Abstract:
An electronic device may include a memory and at least one processor operatively connected with the memory. The at least one processor, including processing circuitry, may run a user application in a first area operating with a first permission and run an operating system in a second area operating with a second permission higher than the first permission. The memory stores instructions configured to, when executed, cause the at least one processor to detect an operation of at least one first device included in the electronic device, in a third area operating with a third permission higher than the second permission, deliver a detection signal for the at least one first device to a fourth area, an execution environment of which is separated from the first area, the second area, and the third area, in the third area, and provide a notification that the at least one first device is operating using at least one specified second device, in the fourth area. The fourth area may be an area on a second virtual machine, an execution environment of which is separated from the first area and the second area being areas on a first virtual machine by a hypervisor executed in the third area.
Abstract:
Disclosed is an electronic device including a detection circuit and a processor operatively connected to the detection circuit. The processor is configured to obtain a first signal associated with an external object through the detection circuit, to obtain a first HR, using a first filter having an attribute of a first frequency band and to obtain a second HR, using a second filter having an attribute of a second frequency band, based at least on the first signal, to change at least some attributes associated with the second filter, based at least on the first HR and the second HR, and to obtain a second signal associated with the external object through the detection circuit, and generate heart rate variability (HRV) information, using the second filter, in which the at least some attributes are changed, based on the second signal. In addition, various embodiments as understood from the specification are also possible.
Abstract:
Example embodiments disclose a smart contact lens for augmented reality and methods of manufacturing and operating the smart contact lens. The smart contact lens includes a first contact lens, a display unit in a center region of the first contact lens, a peripheral device on the first contact lens and around the display unit, the peripheral device being connected to the display unit, and a passivation layer covering the display unit and the peripheral device. The method of manufacturing the smart contact lens includes forming a display unit; mounting the display unit in a center region of a first contact lens, forming a peripheral device on the first contact lens, around the display unit and in connection with the display unit, and forming a passivation layer to cover the display unit and the peripheral device.
Abstract:
The present disclosure includes an electronic device and a method thereof. The electronic device includes a display, an ambient light sensor, and at least one processor, operatively connected to the display and the ambient light sensor. The at least one processor is configured to detect, by using the ambient light sensor, ambient light of the electronic device during a first duration in a state in which the display is turned off, identify a setting for being used for the ambient light sensor, based at least in part on a characteristic of the ambient light, detect, by using the ambient light sensor, ambient light of the electronic device during a second duration based at least in part on the identified setting, and control a function of the display, based at least in part on the characteristic of the ambient light detected during the second duration.
Abstract:
An image display device includes an eye wearable lens; a display panel embedded inside the eye wearable lens or arranged on a surface of the eye wearable lens, the display panel comprising an array of a plurality of optical elements for forming an image to be projected onto a retina, wherein a resolution of the image formed by the plurality of optical elements is higher on a central portion of the retina than on a peripheral portion of the retina; and an image signal processor for generating an image signal according to image information which is to be displayed on the display panel and for generating a control signal for controlling each of the plurality of optical elements to be turned on/off according to the image signal.
Abstract:
Provided are a stretchable and/or foldable optoelectronic device, a method of manufacturing the same, and an apparatus including the stretchable and/or foldable optoelectronic device. A stretchable and/or foldable optoelectronic device may include an optoelectronic device portion on a substrate. The substrate may include an elastomeric polymer and may be stretchable. The optoelectronic device portion may be configured to have a wavy structure to be stretchable. The optoelectronic device portion may include a graphene layer and a quantum dot (QD)-containing layer. The stretchable and/or foldable optoelectronic device may further include a capping layer that includes an elastomeric polymer and is on the optoelectronic device portion. The stretchable and/or foldable optoelectronic device may further include a plastic material layer that contacts at least one surface of the optoelectronic device portion.
Abstract:
An electronic device according to various embodiments comprises: a bio-signal detection sensor configured to acquire first and second biometric information on an object outside the electronic device; and a processor, wherein the processor can be configured to: acquire the first and second biometric information by using the bio-signal detection sensor; configure a first variance, in which the first biometric information is changed, and a second variance, in which the second biometric information is changed; determining a state of the object related to the sleep on the basis of at least a part of the first variance and the second variance; and estimate a sleep latency related to the object on the basis of at least a part of the state.
Abstract:
An electronic device according to various embodiments may include a display, a touch sensor operatively coupled with the display, and a fingerprint sensor disposed below the display and operatively coupled with the touch sensor. The fingerprint sensor may be configured to obtain at least one image for calibrating a fingerprint image, receive a signal indicating detection of a touch input from the touch sensor while obtaining the at least one image, and cease to obtain the at least one image, based on the reception of the signal.
Abstract:
An electronic device according to various embodiments of the present invention comprises: a sensor module functionally connected with the electronic device; a receiving module functionally connected with the electronic device; and a processor, wherein the processor may detect that the electronic device is worn by a user, obtain content from an external electronic device in response to the detection, and execute the obtained content upon obtaining the content from the external electronic device.
Abstract:
An electronic device and a method are provided. The electronic device can include a motion sensor, a heart rate monitor sensor, and a processor functionally coupled with the motion sensor and the heart rate monitor sensor. The processor can be configured to obtain first motion sensor data for a first duration using the motion sensor, obtain first heartbeat data for the first duration using the heart rate monitor sensor, determine an exercise type based on the first motion sensor data, determine a heartbeat prediction range based on at least one of the first motion sensor data, the exercise type, and the first heartbeat data, obtain second heartbeat data for a second duration using the heart rate monitor sensor, determine whether the second heartbeat data falls within the heartbeat prediction range, and determine heartbeat data of the second duration based on the determination result.