WO1998025511A2 - Apparatus and method for non-invasively monitoring a patient's blood pressure - Google Patents
Apparatus and method for non-invasively monitoring a patient's blood pressure Download PDFInfo
- Publication number
- WO1998025511A2 WO1998025511A2 PCT/US1997/023097 US9723097W WO9825511A2 WO 1998025511 A2 WO1998025511 A2 WO 1998025511A2 US 9723097 W US9723097 W US 9723097W WO 9825511 A2 WO9825511 A2 WO 9825511A2
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- WIPO (PCT)
- Prior art keywords
- pressure
- patient
- diaphragm
- fluid
- blood vessel
- Prior art date
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/02—Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
- A61B5/021—Measuring pressure in heart or blood vessels
Definitions
- This invention relates generally to apparatus and methods for monitoring a patient's blood pressure and, more particularly, to such apparatus and methods that monitor blood pressure non-invasively by at least partially occluding a blood vessel by applying a flexible diaphragm against the vessel.
- Occlusive cuff instruments of the kind described briefly above generally have been effective in sensing long- term trends in a patient's blood pressure. However, such instruments generally have been ineffective in sensing short-term blood pressure variations, which are of critical importance in many medical applications, including surgery.
- One technique that has been used to provide information about short-term blood pressure variations is called arterial tonometry.
- One device for implementing this technique includes a rigid array of miniature pressure transducers that is applied against the tissue overlying a peripheral artery, e.g., the radial artery.
- the transducers each directly sense the mechanical forces in the underlying patient tissue, and each is sized to cover only a fraction of the underlying artery.
- the array is compressed against the tissue, to applanate the underlying artery and thereby cause beat-to-beat pressure variations within the artery to be coupled through the tissue to the transducers.
- Another device that implements the arterial tonometer technique includes a housing having a closed, liquid-filled chamber with one wall of the chamber defined by a flexible diaphragm.
- the device is applied to a patient with the flexible diaphragm compressed against the tissue overlying a peripheral artery, e.g., the radial artery, and several electrodes located in separate compartments of the chamber sense volume changes in the compartments that result from the beat-to-beat pressure variations in the underlying artery.
- this device is considered to have an unduly low gain, making it unduly susceptible to noise.
- the device must be calibrated periodically, during which time its continuous monitoring of the patient's blood pressure waveform necessarily is interrupted.
- the present invention resides m an improved apparatus, and related method, for non-mvasively and continuously monitoring a patient's blood pressure, with reduced susceptibility to noise and without the need to intermittently interrupt the pressure monitoring for calibration.
- the apparatus includes a body having an open cavity, a flexible diaphragm extending across the open cavity to define a closed chamber, and a fluid volume controller that supplies a fluid to and from the closed chamber, In use, the diaphragm is held against the tissue overlying a patient's blood vessel, such that pressure variations within the vessel could cause the diaphragm to flex.
- the fluid volume controller controllably supplies fluid to and from the closed chamber such that the diaphragm remains substantially fixed m a prescribed mean position despite these pressure variances within the vessel.
- a pressure sensor senses the pressure of the fluid within the closed chamber, to produce a corresponding pressure signal indicative of the patient's blood pressure.
- the flexible diaphragm's prescribed mean position is regulated to provide an optimal partial applanation of the patient's underlying blood vessel.
- the vessel's transmural pressure is substantially zero. This enables the masking effect of the tissue overlying the vessel to be effectively eliminated and it enables a substantially increased gam and noise immunity to be provided.
- the optimum vessel applanation is achieved by configuring the fluid volume controller to modulate the fluid volume within the closed chamber while monitoring the resulting effect on the pressure signal, to produce a control signal that then is used to regulate the fluid volume such that the diaphragm is maintained at the optimal position.
- the fluid volume controller includes a sensor that produces a diaphragm position signal indicative of the flexible diaphragm's actual position relative to the body, means for producing an error signal indicative of any difference between that actual position and the diaphragm's prescribed mean position, and a summer, responsive to the diaphragm position signal and the error signal, that produces the control signal.
- a fluid supply supplies the fluid to and from the closed chamber based on this control signal .
- the means for producing an error signal includes an oscillator that produces a modulation signal coupled to the summer, for incorporation into the control signal. This modulation signal causes the volume controller to supply the fluid to and from the closed chamber m a manner that modulates the actual position of the flexible diaphragm about a mean position.
- a correlator correlates the modulation signal with the pressure signal, to sense any deviation of the diaphragm's actual mean position from its prescribed mean position and to produce the error signal .
- the modulation signal includes a succession of alternating positive and negative lobes of substantially uniform amplitude, e.g., a sine wave, and it has a frequency substantially greater than the patient's expected heartbeat frequency.
- the correlator is configured to compare the amplitude and shape of the pressure signal during positive lobes of the modulation signal with the amplitude and shape of the pressure signal during negative lobes of the modulation signal, which is indicative of any deviation of the flexible diaphragm's actual mean position from its prescribed mean position.
- the correlator is configured to compare the amplitude of the pressure signal during a first stage of the patient's heartbeat (e.g., systole) with the amplitude of the pressure signal during a second stage of the heartbeat (e.g., diastole), to sense any deviation of the diaphragm's actual mean position from its prescribed mean position.
- a first stage of the patient's heartbeat e.g., systole
- a second stage of the heartbeat e.g., diastole
- FIG. 1 is a schematic cross-sectional view of a tonometer assembly in accordance with the invention, in its prescribed position secured to a patient's wrist, with a flexible diaphragm and liquid-filled chamber disposed adjacent to the patient's radial artery.
- FIG. 2 is a block diagram of a first embodiment of a blood pressure monitoring apparatus in accordance with the invention, incorporating the tonometer assembly of FIG. 1.
- FIG. 3 is a graph depicting the typical relationship between the transmural pressure of a patient's radial artery and the artery's diameter. Superimposed on the graph are several waveforms representing the patient's actual blood pressure over several heartbeats, along with waveforms representing the resulting changes in the artery's diameter for conditions of under applanation, optimal applanation, and over applanation.
- FIGS. 4A-4C are graphs of typical pressure signal waveforms over one heartbeat that are provided by the blood pressure monitoring apparatus of FIG. 2, for conditions of under applanation, over applanation, and optimal applanation, respectively.
- the waveforms incorporate pressure oscillations that result from application of a 25- Hz modulation of the volume in the liquid-filled chamber.
- FIG. 5 is a block diagram of a second embodiment of a blood pressure monitoring apparatus in accordance with the invention, incorporating the tonometer assembly of FIG. 1.
- FIGS. 6A-6C are graphs of typical pressure signal waveforms over one heartbeat that are provided by the blood pressure monitoring apparatus of FIG. 5, for conditions of under applanation, over applanation, and optimal applanation, respectively.
- the waveforms incorporate pressure oscillations that result from application of a 25- Hz modulation of the volume in the liquid-filled chamber.
- FIG. 7 is a schematic diagram of a model of the patient's wrist, with the tonometer assembly of FIG. 1 disposed adjacent to it.
- FIGS. 1 and 2 there is shown a blood pressure monitoring apparatus having a tonometer assembly 11 configured for attachment to a patient's wrist 13, with a flexible diaphragm 15 of the assembly compressively engaging the skin 17 and other tissue 19 overlying the patient's radial artery 21. Blood pressure variations within the artery are coupled through the tissue to the diaphragm, and through a liquid-filled chamber 23 located behind the diaphragm, to a pressure sensor 25, to produce a pressure signal output on line 27 that represents the artery's pressure waveform.
- the tonometer assembly 11 includes a plastic base 29 having the shape of an inverted, shallow cup, and a wrist strap 31 that holds the base in its prescribed position on the patient's wrist 13.
- the flexible diaphragm 15 extends across the opening of the cup- shaped base, to define the chamber 23 that carries a suitable working liquid, e.g., water.
- a suitable working liquid e.g., water.
- FIG. 3 is a graph depicting the sigmoidal relationship between the radial artery's transmural pressure and effective diameter.
- Transmural pressure is the pressure across the artery wall, i.e., the difference between the pressure inside the artery and the pressure outside the artery.
- a high transmural pressure indicates that the artery 21 is applanated by a small amount and thus has a relatively large diameter
- a low transmural pressure indicates that the artery is applanated by a large amount and thus has a relatively small diameter.
- the apparatus further includes a volume controller 35 having a liquid source 37 that supplies liquid to and from the chamber 23 of the tonometer assembly 11, via a conduit 39.
- the volume controller implements a control scheme that regulates the volume of liquid within the chamber so as to provide optimal applanation of the patient's radial artery 21.
- the volume controller actively modulates the position of the tonometer assembly's flexible diaphragm 15, so as to modulate, or dither, the diameter of the patient's artery 21, and it analyzes the resulting effect on the pressure signal produced by the pressure sensor 25. Different effects on the pressure signal are provided by different amounts of artery applanation.
- the volume controller 35 effects this modulation of the diaphragm's position by applying a 25-Hz sinusoidal signal to the liquid source 37.
- This sinusoidal signal is produced by an oscillator 41 and coupled via line 43 to a summer 45 and, in turn, via line 47 to the liquid source.
- a 25-Hz frequency is selected, because it is generally higher than the highest frequency components of interest in the artery's blood pressure waveform.
- FIG. 4A which depicts the pressure signal on line 27 aligned with the pressure waveform representing one heartbeat, including both a systolic stage and a diastolic stage. It will be noted that the pressure signal's ac amplitude is substantially greater during the systolic stage than during the diastolic stage .
- FIG. 3 will induce a greater pressure change (i.e., horizontal movement along the curve of FIG. 3) when the pressure is lowest, i.e., at diastole, than when the pressure is highest, i.e., at systole.
- FIG. 4B depicts the pressure signal on line 27 aligned with the pressure waveform representing one heartbeat. It will be noted that the pressure signal's ac amplitude is substantially greater during the diastolic stage than during the systolic stage.
- the ac amplitudes of the 25-Hz pressure oscillation during the systolic and end-diastolic stages will be substantially the same.
- the overall amplitude of the pressure oscillation is at a minimum when the artery is optimally applanated. This is because the sigmoid curve of FIG. 3 is steepest at the point of optimal applanation.
- control system for implementing the control scheme described above is depicted in FIG. 2.
- the control system further includes a 25-Hz bandpass filter 49 that filters the pressure signal received on line 27 from the pressure sensor.
- the filtered signal which incorporates only the 25-Hz component of the pressure signal, is supplied on line 51 to the volume controller.
- An analyzer 53 that is part of the volume controller receives the filtered signal and compares its ac amplitude during systole with its ac amplitude during diastole, to determine whether the artery 21 is under applanated, over applanated, or optimally applanated.
- the analyzer produces a corresponding error signal that is supplied on line 55 to the summer 45, which sums the error signal with the 25-Hz modulation signal, to produce a control signal that controls the liquid source 37.
- Operation of the control system automatically regulates the amount of liquid in the liquid- filled chamber 23 of the tonometer assembly 11 such that the assembly optimally applanates the patient's radial artery 21.
- the analyzer 53 of the volume controller 35 determines that the ac amplitude of the filtered pressure signal is greater during systole than it is during diastole, then a positive error signal is produced, which is coupled through the summer 45 to the liquid source 37, to supply additional liquid to the tonometer chamber and thereby increase the applanation of the artery.
- the analyzer determines that filtered pressure signal's ac amplitude is greater during diastole than it is during systole.
- the apparatus further includes a 25-Hz band stop filter 57 and a display 59.
- the filter receives the pressure signal on line 27 from the pressure sensor 25, and it samples this signal at a rate of 50 samples per second. This sampling is phased with the 25-Hz modulation signal output on line 43 by the oscillator 41 such that it always occurs at the modulation signal's zero crossings.
- the sampled pressure signal then is coupled on line 61 to the display, for real-time display.
- enhanced coupling of the pressure variance within the patient's radial artery 21 due to heartbeats is provided by actively maintaining the artery fixed at its optimal applanation level throughout each heartbeat pulse.
- This is accomplished by a second control system, which servo controls, in real time, the amount of liquid in the chamber 23 of the tonometer assembly 11 so as to counteract the effect of the arterial pressure variations.
- this servo control is effected in combination with the control system that regulates the tonometer assembly to provide the optimal mean artery applanation, as described above.
- FIG. 5 A block diagram of a blood pressure monitoring apparatus that implements both such control systems is provided in FIG. 5. Major portions of this apparatus are identical to the apparatus of FIG. 2 and are identified by the same reference numerals .
- an optical position sensor 63 (e.g., incorporating a light-emitting diode and a photodiode) is carried on the base 29 of the tonometer assembly 11, to provide a signal that indicates the position of the flexible diaphragm 15 relative to the base.
- the diaphragm position can be assumed to be related directly to the position of the patient's skin and, thus, to the diameter of the patient's radial artery 21.
- the position signal is coupled via line 65 from the position sensor directly to the summer 45 of the volume controller 35, for incorporation into the control signal supplied on line 47 to the liquid source 37.
- the position sensor 63 senses an increase in the artery's diameter and the position signal therefore exhibits a corresponding increase.
- This increase is coupled to the liquid source 37, which responds by supplying sufficient additional liquid through the conduit 39 to the chamber 23 of the tonometer assembly 11 to counteract the increased pressure.
- the result is that the artery diameter remains substantially fixed throughout the arterial pulse.
- a loop bandwidth of about 100 Hz is preferred, which is significantly higher than the 25-Hz modulation signal and the important harmonics of the arterial pulse.
- the pressure within the chamber necessarily will vary. Moreover, because of the relatively low compliance of the liquid contained within the chamber, the pressure variance within the chamber will closely match the pressure waveform of the artery.
- FIGS. 6A-6C depict the pressure signal output on line 27 by the pressure sensor 25 for the time period of one complete arterial pulse, for conditions of under applanation, over applanation, and optimal applanation, respectively. It will be noted that the signals closely follow the actual arterial pressure waveform, which also is shown in the three drawings. It will be noted that a pressure oscillation due to the 25-Hz modulation signal is present in each of the depicted pressure signals.
- the 25-Hz component of the pressure signal is skewed with its positive lobes significantly smaller than its negative lobes.
- the 25-Hz component of the pressure signal is skewed with its negative lobes significantly smaller than its positive lobes.
- the 25-Hz component has positive and negative lobes of substantially the same amplitude.
- the total ac amplitude of the 25-Hz component of the pressure signal is smaller than it is when either under applanated or over applanated. This, of course, naturally follows from the shape of the sigmoid curve of FIG. 3; the incremental pressure will vary the least in response to an incremental artery diameter change at the point where the curve is steepest, i.e., where the artery's transmural pressure is zero.
- the blood pressure monitoring apparatus of FIG. 5 implements a different technique from that of the apparatus of FIG. 2 to maintain the artery 21 at its optimum amount of applanation.
- the analyzer 53 of the volume controller 35 examines the relative amplitudes of the positive and negative lobes of the 25-Hz component of the pressure signal, which is provided to the analyzer on line from the 25-Hz bandpass filter 49. If the negative lobes are determined to be larger than the positive lobes, then it is deduced that the artery is under applanated and an appropriate error signal is coupled to the summer 45 and, in turn, the liquid source 37. Conversely, an error signal having the opposite sense is produce if the positive lobes are determined to be larger than the negative lobes, in which case it is deduced that the artery is over applanated.
- the pressure signal produced by the pressure sensor 25 closely follows the actual arterial pressure waveform. This benefit is due primarily to the servo control of the flexible diaphragm 15 of the tonometer assembly 11 such that the diameter of the artery 21 remains substantially fixed throughout each arterial pulse, as well as to the low compliance of the liquid within the chamber 23.
- the schematic diagram of FIG. 7 will help to provide an understanding of this phenomenon.
- the schematic diagram of FIG. 7 includes a spring model of the patient's wrist 13, including its radial artery 21, radial bone 67, and skin 17, as well as the tissue 19 located above and adjacent to the radial artery. Also included in the schematic diagram is a spring model of the tonometer assembly 11, including its wrist strap 31.
- the radial bone advantageously serves as a fairly rigid backing for the radial artery, but the artery wall and the tissue above and adjacent to the radial artery are modeled as a plurality of resilient springs.
- the coupling between the wrist strap and the base 29 of the tonometer assembly also is modeled as a spring.
- the present invention provides an improved apparatus for monitoring a patient's blood pressure, non- invasively, in which a flexible diaphragm is compressed against tissue overlying an artery with sufficient force to applanate the artery by an amount that optimally couples pressure waveforms within the artery.
- the amount of liquid contained within a chamber located behind the diaphragm is servo controlled, to compensate for pressure variations due to arterial pulses. This minimizes variations in the artery diameter, whereby the pressure within the liquid-filled chamber is made to closely follow the actual arterial pulse waveform.
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Abstract
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Priority Applications (5)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP52703598A JP2001506145A (en) | 1996-12-13 | 1997-12-12 | Apparatus and method for non-invasively monitoring patient blood pressure |
DE69737568T DE69737568D1 (en) | 1996-12-13 | 1997-12-12 | DEVICE FOR NON-INVASIVE MONITORING OF A PATIENT'S BLOOD PRESSURE |
AU57023/98A AU5702398A (en) | 1996-12-13 | 1997-12-12 | Apparatus and method for non-invasively monitoring a patient's blood pressure |
EP97953228A EP0973439B1 (en) | 1996-12-13 | 1997-12-12 | Apparatus for non-invasively monitoring a patient's blood pressure |
CA002274840A CA2274840A1 (en) | 1996-12-13 | 1997-12-12 | Apparatus and method for non-invasively monitoring a patient's blood pressure |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
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US08/766,810 | 1996-12-13 | ||
US08/766,810 US5848970A (en) | 1996-12-13 | 1996-12-13 | Apparatus and method for non-invasively monitoring a subject's arterial blood pressure |
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WO1998025511A2 true WO1998025511A2 (en) | 1998-06-18 |
WO1998025511A3 WO1998025511A3 (en) | 1998-09-03 |
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PCT/US1997/023097 WO1998025511A2 (en) | 1996-12-13 | 1997-12-12 | Apparatus and method for non-invasively monitoring a patient's blood pressure |
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US (2) | US5848970A (en) |
EP (1) | EP0973439B1 (en) |
JP (1) | JP2001506145A (en) |
AT (1) | ATE358439T1 (en) |
AU (1) | AU5702398A (en) |
CA (1) | CA2274840A1 (en) |
DE (1) | DE69737568D1 (en) |
WO (1) | WO1998025511A2 (en) |
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- 1997-12-12 CA CA002274840A patent/CA2274840A1/en not_active Abandoned
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- 1997-12-12 JP JP52703598A patent/JP2001506145A/en active Pending
- 1997-12-12 EP EP97953228A patent/EP0973439B1/en not_active Expired - Lifetime
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Cited By (20)
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WO2000003635A1 (en) * | 1998-07-20 | 2000-01-27 | Tensys Medical, Inc. | Apparatus and method for non-invasively monitoring a subject's arterial blood pressure |
US6176831B1 (en) | 1998-07-20 | 2001-01-23 | Tensys Medical, Inc. | Apparatus and method for non-invasively monitoring a subject's arterial blood pressure |
US6228034B1 (en) | 1998-07-20 | 2001-05-08 | Tensys Medical, Inc. | Apparatus and method for non-invasively monitoring a subjects arterial blood pressure |
AU754596B2 (en) * | 1998-07-20 | 2002-11-21 | Tensys Medical, Inc. | Apparatus and method for non-invasively monitoring a subject's arterial blood pressure |
US6471655B1 (en) | 1999-06-29 | 2002-10-29 | Vitalwave Corporation | Method and apparatus for the noninvasive determination of arterial blood pressure |
US6514211B1 (en) | 1999-06-29 | 2003-02-04 | Tensys Medical, Inc. | Method and apparatus for the noninvasive determination of arterial blood pressure |
US8328727B2 (en) | 2000-03-23 | 2012-12-11 | Tensys Medical, Inc. | Method and apparatus for assessing hemodynamic parameters within the circulatory system of a living subject |
US6554774B1 (en) | 2000-03-23 | 2003-04-29 | Tensys Medical, Inc. | Method and apparatus for assessing hemodynamic properties within the circulatory system of a living subject |
US7048691B2 (en) | 2000-03-23 | 2006-05-23 | Tensys Medical, Inc. | Method and apparatus for assessing hemodynamic parameters within the circulatory system of a living subject |
US6705990B1 (en) | 2000-07-25 | 2004-03-16 | Tensys Medical, Inc. | Method and apparatus for monitoring physiologic parameters of a living subject |
US9814398B2 (en) | 2002-02-05 | 2017-11-14 | Tensys Medical, Inc. | Method and apparatus for non-invasively measuring hemodynamic parameters using parametrics |
US7867170B2 (en) | 2002-02-05 | 2011-01-11 | Tensys Medical, Inc. | Method and apparatus for non-invasively measuring hemodynamic parameters using parametrics |
US6730038B2 (en) | 2002-02-05 | 2004-05-04 | Tensys Medical, Inc. | Method and apparatus for non-invasively measuring hemodynamic parameters using parametrics |
US7641614B2 (en) | 2005-08-22 | 2010-01-05 | Massachusetts Institute Of Technology | Wearable blood pressure sensor and method of calibration |
US7674231B2 (en) | 2005-08-22 | 2010-03-09 | Massachusetts Institute Of Technology | Wearable pulse wave velocity blood pressure sensor and methods of calibration thereof |
WO2007064654A1 (en) * | 2005-11-29 | 2007-06-07 | Massachusetts Institute Of Technology | Apparatus and method for blood pressure measurement by touch |
US10285598B2 (en) | 2006-05-13 | 2019-05-14 | United States Gtm Medical Devices | Continuous positioning apparatus and methods |
US10952675B2 (en) | 2007-10-12 | 2021-03-23 | Shangyi Medical Technology (Hangzhou) Co., Ltd | Apparatus and methods for non-invasively measuring a patient's arterial blood pressure |
US8313439B2 (en) | 2009-03-20 | 2012-11-20 | Massachusetts Institute Of Technology | Calibration of pulse transit time measurements to arterial blood pressure using external arterial pressure applied along the pulse transit path |
RU2638712C1 (en) * | 2016-11-07 | 2017-12-15 | Федеральное государственное бюджетное учреждение науки Институт радиотехники и электроники им. В.А. Котельникова Российской академии наук | Pneumatic sensor for continuous non-invasive measurement of arterial pressure |
Also Published As
Publication number | Publication date |
---|---|
EP0973439A4 (en) | 2003-03-12 |
WO1998025511A3 (en) | 1998-09-03 |
EP0973439A1 (en) | 2000-01-26 |
DE69737568D1 (en) | 2007-05-16 |
JP2001506145A (en) | 2001-05-15 |
ATE358439T1 (en) | 2007-04-15 |
US5964711A (en) | 1999-10-12 |
US5848970A (en) | 1998-12-15 |
AU5702398A (en) | 1998-07-03 |
CA2274840A1 (en) | 1998-06-18 |
EP0973439B1 (en) | 2007-04-04 |
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