriate base or control station, along with received signal strengths if the pager is so equipped.
  • the power from the AC mains of the building enters into the ballast assembly and is applied to Rectifier, Filter, and Dual-Voltage Power Supply ( 102 ) wherein it is rectified and filtered and outputted as two voltages: Low Voltage and High Voltage.
  • the Low Voltage is distributed to Microprocessor Control Circuit ( 106 ) and to other circuits and assemblies that are auxiliary to Microprocessor Control Circuit ( 106 ). Note that while their are no auxiliary and/or support circuits shown, many are possible, and indeed some have been discussed herein.
  • Microprocessor Control Circuit ( 106 ) consists of a microprocessor, clock, and other support circuitry, and also includes both operating program memory, and memory used to store data messages that are to be transmitted.
  • the microprocessor in Microprocessor Control Circuit ( 106 ) generates signals that are used to control the switching rate of each of the Lamp and Switching Assembly ( 150 )
  • Each of Lamp and Switching Assembly 1 ( 602 ) and Lamp and Switching Assembly 2 ( 604 ) represents the switching, transformer, and lamp function blocks as defined as Lamp and Switching Assembly ( 150 ) herein. That is, Switching Circuit ( 104 ), Transformer ( 108 ), and Fluorescent Tube ( 4 ), as discussed in the main embodiment, are within each of Lamp and Switching Assembly 1 ( 602 ) and Lamp and Switching Assembly 2 ( 604 ).
  • Each of the Lamp and Switching Assembly 1 ( 602 ) and Lamp and Switching Assembly 2 ( 604 ) are operated by Microprocessor Control Circuit ( 106 ) so as to use different optical flash rates or frequencies from each other, thus facilitating two independent means of data generation or transmission by optical energy.
  • Lamp and Switching Assembly 1 may operate at 40 kHz and 42 kHz for symbols 0 and 1 respectively
  • Lamp and Switching Assembly 2 may operate at 45 kHz and 47 kHz for symbols 0 and 1 respectively.
  • optical flash rates or frequencies are generated or used.
  • Generation of the optical flash rates or frequencies used herein can be directly as an output of the microprocessor, or by a separate generation circuit under control of the microprocessor.
  • the application of the invention anticipates transmitting data such as:
  • the application of the invention anticipates transmitting data by one or more of several optical modulation schemes, including but not limited to, frequency modulation-based schemes, phase modulation-based schemes, or amplitude modulation-based schemes.
  • the application of the invention further anticipates the receiving of data to be transmitted or used for programming the apparatus, or for controlling the apparatus by both hardwired means such as a serial data port, parallel data port, power-line carrier receiver, power-line carrier transceiver, encoded power-line signaling, or a wired network interface data port; or by wireless means such as a radio receiver, radio transceiver, common carrier radio receiver or transceiver, fiber optic port, optical data port, or infrared data port.
  • hardwired means such as a serial data port, parallel data port, power-line carrier receiver, power-line carrier transceiver, encoded power-line signaling, or a wired network interface data port
  • wireless means such as a radio receiver, radio transceiver, common carrier radio receiver or transceiver, fiber optic port, optical data port, or infrared data port.
  • the application of the invention further anticipates its use in all types of lighting and lighting fixtures intended for use in living areas, working areas, inside of buildings, outside of buildings, in factories or plants, in single story as well as high-rise buildings, and even in parks and on streets and highways.

Abstract

This invention relates to the zonal transmission of data by the modulation of the light output of arc lamps or discharge lamps; including the visible or invisible light output of fluorescent lamps, mercury vapor lamps, high or low-pressure sodium lamps, metal-halide based lamps, or other arc or discharge lamps. The method results in an easily installed, easily maintained, and economical to purchase, optical-wave communications system which exploits the existing infrastructure of a building or facility to facilitate the transmission of data in individual zones; thereby facilitating the transmission of wide-area as well as zonal-specific data to compatible receivers, and further facilitating the determination of location of remote devices or users, and the delivery or exchange of information or data, utilizing limited range transmission techniques.

Description

    BACKGROUND—CROSS-REFERENCES TO RELATED APPLICATIONS
  • This is one patent application anticipated when Provisional Patent Application Ser. No. 60/034,176 was filed the 24th of Dec. 1996. Additionally, this application is also related to patent application Ser. No. 08/673,380 filed the 24th of Jun. 1996, in that the devices in said application are operable and were envisioned to be used with the devices in this application.
  • BACKGROUND—FIELD OF INVENTION
  • This invention relates to the transmission of data by the modulation of the light output of fluorescent and other arc lamps; including the visible or invisible light output of fluorescent lamps, neon lamps, mercury vapor lamps, high or low-pressure sodium lamps, or other high-intensity discharge lamps, or any metal-halide based lamps.
  • BACKGROUND—DESCRIPTION OF PRIOR ART
  • Several methods for the transmission and reception of data messages exists. Many of these have application to offices, factories, and to buildings or complexes of buildings in general. For example, low-powered radio transmission can be used to transmit and receive data messages within a building, or the optical and infrared spectrum can be used for the transceiving of data.
  • However, the use of radio frequencies requires licensing and coordination for their use. Given the overcrowded radio spectrum in some areas, said licensing may be nearly impossible. In addition, while radio facilitates the transmission of data, in general that data transmission is limited in bandwidth and therefore limited in the speed of transmission. Additionally, radio energy is hard to confine, and there it is not practical to limit data transmission to the confines of any one building or office within a building or office.
  • In contrast, infrared transmission of data has the benefit of no licensing requirement, higher available bandwidth, and ease of confinement. However, as infrared energy is not transparent to walls or other structures, the cost of installation of an independent building-wide infrared-based transmission system is extreme. That is, each office and hallway within a building must be equipped with one or more infrared transmitters in order to provide coverage to the entire building. Each infrared transmitter will require lines for it's operating power and a data line for the data that is to be transmitted, thus requiring a supporting infrastructure that is both extensive and expensive.
  • In addition to wireless optical transmission as examined above, several examples exist of using modulated light in conjunction with optical fibers for the transmission of data, but these do not lend themselves to application to devices that are portable or mobile within buildings or offices.
  • OBJECTS AND ADVANTAGES
  • Accordingly, several objects and advantages of the present invention are:
  • (a) The ability to utilize an existing infrastructure for the transmission of data messages.
  • (b) To facilitate the ability to track and locate a user or device within a facility, with greater accuracy and lower cost compared to existing technologies.
  • (c) To facilitate a rapidly and easily installed wireless transmission system, not requiring licensing.
  • (d) The reduction of radio frequency congestion by reducing or eliminating In-House radio transmissions.
  • (e) The reduction of radio frequency congestion by reducing or eliminating public carrier system paging, messaging, or control channel radio transmissions.
  • (f) To facilitate the command, control, and operation, of radio units in areas of high radio density, by utilizing optical means, thus resulting in greater efficiency and less interference and interruption.
  • (g) To facilitate delivery of messaging and paging services by optical means, whilst an otherwise radio device is transmitting or receiving radio traffic.
  • (h) To facilitate additional radio frequency re-use in a coordinated and controlled radio system.
  • (i) To facilitate the transceiving of user status information, messaging traffic, and other data, on a radio device that otherwise does not support such services.
  • (j) To facilitate greater top-security and privacy communications, through the utilization of the optical means as a physically more-limited distribution channel, for the delivery of changing encryption keys and other security data and signaling, in various secure communications schemes.
  • (k) To facilitate a more transparent operation of PBX systems and equipment.
  • (l) To facilitate the operation of Public Address and audible paging systems that minimize disturbance to others.
  • (m) To facilitate the operation of message paging and personnel/equipment locating systems on military vessels so as to not be detectable by enemy electronic surveillance measures.
  • (n) To facilitate the operation of message paging and personnel/equipment locating systems on metal-constructed vessels, without the interference, reflections, cancellations, echoes, or lapse in coverage, that a radio-based system would otherwise suffer from.
  • Further objects and advantages of my invention will become apparent from a consideration of the drawings and ensuing description.
  • DESCRIPTION OF DRAWINGS
  • FIG. 1 is a block diagram of some possible circuitry for implementation of my invention.
  • FIG. 2A is a graphic representation of the output from a typical fluorescent tube operated by a circuit similar to that represented in FIG. 1.
  • FIG. 2B illustrates one method of data encoding anticipated by my invention: Frequency Shift Keying (FSK).
  • FIG. 3 is a block diagram of the main embodiment of my invention.
  • FIG. 4 diagrams a building floor plan showing a possible arrangement of lighting luminaries incorporating the invention.
  • FIG. 5 illustrates one of many applications of the invention: application to pagers.
  • FIG. 6 is a block diagram of an alternate embodiment of the invention: frequency multiplexed optical transmission.
  • LIST OF REFERENCED NUMERALS
    • 4 Fluorescent Lamp
    • 102 Rectifier, Filter, and Dual-Voltage Power Supply
    • 104 Switching Circuit
    • 106 Microprocessor Control Circuit
    • 108 Transformer
    • 110 Heater Winding ‘A’
    • 112 Heater Winding ‘B’
    • 114 Arc Winding
    • 150 Lamp and Switching Assembly
    • 202 Graph Line
    • 252 Raw Binary Data
    • 254 Binary Voltage Level
    • 256 Lamp Output
    • 258 Frequency Series
    • 302 Power Line Carrier Transceiver
    • 306 Radio Transceiver
    • 402 Fluorescent Ballast Assembly 11
    • 404 Fluorescent Ballast Assembly 12
    • 502 Ceiling
    • 504 Lamp Assembly 1
    • 506 Lamp Assembly 2
    • 508 Pager ‘A’
    • 510 Pager ‘B’
    • 512 Pager ‘C’
    • 602 Lamp and Switching Assembly 1
    • 602 Lamp and Switching Assembly 2
    SUMMARY OF INVENTION
  • This invention proposes to modulate the light generated by gas-discharge lamps, such as fluorescent lamps, mercury vapor lamps, and sodium vapor lamps, commonly found in and around offices and buildings, with control, location, and other data messages. The modulated light is then received by various types and configurations of devices, and used for the determination of their location, to control their operational parameters, or to simply receive data messages.
  • The use of fluorescent lamps and lighting has been widespread in the consumer and industrial market for many years. The vast majority of office buildings and high rises make use of florescent lighting by installing fluorescent fixtures in a grid-like fashion throughout lobby areas, private office space, open planning areas, conference rooms, and hallways. Thus, many buildings have a quasi-zonal light transmitting X-Y grid system that if properly utilized represents an important infrastructural system already in place. I propose to utilize that existing Cartesian infrastructure for the creation of a zone-based data transmission system for use within an office or building.
  • In addition, I propose to utilize that existing infrastructure for the determination of the location of users location within an office or building through the automatic and transparent radio or optical reporting of which fluorescent fixture is closest to a person or other target that is being sought. In this way, the position of a user or target can be determined with greater accuracy than that afforded by indoor radio triangulation or even GPS means (if indoor GPS were practical).
  • In addition to data transmission and determination of location, some, but not all, of the anticipated applications of the method of zonal data transmission by ballast and fluorescent or arc lamps include their use in:
    • Private in-house cellular systems; and
    • Private in-house PCS systems; and
    • Private in-house paging systems; and
    • Office or building-wide wireless data transmission systems; and
    • PBX systems with automatic and transparent “follow-me” functions for forwarding phone calls and faxes; and
    • Zonal PBX or other Public Address or paging systems; and
    • Security and access level badge systems; and
    • On-board commercial and military vessels for use in a safe-and-secure (non-radiating) paging and locating system.
    DESCRIPTION OF INVENTION—MAIN EMBODIMENTS
  • Note that part names as used herein are descriptive only, and should not be taken as limiting their function or purpose. It is important to note that functional blocks in the figures are shown for purposes of discussion only, and nothing therein should be construed to imply their necessary configuration or even presence for my invention to work. In addition, similar embodiments based on infrared, visible, or ultra-violet optical communications, or a combination thereof, or a mix of one spectrum for transmission and a different spectrum for reception, are anticipated by this invention.
  • The main embodiment of the invention describes an fluorescent lamp lighting ballast that uses the output of the lamp or lamps under it's control to transmit data to one or more receivers. The configuration allows for the transmission of fixed data messages, such as a serial number, while allowing for the transmission of data messages that can be modified in the field. This embodiment, while not the most basic embodiment of my invention; is never-the-less one of the more useful and lesser expensive embodiments.
  • It is important to note that several wireline or wireless data exchange techniques exist and can be used with the invention. The data transfer techniques discussed and illustrated herein are for purposes of discussion only, and should not be construed to limit the scope of the invention.
  • FIG. 1 is a diagram showing the basic circuitry necessary to implement a basic embodiment of the invention. Rectifier, Filter, and Dual-Voltage Power Supply (102) typically contains a full-wave diode rectifier and filter that converts the incoming AC mains power from AC to DC power. The rectified and filtered voltage is passed out of the Rectifier, Filter, and Dual-Voltage Power Supply (102) as the high-voltage (150-350 Volt) supply. Also within Rectifier, Filter, and Dual-Voltage Power Supply (102) is a low-voltage circuit that taps some of the high-voltage, regulates it, and then passes it out as a low-voltage (typically around 5 volts DC) supply.
  • The high-voltage supply is passed to Switching Circuit (104). Switching Circuit (104) is under control of the Microprocessor Control Circuit (106). When Microprocessor Control Circuit (106) enables Switching Circuit (104), the high-voltage output from Rectifier, Filter, and Dual-Voltage Power Supply (102) is passed on to the primary windings of Transformer (108).
  • Switching Circuit (104) facilitates Microprocessor Control Circuit (106) controlling the switching rate and waveform of the voltage supplied to Transformer (108), and hence determines the output voltage and waveform from the secondary windings of Transformer(108); namely, Heater Winding ‘A’ (110), Heater Winding ‘B’ (112), and Arc Winding (114).
  • Heater Winding ‘A’ (110), and Heater Winding ‘B’ (112), are lower voltage windings used to supply the voltages necessary for the operation of filament heaters (cathodes) of Fluorescent Tube (4). The higher-voltage output of Arc Winding (114) is coupled to each of the filament windings so as to place a high-voltage potential between the cathodes of Fluorescent Tube (4).
  • Fluorescent Tube (4) is any fluorescent lamp tube or type, including straight or curved heated cathode fluorescent bulbs, compact fluorescent bulbs (CFL), or cold cathode fluorescent bulbs (CCFL). In the actual laboratory demonstration circuits, the Fluorescent Tube (4) first used was a F4T5, and later the circuitry was modified to accommodate two Philips brand F8T5/CW lamps.
  • Microprocessor Control Circuit (106) consists of a core microprocessor circuit, memory circuitry, timing or frequency source and circuitry, and other auxiliary circuitry. The timing source and circuitry is used to clock the microprocessor, and potentially through other circuits, provide the frequencies that will be used for toggle rates of Switching Circuit (104), and therefore the toggle rates of the lamp and associated light output.
  • Microprocessor Control Circuit (106) is powered by the low-voltage output of Rectifier, Filter, and Dual-Voltage Power Supply (102), and also holds the data to be transmitted within the memory circuitry. The memory circuitry can consist of Random Access Memory (RAM) and/or Read-Only Memory (ROM). Both the RAM and ROM can be of any configuration and of any type. The memory is programmed at the factory and/or from one or more sources in the field.
  • Lamp and Switching Assembly (150) represents the switching, transformer, and lamp function blocks as defined herein. That is, Switching Circuit (104), Transformer (108), and Fluorescent Tube (4), are within Lamp and Switching Assembly (150). The Lamp and Switching Assembly (150) function block serves to simplify some of the remaining discussion by not having to repeat the descriptions of repeating common function blocks.
  • FIG. 2A is a graph of the output from a typical fluorescent tube operated on a circuit similar to that diagrammed in FIG. 1. The diagram shows the output from a Philips F8T5/CW fluorescent tube, operated at a 40 kHz flash rate. Graph Line (202) shows that while some noise and harmonic frequencies are present, the basic flash-rate signal is never-the-less evident, and easily recoverable by filtering and limiting.
  • FIG. 2B illustrates one method of data encoding: Frequency Shift Keying (FSK). FSK is chosen here for ease of application and data recovery, but any modulation method is applicable. The use of FSK herein should not be taken as to in any way limit the modulation method anticipated by the invention.
  • For the purposes of this discussion, we will presume that the microprocessor controls an external timing or frequency circuit [outside of the microprocessor, but within the Microprocessor Control Circuit (106) of FIG. 1], that in-turn generates the toggle frequencies for application to Switching Circuit (104) of FIG. 1. However, it should also be noted that the invention also anticipates the microprocessor directly generating the toggle frequencies without the need for an external timing or frequency circuit.
  • The Raw Binary Data (252) to be transmitted is shown to be “101001”. This binary data is typically translated to a logic-level voltage shown therein as Binary Voltage Level (254) generated by the microprocessor. The Binary Voltage Level (254) is then applied to an timing circuit whereby one of two toggle frequencies are generated. The two frequencies are arbitrarily chosen to represent binary 1's and 0's. For our discussion, we will use a toggle frequency of 50 kHz to represent a binary data “1”, and a 40 kHz frequency to represent a binary data “0”.
  • The output of the timing circuit, whether 40 kHz or 50 kHz is applied to Switching Circuit (104) of FIG. 1. The required Frequency Series (258) for the representation of binary data “101001” is shown. These series of frequencies are applied to Switching Circuit (104) of FIG. 1, which in-turn controls the output of the fluorescent lamp. The output of the fluorescent lamp is represented as Lamp Output (256).
  • FIG. 3 is a block diagram of the main embodiment of my invention. Rectifier, Filter, and Dual-Voltage Power Supply (102) performs the same power supply functions as before. Although not shown, the low voltage output of the Rectifier, Filter, and Dual-Voltage Power Supply (102) is distributed to the Power Line Carrier Transceiver (302) circuitry, the Microprocessor Control Circuit (106) circuitry, and the Radio Transceiver (306) circuitry.
  • Power Line Carrier Transceiver (302) is circuitry that receives and transmits either data or audio (or both data and audio) signals by way of a modulated carrier wave superimposed on the power line connections. The use of any carrier frequency with any modulation scheme in the invention is possible, although certain combinations may have limitations that are not acceptable.
  • As a non-limiting example, an Echelon® PLT-10A Power Line Transceiver (manufacturer's model number 50080-02) is a possible choice for use in the Power Line Carrier Transceiver (302) circuitry, and is compatible with a standard that exists in the marketplace. The PLT-10A facilitates a 10 kilobits per second network rate using direct sequence spread-spectrum in the 100 kHz to 450 kHz spectrum. For the purposes of this discussion, the use of an Echelon® PLT-10A Power Line Transceiver would also facilitate operation of the ballast unit on a LonWorks® compatible network which is also a present standard in the marketplace. [Echelon® and LonWorks® are Registered Trademarks of the Echelon Corporation.]
  • Other circuits and variations are possible, including employing discrete parts to produce FM, PCM, or AM modulation of a carrier. The bottom-line significance of the Power Line Carrier Transceiver (302) is that it is a circuit that facilitates communication via the power line wiring, thus allowing communications to and from the ballast invention, without requiring separate communications wiring to be installed to each ballast.
  • As before, Microprocessor Control Circuit (106) is powered by the low-voltage output of Rectifier, Filter, and Dual-Voltage Power Supply (102), and also holds the data to be transmitted within the memory circuitry. The memory circuitry can consist of Random Access Memory (RAM) and/or Read-Only Memory (ROM). Both the RAM and ROM can be of any configuration and of any type. Microprocessor Control Circuit (106) now also receives and transmits data via Power Line Carrier Transceiver (302).
  • Radio Transceiver (306) can receive data or signals from any radio source, and said data or signals are then sent to Microprocessor Control Circuit (106). The data can be used to either program the operation or function of Microprocessor Control Circuit (106), or enter data that is to be stored and later transmitted by Microprocessor Control Circuit (106) via the lighting circuitry, or be transmitted via Power Line Carrier Transceiver (302), or any other use of the data can be made of by Microprocessor Control Circuit (106).
  • Radio Transceiver (306) can also transmit data or signals to any radio receiver that is in range. The transmission of said radio transmitted data or signals is under the control of Microprocessor Control Circuit (106). The radio transmitted data can be used to control or send data to remote devices that may or may not have compatible optical receivers.
  • That is, taken together, FIG. 3 defines a ballast assembly that can transmit and/or receive zonal data by radio means, and not necessarily rely on optical transmission means or pathways.
  • Lamp and Switching Assembly (150) again represents the switching, transformer, and lamp function blocks as defined before in FIG. 1. That is, Switching Circuit (104), Transformer (108), and Fluorescent Tube (4), all of FIG. 1, are within Lamp and Switching Assembly (150).
  • Thus FIG. 3 diagrams a ballast assembly that contains microprocessor and memory circuitry, that can receive data either by radio or power line carrier, and can transmit data either by power line carrier, radio carrier, or by arc lamp output.
  • Note that while the primary spectrum anticipated for application under this invention is optical (visible, infrared, and ultraviolet); the use of the radio and/or electro-magnetic spectrum emissions of fluorescent and other arc lamps is also anticipated as a possible carrier of data for use in the invention. That is, the emissions in the radio spectrum often classified as noise or Radio Frequency Interference (RFI), and the radiation of other electromagnetic spectrum signals often classified as noise or Electro-Magnetic Interference (EFI); are in fact in this invention anticipated as being useful for some applications, and therefore are not necessarily considered to be noise.
  • FIG. 4 diagrams a building floor plan showing a possible arrangement of lighting ballasts incorporating the invention. Fluorescent Ballast Assembly 11 (402) and Fluorescent Ballast Assembly 12 (404) each represents one of the ballast assemblies of the invention. Among the data messages being transmitted by light are their serial numbers as “11” for Fluorescent Ballast Assembly 11 (402), and “12” for Fluorescent Ballast Assembly 12 (404).
  • FIG. 5 illustrates one of many applications of the invention. Ceiling (502) represents the ceiling of a typical office. Lamp Assembly 1 (504) corresponds to Fluorescent Ballast Assembly 11 (402) of FIG. 4, and Lamp Assembly 2 (506) corresponds to Fluorescent Ballast Assembly 12 (404) of FIG. 4.
  • Each of Lamp Assembly 1 (504) and Lamp Assembly 2 (506) are assemblies which house the ballasts and fluorescent lamps as described herein. The ballast of Lamp Assembly 1 (504) is modulating it's fluorescent lamps to output a serial number of “11”. The ballast of Lamp Assembly 2 (506) is modulating it's fluorescent lamps to output a serial number of “12”.
  • Pager A (508), Pager B (510), and Pager C (512), are pagers that are capable of receiving and decoding the optical output of a ballast of the invention.
  • OPERATION OF INVENTION—MAIN EMBODIMENTS
  • Refer to FIG. 1. The power from the AC mains of the building enters into the ballast assembly and is applied to Rectifier, Filter, and Dual-Voltage Power Supply (102) wherein it is rectified and filtered and outputted as two voltages: Low Voltage and High Voltage. The High Voltage is primarily used by the fluorescent lamp operating power supply circuitry to operate Fluorescent Tube (4).
  • Specifically, the High Voltage is switched by Switching Circuit (104) and applied to Transformer (108) where it is boosted and applied to the cathodes of Fluorescent Tube (4). The filaments of Fluorescent Tube (4) also derive their operating voltage from Transformer (108).
  • Specifically, the switched high voltage supply from Switching Circuit (104) is applied to the primary winding of Transformer (108). The higher voltage secondary winding Arc Winding (114), supplies the voltages necessary to form and maintain the arc through Fluorescent Tube (4). The output of Arc Winding (114) are coupled one each to the lower voltage secondary filament windings Heater Winding ‘A’ (110), and Heater Winding ‘B’ (112). Each of Heater Winding ‘A’ (110), and Heater Winding ‘B’ (112) generate the voltages necessary to cause the heater/filaments of Fluorescent Tube (4) to operate.
  • Note that the actual circuitry that is used to operate Fluorescent Tube (4) is not important to this invention in as much as any high voltage fluorescent tube circuitry can be used, so long as the switching rate can be modified under control of the controller or microprocessor circuit. Further note that the actual type of fluorescent or arc lamp that is used as Fluorescent Tube (4) is not important to this invention in as much as any arc lamp bulb will function in the invention, so long as the circuitry and specifications of the voltages and waveforms are so adjusted.
  • The Low Voltage is distributed to Microprocessor Control Circuit (106) and to other circuits and assemblies that are auxiliary to Microprocessor Control Circuit (106). Note that in FIG. 1 that while their are no auxiliary and/or support circuits shown, many are possible, and indeed some are discussed herein.
  • Microprocessor Control Circuit (106) consists of a microprocessor, clock, and other support circuitry, and also includes both operating program memory, and memory used to store data messages that are to be transmitted. The microprocessor in Microprocessor Control Circuit (106) generates signals that are used to control the switching rate of Switching Circuit (104) and thus cause the output of Switching Circuit (104) to frequency shift from one frequency to another. Therefore, the light output of Fluorescent Tube (4) frequency shifts from one frequency to another under the direct control of Microprocessor Control Circuit (106).
  • Note that it is not of importance to the claims of this invention as to how many optical flash rates or frequencies are generated or used, nor as to how those optical flash rates or frequencies are generated. Generation of the optical flash rates or frequencies used herein can be directly as an output of the microprocessor, or by a separate generation circuit under control of the microprocessor. The use of more than two optical flash rates or frequencies to represent more than two data symbols is anticipated by the invention.
  • FIG. 3 represents the main embodiment of the invention, and is an expansion of circuitry as compared to FIG. 1. In FIG. 3: Rectifier, Filter, and Dual-Voltage Power Supply (102); Switching Circuit (104); Microprocessor Control Circuit (106); Transformer (108); and Lamp and Switching Assembly (150); are as described above in the discussion of FIG. 1. Although not shown, the Rectifier, Filter, and Dual-Voltage Power Supply (102) outputs (High and Low Voltages) are distributed as appropriate and as needed to power the circuitry represented in this diagram.
  • As before, the actual circuitry and fluorescent or arc lamp type used within Lamp and Switching Assembly (150) is not of major significance to the invention, and many variations of such circuitry is anticipated.
  • Added here in FIG. 3 is Power Line Carrier Transceiver (302). Power Line Carrier Transceiver (302) is used both to receive data transmitted by a message generating device or controller that is sending message or controlling data over a carrier frequency superimposed on the AC mains, and to transmit back to said message generating device or controller data generated by Microprocessor Control Circuit (106) or data received by other means.
  • Also added here in FIG. 3 is Radio Transceiver (306). Radio Transceiver (306) is a radio transceiver used to monitor and receive radio signals from devices that are compatible with the invention. If so desired and configured, Radio Transceiver (306) can also transmit data or signals to any radio receiver that is in range.
  • The transmission of said radio transmitted data or signals is under the control of Microprocessor Control Circuit (106). The radio transmitted data can be used to control or send data to remote devices that may or may not have compatible optical receivers. Alternatively, Radio Transceiver (306) can be used to transceive zonal data to compatible devices that are within radio range, but not line-of-sight optical range. For example, a remote device that is within a brief case or purse.
  • FIG. 3 then, is a ballast assembly which in part generates microprocessor controlled FSK signals that are effectively amplified and applied to a fluorescent lamp, which in turn generates an optical output that contains at minimum a signature of the originating switching frequency that can be read by remote devices compatible with the invention (reference Graph Line (202) in FIG. 2A). Furthermore, the ballast assembly of FIG. 3 contains a power line carrier transceiver for sending and receiving data via the power line wiring of a building, and a radio transceiver that is capable of transceiving radio signals with remote devices.
  • In application, Microprocessor Control Circuit (106) contains in memory stored data which is to be routinely transmitted. As an example, and without limitation, such data may consist of a lamp assembly serial number, an alpha-numeric string describing the location of the lamp assembly and therefore the location of the device receiving the lamp output, the closest telephone extension to that location, and which audible public address paging zone the user is presently in.
  • Data as described above is routinely transmitted under control of Microprocessor Control Circuit (106), and these data messages are repeated as often as practical.
  • Besides the routine data messages described above, the main embodiment is also capable of receiving other message strings (“Variable Messages”) or command strings by either the receiver in Power Line Carrier Transceiver (302) or Radio Transceiver (306).
  • For example, it is anticipated that a remotely located controlling device (“Base Station”) will generate a Variable Message that is to be broadcasted by one or more ballast assemblies. The Base Station will first format said message string, add the necessary addressing information, and then transmit said string via a power line carrier transmitter to one or more ballasts or power line fed devices that are embodiments of the invention. The addressing information contained in the formatted string is any data header or data type that facilitates the identification of which device or devices compatible with the invention are to transmit the string, how often said string is to be transmitted, which remote devices are to receive the data, as well as other control and/or formatting data that are necessary for operation of the system. Control messages are similarly formatted and processed.
  • In this case, if the embodiment is that of the main embodiment of FIG. 3, the formatted Variable Message is received by the receiver portion of Power Line Carrier Transceiver (302), and then passed to Microprocessor Control Circuit (106) for decoding, storing, and processing. Microprocessor Control Circuit (106) then controls Switching Circuit (104) whereby the voltages (waveforms) applied to Fluorescent Tube (4) cause it (or them, as Fluorescent Tube (4) can represent more than one fluorescent lamp tube) to discharge an optical signal that is frequency shifted (or otherwise modulated) to encode the desired message.
  • Once a remote device (“Target”) receives the optical signal, and successfully decodes the message string, if so designed and commanded the Target will employ a low-power radio transmitter compatible with Radio Transceiver (306) of FIG. 3 to acknowledge the reception of the message, or transmit other data that is requested (such as what is the serial number of the lamp assembly it is presently near).
  • The transmitted radio signal from the Target is received by Radio Transceiver (306), and is decoded and passed to Microprocessor Control Circuit (106). If so designated, Microprocessor Control Circuit (106) causes the transmitter in Power Line Carrier Transceiver (302) to transmit to the appropriate Base Station.
      • In an all radio-wave alternative application, the formatted Variable Message generated by the Base Station is received by the receiver portion of Power Line Carrier Transceiver (302), and then passed to Microprocessor Control Circuit (106) for decoding, storing, and processing. Microprocessor Control Circuit (106) then controls Radio Transceiver (306) and transmits the appropriately formatted radio message.
      • Once a remote device (“Target”) receives the radio signal, and successfully decodes the message string, if so designed and commanded the Target will employ a low-power radio transmitter compatible with Radio Transceiver (306) of FIG. 3 to acknowledge the reception of the message, or transmit other data that is requested (such as what is the serial number of the lamp assembly it is presently near).
      • The transmitted radio signal from the Target is received by Radio Transceiver (306), and is decoded and passed to Microprocessor Control Circuit (106). If so designated, Microprocessor Control Circuit (106) causes the transmitter in Power Line Carrier Transceiver (302) to transmit to the appropriate Base Station.
  • Therefore, in the overall view, the diagram of the main embodiment of FIG. 3 represents circuitry that can handshake and communicate with both Target devices and Base Station devices.
  • FIG. 4 shows a typical office floor plan where in fluorescent lamp assemblies form a quasi X-Y coordinate system. That is, while not precisely symmetrical, fluorescent lamp assemblies in offices and other facilities tend to be well distributed, so that if it is known to which assembly a person or Target is nearest, the location of said Target or person will be determined with reasonable accuracy for most applications.
  • In FIG. 4, Fluorescent Ballast Assembly 11 (402) and Fluorescent Ballast Assembly 12 (404) are both located in Office #1 of Building #1; while the other fluorescent ballast assemblies are not. Therefore, if Fluorescent Ballast Assembly 11 (402) is transmitting it's serial number as “11”, and if a suitably designed Target device is decoding the serial number “11”, then the Target device is next to or very near Fluorescent Ballast Assembly 11 (402), and most probably is within Office #1 of Building #1. Furthermore, the Target device is most probably located in the left or center of said office as viewed in the floor plan of FIG. 4.
  • That is, Fluorescent Ballast Assembly 11 (402) is optically transmitting that it's serial number is “11”, while Fluorescent Ballast Assembly 12 (404) is optically transmitting that it's serial number is “12”. Therefore, any device nearest Fluorescent Ballast Assembly 11 (402) is most probably receiving it's light signal at a higher amplitude than the output of any other lamp assembly, and therefore is decoding the serial number “11”.
  • Note that both Fluorescent Ballast Assembly 11 (402) and Fluorescent Ballast Assembly 12 (404) in this discussion are most probably (but not necessarily) using a modulation method that facilitates a capture effect. That is, whichever light signal is received at the highest amplitude, will supply the optical data that is eventually decoded. Note however, that using timed transmissions with non-capture effect modulation is another method that would also be suitable for application to the invention, and in conjunction with received signal strength measurements could be used to further improve the accuracy of determination of location.
  • FIG. 5 is illustrative of one of the applications of the invention. Pager A (508) is closest to Lamp Assembly 1 (504) and therefore will decode a lamp assembly serial number of “11”. If Pager A (508) is paged, it responds by transmitting an acknowledgment of the page which incorporates the decoded serial number. The transmitted acknowledgment is via an incorporated radio transmitter compatible with the Radio Transceiver (306) of FIG. 3. The ballast assembly then transmits the received pager acknowledgment to the appropriate base or controller station by way of the Power Line Carrier Transceiver (302), also of FIG. 3.
  • In this fashion, the appropriate base or controller station is made aware that Pager A (508), is near Lamp Assembly 1 (504), and therefore the in-building location of Pager A (508) is now known.
  • In similar fashion, Pager C (512) is closest to Lamp Assembly 2 (506). If Pager C (512) is paged, it responds by transmitting an acknowledgment of the page which incorporates the decoded serial number. The transmitted acknowledgment is by an incorporated radio transmitter compatible with the Radio Transceiver (306) of FIG. 3. The ballast assembly then transmits the received pager acknowledgment to the appropriate base or controller station by way of the Power Line Carrier Transceiver (302), also of FIG. 3.
  • In the case of Pager C (510) however, Pager C (510) may be decoding either the serial number of Lamp Assembly 1 (504) or Lamp Assembly 2 (506). Pager C (510) will decode the serial number of whichever lamp assembly the optical detector of Pager C (510) is receiving the strongest.
  • Alternatively, if Lamp Assembly 1 (504) and Lamp Assembly 2 (506) use an amplitude modulation scheme (or other appropriate modulation method), and their transmissions are appropriately staggered in timing windows, both of their serial numbers could be decoded and reported to the appropriate base or control station, along with received signal strengths if the pager is so equipped.
  • OPERATION OF INVENTION—ALTERNATIVE EMBODIMENT—MULTIPLEXED OPERATION
  • Refer to FIG. 6.
  • As discussed previously, the use of more than two optical flash rates or frequencies to simultaneously transmit or represent two or more data symbols is anticipated by the invention, and it is here in FIG. 6 that one such application is demonstrated.
  • As referred to before in the discussion of the main embodiment and in discussion of FIG. 1, the power from the AC mains of the building enters into the ballast assembly and is applied to Rectifier, Filter, and Dual-Voltage Power Supply (102) wherein it is rectified and filtered and outputted as two voltages: Low Voltage and High Voltage.
  • Also as before, the Low Voltage is distributed to Microprocessor Control Circuit (106) and to other circuits and assemblies that are auxiliary to Microprocessor Control Circuit (106). Note that while their are no auxiliary and/or support circuits shown, many are possible, and indeed some have been discussed herein.
  • Microprocessor Control Circuit (106) consists of a microprocessor, clock, and other support circuitry, and also includes both operating program memory, and memory used to store data messages that are to be transmitted. The microprocessor in Microprocessor Control Circuit (106) generates signals that are used to control the switching rate of each of the Lamp and Switching Assembly (150)
  • Each of Lamp and Switching Assembly 1 (602) and Lamp and Switching Assembly 2 (604) represents the switching, transformer, and lamp function blocks as defined as Lamp and Switching Assembly (150) herein. That is, Switching Circuit (104), Transformer (108), and Fluorescent Tube (4), as discussed in the main embodiment, are within each of Lamp and Switching Assembly 1 (602) and Lamp and Switching Assembly 2 (604).
  • Each of the Lamp and Switching Assembly 1 (602) and Lamp and Switching Assembly 2 (604) are operated by Microprocessor Control Circuit (106) so as to use different optical flash rates or frequencies from each other, thus facilitating two independent means of data generation or transmission by optical energy.
  • For example, Lamp and Switching Assembly 1 (602) may operate at 40 kHz and 42 kHz for symbols 0 and 1 respectively, and Lamp and Switching Assembly 2 (604) may operate at 45 kHz and 47 kHz for symbols 0 and 1 respectively.
  • Note that it is not of importance to the claims of this invention as to how the optical flash rates or frequencies are generated or used. Generation of the optical flash rates or frequencies used herein can be directly as an output of the microprocessor, or by a separate generation circuit under control of the microprocessor.
  • CONCLUSIONS, RAMIFICATIONS, AND SCOPE OF INVENTION
  • Accordingly, the reader will see that the incorporation of data transmission by optical-wave means in devices used for the lighting of both working and living areas, facilitates:
    • The ability to utilize an existing infrastructure for the transmission of data messages.
    • The ability to track and locate a user or device within a facility, with greater accuracy and lower cost compared to existing technologies.
    • A rapidly and easily installed wireless transmission system, not requiring licensing.
    • The reduction of radio frequency congestion by reducing or eliminating In-House radio transmissions.
    • The reduction of radio frequency congestion by reducing or eliminating public carrier system paging, messaging, or control channel radio transmissions.
    • The command, control, and operation, of radio units in areas of high radio density, by utilizing optical means, thus resulting in greater efficiency and less interference and interruption.
    • The delivery of messaging and paging services by optical means, whilst an otherwise radio device is transmitting or receiving radio traffic.
    • Additional radio frequency re-use in a coordinated and controlled radio system.
    • The transceiving of user status information, messaging traffic, and other data, to a radio device using optical means.
    • Greater top-security and privacy communications, through the utilization of the optical means as a physically more-limited distribution channel, for the delivery of changing encryption keys and other security data and signaling, in various secure communications schemes.
    • A more transparent operation of PBX systems and equipment.
    • The operation of Public Address and audible paging systems that minimize disturbance to others.
    • The operation of message paging and personnel/equipment locating systems on military vessels so as to not be detectable by enemy electronic surveillance measures.
    • The operation of message paging and personnel/equipment locating systems on metal-constructed vessels, without the interference, reflections, cancellations, echoes, or lapse in coverage, that a radio-based system would otherwise suffer from.
  • Although the descriptions above and herein contain many specificities, these should not be construed as limiting the scope of the invention but as merely providing illustrations of some of the offered embodiments of the invention.
      • For example, the optical communications medium could be in the visible spectrum or the infrared spectrum, or even the ultra-violet spectrum, etc.; any apparatus that makes use of the invention, may incorporate a filter or filters, or other means, so as to limit the outputted light spectrum to one or more of the visible spectrum, the infrared spectrum, or the ultra-violet spectrum; or any apparatus that makes use of the invention, may utilize an arc or discharge lamp that by design limits the outputted light spectrum to one or more of the visible spectrum, the infrared spectrum, or the ultra-violet spectrum.
  • The application of the invention anticipates transmitting data such as:
      • lamp or location serial number
      • location data or messages
      • control data or messages for computing or radio devices
      • local radio communications system data or control messages
      • the re-transmission of public carrier generated radio communications system data or control messages or other operating data or messaging
      • local or wide-area generated paging information
      • positioning or location correction factors
      • messages compatible with the data format or output of or operations of existing satellite positioning systems or other positioning systems or services
      • any distributed control system or service data
      • any other internally or externally generated or derived data.
  • The application of the invention anticipates transmitting data by one or more of several optical modulation schemes, including but not limited to, frequency modulation-based schemes, phase modulation-based schemes, or amplitude modulation-based schemes.
  • The application of the invention further anticipates the receiving of data to be transmitted or used for programming the apparatus, or for controlling the apparatus by both hardwired means such as a serial data port, parallel data port, power-line carrier receiver, power-line carrier transceiver, encoded power-line signaling, or a wired network interface data port; or by wireless means such as a radio receiver, radio transceiver, common carrier radio receiver or transceiver, fiber optic port, optical data port, or infrared data port.
  • The application of the invention further anticipates its use in all types of lighting and lighting fixtures intended for use in living areas, working areas, inside of buildings, outside of buildings, in factories or plants, in single story as well as high-rise buildings, and even in parks and on streets and highways.
  • Further note, that the operation of the invention does not in any way depend upon modulation scheme or carrier frequency, and so application is anticipated to any and all data circuits and optical circuits without restriction. Also note that any combination of the number and type of optical receivers can be utilized with the invention.
  • Finally, note that within the specifications, the word “or” is used both exclusively and inclusively.
  • Accordingly, the scope of the invention should be determined not only by the embodiments and examples illustrated, but also by the appended claims and their legal equivalents.

Claims (13)

1. Any method or apparatus comprising:
controlling means; and
arc lamp or discharge lamp power supply;
said controlling means and power supply designed for living area, working area, building, or architectural lighting use; and
said controlling means and power supply facilitating the optical transmission of digital or analog signaling or data, by means of modulating the electrical frequency and/or phase and/or amplitude of the energy supplied to any one or more connected arc lamps or discharge lamps.
2. The apparatus or method of claim 1, wherein said transmitted data is or includes one or more of serial number, location data or messages, communications or computer or digital device control data or messages, communications or computer or digital device messaging data, local radio communications system data or control messages or other operating data or messaging, public carrier generated radio communications system data or control messages or other operating data or messaging, local or wide-area generated paging information, positioning or location correction factors, messages compatible with the data format or output of or operations of existing satellite positioning systems or other positioning systems or services, any distributed control system or service data, or any other internally or externally generated or derived data.
3. The apparatus or method of claim 1, wherein said modulation is one or more of, or a variation of one or more of, frequency modulation, phase modulation, amplitude modulation, frequency-shift keying modulation, phase-shift keying modulation, differential phase-shift keying modulation, quadrature phase-shift keying modulation, m-ary phase-shift keying modulation, amplitude shift keying, quadrature amplitude modulation, pulse coded modulation, differential pulse code modulation, delta modulation, single-sideband modulation, double-sideband suppressed-carrier modulation, quadrature-carrier modulation, vestigial sideband modulation, minimum-shift modulation; or any other modulating method.
4. The apparatus or method of claim 1, wherein said controlling means and power supply facilitates the receiving of data or controlling inputs by means of one or more of a serial data port, parallel data port, network interface data port, twisted-pair wireline data port, coaxial data port, radio receiver, radio transceiver, common carrier radio receiver or transceiver, power-line carrier receiver, power-line carrier transceiver, encoded power-line signaling, multiplexed data port, fiber optic port, optical data port, or infrared data port.
5. The apparatus or method of claim 1, wherein said controlling means and power supply facilitates the control or operation of one or more of fluorescent lamps, metal halide lamps, mercury vapor lamps, sodium vapor lamps, or neon gas lamps, or any combination of the above arc or discharge lamps, or any arc or discharge lamp in combination with an incandescent lamp.
6. The apparatus or method of claim 1, further including means for transmitting or re-transmitting data, by means other than the optical output of said arc lamp or discharge lamp or lamps; including but not limited to the transmission of data or analog signals by means of radio, optical, or acoustic, or ultrasonic energy.
7. The apparatus or method of claim 1, further including means of recovering, reconstituting, or generating audio signals; and
further including zero, one, or more means for audio amplification, and/or audio switching, and/or audio control; and/or audio transducers.
8. The apparatus or method of claim 1, wherein the intended living area, working area, building, or architectural lighting use or application includes, but is not limited to, for use in lighting: offices, hallways, reception areas, rest rooms, meeting rooms, rooms using modular or movable office walls, waiting rooms, escalators and elevators, security areas, manufacturing facilities, assembly facilities, laboratory rooms or areas, garaging or storage facilities, warehouse areas or facilities, control rooms, outside walkways, car ports and car parks, outside parks and play areas, store malls and other shopping areas or facilities, outside building walls, outside tree and grass areas, streets, highways or roadways, airport or harbor areas, shipboard or vessel rooms or offices or areas, or any indoor or outdoor landscaped areas.
9. The apparatus or method of claim 1, wherein said apparatus includes sockets or other connecting means for one or more arc lamps or discharge lamps, and may or may not include means for focusing, reflecting, or controlling the light output from such apparatus.
10. The method and apparatus of claim 1, wherein the primary, secondary, or tertiary light output of arc lamps or discharge lamps intended for use with such method and apparatus, is in one or more of the infrared, visible, or ultraviolet spectrums.
11. Any lamp ballast comprising:
controlling means; and
arc lamp or discharge lamp power supply;
said ballast designed for living area, working area, building, or architectural lighting use; and
said controlling means and power supply facilitating the optical transmission of digital or analog signaling or data, by means of modulating the electrical frequency and/or phase and/or amplitude of the energy supplied to any one or more connected arc lamps or discharge lamps.
12. Any apparatus or method comprising:
power supply for arc lamp or discharge lamp lighting use; and
electronic controlling means; and
means for radio transmission or reception; and/or
means for acoustic or ultrasonic transmission or reception.
13-14. (canceled)
US11/154,317 1996-12-24 2005-06-16 Method and apparatus for the zonal transmission of data using building lighting fixtures Abandoned US20050231128A1 (en)

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US11/154,317 US20050231128A1 (en) 1997-01-02 2005-06-16 Method and apparatus for the zonal transmission of data using building lighting fixtures
US11/351,308 US7352972B2 (en) 1997-01-02 2006-02-09 Method and apparatus for the zonal transmission of data using building lighting fixtures
US11/982,304 US20090226176A1 (en) 1997-01-02 2007-10-31 Method and apparatus for the zonal transmission of data using building lighting fixtures
US12/799,221 US20110006877A1 (en) 1997-01-02 2010-04-20 Method and apparatus for the zonal transmission of data using building lighting fixtures
US13/750,219 US20130243425A1 (en) 1996-12-24 2013-01-25 Method and apparatus for the zonal transmission of data using building lighting fixtures
US14/163,199 US20140285091A1 (en) 1996-12-24 2014-01-24 Method and apparatus for the zonal transmission of data using building lighting fixtures

Applications Claiming Priority (3)

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US3417697P 1997-01-02 1997-01-02
US08/997,570 US7006768B1 (en) 1997-01-02 1997-12-23 Method and apparatus for the zonal transmission of data using building lighting fixtures
US11/154,317 US20050231128A1 (en) 1997-01-02 2005-06-16 Method and apparatus for the zonal transmission of data using building lighting fixtures

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US10/956,449 Continuation US20050169643A1 (en) 1996-12-24 2004-10-01 Method and apparatus for the zonal transmission of data using building lighting fixtures

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US11/351,308 Continuation-In-Part US7352972B2 (en) 1996-12-24 2006-02-09 Method and apparatus for the zonal transmission of data using building lighting fixtures
US11/982,304 Continuation-In-Part US20090226176A1 (en) 1996-12-24 2007-10-31 Method and apparatus for the zonal transmission of data using building lighting fixtures

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Cited By (28)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20040232849A1 (en) * 2003-05-22 2004-11-25 Roach Peter O. Methods and apparatuses for mounting a wireless network component to a fluorescent light
US20040263091A1 (en) * 2001-12-21 2004-12-30 Deurloo Oscar J. Electronic ballast with low voltage output
US20050248294A1 (en) * 2004-05-10 2005-11-10 Koito Manufacturing Co., Ltd. Vehicular lamp
US20050264225A1 (en) * 2003-05-22 2005-12-01 Nxsteps Communications Deriving power for an external device from a fluorescent light power source
DE102006003846A1 (en) * 2006-01-26 2007-08-09 Siemens Ag Device and method for transmitting at least one secret parameter within a room and an arrangement with at least one transmitter and one room
EP1821580A2 (en) * 2006-02-21 2007-08-22 Patent-Treuhand-Gesellschaft für elektrische Glühlampen mbH Electronic cut-in unit for lamp current modulation
US20080143546A1 (en) * 2006-12-18 2008-06-19 General Electric Company Locating system and method
US20090026966A1 (en) * 2006-03-07 2009-01-29 Koninklijke Philips Electronics N V Lighting system with lighting units using optical communication
US20090284366A1 (en) * 2008-05-14 2009-11-19 Sony Ericsson Mobile Communications Ab System and method for determining positioning information via modulated light
US20100196018A1 (en) * 2007-09-26 2010-08-05 Koninklijke Philips Electronics N.V. Method and device for comunicating data using a light source
WO2010150169A1 (en) * 2009-06-24 2010-12-29 Koninklijke Philips Electronics N.V. Method and device for programming a microcontroller
WO2011001296A1 (en) * 2009-06-30 2011-01-06 Koninklijke Philips Electronics N.V. Method and device for driving a lamp
WO2013061206A3 (en) * 2011-10-25 2013-06-27 Koninklijke Philips Electronics N.V. Methods and apparatus for controlling a lighting fixture utilizing a communication protocol
US20140037295A1 (en) * 2007-05-24 2014-02-06 Federal Law Enforcement Development Services, Inc. Led light broad band over power line communication system
WO2014060853A1 (en) * 2012-10-16 2014-04-24 Koninklijke Philips N.V. Methods and apparatus for communication over a three-phase power system utilizing a communication protocol
CN103917010A (en) * 2013-01-03 2014-07-09 佳駩科技股份有限公司 Emergency lighting device and method thereof
US9258864B2 (en) 2007-05-24 2016-02-09 Federal Law Enforcement Development Services, Inc. LED light control and management system
US9265112B2 (en) 2013-03-13 2016-02-16 Federal Law Enforcement Development Services, Inc. LED light control and management system
US9294198B2 (en) 2007-05-24 2016-03-22 Federal Law Enforcement Development Services, Inc. Pulsed light communication key
US9413457B2 (en) 2000-11-15 2016-08-09 Federal Law Enforcement Development Services, Inc. LED light communication system
US9414458B2 (en) 2007-05-24 2016-08-09 Federal Law Enforcement Development Services, Inc. LED light control assembly and system
US9455783B2 (en) 2013-05-06 2016-09-27 Federal Law Enforcement Development Services, Inc. Network security and variable pulse wave form with continuous communication
US9461748B2 (en) 2007-05-24 2016-10-04 Federal Law Enforcement Development Services, Inc. LED light fixture
US9654163B2 (en) 2009-04-01 2017-05-16 Federal Law Enforcement Development Services, Inc. Visible light transceiver glasses
CN108076567A (en) * 2016-11-07 2018-05-25 上海伊斯曼电气股份有限公司 One kind is used for lift cage illumination power-economizing method
US10448472B2 (en) 2015-08-11 2019-10-15 Federal Law Enforcement Development Services, Inc. Function disabler device and system
US11265082B2 (en) 2007-05-24 2022-03-01 Federal Law Enforcement Development Services, Inc. LED light control assembly and system
US11783345B2 (en) 2014-01-15 2023-10-10 Federal Law Enforcement Development Services, Inc. Cyber life electronic networking and commerce operating exchange

Families Citing this family (45)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8886053B2 (en) 1998-04-15 2014-11-11 Koninklijke Philips N.V. Multi-frequency dual-use system
US8150268B1 (en) * 1998-04-15 2012-04-03 Koninklijke Philips Electronics N.V. Multi-frequency dual-use system
US7852837B1 (en) 2003-12-24 2010-12-14 At&T Intellectual Property Ii, L.P. Wi-Fi/BPL dual mode repeaters for power line networks
WO2005086375A1 (en) * 2004-03-03 2005-09-15 Nec Corporation Positioning system, positioning method, and program thereof
US7689130B2 (en) * 2005-01-25 2010-03-30 Koninklijke Philips Electronics N.V. Method and apparatus for illumination and communication
US7623042B2 (en) 2005-03-14 2009-11-24 Regents Of The University Of California Wireless network control for building lighting system
JP4689412B2 (en) * 2005-08-31 2011-05-25 京セラ株式会社 Transmitting apparatus and communication system
DE102006024421B3 (en) * 2006-05-24 2007-10-25 Siemens Ag Data transmission method, involves emitting radiation such as infrared or ultraviolet radiation, with respective intensities in temporal unit by radiation sources e.g. LED, where radiation contains single wavelength
JP2008227944A (en) * 2007-03-13 2008-09-25 Toshiba Corp Receiving apparatus for visible light communication, and visible light communication system
ES2624798T3 (en) * 2007-07-16 2017-07-17 Philips Lighting Holding B.V. Management of a light source
US8364325B2 (en) * 2008-06-02 2013-01-29 Adura Technologies, Inc. Intelligence in distributed lighting control devices
US8275471B2 (en) 2009-11-06 2012-09-25 Adura Technologies, Inc. Sensor interface for wireless control
US20100114340A1 (en) 2008-06-02 2010-05-06 Charles Huizenga Automatic provisioning of wireless control systems
US7839017B2 (en) * 2009-03-02 2010-11-23 Adura Technologies, Inc. Systems and methods for remotely controlling an electrical load
US10210750B2 (en) 2011-09-13 2019-02-19 Lutron Electronics Co., Inc. System and method of extending the communication range in a visible light communication system
US9276766B2 (en) 2008-09-05 2016-03-01 Ketra, Inc. Display calibration systems and related methods
US8773336B2 (en) 2008-09-05 2014-07-08 Ketra, Inc. Illumination devices and related systems and methods
US9509525B2 (en) 2008-09-05 2016-11-29 Ketra, Inc. Intelligent illumination device
US8374507B2 (en) * 2009-09-18 2013-02-12 Fluke Corporation Digital multimeter having remote display with automatic communication binding
US20110299854A1 (en) * 2010-06-07 2011-12-08 Greenwave Reality, Inc. Light Bulb with IR Transmitter
US9386668B2 (en) * 2010-09-30 2016-07-05 Ketra, Inc. Lighting control system
USRE49454E1 (en) * 2010-09-30 2023-03-07 Lutron Technology Company Llc Lighting control system
US9192019B2 (en) 2011-12-07 2015-11-17 Abl Ip Holding Llc System for and method of commissioning lighting devices
USRE48955E1 (en) 2013-08-20 2022-03-01 Lutron Technology Company Llc Interference-resistant compensation for illumination devices having multiple emitter modules
US9360174B2 (en) 2013-12-05 2016-06-07 Ketra, Inc. Linear LED illumination device with improved color mixing
US9345097B1 (en) 2013-08-20 2016-05-17 Ketra, Inc. Interference-resistant compensation for illumination devices using multiple series of measurement intervals
US9769899B2 (en) 2014-06-25 2017-09-19 Ketra, Inc. Illumination device and age compensation method
US9578724B1 (en) 2013-08-20 2017-02-21 Ketra, Inc. Illumination device and method for avoiding flicker
USRE48956E1 (en) 2013-08-20 2022-03-01 Lutron Technology Company Llc Interference-resistant compensation for illumination devices using multiple series of measurement intervals
US9651632B1 (en) 2013-08-20 2017-05-16 Ketra, Inc. Illumination device and temperature calibration method
US9247605B1 (en) 2013-08-20 2016-01-26 Ketra, Inc. Interference-resistant compensation for illumination devices
US9332598B1 (en) 2013-08-20 2016-05-03 Ketra, Inc. Interference-resistant compensation for illumination devices having multiple emitter modules
US9736895B1 (en) 2013-10-03 2017-08-15 Ketra, Inc. Color mixing optics for LED illumination device
CN105830367B (en) * 2013-12-27 2018-12-11 松下电器(美国)知识产权公司 Visible light communication method, identification signal and reception device
US9392663B2 (en) 2014-06-25 2016-07-12 Ketra, Inc. Illumination device and method for controlling an illumination device over changes in drive current and temperature
US10161786B2 (en) 2014-06-25 2018-12-25 Lutron Ketra, Llc Emitter module for an LED illumination device
US9557214B2 (en) 2014-06-25 2017-01-31 Ketra, Inc. Illumination device and method for calibrating an illumination device over changes in temperature, drive current, and time
US9736903B2 (en) 2014-06-25 2017-08-15 Ketra, Inc. Illumination device and method for calibrating and controlling an illumination device comprising a phosphor converted LED
US9392660B2 (en) 2014-08-28 2016-07-12 Ketra, Inc. LED illumination device and calibration method for accurately characterizing the emission LEDs and photodetector(s) included within the LED illumination device
US9510416B2 (en) 2014-08-28 2016-11-29 Ketra, Inc. LED illumination device and method for accurately controlling the intensity and color point of the illumination device over time
US9485813B1 (en) 2015-01-26 2016-11-01 Ketra, Inc. Illumination device and method for avoiding an over-power or over-current condition in a power converter
JP6504448B2 (en) * 2015-06-01 2019-04-24 パナソニックIpマネジメント株式会社 Modulator and luminaire
JP6593681B2 (en) 2015-06-02 2019-10-23 パナソニックIpマネジメント株式会社 Modulator, light emitting device, and light emitting system
US10117316B1 (en) * 2017-10-13 2018-10-30 Osram Sylvania Inc. Rotating identifications in light-based positioning systems
US11272599B1 (en) 2018-06-22 2022-03-08 Lutron Technology Company Llc Calibration procedure for a light-emitting diode light source

Citations (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4493114A (en) * 1983-05-02 1985-01-08 The United States Of America As Represented By The Secretary Of The Navy Optical non-line-of-sight covert, secure high data communication system
US4856090A (en) * 1984-05-22 1989-08-08 Canon Kabushiki Kaisha Light communication equipment
US5193201A (en) * 1990-04-23 1993-03-09 Tymes Laroy System for converting a received modulated light into both power for the system and image data displayed by the system
US5321542A (en) * 1990-10-29 1994-06-14 International Business Machines Corporation Control method and apparatus for wireless data link
US5424859A (en) * 1992-09-24 1995-06-13 Nippon Telegraph And Telephone Corp. Transceiver for wireless in-building communication sytem
US5635915A (en) * 1989-04-18 1997-06-03 Ilid Pty. Ltd. Transmission system
US5719567A (en) * 1995-05-30 1998-02-17 Victor J. Norris, Jr. System for enhancing navigation and surveillance in low visibility conditions
US5838116A (en) * 1996-04-15 1998-11-17 Jrs Technology, Inc. Fluorescent light ballast with information transmission circuitry
US5903373A (en) * 1996-07-03 1999-05-11 Spectrix Corporation Method and apparatus for locating a transmitter of a diffuse infrared signal within an enclosed area
US6198230B1 (en) * 1998-04-15 2001-03-06 Talking Lights Dual-use electronic transceiver set for wireless data networks
US6400482B1 (en) * 1998-04-15 2002-06-04 Talking Lights, Llc Communication system
US6426599B1 (en) * 1999-04-14 2002-07-30 Talking Lights, Llc Dual-use electronic transceiver set for wireless data networks
US6504633B1 (en) * 1998-04-15 2003-01-07 Talking Lights Analog and digital electronic receivers for dual-use wireless data networks
US6794831B2 (en) * 1998-04-15 2004-09-21 Talking Lights Llc Non-flickering illumination based communication

Patent Citations (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4493114A (en) * 1983-05-02 1985-01-08 The United States Of America As Represented By The Secretary Of The Navy Optical non-line-of-sight covert, secure high data communication system
US4856090A (en) * 1984-05-22 1989-08-08 Canon Kabushiki Kaisha Light communication equipment
US5635915A (en) * 1989-04-18 1997-06-03 Ilid Pty. Ltd. Transmission system
US5193201A (en) * 1990-04-23 1993-03-09 Tymes Laroy System for converting a received modulated light into both power for the system and image data displayed by the system
US5321542A (en) * 1990-10-29 1994-06-14 International Business Machines Corporation Control method and apparatus for wireless data link
US5424859A (en) * 1992-09-24 1995-06-13 Nippon Telegraph And Telephone Corp. Transceiver for wireless in-building communication sytem
US5719567A (en) * 1995-05-30 1998-02-17 Victor J. Norris, Jr. System for enhancing navigation and surveillance in low visibility conditions
US5838116A (en) * 1996-04-15 1998-11-17 Jrs Technology, Inc. Fluorescent light ballast with information transmission circuitry
US5903373A (en) * 1996-07-03 1999-05-11 Spectrix Corporation Method and apparatus for locating a transmitter of a diffuse infrared signal within an enclosed area
US6198230B1 (en) * 1998-04-15 2001-03-06 Talking Lights Dual-use electronic transceiver set for wireless data networks
US6400482B1 (en) * 1998-04-15 2002-06-04 Talking Lights, Llc Communication system
US6504633B1 (en) * 1998-04-15 2003-01-07 Talking Lights Analog and digital electronic receivers for dual-use wireless data networks
US6794831B2 (en) * 1998-04-15 2004-09-21 Talking Lights Llc Non-flickering illumination based communication
US6426599B1 (en) * 1999-04-14 2002-07-30 Talking Lights, Llc Dual-use electronic transceiver set for wireless data networks

Cited By (81)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9413457B2 (en) 2000-11-15 2016-08-09 Federal Law Enforcement Development Services, Inc. LED light communication system
US7468878B2 (en) * 2001-12-21 2008-12-23 Koninklijke Philips Electronics N.V. Low voltage output for an electronic ballast
US20040263091A1 (en) * 2001-12-21 2004-12-30 Deurloo Oscar J. Electronic ballast with low voltage output
US20050264224A1 (en) * 2003-05-22 2005-12-01 Nxsteps Communications Fluorescent light power source for supplying power to an external device
US7514876B2 (en) 2003-05-22 2009-04-07 Nxsteps Communications Power source mounted to a fluorescent light
US20050264220A1 (en) * 2003-05-22 2005-12-01 Nxsteps Communications Power source mounted to a fluorescent light
US7067982B2 (en) * 2003-05-22 2006-06-27 Nxsteps Communications Deriving power for an external device from a fluorescent light power source
US7084574B2 (en) * 2003-05-22 2006-08-01 Nxsteps Communication, Inc. Fluorescent light power source for supplying power to an external device
US7247994B2 (en) 2003-05-22 2007-07-24 Nxsteps Communications Methods and apparatuses for mounting a wireless network component to a fluorescent light
US20040232849A1 (en) * 2003-05-22 2004-11-25 Roach Peter O. Methods and apparatuses for mounting a wireless network component to a fluorescent light
US20050264225A1 (en) * 2003-05-22 2005-12-01 Nxsteps Communications Deriving power for an external device from a fluorescent light power source
US20050248294A1 (en) * 2004-05-10 2005-11-10 Koito Manufacturing Co., Ltd. Vehicular lamp
DE102006003846A1 (en) * 2006-01-26 2007-08-09 Siemens Ag Device and method for transmitting at least one secret parameter within a room and an arrangement with at least one transmitter and one room
EP1821580A2 (en) * 2006-02-21 2007-08-22 Patent-Treuhand-Gesellschaft für elektrische Glühlampen mbH Electronic cut-in unit for lamp current modulation
EP1821580A3 (en) * 2006-02-21 2011-03-16 Patent-Treuhand-Gesellschaft für elektrische Glühlampen mbH Electronic cut-in unit for lamp current modulation
US20090026966A1 (en) * 2006-03-07 2009-01-29 Koninklijke Philips Electronics N V Lighting system with lighting units using optical communication
US8249462B2 (en) 2006-03-07 2012-08-21 Koninklijke Philips Electronics N.V. Lighting system with lighting units using optical communication
US20080143546A1 (en) * 2006-12-18 2008-06-19 General Electric Company Locating system and method
US10250329B1 (en) 2007-05-24 2019-04-02 Federal Law Enforcement Development Services, Inc. LED light fixture
US9252883B2 (en) 2007-05-24 2016-02-02 Federal Law Enforcement Development Services, Inc. LED light global positioning and routing communication system
US11664895B2 (en) 2007-05-24 2023-05-30 Federal Law Enforcement Development Services, Inc. LED light control assembly and system
US9660726B2 (en) * 2007-05-24 2017-05-23 Federal Law Enforcement Development Services, Inc. LED light broad band over power line communication system
US9768868B2 (en) 2007-05-24 2017-09-19 Federal Law Enforcement Development Services, Inc. LED light dongle communication system
US11664897B2 (en) 2007-05-24 2023-05-30 Federal Law Enforcement Development Services, Inc. LED light fixture
US9967030B2 (en) 2007-05-24 2018-05-08 Federal Law Enforcement Development Services, Inc. Building illumination apparatus with integrated communications, security and energy management
US11265082B2 (en) 2007-05-24 2022-03-01 Federal Law Enforcement Development Services, Inc. LED light control assembly and system
US20140037295A1 (en) * 2007-05-24 2014-02-06 Federal Law Enforcement Development Services, Inc. Led light broad band over power line communication system
US11201672B2 (en) 2007-05-24 2021-12-14 Federal Law Enforcement Development Services, Inc. LED light fixture
US10911144B2 (en) 2007-05-24 2021-02-02 Federal Law Enforcement Development Services, Inc. LED light broad band over power line communication system
US8886045B2 (en) * 2007-05-24 2014-11-11 Federal Law Enforcement Development Services, Inc. LED light broad band over power line communication system
US10820391B2 (en) 2007-05-24 2020-10-27 Federal Law Enforcement Development Services, Inc. LED light control assembly and system
US20150055959A1 (en) * 2007-05-24 2015-02-26 Federal Law Enforcement Development Services, Inc. Led light broad band over power line communication system
US10812186B2 (en) 2007-05-24 2020-10-20 Federal Law Enforcement Development Services, Inc. LED light fixture
US10374706B2 (en) 2007-05-24 2019-08-06 Federal Law Enforcement Development Services, Inc. LED light broad band over power line communication system
US9246594B2 (en) 2007-05-24 2016-01-26 Federal Law Enforcement Development Services, Inc. LED light dongle communication system
US9755743B2 (en) 2007-05-24 2017-09-05 Federal Law Enforcement Development Services, Inc. LED light global positioning and routing communication system
US9258864B2 (en) 2007-05-24 2016-02-09 Federal Law Enforcement Development Services, Inc. LED light control and management system
US9577760B2 (en) 2007-05-24 2017-02-21 Federal Law Enforcement Development Services, Inc. Pulsed light communication key
US9294198B2 (en) 2007-05-24 2016-03-22 Federal Law Enforcement Development Services, Inc. Pulsed light communication key
US10090925B2 (en) 2007-05-24 2018-10-02 Federal Law Enforcement Development Services, Inc. LED light fixture
US9363018B2 (en) 2007-05-24 2016-06-07 Federal Law Enforcement Development Services, Inc. LED light interior room and building communication system
US9413459B2 (en) 2007-05-24 2016-08-09 Federal Law Enforcement Development Services, Inc. LED light dongle communication system
US10051714B2 (en) 2007-05-24 2018-08-14 Federal Law Enforcement Development Services, Inc. LED light control assembly and system
US9414458B2 (en) 2007-05-24 2016-08-09 Federal Law Enforcement Development Services, Inc. LED light control assembly and system
US10050705B2 (en) 2007-05-24 2018-08-14 Federal Law Enforcement Development Services, Inc. LED light interior room and building communication system
US9461748B2 (en) 2007-05-24 2016-10-04 Federal Law Enforcement Development Services, Inc. LED light fixture
US9461740B2 (en) 2007-05-24 2016-10-04 Federal Law Enforcement Development Services, Inc. Building illumination apparatus with integrated communications, security and energy management
US8331796B2 (en) * 2007-09-26 2012-12-11 Koninklijke Philips Electronics N.V. Method and device for communicating data using a light source
US20100196018A1 (en) * 2007-09-26 2010-08-05 Koninklijke Philips Electronics N.V. Method and device for comunicating data using a light source
WO2009139796A1 (en) * 2008-05-14 2009-11-19 Sony Ericsson Mobile Communications Ab System and method for determining position information via modulated visible light
US20090284366A1 (en) * 2008-05-14 2009-11-19 Sony Ericsson Mobile Communications Ab System and method for determining positioning information via modulated light
US7969297B2 (en) 2008-05-14 2011-06-28 Sony Ericsson Mobile Communications Ab System and method for determining positioning information via modulated light
US9654163B2 (en) 2009-04-01 2017-05-16 Federal Law Enforcement Development Services, Inc. Visible light transceiver glasses
US10411746B2 (en) 2009-04-01 2019-09-10 Federal Law Enforcement Development Services, Inc. Visible light communication transceiver glasses
US11424781B2 (en) 2009-04-01 2022-08-23 Federal Law Enforcement Development Services, Inc. Visible light communication transceiver glasses
US10763909B2 (en) 2009-04-01 2020-09-01 Federal Law Enforcement Development Services, Inc. Visible light communication transceiver glasses
WO2010150169A1 (en) * 2009-06-24 2010-12-29 Koninklijke Philips Electronics N.V. Method and device for programming a microcontroller
CN102804925A (en) * 2009-06-24 2012-11-28 皇家飞利浦电子股份有限公司 Method and device for programming a microcontroller
US9345113B2 (en) 2009-06-24 2016-05-17 Koninklijke Philips N.V. Method and device for programming a microcontroller
WO2011001296A1 (en) * 2009-06-30 2011-01-06 Koninklijke Philips Electronics N.V. Method and device for driving a lamp
US9025966B2 (en) 2009-06-30 2015-05-05 Koninklijkle Philips N.V. Method and device for driving a lamp
CN104255083A (en) * 2011-10-25 2014-12-31 皇家飞利浦有限公司 Methods and apparatus for controlling a lighting fixture utilizing a communication protocol
US9532433B2 (en) 2011-10-25 2016-12-27 Philips Lighting Holding B.V. Methods and apparatus for controlling a lighting fixture utilizing a communication protocol
RU2630220C2 (en) * 2011-10-25 2017-09-06 Филипс Лайтинг Холдинг Б.В. Methods and device for lighting device control, using the communication protocol
WO2013061206A3 (en) * 2011-10-25 2013-06-27 Koninklijke Philips Electronics N.V. Methods and apparatus for controlling a lighting fixture utilizing a communication protocol
WO2014060853A1 (en) * 2012-10-16 2014-04-24 Koninklijke Philips N.V. Methods and apparatus for communication over a three-phase power system utilizing a communication protocol
CN104704921A (en) * 2012-10-16 2015-06-10 皇家飞利浦有限公司 Methods and apparatus for communication over a three-phase power system utilizing a communication protocol
CN103917010A (en) * 2013-01-03 2014-07-09 佳駩科技股份有限公司 Emergency lighting device and method thereof
US9265112B2 (en) 2013-03-13 2016-02-16 Federal Law Enforcement Development Services, Inc. LED light control and management system
US9655189B2 (en) 2013-03-13 2017-05-16 Federal Law Enforcement Development Services, Inc. LED light control and management system
US9455783B2 (en) 2013-05-06 2016-09-27 Federal Law Enforcement Development Services, Inc. Network security and variable pulse wave form with continuous communication
US11018774B2 (en) 2013-05-06 2021-05-25 Federal Law Enforcement Development Services, Inc. Network security and variable pulse wave form with continuous communication
US10205530B2 (en) 2013-05-06 2019-02-12 Federal Law Enforcement Development Services, Inc. Network security and variable pulse wave form with continuous communication
US11552712B2 (en) 2013-05-06 2023-01-10 Federal Law Enforcement Development Services, Inc. Network security and variable pulse wave form with continuous communication
US11824586B2 (en) 2013-05-06 2023-11-21 Federal Law Enforcement Development Services, Inc. Network security and variable pulse wave form with continuous communication
US11783345B2 (en) 2014-01-15 2023-10-10 Federal Law Enforcement Development Services, Inc. Cyber life electronic networking and commerce operating exchange
US11200794B2 (en) 2015-08-11 2021-12-14 Federal Law Enforcement Development Services, Inc. Function disabler device and system
US10932337B2 (en) 2015-08-11 2021-02-23 Federal Law Enforcement Development Services, Inc. Function disabler device and system
US11651680B2 (en) 2015-08-11 2023-05-16 Federal Law Enforcement Development Services, Inc. Function disabler device and system
US10448472B2 (en) 2015-08-11 2019-10-15 Federal Law Enforcement Development Services, Inc. Function disabler device and system
CN108076567A (en) * 2016-11-07 2018-05-25 上海伊斯曼电气股份有限公司 One kind is used for lift cage illumination power-economizing method

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