US20030130588A1 - Method and system for analyzing respiratory tract sounds - Google Patents

Method and system for analyzing respiratory tract sounds Download PDF

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US20030130588A1
US20030130588A1 US10/041,494 US4149402A US2003130588A1 US 20030130588 A1 US20030130588 A1 US 20030130588A1 US 4149402 A US4149402 A US 4149402A US 2003130588 A1 US2003130588 A1 US 2003130588A1
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tilde over
acoustic energy
over
determined
average acoustic
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US10/041,494
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Igal Kushnir
Meir Botbol
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DeepBreeze Ltd
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DeepBreeze Ltd
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Priority to US10/041,494 priority Critical patent/US20030130588A1/en
Assigned to DEEPBREEZE LTD. reassignment DEEPBREEZE LTD. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: BOTBOL, MEIR, KUSHNIR, IGAL
Priority to US10/338,742 priority patent/US6887208B2/en
Priority to MXPA04006736A priority patent/MXPA04006736A/en
Priority to ES03729307T priority patent/ES2287480T3/en
Priority to AT03729307T priority patent/ATE363861T1/en
Priority to CNB03802120XA priority patent/CN100349547C/en
Priority to IL16290103A priority patent/IL162901A0/en
Priority to PT03729307T priority patent/PT1465527E/en
Priority to SI200330910T priority patent/SI1465527T1/en
Priority to CA002472785A priority patent/CA2472785A1/en
Priority to DK03729307T priority patent/DK1465527T3/en
Priority to PCT/IL2003/000029 priority patent/WO2003057037A1/en
Priority to DE60314225T priority patent/DE60314225T2/en
Priority to AU2003235813A priority patent/AU2003235813B2/en
Priority to EP03729307A priority patent/EP1465527B1/en
Priority to KR1020047010760A priority patent/KR101020477B1/en
Priority to RU2004124247/14A priority patent/RU2314751C2/en
Priority to JP2003557405A priority patent/JP4511188B2/en
Priority to BR0306845-5A priority patent/BR0306845A/en
Publication of US20030130588A1 publication Critical patent/US20030130588A1/en
Priority to IL162901A priority patent/IL162901A/en
Priority to HK05108079A priority patent/HK1076018A1/en
Abandoned legal-status Critical Current

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B7/00Instruments for auscultation
    • A61B7/02Stethoscopes
    • A61B7/026Stethoscopes comprising more than one sound collector
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/08Detecting, measuring or recording devices for evaluating the respiratory organs
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B7/00Instruments for auscultation
    • A61B7/003Detecting lung or respiration noise

Definitions

  • This invention relates to medical devices and methods, and more particularly to such devices and methods for analyzing body sounds.
  • Body sounds are routinely used by physicians in the diagnosis of various disorders.
  • a physician may place a stethoscope on a person's chest or back and monitor the patient's breathing in order to detect adventitious (i.e. abnormal or unexpected) lung sounds.
  • adventitious lung sounds often provides important information about pulmonary abnormalities.
  • U.S. Pat. No. 6,139,505 discloses a system in which a plurality of microphones are placed around a patient's chest. The recordings of the microphones during inhalation and expiration are displayed on a screen, or printed on paper. The recordings are then visually examined by a physician in order to detect a pulmonary disorder in the patent.
  • Kompis et al disclose a system in which M microphones are placed on a patient's chest, and lung sounds are recorded. The recordings generate M linear equations that are solved using a least-squares fit. The solution of the system is used to determine the location in the lungs of the source of a sound detected in the recordings.
  • the present invention provides a system and method for recording and analyzing sounds produced by the respiratory tract in order to produce an image that permits easy analysis of pathological conditions of the respiratory tract.
  • sounds are recorded in a plurality of locations over an individual's thorax (including locations in one or both of the individual's chest or back surfaces).
  • the sounds are recorded over a period of time, for example, over at least one respiratory cycle and preferably over several respiratory cycles, and the sounds recorded at each location are analyzed to produce a first analysis product.
  • the plurality of first analysis products are then combined in a manner so as to produce the desired image.
  • the first analysis product may be a function of a signal analysis in one or more of a variety of different parameters of the recorded signal, such as an analysis in the frequency domain, in the time domain, in the power domain or a combination of one or more of these domains.
  • the sounds are analyzed in the tine and frequency domains to produce said first analysis product said image therefrom.
  • a system for analyzing the respiratory tract of an individual comprising:
  • a signal analysis module for analyzing sound signals recorded by each of said transducers to produce a first analysis product
  • a display said display displaying an image produced by the analyzed sound recordings, which image includes a pattern with an overall shape corresponding to that of the respiratory system and an indication on said pattern of regions thereof that are suspected of having a pathological condition.
  • the present invention also provides a method for analyzing the condition of a respiratory tract of an individual, comprising:
  • pathological condition refers to any deviation from the normal, healthy condition of the respiratory tract. This includes infection, inflammation, tumor, narrowing of the airways, existence of a space occupying lesions in the respiratory tract, etc.
  • the first analysis product may be a function of one or more parameters of the recorded signal.
  • the first analysis product may be a function of an analysis made in a variety of different domains of the recorded signal, as pointed out above.
  • the transducers are typically embedded in a matrix that permits to affix them easily on the individual's skin.
  • a matrix may typically be in the form of a vest or garment for easily placing over the individual's thorax.
  • different matrices may be used for differently sized individual's; for different ages, sexes, etc.
  • the respiratory tract is displayed in a manner such as to resemble the general shape of the lung, typically shaped similar to that which can be viewed in an x-ray of the lung.
  • the term “similar” in this regard should be understood as meaning that a physician can generally recognize the shape of the lung from such a display although it is clear to any man of the art that the actual display of said image is different than that of an x-ray picture.
  • each region is identified as such by the existence of wheezes and crackles identified by an allowances of the recorded sound signal in the frequency domain, are identified and this may be in a number of ways, for example, by different colors, by different patterns, by way of a written text, and many other ways.
  • the present invention provides, by another embodiment, a system and method for recording and analyzing respiratory tract sounds produced in the respiratory tract.
  • the N signals P(x i , t) are processed by signal processing circuit.
  • the processing involves determining from the N signals an average acoustic energy, denoted herein by ⁇ tilde over (P) ⁇ (x,t 1 ,t 2 ), at least one position x in the region R over a time interval from t 1 to t 2 .
  • acoustic energy at a location is used herein to refer to a parameter indicative of or approximating the product of the pressure and the mass propagation velocity at that location.
  • an average acoustic energy ⁇ tilde over (P) ⁇ (x i ,t 1 ,t 2 ) over a time interval from t 1 , to t 2 is obtained at a plurality of positions x i of the microphones, for example using Equation (1), and then calculating ⁇ tilde over (P) ⁇ (x,t 1 ,t 2 ) at other locations x by interpolation of the ⁇ tilde over (P) ⁇ (x i ,t 1 ,t 2 ) using any known interpolation method.
  • the kernal g ⁇ ( x , x i , ⁇ ) Exp - ( ( x 1 - x i 1 ⁇ ⁇ ) 2 2 ⁇ ⁇ ) ⁇ Exp - ( ( x 2 - x i 2 ⁇ ⁇ ) 2 2 ⁇ ⁇ ) ( 5 )
  • the system may optionally contain a display device for displaying the function ⁇ tilde over (P) ⁇ .
  • the function ⁇ tilde over (P) ⁇ may be displayed on the display, for example using a gray level scale, as demonstrated in the examples below.
  • a two dimensional graphical representation of the function ⁇ tilde over (P) ⁇ produces an image of the body region that may be analyzed for the detection of a disorder in the body region similar to the analysis of images obtained by other imaging methods such as X-ray or ultrasound imaging.
  • a time interval can be divided into a plurality of sub intervals, and an average acoustic energy ⁇ tilde over (P) ⁇ determined over the region R for two or more of the sub intervals.
  • An image of ⁇ tilde over (P) ⁇ for each of these sub intervals may then be determined and displayed sequentially on the display device. This generates a movie showing dynamic changes occurring in the acoustic energy in the body region, over the time interval.
  • transducers may be placed on a person's chest and an average acoustic energy ⁇ tilde over (P) ⁇ determined in accordance with the invention for a plurality of sub intervals over a breathing cycle.
  • An image can be obtained for each of these sub intervals and displayed sequentially so as to generate a movie showing changes in the acoustic energy of the lungs over the breathing cycle.
  • the signals P(x i ,t) may also be subjected to band pass filtering before being analyzed by the method of the invention, so that an average acoustic energy is produced for one or more frequency bands of interest.
  • the functions may be superimposed on the display device by representing each average acoustic energy function with a different color.
  • the present invention provides a system for analyzing sounds in at least a portion of an individual's respiratory tract comprising:
  • a processor configured to receive the signals P(x i ,t) and determine an average acoustic energy ⁇ tilde over (P) ⁇ (x,t 1 ,t 2 ) at at least one position x over a time interval from a first time t 1 to a second time t 2 , ⁇ tilde over (P) ⁇ being determined in an algorithm involving at least one of the signals P(xi, t).
  • the present invention further provides a method for analyzing sounds in at least a portion of an individual's thorax, comprising:
  • the present invention also provides a program storage device readable by machine, tangibly embodying a program of instructions executable by the machine to perform method steps for determining for at least one time interval, an average acoustic energy function ⁇ tilde over (P) ⁇ using an algorithm involving at least one signal P(xi,t) indicative of pressure waves at a location x i on a body surface.
  • the present invention still further provides a computer program product comprising a computer useable medium having computer readable program code embodied therein analyzing sounds in at least a portion of an individual's body, the computer program product comprising:
  • FIG. 1 shows a system for obtaining an analyzing body sound in accordance with one embodiment of the invention
  • FIG. 2 shows a flow chart for carrying out a method of obtaining analyzing body sounds in accordance with one embodiment of the invention
  • FIG. 3 shows recording and analysis of signals over an inspiratory phase of a respiratory cycle
  • FIG. 4 shows recording and analysis of signals over an expiratory phase of a respiratory cycle.
  • FIG. 1 shows a system generally indicated by 100 for analyzing body sounds in a three-dimensional region of an individual's body in accordance with one embodiment of the invention.
  • a plurality of N sound transducers 105 are applied to a planar region of the chest or back skin of individual 110 .
  • the transducers 105 may be applied to the subject by any means is known in the art, for example using an adhesive, suction, or fastening straps.
  • Each transducer 105 produces an analog voltage signal 115 indicative of pressure waves arriving to the transducer.
  • the analog signals 115 are digitized by a multichannel analog to digital converter 120 .
  • the data signals 125 are input to a memory 130 .
  • Data input to the memory 130 are accessed by a processor 135 configured to process the data signals 125 .
  • the signals 125 may be denoised by filtering components such having frequencies outside of the range of body sounds in the body region, for example, vibrations due to movement of the individual. Each signal 125 may also be subject to band pass filtering so that only components in the signal within a range of interest are analyzed.
  • An input device such as a computer keyboard 140 or mouse 145 is used to input relevant information relating to the examination such as personal details of the individual 110 .
  • the input device 140 may also be used to input values of the times t 1 and t 2 .
  • the times t 1 and t 2 may be determined automatically times t 1 and t 2 .
  • the times t 1 and t 2 may be determined automatically in a respiratory phase analysis of the signals P(x i ,t) performed by the processor 135 .
  • the processor 135 determines an average acoustic energy ⁇ tilde over (P) ⁇ (x,t 1 ,t 2 ) over the time interval from t 1 to t 2 at least one location x in the region R in a calculation involving at least one of the signals P(x i ,t).
  • the average acoustic energies are stored in the memory 130 and may be displayed on a display device 150 such as a CRT screen for diagnosis by a physician.
  • the processor 135 may also perform an automatic differential diagnosis by comparing the function ⁇ tilde over (P) ⁇ to functions stored in the memory and known to be indicative of various disorders in the body region.
  • FIG. 2 shows a flow chart diagram for carrying out the method of the invention in accordance with one embodiment.
  • the signals P(xi,t) are obtained from N transducers placed at predetermined locations x i for i from 1 to N in a region R on the body surface.
  • values of t 1 and t 2 are either input to the processor 135 using the input devices 140 or 145 , or are detrmined by the processor.
  • an average acoustic energy ⁇ tilde over (P) ⁇ (x,t 1 ,t 2 ) is determined at least one location x in the region R over the time interval t 1 to t 2 .
  • step 220 the average acoustic energy is displayed on the display 150 for at least one value of x.
  • step 230 it is determined whether a function ⁇ tilde over (P) ⁇ is to be determined over another time interval. If yes, the process returns to step 205 . If not, the process terminates.
  • system may be a suitably programmed computer.
  • the invention contemplates a computer program being readable by a computer for executing the method of the invention.
  • the invention further contemplates a machine-readable memory tangibly embodying a program of instructions executable by the machine for executing the method of the invention.
  • FIG. 3 shows recording and analysis of signals over an inspiratory phase of a respiratory cycle in an individual.
  • a two-dimensional coordinate system was defined on the individual's back.
  • 48 transducers were placed on the individual's back over the lungs at the locations indicated by the circles 300 .
  • the curves 305 show the presumed contours of the lungs.
  • the transducers were arranged in a regular orthogonal lattice with a spacing between the transducers in the horizontal and vertical directions of 5 cm.
  • the signals P(xi,t) were then recorded over one inspiratory phase of a breathing cycle (t 1 and t 2 are the beginning and end respectively of the inspiratory phase).
  • each signal was filtered using a low-pass filter having a cut-off of 150 Hz.
  • the average value of each filtered function P(xi,t) over the inspiratory phase is indicated in FIG. 3 a by means of gray level shading of each circle 300 with reference to the gray level scale 310 .
  • FIG. 3 b shows a 512 pixel ⁇ 512 pixel pixel graphical representation of the function ⁇ tilde over (P) ⁇ (x,t 1 ,t 2 ) over the inspiratory phase also in reference to the gray level scale 310 .
  • the contours of the lungs and heart are easily perceived.
  • FIG. 4 shows recording and analysis of signals over an expiratory phase of a respiratory cycle.
  • 48 transducers were placed on an individual's back at the same locations x i used in FIG. 3, as indicated by the circles 400 .
  • the curves 405 show the presumed contours of the individual's lungs.
  • the signals P(xi,t) were then recorded over one expiratory phase of a breathing cycle (t 1 and t 2 are the beginning and end respectively of the expiratory phase).
  • Each signal was filtered using a low-pass filter having a cut-off of 150 Hz.
  • the average value of each function P(xi,t) over the expiratory phase is indicated in FIG.
  • FIG. 4 a shows the function ⁇ tilde over (P) ⁇ (x,t 1 ,t 2 ) over the expiratory phase also in reference to the gray level scale 410 .
  • FIGS. 3 b and 4 b shows the volume change in acoustic energy between the inspiratory and expiratory phase of the respiratory cycle.

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Abstract

A system and method for analyzing the respiratory tract sounds. The system comprises a plurality of transducers that are placed on the individual's skin over the thorax. A signal analysis module analyzes sound signals recorded by the transducers and produces a first analysis product. A display device displays an image based upon the first analysis product. The image includes a pattern with an overall shape corresponding to that of the respiratory system. Regions in the image that are suspected of having a pathological condition may be indicated.

Description

    FIELD OF THE INVENTION
  • This invention relates to medical devices and methods, and more particularly to such devices and methods for analyzing body sounds. [0001]
  • BACKGROUND OF THE INVENTION
  • Body sounds are routinely used by physicians in the diagnosis of various disorders. A physician may place a stethoscope on a person's chest or back and monitor the patient's breathing in order to detect adventitious (i.e. abnormal or unexpected) lung sounds. The identification and classification of adventitious lung sounds often provides important information about pulmonary abnormalities. [0002]
  • It is also known to fix one or more microphones onto a subject's chest or back and to record lung sounds. U.S. Pat. No. 6,139,505 discloses a system in which a plurality of microphones are placed around a patient's chest. The recordings of the microphones during inhalation and expiration are displayed on a screen, or printed on paper. The recordings are then visually examined by a physician in order to detect a pulmonary disorder in the patent. Kompis et al ([0003] Chest, 120(4), 2001) disclose a system in which M microphones are placed on a patient's chest, and lung sounds are recorded. The recordings generate M linear equations that are solved using a least-squares fit. The solution of the system is used to determine the location in the lungs of the source of a sound detected in the recordings.
  • SUMMARY OF THE INVENTION
  • In the following description and set of claims, two explicitly described, calculable, or measurable variables are considered equivalent to each other when the two variables are proportional to one another. [0004]
  • The present invention provides a system and method for recording and analyzing sounds produced by the respiratory tract in order to produce an image that permits easy analysis of pathological conditions of the respiratory tract. In accordance with the invention, sounds are recorded in a plurality of locations over an individual's thorax (including locations in one or both of the individual's chest or back surfaces). The sounds are recorded over a period of time, for example, over at least one respiratory cycle and preferably over several respiratory cycles, and the sounds recorded at each location are analyzed to produce a first analysis product. The plurality of first analysis products are then combined in a manner so as to produce the desired image. The first analysis product may be a function of a signal analysis in one or more of a variety of different parameters of the recorded signal, such as an analysis in the frequency domain, in the time domain, in the power domain or a combination of one or more of these domains. In accordance with the preferred embodiment of the invention, the sounds are analyzed in the tine and frequency domains to produce said first analysis product said image therefrom. [0005]
  • In accordance with one embodiment of the invention, there is provided a system for analyzing the respiratory tract of an individual, comprising: [0006]
  • a plurality of transducers for placing in a plurality of a pre-defined locations over the individual's thorax; [0007]
  • a signal analysis module for analyzing sound signals recorded by each of said transducers to produce a first analysis product; and [0008]
  • a display, said display displaying an image produced by the analyzed sound recordings, which image includes a pattern with an overall shape corresponding to that of the respiratory system and an indication on said pattern of regions thereof that are suspected of having a pathological condition. [0009]
  • The present invention also provides a method for analyzing the condition of a respiratory tract of an individual, comprising: [0010]
  • (i) placing a plurality of sound transducers in pre-defined locations on one or both of an individual's chest or back over the thorax; [0011]
  • (ii) recording sound by each of said transducers over a period of time including at least one respiratory cycle; [0012]
  • (iii) analyzing the sound recorded at each location to obtain a first analysis product; and [0013]
  • (iv) Combining the plurality of first analysis products into a display, said display comprising a pattern with an overall shape corresponding to that of the respiratory system and an indication of regions thereof that are suspected of having a pathological condition. [0014]
  • The term “pathological condition” refers to any deviation from the normal, healthy condition of the respiratory tract. This includes infection, inflammation, tumor, narrowing of the airways, existence of a space occupying lesions in the respiratory tract, etc. [0015]
  • The first analysis product may be a function of one or more parameters of the recorded signal. The first analysis product may be a function of an analysis made in a variety of different domains of the recorded signal, as pointed out above. [0016]
  • The transducers are typically embedded in a matrix that permits to affix them easily on the individual's skin. Such a matrix may typically be in the form of a vest or garment for easily placing over the individual's thorax. As may be appreciated, different matrices may be used for differently sized individual's; for different ages, sexes, etc. [0017]
  • The respiratory tract is displayed in a manner such as to resemble the general shape of the lung, typically shaped similar to that which can be viewed in an x-ray of the lung. The term “similar” in this regard should be understood as meaning that a physician can generally recognize the shape of the lung from such a display although it is clear to any man of the art that the actual display of said image is different than that of an x-ray picture. [0018]
  • In said display, regions that are suspected to include a pathological condition, each region is identified as such by the existence of wheezes and crackles identified by an allowances of the recorded sound signal in the frequency domain, are identified and this may be in a number of ways, for example, by different colors, by different patterns, by way of a written text, and many other ways. [0019]
  • The present invention provides, by another embodiment, a system and method for recording and analyzing respiratory tract sounds produced in the respiratory tract. The system includes a plurality of N transducers (microphones) configured to be attached to an essentially planar region R of the individual's back or chest over the individual's thorax. Positions in the region R are indicated by two-dimensional position vectors x=(x[0020] 1,x2) in a two-dimensional coordinate system defined in the planar region R. The ith transducer, for i=1 to N, is fixed at a position xi in the region R and generates a signal, denoted herein by P(xi,t), indicative of pressure waves in the body arriving at xi.
  • The N signals P(x[0021] i, t) are processed by signal processing circuit. In accordance with the invention, the processing involves determining from the N signals an average acoustic energy, denoted herein by {tilde over (P)}(x,t1,t2), at least one position x in the region R over a time interval from t1 to t2. The term “acoustic energy” at a location is used herein to refer to a parameter indicative of or approximating the product of the pressure and the mass propagation velocity at that location.
  • In one embodiment, an average acoustic energy over a time interval from t[0022] 1 to t2 is obtained at a position of one of the microphones using the algebraic expression P ~ ( x i , t 1 , t 2 ) = t 1 t 2 P 2 ( x i , t ) t ( 1 )
    Figure US20030130588A1-20030710-M00001
  • where x[0023] i is the position of the microphone.
  • In a more preferred embodiment, an average acoustic energy {tilde over (P)}(x[0024] i,t1,t2) over a time interval from t1, to t2 is obtained at a plurality of positions xi of the microphones, for example using Equation (1), and then calculating {tilde over (P)}(x,t1,t2) at other locations x by interpolation of the {tilde over (P)}(xi,t1,t2) using any known interpolation method.
  • In a most preferred embodiment, the interpolation is performed to obtain an average acoustic energy {tilde over (P)}(x,t[0025] 1,t2) at a position x=(x1,x2) in the surface R using the algebraic expression: P ~ ( x , t 1 , t 2 ) = i = 1 N P ~ ( x i , t 1 , t 2 ) g ( x , x i , σ ) ( 2 )
    Figure US20030130588A1-20030710-M00002
  • where g(x,x[0026] i,σ) is a kernal satisfying 2 g = g σ ( 3 ) i = 1 N g ( x , x i , σ ) is approximately equal to 1 ( 4 )
    Figure US20030130588A1-20030710-M00003
  • and where x[0027] i=(xi 1,xi 2) is the position of the ith microphone and σ is a selectable parameter.
  • For example, the kernal [0028] g ( x , x i , σ ) = Exp - ( ( x 1 - x i 1 σ ) 2 2 σ ) · Exp - ( ( x 2 - x i 2 σ ) 2 2 σ ) ( 5 )
    Figure US20030130588A1-20030710-M00004
  • may be used. [0029]
  • The system may optionally contain a display device for displaying the function {tilde over (P)}. The function {tilde over (P)} may be displayed on the display, for example using a gray level scale, as demonstrated in the examples below. A two dimensional graphical representation of the function {tilde over (P)} produces an image of the body region that may be analyzed for the detection of a disorder in the body region similar to the analysis of images obtained by other imaging methods such as X-ray or ultrasound imaging. [0030]
  • Additionally, a time interval can be divided into a plurality of sub intervals, and an average acoustic energy {tilde over (P)} determined over the region R for two or more of the sub intervals. An image of {tilde over (P)} for each of these sub intervals may then be determined and displayed sequentially on the display device. This generates a movie showing dynamic changes occurring in the acoustic energy in the body region, over the time interval. For example, transducers may be placed on a person's chest and an average acoustic energy {tilde over (P)} determined in accordance with the invention for a plurality of sub intervals over a breathing cycle. An image can be obtained for each of these sub intervals and displayed sequentially so as to generate a movie showing changes in the acoustic energy of the lungs over the breathing cycle. [0031]
  • The signals P(x[0032] i,t) may also be subjected to band pass filtering before being analyzed by the method of the invention, so that an average acoustic energy is produced for one or more frequency bands of interest. The functions may be superimposed on the display device by representing each average acoustic energy function with a different color.
  • The present invention provides a system for analyzing sounds in at least a portion of an individual's respiratory tract comprising: [0033]
  • (a) a plurality of N transducers, each transducer configured to be fixed on a surface of the individual over the thorax, the ith transducer being fixed at a location x[0034] i and generating a signal P(xi,t) indicative of pressure waves at the location xi; for i=l to N; and
  • (b) a processor configured to receive the signals P(x[0035] i,t) and determine an average acoustic energy {tilde over (P)}(x,t1,t2) at at least one position x over a time interval from a first time t1 to a second time t2, {tilde over (P)} being determined in an algorithm involving at least one of the signals P(xi, t).
  • The present invention further provides a method for analyzing sounds in at least a portion of an individual's thorax, comprising: [0036]
  • (a) obtaining N signals P(xi,t) for i=1 to N, the signal P(xi,t) being indicative of pressure waves at the location x[0037] i; on a surface of the body over the thorax;
  • (b) determining an average acoustic energy {tilde over (P)}(x,t[0038] 1,t2) at at least one position x over a time interval from a first time t1 to a second time t2, {tilde over (P)} determined in an algorithm involving at least one of the signals.
  • The present invention also provides a program storage device readable by machine, tangibly embodying a program of instructions executable by the machine to perform method steps for determining for at least one time interval, an average acoustic energy function {tilde over (P)} using an algorithm involving at least one signal P(xi,t) indicative of pressure waves at a location x[0039] i on a body surface.
  • The present invention still further provides a computer program product comprising a computer useable medium having computer readable program code embodied therein analyzing sounds in at least a portion of an individual's body, the computer program product comprising: [0040]
  • computer readable program code for causing the computer to determine, for at least one time interval, an acoustic energy function {tilde over (P)}, {tilde over (P)} being determined in algorithm involving at least one signal P(xi,t)indicative of pressure waves at a location x[0041] i on a body surface.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • In order to understand the invention and to see how it may be carried out in practice, a preferred embodiment will now be described, by way of non-limiting example only, with reference to the accompanying drawings, in which: [0042]
  • FIG. 1 shows a system for obtaining an analyzing body sound in accordance with one embodiment of the invention; [0043]
  • FIG. 2 shows a flow chart for carrying out a method of obtaining analyzing body sounds in accordance with one embodiment of the invention; [0044]
  • FIG. 3 shows recording and analysis of signals over an inspiratory phase of a respiratory cycle; and [0045]
  • FIG. 4 shows recording and analysis of signals over an expiratory phase of a respiratory cycle.[0046]
  • DETAILED DESCRIPTION OF THE INVENTION
  • FIG. 1 shows a system generally indicated by [0047] 100 for analyzing body sounds in a three-dimensional region of an individual's body in accordance with one embodiment of the invention. A plurality of N sound transducers 105, of which four are shown, are applied to a planar region of the chest or back skin of individual 110. The transducers 105 may be applied to the subject by any means is known in the art, for example using an adhesive, suction, or fastening straps. Each transducer 105 produces an analog voltage signal 115 indicative of pressure waves arriving to the transducer. The analog signals 115 are digitized by a multichannel analog to digital converter 120. The digital data signals P(xi,t) 125, represent the pressure wave at the location xi of the ith transducer (i=1 to N) at time t. The data signals 125 are input to a memory 130. Data input to the memory 130 are accessed by a processor 135 configured to process the data signals 125. The signals 125 may be denoised by filtering components such having frequencies outside of the range of body sounds in the body region, for example, vibrations due to movement of the individual. Each signal 125 may also be subject to band pass filtering so that only components in the signal within a range of interest are analyzed.
  • An input device such as a [0048] computer keyboard 140 or mouse 145 is used to input relevant information relating to the examination such as personal details of the individual 110. The input device 140 may also be used to input values of the times t1 and t2. Alternatively, the times t1 and t2 may be determined automatically times t1 and t2. Alternatively, the times t1 and t2 may be determined automatically in a respiratory phase analysis of the signals P(xi,t) performed by the processor 135. The processor 135 determines an average acoustic energy {tilde over (P)}(x,t1,t2) over the time interval from t1 to t2 at least one location x in the region R in a calculation involving at least one of the signals P(xi,t).
  • The average acoustic energies are stored in the [0049] memory 130 and may be displayed on a display device 150 such as a CRT screen for diagnosis by a physician.
  • The [0050] processor 135 may also perform an automatic differential diagnosis by comparing the function {tilde over (P)} to functions stored in the memory and known to be indicative of various disorders in the body region.
  • FIG. 2 shows a flow chart diagram for carrying out the method of the invention in accordance with one embodiment. In [0051] step 200 the signals P(xi,t) are obtained from N transducers placed at predetermined locations xi for i from 1 to N in a region R on the body surface. In step 205 values of t1 and t2 are either input to the processor 135 using the input devices 140 or 145, or are detrmined by the processor. In step 210, an average acoustic energy {tilde over (P)}(x,t1,t2) is determined at least one location x in the region R over the time interval t1 to t2. In step 220 the average acoustic energy is displayed on the display 150 for at least one value of x. In step 230, it is determined whether a function {tilde over (P)} is to be determined over another time interval. If yes, the process returns to step 205. If not, the process terminates.
  • It will also be understood that the system according to the invention may be a suitably programmed computer. Likewise, the invention contemplates a computer program being readable by a computer for executing the method of the invention. The invention further contemplates a machine-readable memory tangibly embodying a program of instructions executable by the machine for executing the method of the invention. [0052]
  • EXAMPLES
  • The system and method of the invention were used to analyze lower respiratory tract sounds in an individual. [0053]
  • FIG. 3 shows recording and analysis of signals over an inspiratory phase of a respiratory cycle in an individual. A two-dimensional coordinate system was defined on the individual's back. As shown in FIG. 3[0054] a, 48 transducers were placed on the individual's back over the lungs at the locations indicated by the circles 300. The curves 305 show the presumed contours of the lungs. As can be seen, the transducers were arranged in a regular orthogonal lattice with a spacing between the transducers in the horizontal and vertical directions of 5 cm. The signals P(xi,t) were then recorded over one inspiratory phase of a breathing cycle (t1 and t2 are the beginning and end respectively of the inspiratory phase). Each signal was filtered using a low-pass filter having a cut-off of 150 Hz. The average value of each filtered function P(xi,t) over the inspiratory phase is indicated in FIG. 3a by means of gray level shading of each circle 300 with reference to the gray level scale 310. {tilde over (P)}(x,t1,t2) was obtained using Equations (1) and (2) above with the kernal g of Equation (5) with σ=36 pixels. FIG. 3b shows a 512 pixel×512 pixel graphical representation of the function {tilde over (P)}(x,t1,t2) over the inspiratory phase also in reference to the gray level scale 310. In the graphical representation of the function {tilde over (P)}(x,t1,t2) shown in FIG. 3b, the contours of the lungs and heart are easily perceived.
  • FIG. 4 shows recording and analysis of signals over an expiratory phase of a respiratory cycle. As shown in FIG. 4[0055] a, 48 transducers were placed on an individual's back at the same locations xi used in FIG. 3, as indicated by the circles 400. The curves 405 show the presumed contours of the individual's lungs. The signals P(xi,t) were then recorded over one expiratory phase of a breathing cycle (t1 and t2 are the beginning and end respectively of the expiratory phase). Each signal was filtered using a low-pass filter having a cut-off of 150 Hz. The average value of each function P(xi,t) over the expiratory phase is indicated in FIG. 4a by means of gray level shading of each circle 400 with reference to the gray level scale 410. {tilde over (P)}(x,t1,t2) was obtained using Equations (1) and (2) above. FIG. 3b shows the function {tilde over (P)}(x,t1,t2) over the expiratory phase also in reference to the gray level scale 410. Comparison of FIGS. 3b and 4 b shows the volume change in acoustic energy between the inspiratory and expiratory phase of the respiratory cycle.

Claims (31)

1. A system for analyzing the respiratory tract of an individual, comprising:
(a) a plurality of transducers for placing in a plurality of a pre-defined locations on the individual's skin over the thorax;
(b) a signal analysis module for analyzing sound signals recorded by each of said transducers to produce a first analysis product; and
(c) a display, said display displaying an image based upon the first analysis product, which image includes a pattern with an overall shape corresponding to that of the respiratory system and an indication on said pattern of regions in the image which are suspected of having a pathological condition.
2. A system for analyzing sounds in at least a portion of an individual's respiratory tract comprising:
(a) a plurality of N transducers, each transducer configured to be fixed on a surface of the individual over the thorax, the ith transducer being fixed at a location xi and generating a signal P(xi,t) indicative of pressure waves at the location xi; for i=1 to N; and
(b) a processor configured to receive the signals P(xi,t) and determine an average acoustic energy {tilde over (P)}(x,t1,t2) at at least one position x over a time interval from a first time t1 to a second time t2, {tilde over (P)} being determined in an algorithm involving at least one of the signals P(xi,t).
3. The system according to claim 2 further comprising a two-dimensional display device.
4. The system according to claim 3 wherein the processor is further configured to display a representation of the function {tilde over (P)}.
5. The system according to claim 2 wherein the processor is further configured to compare the average acoustic energy {tilde over (P)} to one or more predetermined functions {tilde over (F)} and determine a function {tilde over (F)}0 from among the functions {tilde over (F)} most similar to {tilde over (P)}.
6. The system according to claim 5 wherein the processor is further configured to make a diagnosis based upon the determined function.
7. The system according to claim 2 wherein the average acoustic energy {tilde over (P)} over a time interval from t1 to t2 is determined at a location xi of a transducer using the algebraic expression:
P ~ ( x i , t 1 , t 2 ) = t 1 t 2 P 2 ( x i , t ) t .
Figure US20030130588A1-20030710-M00005
8. The system according to claim 2 wherein the function {tilde over (P)} is determined at one or more locations x in an algorithm comprising:
(a) determining an average acoustic energy {tilde over (P)}(xi,t1,t2) over a time interval from t1 to t2 at a plurality of locations xi of transducers; and
(b) determining an average acoustic energy {tilde over (P)}(x,t1,t2) at at least one location x by interpolation of the determined {tilde over (P)}(xi,t1,t2).
9. The system according to claim 8 wherein an average acoustic energy {tilde over (P)}(xi,t1,t2) is determined over a time interval from t1 to t2 at a plurality of locations xi of transducers using the algebraic expression:
P ~ ( x i , t 1 , t 2 ) = t 2 t 2 P 2 ( x i , t ) t .
Figure US20030130588A1-20030710-M00006
10. The system according to claim 8 wherein an average acoustic energy is determined at at least one location x by interpolation of the determined {tilde over (P)}(xi,t1,t2) using the algebraic expression:
P ~ ( x , t 1 , t 2 ) = i = 1 N P ~ ( x i , t 1 , t 2 ) g ( x , x i , σ ) ( 2 )
Figure US20030130588A1-20030710-M00007
where g(x,xi,σ) is a kernal satisfying
2 g = g σ ( 3 ) i = 1 N g ( x , x i , σ ) is approximately equal to 1. ( 4 )
Figure US20030130588A1-20030710-M00008
11. The system according to claim 10 wherein g(x,viσ) is the kernal
g ( x , x i , σ ) = Exp - ( ( x 1 - x i 1 σ ) 2 2 σ ) · Exp - ( ( x 2 - x i 2 σ ) 2 2 σ ) . ( 5 )
Figure US20030130588A1-20030710-M00009
12. The system according to claim 2 wherein the processor is configured to determine an average acoustic energy over a plurality of time intervals, each average acoustic energy being determined using an algorithm involving at least one of the signals P(xi,t).
13. The system according to claim 2 wherein the processor is configured to sequentially display on a display device a representation of each determined average acoustic energy.
14. The system according to claim 2 wherein the processor is configured to:
(a) for each of one or more frequency bands,
(aa) subject the signals (P,xi,t) to band pass filtering in the frequency band; and
(ab) determine an average acoustic energy function for the frequency band based upon at least one of the filtered signals.
15. The system according to claim 14 wherein the processor is configured to display one or more of the average acoustic energy functions determined for a frequency band on a display device.
16. A method for analyzing the condition of a respiratory tract of an individual, comprising:
(a) placing a plurality of sound transducers in pre-defined locations over one or both of an individual's thorax;
(b) recording sound by each of said transducers over a period of time including at least one respiratory cycle;
(c) analyzing the sound recorded at each location to obtain a first analysis product; and
(d) combining the plurality of first analysis products into a display, said display comprising a pattern with an overall shape corresponding to that of the respiratory system and an indication of regions thereof that are suspected of having a pathological condition
17. A method for analyzing sounds in at least a portion of an individual's thorax, comprising:
(a) obtaining N signals P(xi,t) for i=1 to N, the signal P(xi,t) being indicative of pressure waves at the location xi; on a surface of the body over the thorax;
(b) determining an average acoustic energy {tilde over (P)}(x,t1,t2) at at least one position x over a time interval from a first time t1 to a second time t2, {tilde over (P)} determined in an algorithm involving at least one of the signals.
18. The method according to claim 17 further comprising displaying a representation of {tilde over (P)} on a two-dimensional surface.
19. The method according to claim 17 further comprising comparing the average acoustic energy {tilde over (P)} to one or more predetermined functions {tilde over (F)}and determining a function {tilde over (F)}0 from among the functions {tilde over (F)} most similar to {tilde over (P)}.
20. The method according to claim 17 wherein further comprising making a diagnosis based upon the determined function.
21. The method according to claim 17 wherein the average acoustic energy over a time interval from t1 to t2 is determined at a location xi of a transducer using the algebraic expression:
P ~ ( x i , t 1 t 2 ) = t 1 t 2 P 2 ( x i , t ) t .
Figure US20030130588A1-20030710-M00010
22. The method according to claim 17 wherein the function {tilde over (P)} is determined at one or more locations x in an algorithm comprising;
(a) determining an average acoustic energy {tilde over (P)}(xi,t1,t2) over a time interval from t1 to t2 at a plurality of locations xi of transducers; and
(b) determining an average acoustic energy {tilde over (P)}(x,t1,t2) at at least one location x by interpolation of the determined {tilde over (P)}(x,t1,t2).
23. The method according to claim 22 wherein an average acoustic energy {tilde over (P)}(x,t1,t2) is determined over a time interval from t1 to t2 a at a plurality of locations of transducers using the algebraic expression:
P ~ ( xi , t 1 , t 2 ) = t 1 t 2 P 2 ( x i , t ) t
Figure US20030130588A1-20030710-M00011
24. The method according to claim 22 wherein an average acoustic energy is determined at at least one location x by interpolation of the determined {tilde over (P)}(x,t1,t2) using the algebraic expression:
P ~ ( x , t 1 , t 2 ) = i = 1 N P ~ ( x i , t 1 , t 2 ) g ( x , x i , σ ) ( 2 )
Figure US20030130588A1-20030710-M00012
where g(x,xi,σ) is a kernal satisfying
2 g = g σ ( 3 ) i = 1 N g ( x , x 1 , σ ) is approximately equal to 1. ( 4 )
Figure US20030130588A1-20030710-M00013
25. The method according to claim 24 wherein g(x,xi,σ) is the kernal
g ( x , x i , σ ) = Exp - ( ( x 1 - x i 1 σ ) 2 2 σ ) · Exp - ( ( x 2 - x i 2 σ ) 2 2 σ )
Figure US20030130588A1-20030710-M00014
26. An image of a two-dimensional representation of {tilde over (P)} produced by the method of claim 18.
27. The method according to claim 17 comprising determine an average acoustic energy over a plurality of time intervals, each average acoustic energy being determined using an algorithm involving at least one of the signals P(xi,t) further comprising sequentially displaying on a display device a representation of each determined average acoustic energy.
28. The method according to claim 17 further comprising, for each of one or more frequency bands:
(a) subjecting the signals P(xi,t) to band pass filtering in the frequency band; and
(b) determining an average acoustic energy function for the frequency band based upon at least one of the filtered signals.
29. The method according to claim 28 further comprising displaying on a display device one or more of the acoustic energy functions determined for a frequency band.
30. A program storage device readable by machine, tangibly embodying a program of instructions executable by the machine to perform method steps for determining for at least one time interval, an average acoustic energy function {tilde over (P)} using an algorithm involving at least one signal P(xi,t) indicative of pressure waves at a location xi on a body surface.
31. A computer program product comprising a computer useable median having computer readable program code embodied therein analyzing sounds in at least a portion of an individual's body, the computer program product comprising:
computer readable program code for causing the computer to determine for at least one time interval, an acoustic energy function {tilde over (P)}, {tilde over (P)} being determined in algorithm involving at least one signal P(xi,t) indicative of pressure waves at a location xi on a body surface.
US10/041,494 2002-01-10 2002-01-10 Method and system for analyzing respiratory tract sounds Abandoned US20030130588A1 (en)

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US10/041,494 US20030130588A1 (en) 2002-01-10 2002-01-10 Method and system for analyzing respiratory tract sounds
US10/338,742 US6887208B2 (en) 2002-01-10 2003-01-09 Method and system for analyzing respiratory tract sounds
BR0306845-5A BR0306845A (en) 2002-01-10 2003-01-12 System for analyzing sounds in at least one part of an individual's respiratory tract, method for analyzing sounds in at least one part of an individual's chest, image from a two-dimensional representation and computer program
DK03729307T DK1465527T3 (en) 2002-01-10 2003-01-12 System for the analysis and imaging of airway sounds
AU2003235813A AU2003235813B2 (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tract sounds
AT03729307T ATE363861T1 (en) 2002-01-10 2003-01-12 SYSTEM FOR ANALYZING AND IMAGING RESPIRATORY SOUNDS
CNB03802120XA CN100349547C (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tract sounds
IL16290103A IL162901A0 (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tractsounds
PT03729307T PT1465527E (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tract sounds
SI200330910T SI1465527T1 (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tract sounds
CA002472785A CA2472785A1 (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tract sounds
MXPA04006736A MXPA04006736A (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tract sounds.
PCT/IL2003/000029 WO2003057037A1 (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tract sounds
DE60314225T DE60314225T2 (en) 2002-01-10 2003-01-12 SYSTEM FOR ANALYZING AND SHAPING NOISE FROM THE AIRWAY
ES03729307T ES2287480T3 (en) 2002-01-10 2003-01-12 ANALYSIS AND REPRESENTATION SYSTEM BY SOUND IMAGE OF THE RESPIRATORY TRACT.
EP03729307A EP1465527B1 (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tract sounds
KR1020047010760A KR101020477B1 (en) 2002-01-10 2003-01-12 System for analyzing and imaging respiratory tract sounds
RU2004124247/14A RU2314751C2 (en) 2002-01-10 2003-01-12 System for studying and building images of respiratory tracts noise
JP2003557405A JP4511188B2 (en) 2002-01-10 2003-01-12 Airway acoustic analysis and imaging system
IL162901A IL162901A (en) 2002-01-10 2004-07-07 System for analyzing and imaging respiratory tract sounds
HK05108079A HK1076018A1 (en) 2002-01-10 2005-09-15 System for analyzing and imaging respiratory tractsounds

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Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1502549A1 (en) * 2003-07-23 2005-02-02 Konica Minolta Medical & Graphic, Inc. Medical image displaying method
US20050182340A1 (en) * 2004-02-04 2005-08-18 Meir Botbol Method and system for tissue differentiation
WO2007060663A1 (en) * 2005-11-25 2007-05-31 Deepbreeze Ltd. Method and system for regional assessment of lung physiology
US20080139893A1 (en) * 2006-12-08 2008-06-12 Warren Lee Apparatus And System For Sensing and Analyzing Body Sounds
WO2008072233A1 (en) * 2006-12-11 2008-06-19 Deepbreeze Ltd. Method and system for analyzing body sounds
WO2008096349A1 (en) * 2007-02-06 2008-08-14 Deepbreeze Ltd. Method and system for regional assessment of pulmonary function
WO2009125407A1 (en) * 2008-04-08 2009-10-15 Deepbreeze Ltd. Method and system for quantitation of respiratory tract sounds
WO2015114285A1 (en) * 2014-01-30 2015-08-06 Smiths Medical International Limited Respiratory therapy systems, sensors arrangements and methods
WO2017194713A1 (en) * 2016-05-11 2017-11-16 Koninklijke Philips N.V. Chest wall oscillation system with digital auscultation
WO2021151172A1 (en) * 2020-01-29 2021-08-05 Zira D.O.O. System and method of multichannel recording and digital analysis of respiratory sounds at different levels of inspiratory load

Families Citing this family (31)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
IL130818A (en) 1999-07-06 2005-07-25 Intercure Ltd Interventive-diagnostic device
US8672852B2 (en) 2002-12-13 2014-03-18 Intercure Ltd. Apparatus and method for beneficial modification of biorhythmic activity
AU2004243189A1 (en) * 2003-06-02 2004-12-09 Deepbreeze Ltd. Method and system for analyzing cardiovascular sounds
US7033323B2 (en) * 2004-02-04 2006-04-25 Deepbreeze Ltd. Method and system for analyzing respiratory tract air flow
US20050180581A1 (en) * 2004-02-04 2005-08-18 Meir Botbol Integrated microphone array
EP1804649A4 (en) * 2004-07-23 2009-01-28 Intercure Ltd Apparatus and method for breathing pattern determination using a non-contact microphone
US7387610B2 (en) 2004-08-19 2008-06-17 Cardiac Pacemakers, Inc. Thoracic impedance detection with blood resistivity compensation
US7513875B2 (en) * 2004-10-20 2009-04-07 Deepbreeze Ltd. Method and system for managing mechanical respiratory ventilation
US7907997B2 (en) 2005-05-11 2011-03-15 Cardiac Pacemakers, Inc. Enhancements to the detection of pulmonary edema when using transthoracic impedance
US7340296B2 (en) 2005-05-18 2008-03-04 Cardiac Pacemakers, Inc. Detection of pleural effusion using transthoracic impedance
US8900154B2 (en) 2005-05-24 2014-12-02 Cardiac Pacemakers, Inc. Prediction of thoracic fluid accumulation
US20070244406A1 (en) * 2005-10-20 2007-10-18 Igal Kushnir Method and system for managing interventional pulmonology
FI120716B (en) * 2005-12-20 2010-02-15 Smart Valley Software Oy A method for measuring and analyzing the movements of a human or animal using audio signals
US8920343B2 (en) 2006-03-23 2014-12-30 Michael Edward Sabatino Apparatus for acquiring and processing of physiological auditory signals
US20090326418A1 (en) 2006-08-07 2009-12-31 Deepbreeze Ltd. Microphone matrix for recording body sounds
US20080281219A1 (en) * 2007-04-11 2008-11-13 Deepbreeze Ltd. Method and System for Assessing Lung Condition and Managing Mechanical Respiratory Ventilation
US8152734B2 (en) * 2007-11-28 2012-04-10 Pierson Precision Auscultation System and method for diagnosis of bovine diseases using auscultation analysis
US11389080B2 (en) 2007-11-28 2022-07-19 Intervet Inc. System and method for diagnosis of bovine diseases using auscultation analysis
WO2009083942A1 (en) * 2007-12-30 2009-07-09 Deepbreeze Ltd. Diagnostic system for accurate recording of acoustic signals
US10064580B2 (en) 2008-11-07 2018-09-04 Intervet Inc. System and method for determining antibiotic effectiveness in respiratory diseased animals using auscultation analysis
US20100256505A1 (en) * 2009-04-03 2010-10-07 Jingping Xu Health monitoring method and system
WO2011117862A2 (en) 2010-03-24 2011-09-29 Haim Melman Wearable sensors
WO2011117861A1 (en) 2010-03-25 2011-09-29 Merav Gat Differential lung functionality assessment
EP2651293B1 (en) * 2010-12-17 2015-02-25 Koninklijke Philips N.V. System and method for determining one or more breathing parameters of a subject
RU2528653C2 (en) * 2012-06-20 2014-09-20 Государственное бюджетное образовательное учреждение высшего профессионального образования "Тихоокеанский государственный медицинский университет" Министерства здравоохранения Российской Федерации (ГБОУ ВПО ТГМУ Минздрава России) Acoustic diagnostic technique for individual's pulmonary focal lesions
JP5521131B1 (en) * 2012-12-28 2014-06-11 パナソニック株式会社 Respiratory phase determination device, respiratory phase determination method, and respiratory phase determination program
AU2014215675B2 (en) 2013-02-06 2018-08-30 Intervet International B.V. System and method for determining antibiotic effectiveness in respiratory diseased using auscultation analysis
RU2677811C2 (en) * 2013-11-28 2019-01-21 Конинклейке Филипс Н.В. Sleep monitoring device and method
WO2019170526A1 (en) * 2018-03-06 2019-09-12 Koninklijke Philips N.V. High frequency chest wall oscillator
CN109893163B (en) * 2019-01-23 2021-07-02 苏州美糯爱医疗科技有限公司 Method for automatically positioning and repairing clipping distortion waveform of electronic stethoscope
US20220202310A1 (en) * 2020-12-31 2022-06-30 Sanolla Ltd. Test station for screening of COVID-19 and other respiratory conditions

Family Cites Families (39)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3604852A (en) 1970-03-02 1971-09-14 Howard Wise Apparatus for the visual aesthetic display of sound
US4387722A (en) 1978-11-24 1983-06-14 Kearns Kenneth L Respiration monitor and x-ray triggering apparatus
US4289142A (en) 1978-11-24 1981-09-15 Kearns Kenneth L Physiological occurrence, such as apnea, monitor and X-ray triggering device
SU993917A1 (en) 1981-06-08 1983-02-07 Научно-Исследовательский Институт Сельского Хозяйства Нечерноземной Зоны Усср Device for auscalting animal udder
US4777961A (en) 1985-10-15 1988-10-18 Bruce Saltzman High sensitivity stethoscopic system and method
US4833625A (en) 1986-07-09 1989-05-23 University Of Arizona Image viewing station for picture archiving and communications systems (PACS)
US5213108A (en) 1988-02-04 1993-05-25 Blood Line Technology, Inc. Visual display stethoscope
US5010889A (en) 1988-02-04 1991-04-30 Bloodline Technology Intelligent stethoscope
US5218969A (en) 1988-02-04 1993-06-15 Blood Line Technology, Inc. Intelligent stethoscope
GB8825611D0 (en) 1988-11-02 1988-12-07 Stoneman S A T Respiratory condition diagnosis & apparatus therefor
CN2048347U (en) * 1988-12-16 1989-11-29 索铁香 Portable clinical diagnose device
US5058600A (en) 1990-01-08 1991-10-22 Center For Innovative Technology Graphical readout of laryngotracheal spectra and airway monitor
JPH03245194A (en) * 1990-02-23 1991-10-31 Kokusai Denshin Denwa Co Ltd <Kdd> Word voice recognition system
JPH0416900A (en) * 1990-05-10 1992-01-21 Clarion Co Ltd Speech recognition device
JPH0482538A (en) 1990-07-25 1992-03-16 Hitachi Ltd Inhaling sound diagnosing apparatus
US5309922A (en) 1992-09-21 1994-05-10 Center For Innovative Technology Respiratory sound analyzer for use in high noise environments
CN1094271A (en) * 1993-04-27 1994-11-02 北京市元大传感技术研究所 The method and apparatus of automatically measuring and recording respiration-suffocation process
US5526442A (en) 1993-10-04 1996-06-11 Hitachi Medical Corporation X-ray radiography method and system
NO301210B1 (en) * 1994-12-14 1997-09-29 Camtech As Use of sensors to measure an individual's respiration time volume
US5492125A (en) 1995-02-10 1996-02-20 University Of Washington Ultrasound signal processing apparatus
US6390977B1 (en) 1995-06-07 2002-05-21 Alliance Pharmaceutical Corp. System and methods for measuring oxygenation parameters
US5957866A (en) 1995-07-03 1999-09-28 University Technology Corporation Apparatus and methods for analyzing body sounds
US5774558A (en) 1995-10-30 1998-06-30 Rsq, Llc Sound imager
IL117146A0 (en) 1996-02-15 1996-06-18 Gull Medical Software Systems Diagnosis of lung condition
JP3687181B2 (en) * 1996-04-15 2005-08-24 ソニー株式会社 Voiced / unvoiced sound determination method and apparatus, and voice encoding method
US6168568B1 (en) * 1996-10-04 2001-01-02 Karmel Medical Acoustic Technologies Ltd. Phonopneumograph system
US5844997A (en) 1996-10-10 1998-12-01 Murphy, Jr.; Raymond L. H. Method and apparatus for locating the origin of intrathoracic sounds
RU2127075C1 (en) 1996-12-11 1999-03-10 Корженевский Александр Владимирович Method for producing tomographic image of body and electrical-impedance tomographic scanner
US6140565A (en) 1998-06-08 2000-10-31 Yamaha Corporation Method of visualizing music system by combination of scenery picture and player icons
IL124900A0 (en) 1998-06-14 1999-01-26 Tapuz Med Tech Ltd Apron for performing ecg tests and additional examinations
US6135960A (en) 1998-08-31 2000-10-24 Holmberg; Linda Jean High-resolution, three-dimensional whole body ultrasound imaging system
US6139505A (en) * 1998-10-14 2000-10-31 Murphy; Raymond L. H. Method and apparatus for displaying lung sounds and performing diagnosis based on lung sound analysis
US6396931B1 (en) 1999-03-08 2002-05-28 Cicero H. Malilay Electronic stethoscope with diagnostic capability
FR2791248B1 (en) * 1999-03-24 2001-08-24 Georges Kehyayan DEVICE FOR ANALYZING AUSCULTATORY NOISE, IN PARTICULAR RESPIRATORY NOISE
US7343195B2 (en) 1999-05-18 2008-03-11 Mediguide Ltd. Method and apparatus for real time quantitative three-dimensional image reconstruction of a moving organ and intra-body navigation
WO2001022883A1 (en) 1999-09-29 2001-04-05 Siemens Corporate Research, Inc. Multi-modal cardiac diagnostic decision support system and method
US6381351B1 (en) 1999-11-24 2002-04-30 Direct Radiography Corp. Weighted inverse topography method for digital x-ray image data processing
US6944330B2 (en) 2000-09-07 2005-09-13 Siemens Corporate Research, Inc. Interactive computer-aided diagnosis method and system for assisting diagnosis of lung nodules in digital volumetric medical images
KR100387201B1 (en) 2000-11-16 2003-06-12 이병훈 Diaortic apparatus

Cited By (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050033147A1 (en) * 2003-07-23 2005-02-10 Konica Minolta Medical & Graphic, Inc. Medical image displaying method, program, and recording medium
EP1502549A1 (en) * 2003-07-23 2005-02-02 Konica Minolta Medical & Graphic, Inc. Medical image displaying method
US7481770B2 (en) * 2004-02-04 2009-01-27 Deepbreeze Ltd. Method and system for tissue differentiation
US20050182340A1 (en) * 2004-02-04 2005-08-18 Meir Botbol Method and system for tissue differentiation
US20110130674A1 (en) * 2005-11-25 2011-06-02 Igal Kushnir Method and System for Regional Assessment of Lung Physiology
WO2007060663A1 (en) * 2005-11-25 2007-05-31 Deepbreeze Ltd. Method and system for regional assessment of lung physiology
US20080139893A1 (en) * 2006-12-08 2008-06-12 Warren Lee Apparatus And System For Sensing and Analyzing Body Sounds
WO2008072233A1 (en) * 2006-12-11 2008-06-19 Deepbreeze Ltd. Method and system for analyzing body sounds
WO2008096349A1 (en) * 2007-02-06 2008-08-14 Deepbreeze Ltd. Method and system for regional assessment of pulmonary function
WO2009125407A1 (en) * 2008-04-08 2009-10-15 Deepbreeze Ltd. Method and system for quantitation of respiratory tract sounds
WO2015114285A1 (en) * 2014-01-30 2015-08-06 Smiths Medical International Limited Respiratory therapy systems, sensors arrangements and methods
WO2017194713A1 (en) * 2016-05-11 2017-11-16 Koninklijke Philips N.V. Chest wall oscillation system with digital auscultation
CN109152693A (en) * 2016-05-11 2019-01-04 皇家飞利浦有限公司 Wall of the chest oscillatory system with number auscultation
US11432991B2 (en) 2016-05-11 2022-09-06 Koninklijke Philips N.V. Chest wall oscillation system with digital auscultation
WO2021151172A1 (en) * 2020-01-29 2021-08-05 Zira D.O.O. System and method of multichannel recording and digital analysis of respiratory sounds at different levels of inspiratory load

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AU2003235813A1 (en) 2003-07-24
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