Nova Patents
EP3554366A1

Health monitoring systems and methods

Abstract

This record has no abstract on file.

Term

11.2 yearsto projected expiry

Projected expiry 15 December 2037, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

91 claims: 64 independent, 27 dependent

  1. 1
    Claims of equivalent WO 2018112401 A1 What is claimed is:1. A method, device and/or system as described herein.
  2. 2
    A system or device or method of using a light pipe having one or more light sources or LEDs and a barrier wall disposed therein for health monitoring.
  3. 3
    A system or device or method of using a light pipe having one or more light sources or LEDs and a barrier wall disposed therein;including disposing the barrier wall about the light sources or LEDs to disperse light in a desirable fashion for health monitoring.
  4. 4
    A light pipe for health monitoring according to any of claims 1-3 having one or both:one or more light sources or LEDs and a barrier wall disposed therein;and, one or more light sensors or photodiodes for health monitoring.
  5. 5
    A method, device or system according to any of claims 1-4 further including one or both:a light transmissive material having at least one of the light sources or LEDs and a barrier wall disposed therewithin;and, one or more light sensors or photodiodes disposed within the light transmissive material.
  6. 6
    A method, device or system for health monitoring according to any of claims 1-5 further including a light transmissive material or a light pipe that encapsulates either or both:the one or more light sources and the one or more sensors .
  7. 8
    A method, device or system according to any of claims 1-7 further including an external barrier wall.
  8. 10
    A method, device or system according to any of claims 1-9 including using the light pipe for oxygenation determination.
  9. 13
    A method, device or system according to any of claims 10-12 further comprising one or more of:emitting light to the skin of the user by one or both of direct emission or reflection;and, collecting light by one or both of direct collection or reflection;the reflection being off the barrier wall or the external barrier wall.
  10. 14
    A method of oxygenation determination, using a light pipe having one or more light sources or LEDs and a barrier wall disposed therein.
  11. 15
    A method, device or system according to claims 1-14, using one or more of red, InfraRed (IR), green, or using a weighted combination of wavelengths.
  12. 16
    A method, device or system according to claims 1-15, wherein one or more of:the transmissive material is epoxy;the barrier walls are one or the other of metal or plastic;the barrier walls are either or both opaque or diffuse reflective to the one or morewavelengths of light used;the transmissive material has a substantially flat surface;a thin adhesive is adhered to the surface of the transmissive material for adhering to the skin;the thin adhesive has a similar refractive index to the transmissive material;and/or little or no air gap is presented between the transmissive material and one or more of the skin, the light sources and the sensors.
  13. 17
    A method of oxygenation determination, using a light pipe having one or more centrally disposed light sources or LEDs and a barrier wall disposed therein.
  14. 18
    A method according to any of claims 1-17 wherein the one or more light sources or LEDs are centrally disposed relative one or more sensors or photodiodes to sense reflected light emitted from the light sources.
  15. 19
    A method according to any of claims 1-18 wherein the one or more sensors or photodiodes are peripherally disposed relative to the light sources or LEDs.
  16. 20
    A method according to claims 1-19 wherein one or more of:two light sources or LEDs are disposed centrally relative to two or more sensors;four light sources or LEDs are disposed centrally relative to two or more sensors;and, four light sources or LEDs are disposed centrally relative to four or more sensors;wherein the barrier wall is disposed between the sensors and the light sources or LEDs.
  17. 21
    A device for monitoring a physiological parameter, the device being adapted to be adhered to the skin of a subject for the physiological parameter monitoring; the device comprising:a substrate;and one or both of: a conductive sensor connected to the substrate, and a combination of one or more pulse oximetry sensors connected to the substrate, and, one or more light sources or LEDs for one or more wavelengths, and a barrier wall disposed therebetween.
  18. 23
    A device according to claims 21 or 22 or including any of the methods, devices or systems of claims 1-20 wherein the one or more pulse oximetry sensors and/or light sources or LEDs provide for a focused or controlled interrogation of a capillary bed in order to reduce local motion artifact effects.
  19. 24
    A method of oxygenation determination, using one or more centrally disposed light sources or LEDs.
  20. 25
    A method according to claims 24 wherein the one or more centrally disposed light sources or LEDs are centrally disposed relative one or more sensors or photodiodes to sense reflected light emitted from the light sources.
  21. 26
    A method according to claims 24 or 25 wherein the one or more sensors or photodiodes are peripherally disposed relative to the light sources or LEDs.
  22. 27
    A method according to claims 24-26, using red, InfraRed (IR), green, or using a weighted combination of wavelengths.
  23. 28
    A method according to claims 24-27 wherein one or more of:two light sources or LEDs are disposed centrally relative to two or more sensors;four light sources or LEDs are disposed centrally relative to two or more sensors;and, four light sources or LEDs are disposed centrally relative to four or more sensors.
  24. 29
    A device for monitoring a physiological parameter, the device being adapted to be adhered to the skin of a subject for the physiological parameter monitoring; the device comprising:a substrate;and one or both of: a conductive sensor connected to the substrate, and a combination of one or more pulse oximetry sensors connected to the substrate, and, one or more light sources or LEDs for one or more wavelengths, the one or more light sources or LEDs being centrally disposed relative to the sensors.
  25. 31
    A device for monitoring a physiological parameter according to any of claims 24-30, the device being adapted to be adhered to the skin of a subject for the physiological parameter monitoring; the device comprising:a substrate;and one or both of: a conductive sensor connected to the substrate, and circuitry for reducing errors caused by ambient light using a correlated double sampling technique;comprising: one or more light sensors;one or more light sources or LEDs for one or more wavelengths, the one or more light sources being centrally disposed relative to the sensors;first and second switches and;first and second capacitors, wherein the first capacitor is in series with the light sensor, and the second capacitor is in parallel with the output, and the first and second switches are disposed between the output and ground to alternatively provide output or shunt to ground.
  26. 32
    A device, system or method for monitoring a physiological parameter according to any of claims 1-31, the device, system or method being adapted to be adhered to the skin of a subject for the physiological parameter monitoring; the device comprising:a substrate;and one or both of: a conductive sensor connected to the substrate, and circuitry for reducing errors caused by ambient light using a correlated double sampling technique;comprising: one or more light sensors;one or more light sources or LEDs for one or more wavelengths;a barrier wall disposed between the one or more light sensors and the one or more light sources or LEDs;first and second switches and;first and second capacitors, wherein the first capacitor is in series with the light sensor, and the second capacitor is in parallel with the output, and the first and second switches are disposed between the output and ground to alternatively provide output or shunt to ground.
  27. 34
    A device, system or method according to either of claims 31, 32 or 33 further including a resistor in parallel with the other circuit elements.
  28. 35
    A device, system or method according to claims 31, 32, 33 or 34 wherein the first capacitor is CI, the second capacitor is C2, the first switch is S I, the second switch is S2 and wherein when the light sources are turned off, and switch S 1 is closed, and switch S2 is open; charge proportional to the noise signal accumulates on CI, and then switch S I is opened and, then, the voltage on CI is equal to the noise signal voltage; and, wherein, next, the light signal may be measured; switch S2 is closed, and charge is allowed to flow through CI and C2 in series; and, then, S2 is opened, and the voltage is held on C2 until the next measurement cycle when the whole process is repeated; and, if CI is much larger than C2, nearly all the voltage will appear on C2, and the voltage on C2 will be equal to the noise-free signal (s); or, otherwise, the voltage on C2 will be a linearcombination of the previous C2 voltage (p) and the noise-free signal:(C2 * s + Cl * p) / (Cl + C2).
  29. 37
    A device according to claims 31-36; wherein one or more of:a trans-impedance amplifier is used in place of resistor R, a phototransistor in place of the light sensor, and FETs in place of the first and second switches;or the output may be followed by one or more of additional buffering,amplification, filtering and processing stages.
  30. 38
    A method, device or system according to any of claims 1-37 of measuring oxygen saturation in an individual, the method comprising the steps of:measuring an electrocardiogram signal over multiple heart beats;measuring one or more pulse oximetry signals over multiple heart beats such that the electrocardiogram signal and the one or more pulse oximetry signals are in time concordance over one or more heart beats;comparing a portion of the electrocardiogram signal and the one or more pulse oximetry signals in time concordance over one or more heart beats to determine a constant component and a primary periodic component of each of the one or more pulse oximetry signals;and determining oxygen saturation from the constant components and primary periodic components of the one or more pulse oximetry signals.
  31. 40
    The method of claims 38 or 39 wherein said step of comparing includes defining intervals of said pulse oximetry signal based on characteristics of said electrocardiogram signal and averaging values of said pulse oximetry signal over a plurality of such intervals.
  32. 41
    The method of claims 38-40 wherein said constant components and said primary periodic components of said pulse oximetry signals are determined from said average values.
  33. 42
    The method of claims 38-41 wherein said electrocardiogram signal includes an R wave signal each with a peak value in each of said heart beats and said intervals are determined with respect to the peak values of the R wave signals.
  34. 43
    The method of claims 38-42 wherein said electrocardiogram signal and said pulse oximetry signal are measured from a chest location on said individual.
  35. 44
    A device, system or method according to any of claims 1-43 for reducing noise in health monitoring including a wearable health monitoring device having at least one sensor for health monitoring;the wearable health monitoring device having a composite adhesive having at least one conductive portion applied adjacent the sensor;and, including adaptations for the at least one sensor to have increased effectiveness in receiving signals with reduced noise;wherein the adaptations include a convex lens.
  36. 46
    A device according to claims 44-45 wherein the convex lens is adapted to be disposed in operative contact with a wearer's/user's skin at or adjacent the wearer's/user's forehead or chest.
  37. 47
    A device according to claims 44-46 wherein the convex lens is an encapsulant.
  38. 48
    A device according to claims 44-47 wherein the convex lens encapsulant encapsulates the sensor.
  39. 49
    A device according to claims 44-48 wherein the convex lens encapsulant encapsulates the sensor and is in operative contact with the sensor not allowing an interference airgap between the sensor and the encapsulant.
  40. 50
    A device according to claims 44-49 further comprising one or more LEDs wherein the convex lens encapsulant encapsulates the one or more LEDs.
  41. 51
    A device according to claims 44-50 wherein the convex lens encapsulant encapsulates the one or more LEDs and is in operative contact with at least one of the one or more LEDs not allowing an interference airgap between the at least one of the one or more LEDs and the encapsulant.
  42. 52
    A device according to claims 44-51 wherein the convex lens is one or more of clear, colorless, silicone and medical grade silicone.
  43. 53
    A device according to claims 44-52 wherein the adaptations are used for pulse oximetry.
  44. 54
    A device according to claims 44-53 further comprising one or more functionalities including one or more of EKG, PPG and wearer acceleration.
  45. 55
    A device according to claims 44-54 further comprising one or more functionalities including one or both of driven right leg and/or proxy driven right leg.
  46. 56
    A device according to claims 44-55 further comprising a driven or proxy driven electrode on a wearer chest or a wearer forehead.
  47. 58
    A device according to claims 44-57 providing for transmission of LED waves therethrough to the wearer's/user's skin without interfering transmission thereinto.
  48. 60
    A device according to claims 44-59 that is made from medical grade silicone that is one or more of substantially clear, substantially colorless, substantially soft, substantially low durometer, tacky gel, or has very high-tack adhesives embedded on both sides.
  49. 62
    A device according to claims 60 or 61 that is specially configured such that it can be trapped between layers of the composite adhesive strip of a wearable health monitoring device, with a raised portion the size of the rectangular opening in the adhesive strip that allows the lens to protrude slightly on the patient side of the adhesive strip.
  50. 63
    A device, system or method according to any of claims 1-62 for a health sensor;comprising a lens being configured for operative contact with the wearer's/user's skin;and configured for providing noninterfering light pipe transmission of energy wavestherethrough.
  51. 64
    A method of generating one or more of a pulse shape template or a dataset representing a pulse shape using a method, system or device according to any of claims 1-63, the method comprising;using green wavelengths, an ensemble average of green over approximately the same amount of time as for either red or IR, an ensemble average of multiple wavelengths over approximately the same amount of time as for either red or IR, or an ensemble average of multiple wavelengths over significantly longer than the amount of time as for either red or IR.
  52. 65
    A method for determining pulse oxygenation using a method, system or device according to any of claims 1-64; including:generating one or more of a first pulse shape template or a dataset representing a first pulse shape, including using green wavelengths, an ensemble average of green over approximately the same amount of time as for either red or IR, an ensemble average of multiple wavelengths over approximately the same amount of time as for either red or IR, or an ensemble average of multiple wavelengths over significantly longer than the amount of time as for either red or IR;or a long time average of a single wavelength of any color.
  53. 66
    A method for determining pulse oxygenation using a method, system or device according to any of claims 1-65; comprising:a) detecting heart beats;using ECG, using green or another wavelength, or using a weighted combination of wavelengths;b) generating one or more of a first pulse shape template or a dataset representing a first pulse shape, including using green wavelengths, an ensemble average of green over approximately the same amount of time as for either red or IR, an ensemble average of multiple wavelengths over approximately the same amount of time as for either red or IR, or an ensemble average of multiple wavelengths over significantly longer than the amount of time as for either red or IR;or a long time average of a single wavelength of any color;c) obtaining a red pulse shape template or dataset representing same and an IR pulse shape template or dataset representing same, and compare each of these to the first pulse shape above;and, d) correlating via linear regression between red ensemble average with the first pulse shape template or dataset to the IR ensemble average with the first pulse shape or dataset, where the ratio of these correlations is then used as the AC ratio for oxygen saturation.
  54. 67
    A method according to any of claims 1-66 wherein colors other than green or red or IR are used.
  55. 69
    A method for health monitoring using a method or device according to any of claims 1-68, the method comprising:determining from either or both a user's ECG and/or a first photoplethysmogram PPG signal and/or a weighted combination of wavelengths when heart beats occur;time averaging the first photoplethymogram PPG signal to generate a first pulse shape template or dataset;time averaging each of two additional photoplethysmogram signals correlated to the beat locations;one of the additional signals being red, the other additional signal being IR;generating ensemble averages for each of the red and IR signals;comparing each of the red and IR ensemble averages to the first pulse shape template or dataset;using a linear regression of each of the red and IR ensemble average-comparisons to the first pulse template or dataset to determine the linear gain factor between the two signals;determining from the gain factor the patient oxygen saturation.
  56. 71
    A method according to claims 69-70 wherein the two photoplethysmogram signals include one or more or all of green, red and infrared signals.
  57. 72
    A method according to any of claims 1-71 further comprising:recording the first PPG or ECG data in time-concordance with one or two or more additional photoplethysmographs of different light wavelengths;detecting the heart beats in the first PPG or ECG signal, these heart beats allowing for definition of a frame of photoplethysmogram data for the time between two adjacent heart beats;averaging two or more of these frames together at each point in time to create an average frame for the time interval;wherein the photoplethysmograph signal is reinforced by this averaging because the photoplethysmogram is correlated with the heartbeat, and any motion artifact or other noise source that is uncorrected in time with the heartbeat is diminished;interpreting the signal-to-noise ratio of the average frame as typically higher than that of the individual frames;using linear regression to estimate the gain between the two average frame signals;estimating from this gain value one or more of the blood oxygen saturation or other components present in the blood such as hemoglobin, carbon dioxide or others.
  58. 73
    A method according to any of claims 1-72 wherein the operations are repeated for additional light wavelengths in order to estimate from the gain value one or more of the blood oxygen saturation or other components present in the blood such as hemoglobin, carbon dioxide or others.
  59. 74
    A method using a method or device according to any of claims 1-73 comprising:selecting a possible gain value, multiplying the average frame signal by it, and determining the residual error with respect to an average frame of a different wavelength;whereby the gain between red and infrared (IR) frame signals are found by: generating one or more of green or other color PPG signals or a long time average of red/IR;including the one or more of green or other color PPG signals or the long time average of red/IR with the red and IR frame signals to create two frames;averaging the two frames together first to provide a signal with reduced noise;performing linear regression of the red versus combined with green or long time average of red/IR and IR versus combined with green or long time average of red/IR;or linear regression of red versus green or long time average of red/IR and IR versus green or long time average of red/IR;or linear regression by combining green or long time average of red/IR with each of red and IR and using the ratio of these results;and then finding the ratio of the two corresponding results.
  60. 76
    A method according to one of claims 74-75 wherein one or more of ECG data, PPG data, pulse oximeter data and/or accelerometer data is used to determine respiration rate and/or depth.
  61. 78
    A method according to claims 74-77 where Red or IR or green values over time are used.
  62. 79
    A method according to claims 74-78 including measuring IR or red or green reflection by the photodiode to estimate depth and/or rate of respiration.
  63. 80
    A method according to claims 74-79 where one or both of maximum values and minimum values of a curve or waveform of the IR or red or green data represent the difference between the maximum and minimum values related to the depth of breath in an individual being monitored, and/or over time, the rate of respiration can be evaluated from the curve of maximum and minimum values over time.
  64. 81
    A method according to claims 74-80 using PPG signals.
  65. 83
    A method according to claims 81-82 including isolating the respiration signal by filtering out the PPG data to focus on thebreathing/respiration signal.
  66. 84
    A method according to claims 81-83 wherein the PPG is chest-mounted.
  67. 85
    A device using the method according to any of claims 1-84 wherein one or more of the signals are obtained from one or more of:a wearable health monitoring device having: a substrate;a conductive sensor connected to the substrate, and a double-sided composite adhesive having: at least one conductive adhesive portion, and at least one non-conductive adhesive portion;the double-sided composite adhesive being attached to the substrate and the conductive sensor;the at least one conductive adhesive portion being disposed in conductive communicative contact with the conductive sensor, and being configured to be conductively adhered to the skin of the subject for conductive signal communication from the subject to the conductive sensor.
  68. 89
    A device using the method of claims 87-88.
  69. 91
    A method according to claims 74-90 using software and computer hardware to determine the oxygen saturation.
Independent claims69