• 제목/요약/키워드: Smart world security

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Wearable Computers

  • Cho, Gil-Soo;Barfield, Woodrow;Baird, Kevin
    • 섬유기술과 산업
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    • 제2권4호
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    • pp.490-508
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    • 1998
  • One of the latest fields of research in the area of output devices is tactual display devices [13,31]. These tactual or haptic devices allow the user to receive haptic feedback output from a variety of sources. This allows the user to actually feel virtual objects and manipulate them by touch. This is an emerging technology and will be instrumental in enhancing the realism of wearable augmented environments for certain applications. Tactual displays have previously been used for scientific visualization in virtual environments by chemists and engineers to improve perception and understanding of force fields and of world models populated with the impenetrable. In addition to tactual displays, the use of wearable audio displays that allow sound to be spatialized are being developed. With wearable computers, designers will soon be able to pair spatialized sound to virtual representations of objects when appropriate to make the wearable computer experience even more realistic to the user. Furthermore, as the number and complexity of wearable computing applications continues to grow, there will be increasing needs for systems that are faster, lighter, and have higher resolution displays. Better networking technology will also need to be developed to allow all users of wearable computers to have high bandwidth connections for real time information gathering and collaboration. In addition to the technology advances that make users need to wear computers in everyday life, there is also the desire to have users want to wear their computers. In order to do this, wearable computing needs to be unobtrusive and socially acceptable. By making wearables smaller and lighter, or actually embedding them in clothing, users can conceal them easily and wear them comfortably. The military is currently working on the development of the Personal Information Carrier (PIC) or digital dog tag. The PIC is a small electronic storage device containing medical information about the wearer. While old military dog tags contained only 5 lines of information, the digital tags may contain volumes of multi-media information including medical history, X-rays, and cardiograms. Using hand held devices in the field, medics would be able to call this information up in real time for better treatment. A fully functional transmittable device is still years off, but this technology once developed in the military, could be adapted tp civilian users and provide ant information, medical or otherwise, in a portable, not obstructive, and fashionable way. Another future device that could increase safety and well being of its users is the nose on-a-chip developed by the Oak Ridge National Lab in Tennessee. This tiny digital silicon chip about the size of a dime, is capable of 'smelling' natural gas leaks in stoves, heaters, and other appliances. It can also detect dangerous levels of carbon monoxide. This device can also be configured to notify the fire department when a leak is detected. This nose chip should be commercially available within 2 years, and is inexpensive, requires low power, and is very sensitive. Along with gas detection capabilities, this device may someday also be configured to detect smoke and other harmful gases. By embedding this chip into workers uniforms, name tags, etc., this could be a lifesaving computational accessory. In addition to the future safety technology soon to be available as accessories are devices that are for entertainment and security. The LCI computer group is developing a Smartpen, that electronically verifies a user's signature. With the increase in credit card use and the rise in forgeries, is the need for commercial industries to constantly verify signatures. This Smartpen writes like a normal pen but uses sensors to detect the motion of the pen as the user signs their name to authenticate the signature. This computational accessory should be available in 1999, and would bring increased peace of mind to consumers and vendors alike. In the entertainment domain, Panasonic is creating the first portable hand-held DVD player. This device weight less than 3 pounds and has a screen about 6' across. The color LCD has the same 16:9 aspect ratio of a cinema screen and supports a high resolution of 280,000 pixels and stereo sound. The player can play standard DVD movies and has a hour battery life for mobile use. To summarize, in this paper we presented concepts related to the design and use of wearable computers with extensions to smart spaces. For some time, researchers in telerobotics have used computer graphics to enhance remote scenes. Recent advances in augmented reality displays make it possible to enhance the user's local environment with 'information'. As shown in this paper, there are many application areas for this technology such as medicine, manufacturing, training, and recreation. Wearable computers allow a much closer association of information with the user. By embedding sensors in the wearable to allow it to see what the user sees, hear what the user hears, sense the user's physical state, and analyze what the user is typing, an intelligent agent may be able to analyze what the user is doing and try to predict the resources he will need next or in the near future. Using this information, the agent may download files, reserve communications bandwidth, post reminders, or automatically send updates to colleagues to help facilitate the user's daily interactions. This intelligent wearable computer would be able to act as a personal assistant, who is always around, knows the user's personal preferences and tastes, and tries to streamline interactions with the rest of the world.

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빅데이터와 AI를 활용한 의료영상 정보 시스템 발전 방향에 대한 연구 (A Study on the Development Direction of Medical Image Information System Using Big Data and AI)

  • 유세종;한성수;전미향;한만석
    • 정보처리학회논문지:컴퓨터 및 통신 시스템
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    • 제11권9호
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    • pp.317-322
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    • 2022
  • 정보기술의 급격한 발달은 의료 환경에서도 많은 변화를 가져오고 있다. 특히 빅데이터와 인공지능(AI)을 활용한 의료영상 정보 시스템의 빠른 변화를 견인하고 있다. 전자의무기록(EMR)과 의료영상저장전송시스템(PACS)으로 구성된 처방전달시스템(OCS)은 의료 환경을 아날로그에서 디지털로 빠르게 바꾸어 놓았다. PACS는 여러 솔루션과 결합하여 호환, 보안, 효율성, 자동화 등 새로운 발전 방향을 보여주고 있다. 그 중, 영상의 질적 개선을 할 수 있는 빅데이터를 활용한 인공지능(AI)과의 결합이 활발히 진행되고 있다. 특히 딥러닝 기술을 활용하여 의료 영상 판독을 보조할 수 있는 시스템인 AI PACS가 대학과 산업체의 협력으로 개발되어 병원에서 활용되고 있다. 이처럼 의료 환경에서 의료영상 정보 시스템의 빠른 변화에 맞추어 의료시장의 구조적인 변화와 이에 대처할 수 있는 의료정책의 변화도 필요하다. 한편, 의료영상정보는 디지털 의료영상 전송 장치에서 생성되는 DICOM 방식을 기본으로 하고, 생성하는 방법의 차이에 따라 Volume 영상, 단면 영상인 2차원적 영상으로 구분된다. 또한, 최근 많은 의료기관에서는 스마트 병원 서비스를 내세우며 차세대 통합 의료정보시스템의 도입을 서두르고 있다. 차세대 통합 의료정보시스템은 EMR을 바탕으로 전자동의서, AI와 빅데이터를 활용한 정밀의료, 외부기관 등을 통합한 솔루션으로 구축하며, 이를 바탕으로 환자 정보 DB 구축과 데이터의 표준화를 통한 의료 빅데이터 기반의 의학 연구를 목적으로 한다. 우리나라의 의료영상 정보 시스템은 앞선 IT 기술력과 정부의 정책에 힘입어 세계적인 수준에 있으며, 특히 PACS 관련 프로그램은 의료 영상정보 기술에서 세계로 수출을 하고 있는 한 분야이다. 본 연구에서는 빅데이터를 활용한 의료영상 정보 시스템의 분석과 함께 의료영상 정보 시스템이 국내에 도입되게 된 역사적 배경을 바탕으로 현재의 흐름을 파악하고 나아가 미래의 발전 방향을 예측하였다. 향후, 20여 년 동안 축적된 DICOM 빅데이터를 기반으로 AI, 딥러닝 알고리즘을 활용하여 영상 판독률을 높일 수 있는 연구를 진행하고자 한다.