Patent classifications
A61B7/02
DEVICE AND METHOD FOR ASSESSING, PREDICTING AND OPERATING USERS HEALTH IN REAL TIME
Exemplary embodiments of the present disclosure are directed towards a medical device for assessing, and predicting and operating the user's health by capturing the user's vital signs in real time. The medical device comprises a plurality of electrodes and a plurality of sensors positioned on various finger sheaths, wrist portions, and hand portions. The various finger sheaths, the wrist portions, and the hand portions are configured to allow the plurality of electrodes to detect a plurality of electrical potentials on different surfaces of a user's body parts and the plurality of sensors to collect vital signs on different surfaces of a user's body parts. at least one processing device configured to contact with the plurality of electrodes and the plurality of sensors, the plurality of electrodes and the plurality of sensors configured to transmit the detected plurality of electrical potentials and the plurality of vital signs from the different surfaces of the user's body parts to the processing device. The processing device configured to store the plurality of electrical potentials and the plurality of vital signs and process the detected plurality of electrical potentials and the plurality of vital signs to assess a user's health and an end user device configured to receive the plurality of processed electrical potentials and the plurality of vital signs form the processing device through a network.
EQUIPMENT FOR DESTRUCTION OF CORONAVIRUSES BY MEANS OF COMPLEMENTARY RADIATION
The equipment for the destruction of viruses by means of complementary radiation consists of a technology focused on weakening the fatty layer covering certain viruses, to cause the indirect destruction of them. This technology utilizes intense, modulated light radiation, the principal emitters thereof being 460-nanometers LEDs which, with the technology of the invention, emit secondary radiation in a band ranging from 400 to 460 nanometers, in order to achieve the weakening and destruction of the fatty layer that covers viruses such as SARS-CoV-2. This light radiation is complemented with ultrasound pulses that complete the destructive effect of the interior of the virus. For this purpose, technology involving emission by means of stratified quantum excitation is employed, which uses monochromatic light-emitting diodes to achieve very-high-intensity polychromatic emissions highly controllable regarding tissue penetration.
SYSTEM FOR DETECTING DISEASE OF THE INTERNAL ORGANS FROM VOICE, WAVEFORM AND PHYSIOLOGICAL CHANGES
Audio analysis is combined with physiological data to provide indications of the health of bodily organs and systems.
SYSTEM FOR DETECTING DISEASE OF THE INTERNAL ORGANS FROM VOICE, WAVEFORM AND PHYSIOLOGICAL CHANGES
Audio analysis is combined with physiological data to provide indications of the health of bodily organs and systems.
Lung sound denoising stethoscope, algorithm, and related methods
An electronic stethoscope includes an acoustic sensor assembly having a first microphone to detect biological sounds within a body, a detection system in communication with the first microphone to receive an auscultation signal from the first microphone, the auscultation signal including information of the biological sounds detected by the first microphone. The stethoscope also includes a second microphone in communication with the detection system to detect noise from an environment of the body. The detection system receives a noise signal from the second microphone, and provides a resultant signal based on the auscultation signal and the noise signal. The detection system subtracts information from the auscultation signal to produce the resultant signal, where the subtracted information is based on the noise signal such that the subtracted information is based more on higher frequency ranges of the noise signal compared to a lower frequency range corresponding to the biological sounds.
Home medical examination system and garment
A garment comprising a central portion including a plurality of electrocardiogram leads, a plurality of auscultation acoustic sensor devices, a flexible respiratory sensor located so that it substantially circumscribes the garment, one or more blood pressure cuff portions located on an at least one arm portion of the garment, wherein the cuff portions are adapted to be loosened and/or tightened and a hardware device for sending and receiving signals via wired or wireless communication.
Home medical examination system and garment
A garment comprising a central portion including a plurality of electrocardiogram leads, a plurality of auscultation acoustic sensor devices, a flexible respiratory sensor located so that it substantially circumscribes the garment, one or more blood pressure cuff portions located on an at least one arm portion of the garment, wherein the cuff portions are adapted to be loosened and/or tightened and a hardware device for sending and receiving signals via wired or wireless communication.
Breakaway stethoscope system and method
A breakaway stethoscope includes a chest piece, a headset, a tube, and a coupler. The chest piece captures sounds generated inside a person's body when the chest piece is positioned adjacent the person's body. The headset directs the sounds captured by the chest piece toward a person's ear when the headset is positioned on an ear of the person. The tube connects the chest piece to the headset and conveys the sounds captured by the chest piece toward the headset. The tube has a length and includes a first portion connected to the chest piece and a second portion connected to the headset. The coupler releasably connects the tube's first portion to the tube's second portion and releases one of the tube's portions when the tube experiences a force that urges at least one of the tube's portions to move away from the coupler.
Breakaway stethoscope system and method
A breakaway stethoscope includes a chest piece, a headset, a tube, and a coupler. The chest piece captures sounds generated inside a person's body when the chest piece is positioned adjacent the person's body. The headset directs the sounds captured by the chest piece toward a person's ear when the headset is positioned on an ear of the person. The tube connects the chest piece to the headset and conveys the sounds captured by the chest piece toward the headset. The tube has a length and includes a first portion connected to the chest piece and a second portion connected to the headset. The coupler releasably connects the tube's first portion to the tube's second portion and releases one of the tube's portions when the tube experiences a force that urges at least one of the tube's portions to move away from the coupler.
SYSTEMS AND METHODS TO DETECT RESPIRATORY DISEASES USING RESPIRATORY SOUNDS
Systems and methods for monitoring patients with respiratory diseases are described. A system may include a sensor circuit configured to sense one or more physiological signals indicative of respiratory sounds, and a spectral analyzer to generate first and second spectral contents at respective first and second frequency bands. The system may produce a respiratory anomaly indicator using the first and second spectral contents, or additionally with other physiological parameters. The system may detect an onset or progression of a target respiratory condition such as asthma or chronic obstructive pulmonary disease using the respiratory anomaly indicator, or to trigger or adjust a therapy.