Abstract:
The present invention relates to an emotion-controlling driving wheel device and a method thereof capable of recognizing and analyzing the emotional status of a driver by measuring the expression, voice, and bio-signals of the driver and helping the driver to control his or her emotion to compose himself or herself. The driver emotion-controlling device according to the present invention includes an emotion sensor unit for collecting bio-signals from a driver and generating bio-data based on the collected bio-signals; a user memory unit which stores driver information including bio-signals corresponding to each emotional state of the driver and multiple corresponding contents and delivers the driver information and the corresponding contents according to the received request; and an emotion-managing unit which determines the emotional state of the driver based on the driver information from the user memory unit and the bio-data from the emotion sensor unit, requests the user memory unit for the corresponding contents corresponding to the decided emotional state of the driver, and provides the user with the contents from the user memory unit.
Abstract:
The present invention relates to an object recognition device and an object recognition method by sight attention concentration based on cognitive function of a person. The object recognition method according to a desirable embodiment of the present invention includes the steps of: recognizing an object and storing the recognized object in a memory by extracting second features required in object recognition and paying attention, after combining first features on the basis of contour information if an image is inputted; and recognizing the object by blending third features by selecting an interested area by referring to the memory and extracting the third features required in object recognition and moving the attention to the third features if the image is inputted. [Reference numerals] (S201) Input external stimulation;(S202) Combine basic features;(S203) Extract major features;(S204) Recognize an object by paying attention;(S205) Store the recognized object in a memory;(S212) Select an interested area based on the information stored in the memory;(S213) Extract detailed features;(S214) Recognize an object by moving attention and mixing the extracted features
Abstract:
본 발명은 진단 키트를 사용하여 호흡기 질환을 진단함에 있어서, 샘플에 대한 전처리 과정이 진단 키트 내에서 이루어질 수 있도록 하여, 샘플 채취로부터 진단 결과를 확인하는 모든 단계가 진단 키트 내에서 자동적으로 이루어지는 호흡기 질환용 진단 키트에 관한 것이다. 본 발명의 호흡기 질환용 진단 키트는 장소에 구애됨이 없이 어디서나 현장진단이 가능하며, 일반인도 용이하게 정확한 진단 결과를 얻을 수 있는 특징을 갖는다. 호흡기, 질환, 진단, 키트, 바이러스
Abstract:
PURPOSE: An image sensor is provided to increase optical absorption efficiency by using a metal particle layer formed between a transparent electrode and a carrier transport layer. CONSTITUTION: A photoelectric conversion layer(110) is formed between a lower part and an upper carrier transport layers. A common electrode(130) is arranged on the upper carrier transport layer. The photoelectric conversion layer includes a silicon nitride layer. A silicon nitride layer contains Si nanocrystals. A metal particle layer(200) is formed between the upper carrier transport layer and the common electrode.
Abstract:
본 발명은 바이오 칩의 검출 방법에 대한 것으로, 이 방법은 PVP 와 타겟 분자를 포함하는 검체의 제1 혼합액을 준비하는 단계, 상기 제1 혼합액의 흡광도 또는 투과도를 측정하는 단계, 상기 PVP, 상기 검체 및 상기 타겟 분자의 수용체를 포함하는 제2 혼합액을 준비하는 단계, 상기 제2 혼합액의 흡광도 또는 투과도를 측정하는 단계, 그리고 상기 제1 혼합액과 상기 제2 혼합액의 흡광도 차 또는 투과도 차를 연산하는 단계를 포함한다. 따라서 PVP를 사용하여 항원 항체 반응을 유도함으로써 바이오 칩의 제조 단가를 줄일 수 있으며, 흡광도 차 또는 투과도 차에 따라 항원의 정량을 분석함으로써 정확한 항원의 양을 검출할 수 있다. 바이오 분자, 검출, PVP(Polyvinylpyrrolidone), 흡광도, 바이오 마커
Abstract:
질병을 진단할 수 있는 일회용 진단 키트가 제공된다. 일회용 진단 키트는 다양한 종류의 바이오 물질들을 포함하는 유체로부터 타겟 물질들을 필터링하는 전처리부, 타겟 물질들과 반응하는 감지 물질들이 표면에 고정화되는 회절 격자를 포함하며, 타겟 물질들에 따라 회절 격자를 통과하는 빛의 파장이 변화되는 타겟 물질 반응부, 및 필터링된 상기 유체를 상기 전처리부로부터 타겟 물질 반응부로 이동시키는 미세 유체 채널을 포함한다. 비표지식, 공진 반사광, 모세관력
Abstract:
PURPOSE: A flexible gallium nitride light emitting diode and a manufacturing method thereof are provided to effectively prevent mismatch of a substrate using a flexible substrate instead of a stiffness substrate. CONSTITUTION: A gallium nitride light emitting diode device layer is laminated on a silicon substrate(200). An ohmic contact is formed by laminating a metal layer(203) on the gallium nitride light emitting diode device layer. An element area of a gallium nitride light emitting diode including the metal layer is separated from a silicon sacrificial substrate. The element area of the gallium nitride light emitting diode is transferred on a flexible substrate. A transparency passivation layer is coated on the gallium nitride light emitting diode device layer.
Abstract:
PURPOSE: An apparatus for injecting micro-fluid and a method for the same are provided to minimize the generation of malfunction and to be manufactured through a transparent plastic-based injection molding process. CONSTITUTION: An apparatus for injecting micro-fluid(100) includes a fluid injecting chamber(120), a gas generating chamber(110), and a channel(130). The gas generating chamber applies a pressure to the fluid injecting chamber. The channel connects the fluid injecting chamber and the gas generating chamber. The gas generating chamber receives a photo-catalyst material and a solvent. A method for injecting the micro-fluid includes the following: The apparatus is prepared. Light is irradiated to the gas generating chamber to generate gas. Fluid is injected in the fluid injecting chamber.
Abstract:
PURPOSE: A gold-silver alloy nanoparticle chip, a manufacturing method thereof, and a microorganism detection method using thereof are provided to optically and easily detect microorganisms using the gold-silver alloy nanoparticle chip obtained by attaching gold-silver alloy nanoparticles on glass. CONSTITUTION: A gold-silver alloy nanoparticle chip comprises the following: a glass substrate(100) processed to have the hydrophilic property; a self-assembled film(200) formed on the glass substrate; and gold-silver alloy nanoparticles(300) fixed on the self-assembled film. The glass substrate contains a hydroxyl group on the surface. 500~1,000 particles per 1square-micro meter of the gold-silver alloy nanoparticles are attached on the s substrate.