• 제목/요약/키워드: using pattern of time

검색결과 3,425건 처리시간 0.036초

Affine-Invariant Image normalization for Log-Polar Images using Momentums

  • Son, Young-Ho;You, Bum-Jae;Oh, Sang-Rok;Park, Gwi-Tae
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2003년도 ICCAS
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    • pp.1140-1145
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    • 2003
  • Image normalization is one of the important areas in pattern recognition. Also, log-polar images are useful in the sense that their image data size is reduced dramatically comparing with conventional images and it is possible to develop faster pattern recognition algorithms. Especially, the log-polar image is very similar with the structure of human eyes. However, there are almost no researches on pattern recognition using the log-polar images while a number of researches on visual tracking have been executed. We propose an image normalization technique of log-polar images using momentums applicable for affine-invariant pattern recognition. We handle basic distortions of an image including translation, rotation, scaling, and skew of a log-polar image. The algorithm is experimented in a PC-based real-time vision system successfully.

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보다 정확한 동적 상황인식 추천을 위해 정확 및 오류 패턴을 활용하여 순차적 매칭 성능이 개선된 상황 예측 방법 (Context Prediction Using Right and Wrong Patterns to Improve Sequential Matching Performance for More Accurate Dynamic Context-Aware Recommendation)

  • 권오병
    • Asia pacific journal of information systems
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    • 제19권3호
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    • pp.51-67
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    • 2009
  • Developing an agile recommender system for nomadic users has been regarded as a promising application in mobile and ubiquitous settings. To increase the quality of personalized recommendation in terms of accuracy and elapsed time, estimating future context of the user in a correct way is highly crucial. Traditionally, time series analysis and Makovian process have been adopted for such forecasting. However, these methods are not adequate in predicting context data, only because most of context data are represented as nominal scale. To resolve these limitations, the alignment-prediction algorithm has been suggested for context prediction, especially for future context from the low-level context. Recently, an ontological approach has been proposed for guided context prediction without context history. However, due to variety of context information, acquiring sufficient context prediction knowledge a priori is not easy in most of service domains. Hence, the purpose of this paper is to propose a novel context prediction methodology, which does not require a priori knowledge, and to increase accuracy and decrease elapsed time for service response. To do so, we have newly developed pattern-based context prediction approach. First of ail, a set of individual rules is derived from each context attribute using context history. Then a pattern consisted of results from reasoning individual rules, is developed for pattern learning. If at least one context property matches, say R, then regard the pattern as right. If the pattern is new, add right pattern, set the value of mismatched properties = 0, freq = 1 and w(R, 1). Otherwise, increase the frequency of the matched right pattern by 1 and then set w(R,freq). After finishing training, if the frequency is greater than a threshold value, then save the right pattern in knowledge base. On the other hand, if at least one context property matches, say W, then regard the pattern as wrong. If the pattern is new, modify the result into wrong answer, add right pattern, and set frequency to 1 and w(W, 1). Or, increase the matched wrong pattern's frequency by 1 and then set w(W, freq). After finishing training, if the frequency value is greater than a threshold level, then save the wrong pattern on the knowledge basis. Then, context prediction is performed with combinatorial rules as follows: first, identify current context. Second, find matched patterns from right patterns. If there is no pattern matched, then find a matching pattern from wrong patterns. If a matching pattern is not found, then choose one context property whose predictability is higher than that of any other properties. To show the feasibility of the methodology proposed in this paper, we collected actual context history from the travelers who had visited the largest amusement park in Korea. As a result, 400 context records were collected in 2009. Then we randomly selected 70% of the records as training data. The rest were selected as testing data. To examine the performance of the methodology, prediction accuracy and elapsed time were chosen as measures. We compared the performance with case-based reasoning and voting methods. Through a simulation test, we conclude that our methodology is clearly better than CBR and voting methods in terms of accuracy and elapsed time. This shows that the methodology is relatively valid and scalable. As a second round of the experiment, we compared a full model to a partial model. A full model indicates that right and wrong patterns are used for reasoning the future context. On the other hand, a partial model means that the reasoning is performed only with right patterns, which is generally adopted in the legacy alignment-prediction method. It turned out that a full model is better than a partial model in terms of the accuracy while partial model is better when considering elapsed time. As a last experiment, we took into our consideration potential privacy problems that might arise among the users. To mediate such concern, we excluded such context properties as date of tour and user profiles such as gender and age. The outcome shows that preserving privacy is endurable. Contributions of this paper are as follows: First, academically, we have improved sequential matching methods to predict accuracy and service time by considering individual rules of each context property and learning from wrong patterns. Second, the proposed method is found to be quite effective for privacy preserving applications, which are frequently required by B2C context-aware services; the privacy preserving system applying the proposed method successfully can also decrease elapsed time. Hence, the method is very practical in establishing privacy preserving context-aware services. Our future research issues taking into account some limitations in this paper can be summarized as follows. First, user acceptance or usability will be tested with actual users in order to prove the value of the prototype system. Second, we will apply the proposed method to more general application domains as this paper focused on tourism in amusement park.

Automatic Pattern Setting System Reacting to Customer Design

  • Yuan, Ying;Huh, Jun-Ho
    • Journal of Information Processing Systems
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    • 제15권6호
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    • pp.1277-1295
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    • 2019
  • With its technical development, digital printing is being universally introduced to the mass production of clothing factories. At the same time, many fashion platforms have been made for customers' participation using digital printing, and a tool is provided in platforms for customers to make designs. However, there is no sufficient solution in the production stage for automatically converting a customer's design into a file before printing other than designating a square area for the pattern designed by the customer. That is, if 30 different designs come in from customers for one shirt, designers have to do the work of reproducing the design on the clothing pattern in the same location and in the same angle, and this work requires a great deal of manpower. Therefore, it is necessary to develop a technology which can let the customer make the design and, at the same time, reflect it in the clothing pattern. This is defined in relation to the existing clothing pattern with digital printing. This study yields a clothing pattern for digital printing which reflects a customer's design in real time by matching the diagram area where a customer designs on a given clothing model and the area where a standard pattern reflects the customer's actual design information. Designers can substitute the complex mapping operation of programmers with a simple area-matching operation. As there is no limit to clothing designs, the variousfashion design creations of designers and the diverse customizing demands of customers can be satisfied at low cost with high efficiency. This is not restricted to T-shirts or eco-bags but can be applied to all woven wear, including men's, women's, and children's clothing, except knitwear.

집속이온빔을 이용한 나노 패턴 형성 (Fabrication of a Nano Pattern Using Focused Ion Beam)

  • 한진;민병권;이상조;박철우;이종항
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2005년도 춘계학술대회 논문집
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    • pp.1531-1534
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    • 2005
  • Nano pattern is being utilized to produce micro optical components, sensors, and information storage devices. In this study, a study on nano pattern fabrication using raster-scan type Focused Ion Beam (FIB) milling is introduced. Because the intensity of ion beam has Gaussian distribution, the overlapping of the Gaussian beam results in a 3D pattern, and the shape of the pattern can be adjusted by variation of FIB milling parameters, such as overlap, ion dose, and dwell time. The Gaussian shape of single beam intensity has been investigated by experiment, and 3D nano patterns with pitch of 200nm generated by FIB is demonstrated.

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퍼지 패턴인식법을 이용한 발전소 과도상태 판별 (Discrimination of Plant Transient by Using the Fuzzy Pattern Recognition)

  • 김종석;이동주
    • 한국공작기계학회논문집
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    • 제14권1호
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    • pp.37-43
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    • 2005
  • Plant pipe has a fatigue life which is induced by repeated stress come from the variation of temperature and pressure. To avoid the fatigue crack of plant pipe which is produced by long term repeated stress, plant operator has to limit the mont of operating transient. This paper introduced the study result about discrimination methodology of plant transient by using the fuzzy pattern recognition. As result of applying the fuzzy pattern recognition to actual plant operation data, it is confirmed that fuzzy pattern recognition methodology can be useful for the comparison of similarity for the transients of similar output but has different time pattern.

근전도신호의 패턴인식 및 힘추정을 통한 의수의 지능적 궤적제어에 관한 연구 (A Study on Intelligent Trajectory Control for Prosthetic Arm by Pattern Recognition & Force Estimation Using EMG Signals)

  • 장영건;홍승홍
    • 대한의용생체공학회:의공학회지
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    • 제15권4호
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    • pp.455-464
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    • 1994
  • The intelligent trajectory control method that controls moving direction and average velocity for a prosthetic arm is proposed by pattern recognition and force estimations using EMG signals. Also, we propose the real time trajectory planning method which generates continuous accelleration paths using 3 stage linear filters to minimize the impact to human body induced by arm motions and to reduce the muscle fatigue. We use combination of MLP and fuzzy filter for pattern recognition to estimate the direction of a muscle and Hogan's method for the force estimation. EMG signals are acquired by using a amputation simulator and 2 dimensional joystick motion. The simulation results of proposed prosthetic arm control system using the EMG signals show that the arm is effectively followed the desired trajectory depended on estimated force and direction of muscle movements.

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변형된 Time Mapped Prime Sequence를 이용한 Wavelength-Time Code for Optical CDMA (Wavelength-Time Codes using Modified Time Mapped Prime Sequences for Optical CDMA)

  • 지윤규
    • 대한전자공학회논문지SD
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    • 제47권10호
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    • pp.29-33
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    • 2010
  • 변형된 time mapped prime sequences를 time spreading pattern에 이용하여 다양한 wavelength-time codeword를 구현하는 방법을 연구하였다. 이 연구 결과 $P_t$ = 3 일 때는 autocorrelation sidelobe와 crosscorrelation을 1이하로 유지하며 사용하는 파장 수의 제곱에 해 당하는 wavelength-time codeword를 생성 할 수 있으며 $P_t$ = 5 와 $P_t$ = 7 일 때는 crosscorrelation을 1이하로 유지하면서 $P_w$개의 wavelength-time codeword에 대해서 autocorrelation sidelobe를 2이하로 제한하는 범위에서 역시 사용하는 파장 수의 제곱에 해당하는 wavelength-time codeword를 생성할 수 있다.

청소년기의 SNS사용시간과 수면패턴이 폭력성에 미치는 영향 (The effects of SNS using time and sleep pattern on Adolescent's violence)

  • 최은영;최훈
    • 한국정보통신학회:학술대회논문집
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    • 한국정보통신학회 2017년도 추계학술대회
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    • pp.189-190
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    • 2017
  • 과도한 SNS활동과 스마트폰 사용은 중독과 함께 수면장애로 이어지고 있다. 특히 침대 이동 후 잠들기 전까지의 스마트폰 사용시간이 길어지면 길어질수록 수면 부족, 장애 현상이 나타났으며, 이는 청소년 언어, 행동 폭력성에 영향을 미치는 것으로 나타났다.

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부분방전 시스템을 이용한 절연 열화에 관한 연구 (A Study on the Dielectric Degradation Using Partial Discharge System)

  • 김성홍;이우상;정재용
    • 전자공학회논문지T
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    • 제35T권1호
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    • pp.1-6
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    • 1998
  • 본 연구는 부분방전 시스템을 이용하여 열화진단을 실시하였다. 열화 분석 방법으로는 위상각 부분방전 펄스진폭 열화시간과 위상각 부분방전 펄스수 열화시간의 양상을 왜도와 첨쇄도로 3차원 분석하여 열화의 정보로 이용하였다. 두번째로는 C (경도), G (무게중심)의 통계적 파라메터를 이용하여 방전의 군소화가 발생하는 시간을 구하여 그 지점으로부터 수명 4예측을 하였다.

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剩餘數體系를 이용한 자승오차 패턴 클러스터링 프로세서의 실현 (Implementation of the Squared-Error Pattern Clustering Processor Using the Residue Number System)

  • 김형민;조원경
    • 대한전자공학회논문지
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    • 제26권2호
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    • pp.87-93
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    • 1989
  • 패턴인식과 영상처리 응용에 이용되는 자승오차 패턴 클러스터링 알고리듬은 특징벡터 행렬의 연산에 상당한 처리시간은 요구한다. 그러므로 본 논문은 병렬처리와 파이프라인 특성을 갖는 잉여수체계를 이용한 고속의 자승오차 패턴 클러스터링 프로세서를 제안한다. 제안된 자승오차 패턴 클러스터링 프로세서는 영상분할 실험으로부터 의미있는 영역으로 나눌 수 있는 클러스터의 수에 대하여 만족할 만한 오차를 보이며 80287 수치 연산용 프로세서보다 약 200배 빠름을 보인다. 그 결과 대규모의 데이타를 실시간으로 처리하여야 하는 응용분야에 효과적으로 이용할 수 있음을 확인하였다.

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