Abstract:
An electronic device may include a blood glucose sensor configured to generate a blood glucose value by measuring a blood glucose level of a user, at least one processor, and memory storing instructions that, when executed by the at least one processor individually and/or collectively, cause the electronic device to generate logs for the blood glucose value of the user obtained through the blood glucose sensor, determine a target event based on a target blood glucose value of the user obtained through the blood glucose sensor and the logs, and output a message suggesting a target behavior for the target event.
Abstract:
An apparatus for obtaining bio information includes: a first electrode portion including a current electrode and a voltage electrode arranged to contact a first body portion of a subject; a second electrode portion including a current electrode and a voltage electrode arranged to contact a second body portion of the subject; and a measuring unit configured to measure a bio impedance of the subject by applying a current to the current electrodes of the first and second electrode portions and detecting a voltage at the voltage electrodes of the first and second electrode portions. In order to decrease errors of a measured bio impedance, contact resistances of the first and second body portions of the subject contacting the current electrode and the first and second body portions of the subject contacting the voltage electrode are different from each other, for at least one of the first and second electrode portions.
Abstract:
A non-volatile inverter may be configured to perform a memory function. The non-volatile inverter may include first and second transistors. The first transistor may include a first gate electrode, a first electrode, and a second electrode. The second transistor may include a second gate electrode and a third electrode and may share the second electrode with the first transistor. The first transistor may include a first switching layer and a charge trap layer. The first switching layer may be configured to switch between a high resistance state and a low resistance state. The charge trap layer may be configured to trap or de-trap charges according to the resistance state of the first switching layer. The first switching layer may include a P-N diode. The second transistor may include a second gate switching layer and a charge trap layer.
Abstract:
An apparatus for obtaining bio information includes: a first electrode portion including a current electrode and a voltage electrode arranged to contact a first body portion of a subject; a second electrode portion including a current electrode and a voltage electrode arranged to contact a second body portion of the subject; and a measuring unit configured to measure a bio impedance of the subject by applying a current to the current electrodes of the first and second electrode portions and detecting a voltage at the voltage electrodes of the first and second electrode portions. In order to decrease errors of a measured bio impedance, contact resistances of the first and second body portions of the subject contacting the current electrode and the first and second body portions of the subject contacting the voltage electrode are different from each other, for at least one of the first and second electrode portions.
Abstract:
A method and device for measuring a biological variable are provided. The method of measuring the biological variable may include detecting an infrared signal which is irradiated toward a body part and is reflected therefrom, extracting spectrum data from the detected infrared signal, obtaining intensity data corresponding to a preset frequency from the extracted spectrum data, obtaining a biological information-measuring model by performing multiple linear regression (MLR) on the obtained data, and measuring a biological signal of the body part by using the obtained biological information-measuring model.
Abstract:
Provided is a wearable apparatus for obtaining biological information, the wearable apparatus including: a bio signal measuring unit configured to measure a bio signal of a subject; and a position detector configured to detect a position of the subject wearing the wearable apparatus and determine correction factors with regard to the measured bio signal in response to the detected position. Since the biological information of the subject may be analyzed by reflecting the correction factors determined by the position detector to the measured bio signal, the accuracy of analysis results may be increased, and thus, user convenience regarding measuring positions may be increased.
Abstract:
A mobile healthcare device and method of operating the same are provided. The method includes setting a mode of the mobile healthcare device to a measurement mode, displaying a screen for guiding a user to maintain a predetermined position during the measurement mode, and, in response to a predetermined amount of time passing from a time at which the screen begins to be displayed, obtaining state information of the user based on bio information of the user, the bio information being received from a sensor.
Abstract:
A wrist-wearable body composition measuring device includes a main body; a strap connected to the main body; a first input electrode and a first output electrode which are provided on an inner surface of the strap and configured to contact a wrist of a subject; a second input electrode and a second output electrode which are provided on an outer surface of the strap; a measuring unit configured to measure a body impedance of the subject by applying current to the first input electrode and the second input electrode and detecting a voltage generated between the first output electrode and the second output electrode in response to the applied current; and a processor configured to analyze a body composition of the subject based on the body impedance measured by the measuring unit.
Abstract:
An electronic device is provided. The electronic device includes a housing comprising a front plate facing a first direction, a back plate facing a second direction that is opposite the first direction, and an outer wall which encompasses the space between the front plate and the back plate and in which a pipe passage extending to the outside is arranged, a speaker module positioned in the space, which is adjacent to the pipe passage, a printed circuit board arranged along at least a part of the side surface of the speaker module and formed along the periphery of the region between the outer wall, having the pipe passage, and the speaker module, and a first sealing member arranged between the back plate and a bracket and formed into a closed loop along the edge of the speaker module.
Abstract:
Provided are a dual coupler device configured to receive lights of different polarization components, a spectrometer including the dual coupler device, and a non-invasive biometric sensor including the spectrometer. The dual coupler device may include, for example, a first coupler layer configured to receive a light of a first polarization component among incident lights. and a second coupler layer configured to receive a light of a second polarization component among the incident lights, wherein a polarization direction of the light of the first polarization component is perpendicular to a polarization direction of the light of the second polarization component. The first coupler layer and the second coupler layer may be spaced apart from each other and extended along a direction in which the light propagates in the first coupler layer and the second coupler layer.