Abstract:
In-vehicle user health platform systems and methods are disclosed. The in-vehicle health platform system can include a display within a vehicle and a computer coupled to the display. The display can be on a dashboard of the vehicle or display computer having a plurality of display areas. The computer can receive health data for a user and provide options for the user to select a type of health data and report to display in one or more display areas of the display based on the received health data. The health data can include at least one of sleep data, vital signs data, oxygen level data, and workout data of the user. The health data can be received from at least one of a wearable, a health measuring device, and a weight measuring device within the vehicle. The health platform system can provide options including a sleep option to display or report the sleep data, vital signs option to display or report the vital signs data, oxygen level option to display or report the oxygen level data, and workout option to display or report the workout data. The computer can display or report the health data by displaying patterns of the health data for the user related to at least one of the sleep option, vital signs option, oxygen level option and workout option in one or more display areas of the display. The patterns can include one or more graphical elements shown on the display. The computer can provide user advice or tips to improve fitness or well-being in one or more display areas of the display based on the patterns of the health data. The advice or tips can include activity suggestions to achieve health or fitness goals or health measurement levels for the user.
Abstract:
A sleep aid device is provided that pings a user at periodic but diminishing intervals that end after a certain time period that helps facilitate slowing the body down to facilitate sleep. The sleep aid device is preferably worn by the user and most preferably on one's head.
Abstract:
A self-assessment system for assessing risk for experiencing abnormal airflow during sleep. A preferred embodiment of the system includes a cannula for sampling nasal airflow of a user. A data recording and communication device includes a sensor to receive airflow from the cannula, a converter to convert breathing airflow to an electronic signal, a recorder to record electronic signal data, and a transmitter to wirelessly transmit said electronic signal data. A mobile device includes a receiver to receive said electronic signal data transmitted from the recording and communication device, a database to store the electronic signal data, an interface to obtain questionnaire data from the user, a transmitter to wirelessly transmit the electronic signal and questionnaire data, and a mechanism to store or access instructional video information. A computer server includes a receiver to receive the electronic signal data and questionnaire data transmitted from the mobile device and a mechanism to generate a risk profile from the data received.
Abstract:
Methods, systems, computer-readable media, and apparatuses for a smart device are presented. In some implementations, a system (100) comprises a main device (200) including a processor, and a band (300) including one or more sensors 340), memory, and a battery. The band may be configured to communicatively and mechanically connect to the main device, and to store data received from the one or more sensors into the memory. Upon being connected to the band, the processor may be configured to obtain the stored data from the memory of the band, and process the stored data obtained from the memory of the band.
Abstract:
Die Erfindung betrifft eine Auswerteeinheit (9') zur Verbindung mit mindestens einem Sensor (12), der zur Erfassung von Vibrationen, Bewegung und/oder Schall mit einem Schlaf- oder Ruhemöbel koppelbar ist, wobei die Auswerteeinheit (9') zur Verarbeitung und Auswertung der Signale des mindestens einen Sensors (12) und zur Erfassung von physiologischen Parametern (P) einer das Schlaf- oder Ruhemöbel benutzenden Person eingerichtet ist, und wobei die Auswerteeinheit (9') zur Übertragung von Daten an oder zum Datenaustausch mit mindestens einer externen Komponente eingerichtet ist. Die Erfindung betrifft weiterhin ein Verfahren zur Auswertung von Signalen mindestens eines derartigen Sensors (12) und ein Schlaf- oder Ruhemöbel, insbesondere Bett (1), mit mindestens einem derartigen Sensor (12).
Abstract:
Die Erfindung betrifft eine Matratze (30) für ein Schlaf- oder Ruhemöbel mit mindestens einem in der Matratze (30) angeordneten Sensor (12) zur Erfassung von Vibrationen, Bewegung und/oder Schall. Die Matratze (30) zeichnet sich dadurch aus, dass sie mindestens ein Element zum Empfangen von Körperschall aufweist, mit dem der mindestens einen Sensor (12) gekoppelt ist. Die Erfindung betrifft weiterhin ein Schlaf- oder Ruhemöbel, insbesondere Bett (1), mit einer derartigen Matratze (30).
Abstract:
There is provided a method for alertness control of a vehicle operator, the method comprising: obtaining, by an apparatus,physiological status data of a person acquired using at least one sensor comprising at least a biosignal sensor; determining, based on at least the physiological status data, at least one alertness value being indicative of alertness level of the person; determining, by comparing the at least one alertness value to at least one alertness reference value, whether the alertness level of the person is below a threshold alertness level for operating the vehicle; and as a response to the determining that the alertness level is below the threshold alertness level, causing an output of a control signal.
Abstract:
The present invention relates to method and a system for detecting sleep phenomena, the phenomena including at least one of sleep cycles and sleep disorders such as sleep apnea and hypopnea. Ballistocardiologic signals are detected from a subject person, which provide simultaneous information on heart rate variability (HVV) and stroke volume (SV) of the subject. Values of parameters reflecting measured characteristics of currently occurring cardiologic and respiration related sleep phenomena are obtained by processing at least the ballistocardiologic signals. Obtained parameters are used for making decisions on detection of the sleep phenomena, and a monitoring result is output in response to detection of a currently occurring sleep phenomenon.
Abstract:
Provided are mechanisms and processes for more effectively monitoring infants to enhance caregiving and infant development. In one example, a system includes a platform interface that receives measurement data transmitted from multiple infant monitoring systems. The multiple infant monitoring systems each include an infant monitoring device that gathers measurement data for an infant and an infant monitoring hub that processes the measurement data. The system also includes a platform processor that analyzes the measurement data to identify patterns including a first pattern of activity of infants associated with the multiple infant monitoring systems. The patterns of activity are associated with changes in the measurement data over time. The platform processor generates a model based on the patterns of activity. This model is used to predict an upcoming activity for a first infant that has expressed a first pattern of activity.
Abstract:
Provided are mechanisms and processes for a more effectively monitoring infants to enhance caregiving and infant development. A system may include a wearable infant monitoring device having multiple sensors, a transmission interface, and a wearable casing. The multiple sensors gather measurement data associated with activity of an infant. The transmission interface transmits the measurement data detected by the multiple of sensors to a remote monitoring hub. A wearable casing is configured to house the plurality of sensors and transmission interface. The wearable casing and the multiple sensors include mechanisms to determine whether the infant is prone or supine.