IP Library › Granted Patent US 11,866,145
Granted Patent B2
US 11,866,145 · App. 16/565,919 · Granted Jan 9, 2024

Device and method for self-correcting a sensed physical parameter, drone or unmanned aerial vehicle

Inventors: Saumitra Sanjeev Chafekar (Munich, DE); Ankit Kalbande (Munich, DE)
Assignee: Infineon Technologies AG
B64C17/00B64C39/02B64D45/00B64U2201/10
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Quick Facts
Patent No.
US 11,866,145
App. No.
16/565,919
Granted
Jan 9, 2024
Kind
B2
Abstract

A device for sensing a physical parameter includes a sensor element configured for measuring the physical parameter and for outputting a corresponding measured signal, wherein the measured signal is influenceable by a sensor drift of the sensor element. The device includes a corrector for correcting the measured signal output by the sensor element to obtain a corrected signal, wherein the corrector is configured for evaluating the measured signal to determine a drift effect of the sensor drift on the measured signal and for correcting the measured signal so as to at least partially compensate for the drift effect. The device includes a signal output configured for outputting the corrected signal.

Claims (33)

1. A device for sensing a physical parameter, comprising:

a sensor element configured for measuring the physical parameter and for outputting a corresponding measured signal, wherein the measured signal is influenceable by a sensor drift of the sensor element;

a corrector for correcting the measured signal output by the sensor element so as to obtain a corrected signal, wherein the corrector is configured for evaluating the measured signal to determine a drift effect of the sensor drift on the measured signal and for correcting the measured signal so as to compensate for the drift effect; and

a signal output configured for outputting the corrected signal,

wherein the corrector further comprises:

a compensator configured for combining the measured signal with a correction factor so as to obtain the corrected signal;

a drift evaluator configured for evaluating the measured signal to determine the drift effect and for adapting the correction factor so as to compensate for the drift effect;

a correction factor updater configured for adapting a correction factor applied to the measured signal for obtaining the corrected signal so as to compensate for the drift effect;

a measured signal evaluator configured for evaluating the measured signal with respect to a fast variation of the measured signal, wherein the measured signal evaluator comprises a fast pressure change detection filter; and

a correction factor evaluator configured for evaluating the correction factor with respect to a slow variation of the correction factor, wherein the correction factor evaluator comprises a slow pressure change detection filter,

wherein the corrector is configured to update the correction factor responsive to a detected fast variation in the measured signal and/or responsive to a detected slow variation of the correction factor,

wherein the corrector comprises a reference value updater configured for providing a reference value for determination of a correction value used for correcting the measured signal, wherein the reference value updater is configured for using a determined corrected value of the physical parameter contained in the corrected signal as reference value for a subsequent iteration of drift detection when no drift occurs and for updating the reference value in case a drift occurs, and

wherein an output of the fast pressure change detection filter is coupled to a first input of the reference value updater, and an output of the slow pressure change detection filter is coupled to a second input of the reference value updater.

2. The device according to claim 1 , wherein the corrector comprises a measured signal evaluator configured for evaluating the measured signal with respect to a fast variation in the measured signal, wherein the corrector is configured for associating a fast change of the measured signal having a magnitude being greater than a threshold value with a change of the physical parameter and for associating a fast change of the measured signal having a magnitude being smaller than a threshold value with the drift effect.

3. The device according to claim 1 , wherein the corrector comprises a measured signal evaluator configured for separating a drift component from the measured signal, wherein the corrector is configured for adapting a reference value of the physical parameter used for determining a correction value and further used for correcting the measured signal based on adapted filter coefficients.

4. The device according to claim 1 , wherein the corrector is configured for using a variable correction factor for correcting the measured signal, wherein the corrector comprises a correction factor evaluator configured for evaluating the correction factor with respect to a slow variation of the correction factor, wherein the corrector is configured for associating a slow change of the correction factor having a magnitude being larger than a threshold value with the drift effect, and

wherein the corrector is configured to update the correction factor responsive to the drift effect.

5. The device according to claim 1 , wherein the corrector is configured for correcting the measured signal using a correction factor, wherein the corrector comprises a correction factor updater configured for updating the correction factor responsive to a determined change in the physical parameter and for updating the correction factor responsive to a determined drift effect.

6. The device according to claim 5 , wherein, for updating the correction factor responsive to the determined change in the physical parameter, the correction factor updater is configured for using an updated reference value of the physical parameter in a polynomial and a filter for filtering a result of the polynomial, wherein the correction factor updater is configured for adapting filter parameters of the filter using coefficients indicating the determined drift effect.

7. The device according to claim 1 , comprising a drift detector configured for detecting a presence of the drift effect and for controlling the device so as to compensate for the drift effect responsive to the drift effect and so as to skip compensating the drift effect in case no presence of the drift effect is detected.

8. The device according to claim 1 , wherein the device comprises a signal input for receiving a control signal indicating to activate or deactivate compensation of the drift effect, wherein the device is configured for handling the drift effect in accordance with the control signal.

9. The device according to claim 1 , wherein the sensor element comprises a barometric pressure sensor, and wherein the drift effect is caused by a temperature variation of the device.

10. The device according to claim 1 , wherein the device comprises a drone or unmanned aerial device.

11. The device according to claim 1 , wherein the sensor element comprises a MEMS barometric pressure sensor or a MEMS altimeter.

12. The device according to claim 11 , wherein the corrector comprises an integrated circuit.

13. The device according to claim 12 , wherein the sensor element and the corrector comprise a single package for outputting the corrected signal.

14. A method for sensing a physical parameter, the method comprising:

correcting a measured signal so as to obtain a corrected signal, the measured signal being obtained by measuring the physical parameter using a sensor element and by providing the measured signal, wherein the measured signal is influenced by a sensor drift of the sensor element;

using a fast pressure change detection filter, evaluating the measured signal to determine a drift effect of the sensor drift on the measured signal;

using a slow pressure change detection filter, correcting the measured signal so as to compensate for the drift effect; and

using a reference value updater, outputting the corrected signal,

wherein the reference value updater is configured for providing a reference value for determination of a correction value used for correcting the measured signal, wherein the reference value updater is configured for using a determined corrected value of the physical parameter contained in the corrected signal as reference value for a subsequent iteration of drift detection when no drift occurs and for updating the reference value in case a drift occurs, and

wherein an output of the fast pressure change detection filter is coupled to a first input of the reference value updater, and an output of the slow pressure change detection filter is coupled to a second input of the reference value updater.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2019
From: CHAFEKAR, SAUMITRA SANJEEV; KALBANDE, ANKIT
To: INFINEON TECHNOLOGIES AG
Reel/Frame 050326/0851 →
Priority Claims (1)
EP 18200717 · Oct 16, 2018 · regional
Continuity (1)
Related Publication 20200115039A1 · Apr 16, 2020