IP Library › Granted Patent US 12,481,285
Granted Patent B2
US 12,481,285 · App. 18/522,803 · Granted Nov 25, 2025

Definition of boundary for a robotic work tool

Inventors: Ulf Arlig (Bankeryd, SE); Martin Joelsson (Habo, SE)
Assignee: HUSQVARNA AB
G05D1/0214
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Quick Facts
Patent No.
US 12,481,285
App. No.
18/522,803
Granted
Nov 25, 2025
Kind
B2
Abstract

A method for use in a robotic work tool system ( 200 ) comprising a server ( 240 ) and a robotic work tool ( 100 ) arranged to operate in an operational area ( 205 ) based on a satellite navigation sensor ( 175 ), wherein the method comprises: receiving ( 410 ) one or more safety boundaries ( 220, 220 - 1, 220 - 2 ) and storing these in a safety map ( 120 A- 1 ) of the operational area ( 205 ), receiving ( 420 ) one or more zone boundaries ( 220 - 3, 220 - 4, 220 - 5, 220 - 6 ) and storing these in a zone map ( 120 A- 2 ) of the operational area ( 205 ), and operating ( 440 ) according to the one or more zone boundaries ( 220 - 3, 220 - 4, 220 - 5, 220 - 6 ) and the one or more safety boundaries ( 220, 220 - 1, 220 - 2 ), wherein the one or more zone boundaries ( 220 - 3, 220 - 4, 220 - 5, 220 - 6 ) are related to an operating schedule and the one or more safety boundaries ( 220, 220 - 1, 220 - 2 ) are related to safety concerns for the robotic work tool ( 100 ) and wherein the method is characterized in that the one or more zone boundaries ( 220 - 3, 220 - 4, 220 - 5, 220 - 6 ) are received by the server ( 240 ) and in that the method further comprises confirming ( 430 ) the one or more safety boundaries ( 220, 220 - 1, 220 - 2 ) on location in the operational area ( 205 ) prior to operating ( 440 ) according to the one or more safety boundaries ( 220, 220 - 1, 220 - 2 ).

Claims (37)

1 . A method for use in a robotic work tool system comprising a server and a robotic work tool arranged to operate in an operational area based on a satellite navigation sensor, wherein the method comprises:

receiving one or more safety boundaries defining boundaries for operating based on the satellite navigation sensor and storing the one or more safety boundaries in a safety map of the operational area,

receiving one or more zone boundaries defining boundaries for operating based on the satellite navigation sensor and storing the one or more zone boundaries in a zone map of the operational area,

and

operating based on the satellite navigation sensor according to the one or more zone boundaries and the one or more safety boundaries, wherein the one or more zone boundaries are within at least one of the one or more safety boundaries and the one or more safety boundaries are related to safety concerns for the robotic work tool and wherein the method is characterized in that

the one or more zone boundaries defining boundaries for operating based on the satellite navigation sensor are received by the server and in that

the method further comprises confirming the one or more safety boundaries on location in the operational area prior to operating according to the one or more safety boundaries.

2 . The method according to claim 1 , wherein the one or more safety boundaries are received by the robotic work tool being navigated around an intended safety boundary.

3 . The method according to claim 2 , wherein the one or more safety boundaries received by the robotic work tool are confirmed by an operator through the server.

4 . The method according to claim 2 , wherein the one or more received safety boundaries are confirmed through a proving demonstration under automatic position control.

5 . The method according to claim 1 , wherein at least one received boundary is an update of a boundary.

6 . The method according to claim 1 , wherein the method further comprises downloading the safety map to the robotic work tool, downloading the zone map to the robotic work tool, or downloading the safety map and the zone map as a composite map to the robotic work tool.

7 . The method according to claim 1 , wherein the method further comprises confirming at least one of the one or more safety boundaries on location by remote-controlling the robotic work tool to follow the at least one safety boundary.

8 . The method according to claim 1 , wherein the method further comprises confirming at least one of the one or more safety boundaries on location by being downloaded to the robotic work tool through a short-range interface.

9 . The method according to claim 1 , wherein the method further comprises confirming at least one of the one or more safety boundaries on location by being receiving actions on a user interface of the robotic work tool.

10 . The method according to claim 1 , wherein the method further comprises confirming at least one of the one or more safety boundaries on location by a user that is physically in the operational area.

11 . The method according to claim 1 , wherein the method further comprises confirming at least one of the one or more safety boundaries on location by a user that is physically within a range of 1, 5 or 10 meters of the operational area.

12 . The method according to claim 1 , wherein the method further comprises the one or more safety boundaries being received by the server.

13 . The method according to claim 1 , wherein the method further comprises receiving the confirmation of the safety boundaries in the server on location.

14 . The method according to claim 1 , wherein the method further comprises receiving the confirmation of the safety boundaries in the robotic work tool.

15 . The method according to claim 1 , wherein the method further comprises receiving the confirmation of the zone boundaries in the server remotely from the operational area.

16 . The method according to claim 1 , wherein the robotic work tool is not configured with sensors for sensing a physical boundary.

17 . The method according to claim 1 , wherein the robotic work tool is a robotic lawnmower.

18 . A method for use in a robotic work tool system comprising a server and a robotic work tool arranged to operate in an operational area based on a satellite navigation sensor, wherein the method comprises: receiving one or more safety boundaries defining boundaries for operating based on the satellite navigation sensor and storing these the one or more safety boundaries in a safety map of the operational area, receiving one or more zone boundaries defining boundaries for operating based on the satellite navigation sensor and storing these the one or more zone boundaries in a zone map of the operational area, and operating based on the satellite navigation sensor according to the one or more zone boundaries and the one or more safety boundaries, wherein the one or more zone boundaries are within at least one of the one or more safety boundaries and the one or more safety boundaries are related to safety concerns for the robotic work tool and wherein the method is characterized in that the one or more zone boundaries defining boundaries for operating based on the satellite navigation sensor are received by the server and in that the method further comprises confirming the one or more safety boundaries on location in the operational area prior to operating according to the one or more safety boundaries; the method comprising a computer-readable medium carrying computer instructions that when loaded into and executed by a controller of a robotic work tool.

19 . A robotic work tool system comprising a server and a robotic work tool arranged to operate in an operational area based on a satellite navigation sensor, wherein a controller of the robotic work tool system is configured to:

receive one or more safety boundaries defining boundaries for operating based on the satellite navigation sensor and storing the one or more safety boundaries in a safety map of the operational area,

receive one or more zone boundaries defining boundaries for operating based on the satellite navigation sensor and storing the one or more zone boundaries in a zone map of the operational area,

and

operate based on the satellite navigation sensor according to the one or more zone boundaries and the one or more safety boundaries, wherein the one or more zone boundaries are within at least one of the one or more safety boundaries and the one or more safety boundaries are related to safety concerns for the robotic work tool and wherein the robotic work tool system is characterized in that

the one or more zone boundaries defining boundaries for operating based on the satellite navigation sensor are received by the server and in that

the controller of the robotic work tool system is further configured to confirm the one or more safety boundaries on location in the operational area prior to operating according to the one or more safety boundaries.

20 . A robotic work tool arranged to operate in an operational area based on a satellite navigation sensor, wherein a controller of the robotic work tool is configured to:

receive one or more safety boundaries,

receive one or more zone boundaries defining boundaries for operating based on the satellite navigation sensor, and

operate based on the satellite navigation sensor according to the one or more zone boundaries and the one or more safety boundaries, wherein the one or more zone boundaries are within at least one of the one or more safety boundaries and the one or more safety boundaries are related to safety concerns for the robotic work tool and wherein the robotic work tool is characterized in that

the one or more zone boundaries defining boundaries for operating based on the satellite navigation sensor are received from a server and in that

the controller of the robotic work tool is further configured to confirm the one or more safety boundaries on location in the operational area prior to operating according to the one or more safety boundaries.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 23, 2024
From: ÄRLIG, ULF; JOELSSON, MARTIN
To: HUSQVARNA AB
Reel/Frame 066213/0929 →
Priority Claims (1)
SE 2251396-4 · Nov 30, 2022 · national
Continuity (1)
Related Publication 20240176350A1 · May 30, 2024
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