IP Library Patent Application 19632840
Patent Application
App. No. 19/632,840

SYSTEMS AND METHODS FOR DETERMINING POSITION ERRORS OF FRONT HAZARD SENSORS ON ROBOTS

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Quick Facts
Patent No.
US None
App. No.
19/632,840
Abstract

Systems and methods for determining a margin of error based on an expected measurement from a front hazard sensor at a default pose, the front hazard sensor coupled to a robot. A device may collect distance measurements from the front hazard sensor over a duration in time; and calculate measurement errors of the front hazard sensor based on a discrepancy. A device may between the margin of error and the collected distance measurements, determine an error parameter based on the calculated measurement errors and the duration in time, determine an error mounting of the front hazard sensor based on the error parameter meeting or exceeding a threshold; and output a signal indicative of the detected error.

Claims (42)

1 . A method for determining an error m a pose of a front hazard sensor, comprising:

determining a margin of error based on an expected measurement from the front hazard sensor at a default pose, the front hazard sensor coupled to a robot;

collecting distance measurements from the front hazard sensor over a duration in time;

calculating measurement errors of the front hazard sensor based on a discrepancy between the margin of error and the collected distance measurements;

determining an error parameter based on the calculated measurement errors and the duration in time;

determining an error m mounting of the front hazard sensor based on the error parameter meeting or exceeding a threshold; and

outputting a signal indicative of the detected error.

2 . The method of claim 1 , further comprising:

determining, based on a computer readable map of an environment, locations along a route traveled by the robot where value of the error parameter increases due to objects in the environment; and

omitting measurement errors for distance measurements which detect the objects based on the computer readable map.

3 . The method of claim 1 , further comprising:

adjusting the threshold or value of the error parameter based on predetermined objects within an environment, the predetermined objects configured to cause an increase in value of the error parameter.

4 . The method of claim 1 , wherein the signal is communicated to one or more actuator units to stop the robot.

5 . The method of claim 1 , wherein the signal is outputted to a device, the device is configured to indicate detection of the error in the pose of the front hazard sensor.

6 . A non-transitory computer readable storage medium comprising a plurality of computer readable instructions stored thereon, that when executed by a processor, configure the processor to:

determine a margin of error based on an expected measurement from a front hazard sensor at a default pose on a robot;

collect distance measurements from the front hazard sensor over a duration in time; calculate measurement errors of the front hazard sensor based on a discrepancy between the margin of error and the collected distance measurements;

determine an error parameter based on the measurement errors and the duration in time; determine an error in the mounting of the front hazard sensor based on the error parameter meeting or exceeding a threshold; and

output a signal indicative of the determined error.

7 . The non-transitory computer readable storage medium of claim 6 , wherein the processor is further configured to execute the computer readable instructions to,

determine, based on a computer readable map of an environment, locations along a route traveled by the robot where value of the error parameter increases due to objects in the environment; and

omit errors for distance measurements which detect the objects based on the computer readable map.

8 . The non-transitory computer readable storage medium of claim 6 , wherein the processor is further configured to execute the computer readable instructions to,

adjust the threshold or value of the error parameter based on predetermined objects within an environment, the predetermined objects configured to cause an increase in value of the error parameter value.

9 . The non-transitory computer readable storage medium of claim 6 , wherein the signal is communicated to one or more actuator units to stop the robot.

10 . The non-transitory computer readable storage medium of claim 6 , wherein the signal is outputted to a device, the device configured to indicate detection of the error in the pose of the front hazard sensor.

11 . A robotic system, comprising:

a non-transitory computer readable storage medium comprising computer readable instructions stored thereon; and

at least one processor configured to execute the computer readable instructions to,

determine a margin of error for a measurement of a front hazard sensor mounted to the robotic system;

collect measurements from a front hazard sensor;

determine at least one measurement error of the cliff detection sensor based on a discrepancy between the margin of error and the measurements collected;

determine a value of an error parameter based on the at least one measurement error; and

detect an error in a pose of the front hazard sensor based on the value of the error parameter meeting or exceeding a threshold; and

output a signal based on the detected error in the pose.

12 . The robotic system of claim 11 , wherein the processor is further configured to execute the computer readable instructions to,

determine, based on a computer readable map of an environment, locations along a route traveled by the robotic system where value of the error parameter is configured to increase due to objects in the environment; and

omit errors for distance measurements which detect the objects based on the computer readable map.

13 . The robotic system of claim 11 , wherein the processor is further configured to execute the computer readable instructions to,

adjust the threshold or value of the error parameter based on predetermined objects within an environment, the predetermined objects configured to cause an increase in value of the error parameter value.

14 . The robotic system of claim 11 , wherein the signal is communicated to one or more actuator units of the robotic system to stop the robotic system.

15 . The robotic system of claim 11 , wherein the signal is outputted to a device, the device configured to indicate detection of the error in the pose of the front hazard sensor.