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개선된 Google Activity Recognition을 이용한 상황인지 모델
백승은 ( Seung Eun Baek ),박상원 ( Sang Won Park ) 한국정보처리학회 2015 정보처리학회논문지. 소프트웨어 및 데이터 공학 Vol.4 No.1
사용자의 상황에 따라 유용한 정보를 제공할 수 있는 행위인식 기술은 최근 많은 주목을 받고 있다. 스마트폰이 보급되기 전 행위인식 연구에서는 독립된 센서를 사용하여 사용자의 행위를 추론해야 했지만, 현재는 IT산업의 발달로 스마트폰의 내부 센서를 사용해 사용자의 행위를 추론할 수 있게 되었다. 따라서 행위인식 분야의 연구가 더욱 활발히 진행되고 있다. 행위인식 기술을 응용하면 사용자의 선호도에 따라 애플리케이션을 추천하거나 경로 정보를 제공하는 서비스 등을 개발할 수 있다. 기존의 행위인식 시스템들은 GPS를 이용하기 때문에 전력을 많이 소모한다는 단점이 있다. 반면에 최근 Google에서 발표한 행위인식(Google Activity Recognition) 시스템은 Network Provider 를 이용하기 때문에 GPS 방식에 비해 전력소모가 적어 휴대해야 하는 스마트폰 응용 시스템에 적합하다. 하지만 Google Activity Recognition의 성능을 테스트한 결과 불필요한 행위 항목과 일부 잘못된 상황인지로 인해 정확한 사용자 행위를 파악하기 어렵다는 것을발견했다. 행위인식 기술을 기반으로 한 새로운 서비스 개발을 위해 더욱 정확한 상황인지가 필요하므로 본 논문에서는 GAR의 문제점을 기술하고 정확도를 높이는 개선 방법을 적용한 AGAR(Advanced Google Activity Recognition)을 제안한다. 또한 AGAR의 이용가치를 평가하기 위하여 다른 여러 행위인식 시스템과 성능과 전력소모량을 비교분석하고 AGAR을 검증하는 예시 프로그램을 개발하여 응용 가능성을 설명한다. Activity recognition technology is gaining attention because it can provide useful information follow user’s situation. In research of activity recognition before smartphone’s dissemination, we had to infer user’s activity by using independent sensor. But now, with development of IT industry, we can infer user’s activity by using inner sensor of smartphone. So, more animated research of activity recognition is being implemented now. By applying activity recognition system, we can develop service like recommending application according to user’s preference or providing information of route. Some previous activity recognition systems have a defect using up too much energy, because they use GPS sensor. On the other hand, activity recognition system which Google released recently (Google Activity Recognition) needs only a few power because it use ‘Network Provider’ instead of GPS. Thus it is suitable to smartphone application system. But through a result from testing performance of Google Activity Recognition, we found that is difficult to getting user’s exact activity because of unnecessary activity element and some wrong recognition. So, in this paper, we describe problems of Google Activity Recognition and propose AGAR(Advanced Google Activity Recognition) applied method to improve accuracy level because we need more exact activity recognition for new service based on activity recognition. Also to appraise value of AGAR, we compare performance of other activity recognition systems and ours and explain an applied possibility of AGAR by developing exemplary program.
카릴 처칠의 『소유자들』에 나타난 여성의 경제력과 모성
백승은 ( Seung-eun Baek ) 21세기영어영문학회 2021 영어영문학21 Vol.34 No.4
The purpose of this study is to analyze the reversal of conventional gender roles, women’s economic power and motherhood in Caryl Churchill’s Owners. In Owners, male characters are passive and dependent on their wives, whereas female characters are more active and independent. Churchill avoids focusing on mere biological differences and displays new directions and possibilities for women’s liberation. This paper examines how women’s economic power affects the domestic environment and relationship with a husband through an analysis of two female characters. This paper also discusses motherhood, which has been idealized and degraded by men, and revitalize the power of motherhood that is exerted not only in the domestic environment and personal aspects, but also in the social aspect. Owners shows that women should have economic means which will provide them with independence and liberation from oppression and have motherhood to change themselves and others. Both economic power and motherhood could be a powerful methods in overcoming oppression.
Directional Filter와 Harmonic Filter 기반 화자 분리
백승은,김진영,나승유,최승호,Baek, Seung-Eun,Kim, Jin-Young,Na, Seung-You,Choi, Seung-Ho 한국음성학회 2005 음성과학 Vol.12 No.3
Automatic speech recognition is much more difficult in real world. Speech recognition according to SIR (Signal to Interface Ratio) is difficult in situations in which noise of surrounding environment and multi-speaker exists. Therefore, study on main speaker's voice extractions a very important field in speech signal processing in binaural sound. In this paper, we used directional filter and harmonic filter among other existing methods to extract the main speaker's information in binaural sound. The main speaker's voice was extracted using directional filter, and other remaining speaker's information was removed using harmonic filter through main speaker's pitch detection. As a result, voice of the main speaker was enhanced.