IP Library Granted Patent US 8,842,261
Granted Patent B2
US 8,842,261 · App. 13/345,937 · Granted Sep 23, 2014

Laser range finder and method for intrusion detection

Inventor: Yaacov Frucht (Akko, IL)
Assignee: Frucht Systems, Technologies and Business Development
G08B13/183G01S17/88G01S17/42G01S7/4813G01S7/4865G01S17/10
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Quick Facts
Patent No.
US 8,842,261
App. No.
13/345,937
Granted
Sep 23, 2014
Kind
B2
Abstract

A scanning beam laser range finder and a method are provided for detecting an intrusion into a protected area by enhancing the capability of detecting an intruded attempting to blend with the area background. The laser range finder and method include an Emitter/Receiver configured to emit laser pulses towards each point out of the plurality of points and to receive therefrom reflected laser pulses. Further included is a processor coupled to the Emitter/Receiver and configured to derive an initial distance separating the laser range finder away from each point, the initial distance having an initial measurement error. At least one amplitude comparator is coupled to the Emitter/Receiver and to the processor, which is configured to derive a corrected distance to each point, the corrected distance having a corrected measurement error smaller than the initial measurement error.

Claims (22)

1. A laser range finder configured for scanning a plurality of points of a scanned area to detect an intrusion into the area, the laser range finder comprising:

an Emitter/Receiver configured to emit laser pulses towards each point out of the plurality of points and to receive therefrom reflected laser pulses,

a processor coupled to the Emitter/Receiver and configured to derive an initial distance separating the laser range finder away from each point, the initial distance having an initial measurement error, and

at least one amplitude comparator which is coupled to the Emitter/Receiver and to the processor, and which is configured to derive a corrected distance to each point, the corrected distance having a corrected measurement error smaller than the initial measurement error, and

wherein the scanned area is divided into a plurality of annuli, and the at least one amplitude comparator is associated with a corresponding one of the plurality of annuli and is configured to compare an amplitude of a reflected laser pulse to at least one respectively corresponding amplitude level, and the processor is configured to selectively apply at least one respectively corresponding time correction term to the reflected laser pulse.

2. The laser range finder according to claim 1 , wherein:

the laser range finder is housed in a housing having a housing interior and a housing exterior, and the at least one amplitude comparator is disposed in one of the housing interior and the housing exterior.

3. A laser range finder configured for scanning a plurality of points of a scanned area to detect an intrusion into the area, the laser range finder comprising:

an Emitter/Receiver configured to emit laser pulses towards each point out of the plurality of points and to receive therefrom reflected laser pulses,

a processor coupled to the Emitter/Receiver and configured to derive an initial distance separating the laser range finder away from each point, the initial distance having an initial measurement error, and

at least one amplitude comparator which is coupled to the Emitter/Receiver and to the processor, and which is configured to derive a corrected distance to each point, the corrected distance having a corrected measurement error smaller than the initial measurement error,

wherein the at least one amplitude comparator comprises four amplitude comparators configured to compare an amplitude of a reflected laser pulse to, respectively, four amplitude levels, and the processor is configured to selectively apply at least one of four time correction terms, respectively, to the reflected laser pulse, and

wherein the scanned area is divided into a plurality of annuli, and for each annulus out of the plurality of annuli, the four amplitude comparators are configured to compare the amplitude of the reflected laser pulse to, respectively, the four corresponding amplitude levels, and the processor is configured to selectively apply at least one of the four corresponding time correction terms, respectively, to the reflected laser pulse.

4. The laser range finder according to claim 3 , wherein:

the laser range finder is housed in a housing having a housing interior and a housing exterior, and the at least one amplitude comparator is disposed in one of the housing interior and the housing exterior.

5. A laser range finder configured to scan an area to detect if an intruder has penetrated therein, and to derive an initial distance to the intruder, the laser range finder comprising:

an Emitter/Receiver configured to emit laser pulses towards the area and to receive therefrom reflected laser pulses,

at least one amplitude comparator coupled to the Emitter/Receiver and configured to compare an amplitude of a reflected laser pulse to at least one amplitude level, and

a processor which is coupled to both the Emitter/Receiver and the at least one amplitude comparator, and which is configured to selectively apply at least one time correction term to the reflected laser pulse,

wherein the scanned area is divided into a plurality of annuli, and for each annulus out of the plurality of annuli, four amplitude comparators are configured to compare the amplitude of the reflected laser pulse to, respectively, four amplitude levels, and the processor is configured to selectively apply four corresponding time correction terms, respectively, to the reflected laser pulse.

6. The laser range finder according to claim 5 , wherein:

the laser pulses are reflected by a plurality of points in the scanned area, and the processor is configured to derive an initial distance separating the laser range finder away from each point out of the plurality of points, the initial distance having an initial measurement error and a corrected distance to each point, and the corrected distance having a corrected measurement error smaller than the initial measurement error.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2021
From: BEIJING GABRIEL TECHNOLOGY DEVELOPMENT CO., LTD
To: DR. FRUCHT SYSTEMS LTD.
Reel/Frame 057552/0077 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 1, 2017
From: DR. FRUCHT SYSTEMS LTD.
To: BEIJING GABRIEL TECHNOLOGY DEVELOPMENT CO., LTD.
Reel/Frame 044001/0072 →
CHANGE OF NAME Recorded Nov 1, 2017
From: FRUCHT SYSTEMS, TECHNOLOGIES AND BUSINESS DEVELOPMENT
To: DR. FRUCHT SYSTEMS LTD.
Reel/Frame 044001/0151 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 9, 2012
From: FRUCHT, YAACOV
To: FRUCHT SYSTEMS, TECHNOLOGIES AND BUSINESS DEVELOPMENT
Reel/Frame 027500/0476 →
Priority Claims (1)
IL 210532 · Jan 10, 2011 · national
Continuity (1)
Related Publication 20120176593A1 · Jul 12, 2012