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US20030233204A1 - Systems and methods for calibrating a distorted signal with another signal of known calibration - Google Patents

Systems and methods for calibrating a distorted signal with another signal of known calibration
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Publication number
US20030233204A1
US20030233204A1US10/167,448US16744802AUS2003233204A1US 20030233204 A1US20030233204 A1US 20030233204A1US 16744802 AUS16744802 AUS 16744802AUS 2003233204 A1US2003233204 A1US 2003233204A1
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United States
Prior art keywords
transfer function
frequency
sensor
blood pressure
uncalibrated
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US10/167,448
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US6662130B1 (en
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Harry Peel
Keith Bartels
Kimesha Peel
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Omron Healthcare Co Ltd
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Southwest Research Institute SwRI
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Assigned to SOUTHWEST RESEARCH INSTITUTEreassignmentSOUTHWEST RESEARCH INSTITUTEASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: BARTELS, KEITH A., PEEL, HARRY HERBERT III (DECEASED)
Priority to CA002417882Aprioritypatent/CA2417882A1/en
Priority to EP03002567Aprioritypatent/EP1371324A1/en
Priority to TW092104636Aprioritypatent/TWI232290B/en
Priority to JP2003153883Aprioritypatent/JP2004024862A/en
Priority to CNB031424880Aprioritypatent/CN1311224C/en
Priority to KR1020030038209Aprioritypatent/KR100958475B1/en
Assigned to COLIN CORPORATIONreassignmentCOLIN CORPORATIONASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: SOUTHWEST RESEARCH INSTITUTE
Publication of US6662130B1publicationCriticalpatent/US6662130B1/en
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Publication of US20030233204A1publicationCriticalpatent/US20030233204A1/en
Assigned to COLIN MEDICAL TECHNOLOGY CORPORATIONreassignmentCOLIN MEDICAL TECHNOLOGY CORPORATIONASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: COLIN CORPORATION
Assigned to COLIN MEDICAL TECHNOLOGY CORPORATIONreassignmentCOLIN MEDICAL TECHNOLOGY CORPORATIONASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: COLIN CORPORATION
Assigned to OMRON HEALTHCARE CO., LTD.reassignmentOMRON HEALTHCARE CO., LTD.ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: COLIN MEDICAL TECHNOLOGY CORPORATION
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Abstract

An uncalibrated sensor located at a first location relative to a physical phenomenon is calibrated using a calibrated sensor spaced away from the uncalibrated sensor at a second location relative to the physical phenomenon and a frequency-domain transfer function that relates the physical phenomenon at the second location to the output of the uncalibrated sensor.

Description

Claims (18)

What is claimed is:
1. A method for calibrating an uncalibrated sensor, comprising:
sensing at a first location a time-varying physical phenomenon using a calibrated sensor to determine an input waveform of the time-varying physical phenomenon at the first location;
sensing at a second location the time-varying physical phenomenon using the uncalibrated sensor, the uncalibrated sensor outputting an output waveform corresponding to the time-varying physical phenomenon at the second location;
determining a frequency-domain transfer function that relates the output waveform to the input waveform based on the input and output waveforms;
determining a calibration coefficient for the uncalibrated sensor based on the determined frequency-domain transfer function; and
determining a calibration constant for the uncalibrated sensor based on the determined calibration coefficient, the input waveform and the output waveform, wherein the determined calibration coefficient and the determined calibration constant calibrate the uncalibrated sensor to the time-varying physical phenomenon at the second location.
2. The method ofclaim 1, wherein the time-varying physical phenomenon is blood pressure.
3. The method ofclaim 2, wherein the calibrated sensor is a calibrated oscillometric blood pressure monitor.
4. The method ofclaim 2, wherein the uncalibrated sensor is a tonometer.
5. The method ofclaim 4, wherein the tonometer is an electronic applanation tonometer.
6. The method ofclaim 1, wherein the calibrated sensor has a known frequency and amplitude response to the time-varying physical phenomenon at the first location.
7. The method ofclaim 1, wherein determining the frequency-domain transfer function based on the input and output waveforms comprises determining an estimated frequency-domain transfer function based on the input and output waveforms.
8. The method ofclaim 7, wherein determining the calibration coefficient for the uncalibrated sensor based on the determined frequency-domain transfer function comprises:
determining a value of the estimated frequency-domain transfer function at a frequency where a second frequency-domain transfer function that relates the input waveform to a second input waveform of the time-varying physical phenomenon at the second location has a determinable value;
determining the calibration coefficient based on the value of the estimated frequency-domain transfer function at the frequency and the determinable value of the second frequency-domain transfer function.
9. The method ofclaim 7, wherein the frequency is zero.
10. The method ofclaim 9, wherein the second frequency-domain transfer function has a value of1 for the frequency of zero.
11. The method ofclaim 1, further comprising:
determining a mean value of the input waveform; and
determining a mean value of the output waveform;
wherein determining the calibration constant for the uncalibrated sensor comprises determining the calibration constant based on the calibration coefficient, the mean value of the input waveform and the mean value of the output waveform.
12. The method ofclaim 1, wherein determining the frequency-domain transfer function that relates the output waveform to the input waveform based on the input and output waveforms comprises:
obtaining at least one full waveform for each of the input and output waveforms;
defining an estimated transfer function in the complex z-domain that corresponds to the frequency-domain transfer function, the estimated z-domain transfer function having a plurality of parameters; and
determining values for the parameters such that the estimated z-domain transfer function is fitted to the obtained at least one full waveforms for the input and output waveforms.
converting the fitted z-domain transfer function to the frequency-domain transfer function.
13. The method ofclaim 12, further comprising:
determining a frequency where the estimated frequency-domain transfer function has a determinable value; and
converting the determined frequency to an equivalent z-domain value.
14. The method ofclaim 13, further comprising:
determining the calibration coefficient based equivalent z-domain value and the determined values for the parameters of the estimated z-domain transfer function.
17. The method ofclaim 16, wherein calibrating the second uncalibrated sensor to the time-varying physical phenomenon at the first location comprises:
obtaining values of the input waveform of the time-varying physical phenomenon at the first location at at least a first time and a second time;
obtaining values of a second output waveform output by the second uncalibrated sensor corresponding to the time-varying physical phenomenon at the first location at at least the first time and the second time;
determining a second calibration coefficient for the second uncalibrated sensor for the time-varying physical phenomenon at the first location based on the obtained values for at least the first time and the second time of the input and second output waveforms; and
determining a second calibration constant for the second uncalibrated sensor based on the determined second calibration constant, the input waveform and the second output waveform, wherein the determined second calibration coefficient and the determined second calibration constant calibrate the second uncalibrated sensor to the time-varying physical phenomenon at the first location.
18. A method for calibrating an electronic applanation tonometer, comprising:
measuring a brachial artery blood pressure with a calibrated oscillometric blood pressure monitor to generate a calibrated oscillometric blood pressure signal;
measuring a radial artery blood pressure with an uncalibrated electronic applanation tonometer to generate a voltage signal;
determining a frequency-domain pressure-to-voltage transfer function based on the calibrated oscillometric blood pressure signal and the voltage signal of the uncalibrated electronic applanation tonometer;
determining a calibration coefficient for the uncalibrated electronic applanation tonometer based on frequency-domain pressure-to-voltage transfer function;
determining a calibration constant for the uncalibrated electronic applanation tonometer based on the determined calibration constant, the calibrated oscillometric blood pressure signal and the voltage signal, wherein the determined calibration coefficient and the determined calibration constant calibrate the uncalibrated electronic applanation tonometer to the radial artery blood pressure.
US10/167,4482002-06-132002-06-13Systems and methods for calibrating a distorted signal with another signal of known calibrationExpired - Fee RelatedUS6662130B1 (en)

Priority Applications (7)

Application NumberPriority DateFiling DateTitle
US10/167,448US6662130B1 (en)2002-06-132002-06-13Systems and methods for calibrating a distorted signal with another signal of known calibration
CA002417882ACA2417882A1 (en)2002-06-132003-01-30Systems and methods for calibrating a distorted signal with another signal of known calibration
EP03002567AEP1371324A1 (en)2002-06-132003-02-06Methods for sensor calibration
TW092104636ATWI232290B (en)2002-06-132003-03-05Systems and methods for calibrating a distorted signal with another signal of known calibration
JP2003153883AJP2004024862A (en)2002-06-132003-05-30 System and method for calibrating a deformed signal with another calibrated signal
CNB031424880ACN1311224C (en)2002-06-132003-06-12System and method for calibrating distortion signal with another known calibrated signal
KR1020030038209AKR100958475B1 (en)2002-06-132003-06-13 Uncalibrated sensor calibration method and electronic application pressure gauge calibration method

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Application NumberPriority DateFiling DateTitle
US10/167,448US6662130B1 (en)2002-06-132002-06-13Systems and methods for calibrating a distorted signal with another signal of known calibration

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US6662130B1 US6662130B1 (en)2003-12-09
US20030233204A1true US20030233204A1 (en)2003-12-18

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US10/167,448Expired - Fee RelatedUS6662130B1 (en)2002-06-132002-06-13Systems and methods for calibrating a distorted signal with another signal of known calibration

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US (1)US6662130B1 (en)
EP (1)EP1371324A1 (en)
JP (1)JP2004024862A (en)
KR (1)KR100958475B1 (en)
CN (1)CN1311224C (en)
CA (1)CA2417882A1 (en)
TW (1)TWI232290B (en)

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US20090209868A1 (en)*2008-02-202009-08-20The General Electric CompanyAdaptive Frequency Domain Filtering for Improved Non-Invasive Blood Pressure Estimation
US20120179053A1 (en)*2009-07-312012-07-12Fondazione Toscana Gabriele MonasterioApparatus for measuring a propagation velocity of a blood pressure wave
CN102818580A (en)*2012-09-062012-12-12西华大学Position detector of non-contact sensor and detection method of position detector
WO2013122737A1 (en)*2012-02-162013-08-22Welch Allyn, Inc.Systems and methods for monitoring a patient
EP2759258A1 (en)*2013-01-252014-07-30UP-MED GmbHMethod of approximating a patient's pulse wave based on non-invasive blood pressure measurement, a logic unit therefore and a system therefore
US10090872B2 (en)2013-05-302018-10-02Imperial Innovations LimitedMethod and apparatus for estimating a frequency domain representation of a signal

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US8057400B2 (en)2009-05-122011-11-15Angiologix, Inc.System and method of measuring changes in arterial volume of a limb segment
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EP2626755B1 (en)2012-02-102019-04-10Nxp B.V.Calibration method, calibration device and measurement device
US9931076B2 (en)*2014-06-182018-04-03Hong Kong Applied Science and Technology Research Institute Company LimitedMethod and device for tonometric blood pressure measurement
CN104367308B (en)*2014-11-102016-08-24中国计量学院A kind of can external pressure calibration electronic sphygmomanometer
CN108287633B (en)*2015-10-082021-06-01Oppo广东移动通信有限公司 Method and device for calibrating pressure sensor
JP6613979B2 (en)*2016-03-152019-12-04富士通株式会社 Frequency analysis device, frequency analysis method, and sensor module
US10578641B2 (en)*2016-08-222020-03-03Nxp Usa, Inc.Methods and systems for electrically calibrating transducers
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RU2729721C1 (en)*2020-03-022020-08-11Николай Александрович МарковInstrument for verification and calibration of indicators of standby time of preservation of human performance in hypoxic hypoxia conditions
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US20090209868A1 (en)*2008-02-202009-08-20The General Electric CompanyAdaptive Frequency Domain Filtering for Improved Non-Invasive Blood Pressure Estimation
US8556821B2 (en)*2008-02-202013-10-15General Electric CompanyAdaptive frequency domain filtering for improved non-invasive blood pressure estimation
US20120179053A1 (en)*2009-07-312012-07-12Fondazione Toscana Gabriele MonasterioApparatus for measuring a propagation velocity of a blood pressure wave
WO2013122737A1 (en)*2012-02-162013-08-22Welch Allyn, Inc.Systems and methods for monitoring a patient
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CN102818580A (en)*2012-09-062012-12-12西华大学Position detector of non-contact sensor and detection method of position detector
EP2759258A1 (en)*2013-01-252014-07-30UP-MED GmbHMethod of approximating a patient's pulse wave based on non-invasive blood pressure measurement, a logic unit therefore and a system therefore
WO2014114423A1 (en)*2013-01-252014-07-31Up-Med GmbhMethod of approximating a patient's pulse wave based on non-invasive blood pressure measurement, a logic unit therefore and a system therefore
CN105120740A (en)*2013-01-252015-12-02上升医学股份有限公司Method of approximating a patient's pulse wave based on non-invasive blood pressure measurement, a logic unit therefore and a system therefore
US10090872B2 (en)2013-05-302018-10-02Imperial Innovations LimitedMethod and apparatus for estimating a frequency domain representation of a signal

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Publication numberPublication date
CN1487267A (en)2004-04-07
CA2417882A1 (en)2003-12-13
US6662130B1 (en)2003-12-09
TWI232290B (en)2005-05-11
EP1371324A1 (en)2003-12-17
KR20030096080A (en)2003-12-24
JP2004024862A (en)2004-01-29
KR100958475B1 (en)2010-05-17
CN1311224C (en)2007-04-18
TW200307806A (en)2003-12-16

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