Abstract:
A wearable device includes: a touch screen; an acceleration sensor configured to generate an acceleration signal; an optical sensor using a light source and configured to generate a touch interrupt signal; and a control unit configured to detect a wearing state of the wearable device, the wearing state of the wearable device including a not-wearing state for the wearable device, a wrist wearing state, and a hand gripping state on the basis of the acceleration signal and the touch interrupt signal, and to execute a function corresponding to the wearing state of the wearable device.
Abstract:
The present invention relates to a wearable terminal includes a display comprising a front side and a rear side, a first sensing unit configured to sense a biometric characteristic and disposed at the rear side of the display to be proximate to or contact a user's body, a second sensing unit configured to sense a movement of the terminal; and controller configured to execute a different function based on the movement of the terminal when a sensing strength of the biometric characteristic via the first sensing unit is greater than a threshold strength level, wherein the sensing strength is varied based on a portion of the user's body which the first sensing unit is proximate to or is in contact with.
Abstract:
A wearable device includes: a touch screen; an acceleration sensor configured to generate an acceleration signal; an optical sensor using a light source and configured to generate a touch interrupt signal; and a control unit configured to detect a wearing state of the wearable device, the wearing state of the wearable device including a not-wearing state for the wearable device, a wrist wearing state, and a hand gripping state on the basis of the acceleration signal and the touch interrupt signal, and to execute a function corresponding to the wearing state of the wearable device.
Abstract:
Provided is a mobile terminal. The mobile terminal includes: a display unit disposed at a front of the mobile terminal; a front proximity sensor disposed at the front of the mobile terminal; a back proximity sensor disposed at a back of the mobile terminal; and a control unit performing an operation by using a detection result of the back proximity sensor.
Abstract:
Provided is an expandable mobile terminal having improved usability through a sensing unit for sensing the relative position of a second frame to a first frame by using an optical tracking sensor (OTS).
Abstract:
Embodiments of the present disclosure relate to generating explanation maps for explaining convolutional neural networks through attribution-based input sampling and block-wise feature aggregation. An example of a disclosed method for generating an explanation map for a convolutional neural network (CNN) includes obtaining an input image resulting in an output determination of the CNN, selecting a plurality of feature maps extracted from a plurality of pooling layers of the CNN, generating a plurality of attribution masks based on the plurality of feature maps, applying the generated attribution masks to the input image to obtain a plurality of visualization maps, and generating an explanation map of the output determination of the CNN based on the plurality of visualization maps.
Abstract:
Disclosed herein is a mobile terminal capable of indicating the position of a force sensor arranged inside a side case using the shape of a non-conductive mold disposed between conductive members to sense pressure. For the mobile terminal, a user input unit and an antenna may be arranged to overlap each other, and a bump and a recess may be formed using a non-conductive mold that is easy to process. Accordingly, uniformity of appearance may be maintained without forming a bump and a recess on the conductive member.