Claims
- 1. An electronic ballast for driving a gas discharge lamp, comprising:
an inverter circuit for producing a high frequency drive voltage to drive a lamp current in said gas discharge lamp; a controller, coupled to said inverter circuit for control of said inverter circuit; a digital communication port, coupled to said controller and operable to be connected to a digital communication link; an infrared communication port, coupled to said controller and operable to receive a signal representative of an infrared data signal transmitted from an infrared transmitter; and a memory, coupled to said controller and operable to store an address of said ballast; wherein said signal representative of said infrared data comprises said address and said controller is operable to store said address in said memory; and wherein said address identifies said ballast when said ballast is connected to said digital communication link.
- 2. The electronic ballast of claim 1, wherein said signal representative of said infrared signal comprises a first command and said controller is operable to cause said ballast to enter a programming mode upon receipt of said first command.
- 3. The electronic ballast of claim 2, wherein said controller is operable to cause said inverter circuit to flash said lamp at a first rate after said ballast has entered said programming mode.
- 4. The electronic ballast of claim 3, wherein said signal representative of said infrared signal comprises a second command and said controller is operable to cause said ballast to enter an addressing mode upon receipt of said second command.
- 5. The electronic ballast of claim 4, wherein said controller is operable to cause said inverter circuit to flash said lamp at a second rate after the ballast has entered said addressing mode.
- 6. The electronic ballast of claim 5, wherein said second rate is faster than said first rate.
- 7. The electronic ballast of claim 5, wherein said signal representative of said infrared signal comprises a third command and said controller is operable to cause said ballast to exit said programming mode upon receipt of said third command.
- 8. The electronic ballast of claim 1, wherein said infrared communication port comprises an infrared receiver.
- 9. The electronic ballast of claim 8, wherein said infrared communication port further comprises a lightpipe for facilitating the transmission of said infrared data signal from said infrared transmitter to said infrared receiver.
- 10. The electronic ballast of claim 9, wherein said lightpipe comprises a polyurethane tube.
- 11. The electronic ballast of claim 9, wherein said lightpipe comprises a THV terpolymer tube.
- 12. The electronic ballast of claim 8, wherein said infrared communication port further comprises a lens for facilitating the transmission of said infrared data signal from said infrared transmitter to said infrared receiver.
- 13. The electronic ballast of claim 1, wherein said infrared communication port is operable to receive a control signal from an infrared receiver external to said ballast and said control signal is representative of said infrared data signal.
- 14. The electronic ballast of claim 1, wherein said digital communication link is a DALI communication link.
- 15. A lighting control system, comprising:
an infrared transmitter, operable to transmit an infrared data signal; a load control device, operable to control a lighting load and comprising a memory for storing an address; said load control device operable to receive a signal representative of said infrared data signal comprising said address and store said address in said memory; said load control devices adapted to be connected to a digital communication link.
- 16. The lighting control system of claim 15, wherein said signal representative of said infrared data signal comprises a first command and said load control device is operable to enter a programming mode upon receipt of said first command.
- 17. The lighting control system of claim 16, wherein said control device causes said lighting load to flash at a first rate after said device has entered said programming mode.
- 18. The lighting control system of claim 17, wherein said signal representative of said infrared data signal comprises a second command and said load control device is operable to enter an addressing mode upon receipt of said second command.
- 19. The lighting control system of claim 18, wherein said control device causes said lighting load to flash at a second rate after said device has entered said addressing mode.
- 20. The lighting control system of claim 19, wherein said second rate is faster than said first rate.
- 21. The lighting control system of claim 19, wherein said signal representative of said infrared data signal comprises a third command and said control device is operable to exit said programming mode upon receipt of said third command.
- 22. The lighting control system of claim 15, further comprising an infrared receiver, coupled to said ballast; said infrared receiver operable to receive said infrared data signal.
- 23. The lighting control system of claim 22, wherein said infrared receiver is operable to output to said ballast a control signal representative of said infrared data signal.
- 24. The lighting control system of claim 23, wherein said infrared receiver comprises a lightpipe for facilitating the transmission of said infrared data signal from said infrared transmitter to said infrared receiver.
- 25. The lighting control system of claim 23, wherein said infrared receiver comprises a lens for facilitating the transmission of said infrared data signal from said infrared transmitter to said infrared receiver.
- 26. The lighting control system of claim 15, wherein said load control device further comprises an infrared receiver, operable to receive said infrared data signal.
- 27. The lighting control system of claim 26, wherein said load control device further comprises a lightpipe for facilitating the transmission of said infrared data signal from said infrared transmitter to said infrared receiver.
- 28. The lighting control system of claim 26, wherein said load control device further comprises a lens for facilitating the transmission of said infrared data signal from said infrared transmitter to said infrared receiver.
- 29. The lighting control system of claim 15, further comprising said digital communication link and a plurality of load control devices are connected to said digital communication link, wherein eachsaid load control device has a unique address.
- 30. The lighting control system of claim 15, further comprising said digital communication link and a plurality of load control devices are connected to said digital communication link, wherein at least two of said load control devices have an identical address.
- 31. The lighting control system of claim 15, wherein said load control device is a ballast.
- 32. The lighting control system of claim 15, wherein said digital communication link is a DALI communication link.
- 33. A method of setting a link address for a device in communication with a control link from an infrared transmitter via infrared communication, comprising the steps of:
transmitting said link address from said infrared transmitter to said device; and storing said link address in a memory of said device.
- 34. The method of claim 33, further comprising the step of:
causing said device to enter a programming mode by sending a first command from said infrared transmitter to said device, prior to transmitting said link address from said infrared transmitter to said device.
- 35. The method of claim 34, wherein said device is operable to control a lighting load, further comprising the step of:
causing said device to flash said lighting load at a first rate after said device has entered said programming mode.
- 36. The method of claim 35, further comprising the step of:
causing said device to enter an addressing mode by sending a second command from said infrared transmitter to said device, after said device has entered said programming mode.
- 37. The method of claim 36, further comprising the step of:
causing said device to flash said lighting load at a second rate after said device has entered said addressing mode.
- 38. The method of claim 37, wherein said infrared transmitter has a button, further comprising the step of:
pressing said button to select said link address before transmitting said link address from said infrared transmitter to said device.
- 39. The method of claim 38, further comprising the step of:
causing said device to exit said programming mode by sending a third command from said infrared transmitter to said device.
- 40. The method of claim 39, wherein said infrared transmitter has a plurality of buttons, further comprising the step of:
simultaneously pressing and holding a predetermined combination of more than one of said plurality of buttons for a predetermined period of time, before sending said third command.
- 41. The method of claim 37, wherein said second rate is faster than said first rate.
- 42. The method of claim 36, wherein said infrared transmitter has a button, further comprising the step of:
pressing said button before sending said second command.
- 43. The method of claim 34, wherein said infrared transmitter has a plurality of buttons, further comprising the step of:
simultaneously pressing and holding a predetermined combination of more than one of said plurality of buttons for a predetermined period of time, before sending said first command.
- 44. The method of claim 33, wherein a plurality of devices are connected to said control link and said link address is transmitted to at least two of said plurality of control devices.
- 45. A method of addressing a device in communication with a control link, comprising the steps of:
causing said device to select a random address, significantly larger than the maximum number of devices possible to be in communication with said control link; ascertaining said random address of said device by performing a binary tree search method of the universe of possible random addresses; transmitting to said device at said random address a short address, up to the maximum number of devices possible to be in communication with said control link; and storing said short address in a memory in said device.
- 46. The method of claim 45, wherein a plurality of devices are in communication with said control link and said binary tree search method further comprises the steps of:
(a) ascertaining if said random address of said device is within a subset of possible random addresses; (b) reducing said subset of possible random addresses; and (c) repeating steps (a) and (b).
- 47. A method of assigning a device having a device address to a group from a user interface of a master lighting control unit having a memory, wherein both said device and said master lighting control unit are in communication with a control link, said method comprising the steps of:
selecting said device address using said user interface of said master lighting control unit; selecting said group using said user interface; and storing an assignment of said device address to said group in said memory of said master lighting control unit.
- 48. The method of claim 47, further comprising the step of:
displaying said device address on a first display on said user interface.
- 49. The method of claim 48, wherein selecting said device address using said user interface further comprises the step of:
pressing a button on said user interface.
- 50. The method of claim 49, wherein said device is a load control device coupled to a lighting load, further comprising the step of:
causing said device to flash said lighting load after selecting said device address using said user interface.
- 51. The method of claim 50, wherein selecting said group comprises:
pressing a zone assign button on said user interface.
- 52. The method of claim 51, further comprising the step of:
lighting a second display on said user interface after selecting said group to provide a visual indication that said group was selected.
- 53. The method of claim 52, further comprising the step of:
pressing a zone unsassign button on said user interface; and deleting said assignment of said device address to said group from said memory.
- 54. The method of claim 50, wherein said device flashes said lighting load at a rate of one flash per two seconds.
- 55. The method of claim 48, wherein said first display is a seven-segment display.
- 56. The method of claim 47, further comprising the step of:
causing said master lighting control unit to enter a programming mode before selecting said device address using said user interface.
- 57. The method of claim 56, further comprising the step of:
causing said master lighting control unit to exit said programming mode.
- 58. The method of claim 57, wherein said user interface comprises a plurality of buttons and wherein causing said master lighting control unit to exit said programming mode comprises:
simultaneously pressing and holding a predetermined combination of more than one of said plurality of buttons for a predetermined period of time.
- 59. The method of claim 56, wherein said user interface comprises a plurality of buttons and wherein causing said master lighting control unit to enter said programming mode comprises:
simultaneously pressing and holding a predetermined combination of more than one of said plurality of buttons for a predetermined period of time.
- 60. A master lighting control unit, comprising:
a controller; a user interface, coupled to said controller; a digital communication port, coupled to said controller and operable to be connected to a digital communication link having a control device also connected thereto; said control device having an address; and a memory, coupled to said controller and operable to store said address of said control device; wherein said controller is operable to: cause said control device to choose a random address, significantly larger than the maximum number of devices possible to be in communication with said digital communication link; ascertain said random address of said control device by performing a binary tree search method of the universe of possible random addresses; and transmit to said control device at said random address a short address, up to said maximum number of devices possible to be in communication with said digital communication link.
- 61. The master lighting control unit of claim 60, wherein said digital communication link is a DALI communication link.
- 62. A master lighting control unit, comprising:
a controller; a user interface, coupled to said controller; a digital communication port, coupled to said controller and operable to be connected to a digital communication link having a control device also connected thereto; said control device having an address; and a memory, coupled to said controller and operable to store said address of said control device; wherein said controller is operable to: select said address of said control device; select a group; and store an assignment of said address of said control device to said group in said memory.
- 63. The master lighting control unit of claim 62, wherein said address of said control device is selected based on an input from said user interface.
- 64. The master lighting control unit of claim 62, wherein said group is selected based on an input from said user interface.
- 65. The master lighting control unit of claim 62, wherein said digital communication link is a DALI communication link.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The present application claims priority to U.S. Provisional Patent Application No. 60/467,716, filed May 2, 2003, which is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60467716 |
May 2003 |
US |