• Title/Summary/Keyword: self-similarity

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A Study on the Self-similarity Found in Fashion Design - Focusing on the Designs of Viktor & Rolf - (패션디자인에 나타나는 자기유사성에 관한 연구 - Viktor & Rolf의 디자인을 중심으로 -)

  • Kim, Yonson
    • Journal of the Korean Society of Costume
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    • v.64 no.7
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    • pp.97-113
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    • 2014
  • The study aims to determine the significance and characteristics of self-similarity inherent in natural objects or phenomena, the existence of self-similarity in design created by fashion designers, and the traits and internal significance implied in self-similarity and their effects on fashion. The subject of the study is Viktor & Rolf, and the scope of the study is the collections created from 2001 to 2014, which include designs implemented in their early years and those unveiled in the media. Self-similarity means attributes of a fractal structure appearing without change in the original form, even after modification of scale or direction in terms of shape or phenomena. As self-similarity is applied to the arts and design sectors, it leads people to pay attention to fundamental characteristics and intrinsic forms as a factor of expressing a unique creative world. Analysis of Viktor & Rolf collections generated ribbons, overlapping/juxtaposition, side decorations and exaggerated design elements as basic units of self-similarity. These factors had self-similarity rates as high as 84%. Self-similarity was established as design elements formed in the incipient stage were repeated in a certain form, and continued for a long period of time. It served as an element that recognizes design and a fashion designer at the same time. Characteristics of self-similarity appearing in Viktor & Rolf collections can be summarized as homeostasis based on an equivalent relationship, balance based on self-organization, reducibility into essential elements, and uniqueness based on odd shapes. These characteristics influenced the pursuit of consistent brand image, the maintenance of a fashion designer's creative world, the formation of styles and the expression of a fashion designer's identity.

A Study on Adaptation of ATM Switch Queue under Self-Similar Traffic (Self-Similar 트래픽하에서 ATM 스위치 큐의 적응성에 관한 연구)

  • Jin, Seong-Ho;Im, Jae-Hong;Kim, Dong-Il
    • The KIPS Transactions:PartC
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    • v.8C no.3
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    • pp.327-334
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    • 2001
  • 네트워크를 설계하고 서비스를 구현하는데 있어서 중요한 변수중의 하나는 트래픽의 특성을 파악하는 것이다. 기존의 트래픽 예측과 분석은 포아송(Poisson) 또는 마코비안(Markovian)을 기본으로 하는 모델을 사용하였다. LAN, WAN 및 VBR(Variable Bit Rate) 트래픽 특성에 관한 최근의 실험적 연구들은 기존의 포아송 가정에 의한 모델들이 네트워크 트래픽의 장기간 의존성 및 self-similar 특성들을 과소평가 함으로써 실제 트래픽의 특성을 제대로 나타낼 수 없다는 것을 지적해 왔다. 따라서 최근 실제 트래픽 모델과 유사한 모델로서 self-similarity 특성을 이용한 접근법이 대두되고 있다. 본 논문에서는 self-similarity 트래픽의 정의에 대해서 논한다. 그리고 실제 트래픽을 수집하고, 인위적으로 self-similarity한 트래픽과 포아송 모델을 적용시킨 트래픽을 발생시켜 비교한 다음 ATM 스위치의 큐(Queue)에 적용하였다. 본 논문에서는 ATM 스위치의 큐에 self-similarity 트래픽을 적용했을 경우 low bound상에서 버퍼 오버플로우 확률 및 셀 손실 확률에 대해 평가하였다.

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Self-Similarity of Multi-Stage Networks (다중연결 네트워크의 Self-Similarity 분석)

  • 김기완;김두용
    • Proceedings of the Korean Information Science Society Conference
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    • 2002.04a
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    • pp.514-516
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    • 2002
  • 현재 많은 패킷 스위칭을 이용하는 네트워크로부터 발생되는 트래픽에서 burstiness 성질이 넓은 범위의 시간 축 상에 걸쳐 나타난다. 이런 트래픽 특성이 self-similar 현상을 보이고 있다는 것이 알려지고 있다. 본 논문에서는 다중연결 스위치의 self-similarity 특성을 분석하고 특히 각 스위치의 이용도와 self-similarity 와의 관계를 분석한다. 그리고 본 논문의 연구 결과는 ATM 등과 같은 초고속 스위치의 설계시 사용될 수 있다.

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SIMILAR AND SELF-SIMILAR CURVES IN MINKOWSKI n-SPACE

  • OZDEMIR, MUSTAFA;SIMSEK, HAKAN
    • Bulletin of the Korean Mathematical Society
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    • v.52 no.6
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    • pp.2071-2093
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    • 2015
  • In this paper, we investigate the similarity transformations in the Minkowski n-space. We study the geometric invariants of non-null curves under the similarity transformations. Besides, we extend the fundamental theorem for a non-null curve according to a similarity motion of ${\mathbb{E}}_1^n$. We determine the parametrizations of non-null self-similar curves in ${\mathbb{E}}_1^n$.

Dynamic gesture recognition using a model-based temporal self-similarity and its application to taebo gesture recognition

  • Lee, Kyoung-Mi;Won, Hey-Min
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • v.7 no.11
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    • pp.2824-2838
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    • 2013
  • There has been a lot of attention paid recently to analyze dynamic human gestures that vary over time. Most attention to dynamic gestures concerns with spatio-temporal features, as compared to analyzing each frame of gestures separately. For accurate dynamic gesture recognition, motion feature extraction algorithms need to find representative features that uniquely identify time-varying gestures. This paper proposes a new feature-extraction algorithm using temporal self-similarity based on a hierarchical human model. Because a conventional temporal self-similarity method computes a whole movement among the continuous frames, the conventional temporal self-similarity method cannot recognize different gestures with the same amount of movement. The proposed model-based temporal self-similarity method groups body parts of a hierarchical model into several sets and calculates movements for each set. While recognition results can depend on how the sets are made, the best way to find optimal sets is to separate frequently used body parts from less-used body parts. Then, we apply a multiclass support vector machine whose optimization algorithm is based on structural support vector machines. In this paper, the effectiveness of the proposed feature extraction algorithm is demonstrated in an application for taebo gesture recognition. We show that the model-based temporal self-similarity method can overcome the shortcomings of the conventional temporal self-similarity method and the recognition results of the model-based method are superior to that of the conventional method.

A Measurement of Self-Similarity Characteristic and Hurst Parameter on Real Time Operation Network (실시간 운영중인 네트워크 상에서 Self-Similarity 특성 및 Hurst 파라미터 측정)

  • 진성호;임재홍
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 1999.11a
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    • pp.266-269
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    • 1999
  • 네트워크를 설계하고 서비스를 구현하는데 있어서 중요한 변수중의 하나는 트래픽의 특성을 파악하는 것이다. 기존의 트래픽 예측과 분석으로 Poisson 또는 Markovian을 기본으로 하는 모델을 사용했을 경우는 단기간의 의존성을 고려한 결과로써 실제 관측된 트래픽의 결과와는 상당히 다르다는 것이 밝혀졌다. 따라서 최근 실제 트래픽 모델과 유사한 모델로서 Self-Similarity 특성을 이용한 접근법이 대두되고 있다. 본 논문에서는 Self-Similarity의 장기간 의존성을 나타내기 위해서 실제 네트워크에서 측정한 데이터를 사용하여 Hurst 파라미터 H의 값을 추정하고 실시간 운영중인 네트워크 상에서 어느 정도의 Self-Similarity특성을 가지고 있는지 분석한다

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Bandwidth Allocation for Self-Similar Data Traffic Characteristics (자기유사적인 데이터 트래픽 특성을 고려한 대역폭 할당)

  • Lim Seog-Ku
    • The Journal of the Korea Contents Association
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    • v.5 no.3
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    • pp.175-181
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    • 2005
  • Recent measurements of local-area and wide-area traffic have shown that network traffic exhibits at a wide range of scales-Self-similarity. Self-similarity is expressed by long term dependency, this is contradictory concept with Poisson model that have relativity short term dependency. Therefore, first of all for design and dimensioning of next generation communication network, traffic model that are reflected burstness and self-similarity is required. Here self-similarity can be characterized by Hurst parameter. In this paper, when different many data traffic being integrated under various environments is arrived to communication network, Hurst Parameter's change is analyzed and compared with simulation results.

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An Analysis of Data Traffic Considering the Delay and Cell Loss Probability (지연시간과 손실율을 고려한 데이터 트래픽 분석)

  • Lim Seog -Ku
    • Journal of Digital Contents Society
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    • v.5 no.1
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    • pp.7-11
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    • 2004
  • There are many problems that must solve to construct next generation high-speed communication network. Among these, item that must consider basically is characteristics analysis of traffic that nows to network Traffic characteristics of many Internet services that is offered present have shown that network traffic exhibits at a wide range of scals-self-similarity. Self-similarity is expressed by long term dependency, this is contradictory concept with Poisson model that have relativity short term dependency. Therefore, first of all, for design and dimensioning of next generation communication network, traffic model that are reflected burstiness and self-similarity is required. Here self-similarity can be characterized by Hurst parameter. In this paper, the calculation equation is derived considering queueing delay and self-similarity of data traffic art compared with simulation results.

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Statistical Characteristics of Self-similar Data Traffic (자기유사성을 갖는 데이터 트래픽의 통계적인 특성)

  • Koo Hye-Ryun;Hong Keong-Ho;Lim Seog-Ku
    • Proceedings of the Korea Contents Association Conference
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    • 2005.05a
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    • pp.410-415
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    • 2005
  • Recent measurements of local-area and wide-area traffic have shown that network traffic exhibits at a wide range of scales - Self-similarity. Self-similarity is expressed by long term dependency, this is contradictory concept with Poisson model that have relativity short term dependency. Therefore, first of all for design and dimensioning of next generation communication network, traffic model that are reflected burstness and self-similarity is required. Here self-similarity can be characterized by Hurst parameter. In this paper, when different many data traffic being integrated under various environments is arrived to communication network, Hurst Parameter's change is analyzed and compared with simulation results.

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Comparative Study on Fractal Dimension Estimation in River Basin (하천의 프랙탈 차원 산정에 대한 비교 연구)

  • Park, Jin Sung;Kim, Hung Soo;Ahn, Won Sik
    • Journal of Wetlands Research
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    • v.5 no.1
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    • pp.15-27
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    • 2003
  • The fractal study in river basin has been performed for the sinuosity of an individual stream and bifurcation of the stream network. The previous studies has suggested many methods or equations for the fractal dimension estimation in a river network. This study used those many equations for the estimation of fractal dimensions on the streams such as Bokha, Gonjiam, and Pocheon streams. The estimated dimensions are in the range of 1 to 1.359 for the individual stream and 1.634 to 2 for the stream network. The most of equations were suggested based on the assumption of self-similarity of a river basin for the individual stream and stream network. However, the real river basin could be characterized by self-affinity rather than self-similarity. Even though we estimate the dimensions by using many equations, we could not recommend which one is better equation for the estimation of fractal dimension. This might be from the self-similarity assumption of equations. Therefore, the assumption and research work of self-affinity will be needed for the appropriate estimation of fractal dimension in river basin.

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