IP Library Patent Application 10516481
Patent Application
App. No. 10/516,481

Wireless infrared network transceiver and methods and systems for operating same

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Quick Facts
Patent No.
US None
App. No.
10/516,481
Abstract

A digital data network ( 100 ) uses network nodes ( 106 ) incorporating infrared transceivers ( 108 ). Each node ( 106 ) includes a plurality of infrared transceivers ( 108 ) having transmitter ( 109 ) and receiver ( 111 ) optics designed to facilitate line-of-sight infrared optical communications in a residential or business neighborhood. New nodes ( 106 ) are installed with at least one selected transceiver ( 108 ) having line-of-sight access to at least one existing transceiver ( 108 ). Automated tracking ( 370, 400, 500 ) and acquisition ( 300 ) processes are used to align transceivers ( 108 ) to enable data communication and to acquire newly installed nodes ( 108 ) into the network ( 100 ). Other automated tracking programs operate on an as-needed or scheduled basis to maintain good alignment and communications between adjoining node transceivers ( 108 ). Network nodes include weather-proof housings ( 112 ) and are of a size and shape to be easily mounted on existing structures so as not to disrupt the visual appeal of a neighborhood.

Claims (41)

1 - 44 . (canceled)

45 . A method of aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers, comprising the steps of:

monitoring the signal quality of a digital signal transmitted by said second transceiver and received by said first transceiver;

if the signal quality of the digital signal received by said first transceiver falls below a predetermined threshold, then

with said second transceiver stationary, tracking said first transceiver over a predetermined number of positions in a first predetermined path to determine one or more positions of maximum signal quality detected by said first transceiver in said first predetermined path,

if a single position of maximum signal quality is detected by said first receiver in said first predetermined path, then returning said first transceiver to said single position of maximum signal quality detected by said first transceiver in said first predetermined path, and

if two positions of maximum signal quality are detected by said first receiver in said first predetermined path, then returning said first transceiver to the center between said two positions of maximum signal quality detected by said first transceiver in said first predetermined path.

46 . The method of claim 45 wherein said signal quality of said digital signal is determined as a function of an error rate determined by the first transceiver.

47 . The method of claim 46 wherein the error rate is determined to a seventy-five percent confidence interval.

48 . The method of claim 46 wherein the digital signal includes a plurality of first signal packets each of approximately 1440 bytes and a plurality of second signal packets each of approximately 64 bytes.

49 . The method of claim 48 wherein each of the plurality of first and second packets includes a sequential counter.

50 . The method of claim 45 wherein said first predetermined path is selected from the group comprising a vertical path, a horizontal path and a diagonal path.

51 . The method of claim 50 wherein said method of aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers is repeated for a second predetermined path selected from the group comprising a vertical path, a horizontal path and a diagonal path.

52 . The method of claim 45 wherein said method of aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers is repeated for said first predetermined path.

53 . The method of claim 45 wherein said digital signal is transmitted on an infrared beam.

54 . The method of claim 53 wherein said method of aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers is repeated for said first predetermined path a predetermined number of times based on a spot size of the infrared beam.

55 . The method of claim 45 wherein said method of aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers is repeated periodically, the timing based on the quality of the digital signal received by the first transceiver.

56 . A system for aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers, comprising:

a processor;

a memory connected to said processor and storing instructions for controlling the operation of the processor, the processor operative with the instructions to perform the steps of:

monitoring the signal quality of a digital signal transmitted by said second transceiver and received by said first transceiver;

if the signal quality of the digital signal received by said first transceiver falls below a predetermined threshold, then

with said second transceiver stationary, tracking said first transceiver over a predetermined number of positions in a first predetermined path to determine one or more positions of maximum signal quality detected by said first transceiver in said first predetermined path,

if a single position of maximum signal quality is detected by said first receiver in said first predetermined path, then returning said first transceiver to said single position of maximum signal quality detected by said first transceiver in said first predetermined path, and

if two positions of maximum signal quality are detected by said first receiver in said first predetermined path, then returning said first transceiver to the center between said two positions of maximum signal quality detected by said first transceiver in said first predetermined path.

57 . The system of claim 56 wherein said signal quality of said digital signal is determined as a function of an error rate determined by the first transceiver.

58 . The system of claim 57 wherein the error rate is determined to a seventy-five percent confidence interval.

59 . The system of claim 57 wherein the digital signal includes a plurality of first signal packets each of approximately 1440 bytes and a plurality of second signal packets each of approximately 64 bytes.

60 . The system of claim 59 wherein each of the plurality of first and second packets includes a sequential counter.

61 . The system of claim 56 wherein said first predetermined path is selected from the group comprising a vertical path, a horizontal path and a diagonal path.

62 . The system of claim 61 wherein said method of aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers is repeated for a second predetermined path selected from the group comprising a vertical path, a horizontal path and a diagonal path.

63 . The system of claim 56 wherein said method of aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers is repeated for said first predetermined path.

64 . The system of claim 56 wherein said digital signal is transmitted on an infrared beam.

65 . The system of claim 64 wherein said method of aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers is repeated for said first predetermined path a predetermined number of times based on a spot size of the infrared beam.

66 . The system of claim 56 wherein said method of aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers is repeated periodically, the timing based on the quality of the digital signal received by the first transceiver.

67 . A system for aligning first and second communicating transceivers in a network of existing point-to-point communications transceivers, comprising:

means for monitoring the signal quality of a digital signal transmitted by said second transceiver and received by said first transceiver;

means for, if the signal quality of the digital signal received by said first transceiver falls below a predetermined threshold,

with said second transceiver stationary, tracking said first transceiver over a predetermined number of positions in a first predetermined path to determine one or more positions of maximum signal quality detected by said first transceiver in said first predetermined path,

said if a single position of maximum signal quality is detected by said first receiver in said first predetermined path, then returning said first transceiver to said single position of maximum signal quality detected by said first transceiver in said first predetermined path, and

if two positions of maximum signal quality are detected by said first receiver in said first predetermined path, then returning said first transceiver to the center between said two positions of maximum signal quality detected by said first transceiver in said first predetermined path.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 10, 2010
From: HAKAKHA, HAREL
To: IDEALAB HOLDINGS, L.L.C.
Reel/Frame 024519/0188 →
CHANGE OF NAME Recorded Jun 10, 2010
From: OMNILUX, INC.
To: CLEARMESH NETWORKS, INC.
Reel/Frame 024519/0212 →
SECURITY AGREEMENT Recorded Jan 25, 2010
From: CLEARMESH NETWORKS, INC.
To: IDEALAB HOLDINGS, LLC
Reel/Frame 023839/0316 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 26, 2005
From: MOURSUND, CARTER; ADHIKARI, PRASANNA; CHIU, JOSEPH; ULMER, CHRISTOPHER T.
To: OMNILUX, INC.
Reel/Frame 016573/0749 →