Abstract:
An AI system includes a control device including storage, learning unit and display units, and a CPU electrically connected to the storage, the learning and the display units in which the storage unit stores diagnosis data; the learning unit includes a learning machine and the learning unit inputs the diagnosis data into the learning machine; and the learning machine uses a machine learning algorithm to compare data and establish a visualized determination model; an auxiliary diagnosis device electrically connected to the CPU in which the auxiliary diagnosis device includes mechanical arms for moving or arranging a fixing position of a body part of a participant and rehabilitating the participant; and an image sensing device electrically connected to the CPU for generating a first monitor signal and sending same to the CPU to process. The CPU compares the first monitor signal with the determination model.
Abstract:
The present invention relates to an attachment device for micro devices, comprising a main body and an attachment member seat in connection with the main body. The main body provides a receiving space to accommodate a functional module element. The attachment member seat provides a cavity to accommodate at least one attachment member to attach the attachment device to an article. A wearable micro device comprising the functional module element and the attachment device is also disclosed.
Abstract:
Described herein are techniques related to re-use of filter parameters, and particularly Sample Adaptive Offset (SAO) parameters, of an independent view or coded dependent views for coding dependent views for three dimension (3D) video encoding.
Abstract:
Systems, apparatus, articles, and methods are described including operations for 3D video coding including depth based disparity vector calibration.
Abstract:
A display panel includes a display area, a peripheral area which includes a first peripheral area, and a second peripheral area opposite to the first peripheral area, a plurality of pixels in the display area, a plurality of data lines, a first gate line, a second gate line, a first gate driving circuit and a second gate driving circuit. Each data line corresponds to two pixel columns. The first gate line is at a first side of a pixel row. The second gate line is at a second side of the pixel row. The first gate driving circuit is in the first peripheral area and includes a first stage which provides a gate signal to the first gate line. The second gate driving circuit is in a second peripheral area of the display area and includes a second stage which provides a gate signal to the second gate line.
Abstract:
A portable electronic device includes an electronic module and an electronic module fixing structure. The electronic module fixing structure includes a main body, a sliding component, a rod and an elastic component connected between the main body and the sliding component. The main body has a track with a positioning portion. The sliding component is slidably disposed on the main body. The rod is rotatably connected with the sliding component. An end of the rod is adapted to move along the track. When the end is located at the positioning portion, the end and the positioning portion are interfered with each other to position the sliding component. When the electronic module pushes the sliding component, the rod is rotated to drive the end to move away from the positioning portion, and the sliding component pushes the electronic module away from the main body through elastic force of the elastic component.
Abstract:
An audio signal processing apparatus and an audio signal processing method are provide. The audio signal processing apparatus comprises: a plurality of individual audio interfaces, an audio signal processing unit, and an audio channel splitting unit. The audio signal processing unit is utilized for determining a total number of audio channels corresponding to the individual audio interfaces and generating a first output audio signal with a first number of audio channels according to an input audio signal and the total number of audio channels when the audio signal processing apparatus is operated under a first operational mode. The audio channel splitting unit is coupled to the audio signal processing unit and the audio interfaces. When the audio signal processing apparatus is operated under the first operational mode, the audio channel splitting unit splits the first output audio signal with the first number of audio channels to the audio interfaces, respectively.