• Title/Summary/Keyword: 번짐

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The Development of PC based Ink-and-wash Drawing System Using Wiimote (위모트를 이용한 PC 기반 수묵화적 드로잉 시스템 개발)

  • Oh, Eun-Byol;Ryoo, Seung-Taek
    • Journal of the Korea Computer Graphics Society
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    • v.17 no.4
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    • pp.1-10
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    • 2011
  • The general technique of ink-and-wash drawing consists of brush, ink and paper modeling and brush movement, ink diffusion and paper material simulation. In this paper, we suggest the simplified Qing's tank model that can decrease the computational time of ink diffusion and absorption on korean paper. The suggested drawing system is classified the characteristics of ink-and-wash into ink-shade, diffusion, line and paper. Also, the user's movement using motion sensor and IR sensor in wiimote is transmitted to brush position and direction.

Noise reduction Algorithm for CFA Images (컬러 필터 배열 영상에서의 잡음제거 알고리즘)

  • Lee, Min-Seok;Park, Sang-Wook;Kwon, Ji-Yong;Kang, Moon-Gi
    • Proceedings of the Korean Society of Broadcast Engineers Conference
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    • 2010.07a
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    • pp.67-69
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    • 2010
  • 대부분의 디지털 카메라는 컬러 필터 배열(Color Filter Array)을 가진 하나의 영상 획득 센서를 사용한다. 따라서 영상획득 이후에 컬러 보간 알고리즘이 필수적으로 진행된다. 또 영상 획득 과정에서 센서의 열화나 암전류 등과 같은 잡음이 발생하여 영상 잡음 제거 알고리즘이 필요하다. 하지만 기존의 대부분의 영상 잡음 제거 알고리즘은 컬러 필터 배열 영상의 특징인 모자이크 데이터 기반이 아닌 컬러 보간 이후의 풀 컬러영상에(YCbCr) 적용되고 있다. 따라서 잡음이 포함된 영상으로 컬러 보간을 할 경우 잡음의 공간적 상관관계(spatial correlation)가 커짐에 의한 잡음 번짐 때문에 컬러 보간 이후의 잡음제거는 더욱 어렵게 된다. 이와 같은 문제를 해결하기 위해 컬러 필터 배열 영상에 대한 잡음제거 알고리즘이 연구되고 있으며, 본 논문에서도 CMOS/CCD의 이미지 센서에서 획득된 베이어 컬러 필터 배열 영상에서 잡음을 제거하는 알고리즘을 제안한다. 이를 위해서 베이어 컬러 필터 배열 영상 데이터에서 경계(edge)의 방향성을 고려한 LMMSE 방법을 기반으로 한 잡음제거 알고리즘을 제안한다. 제안하는 알고리즘은 영상의 경계를 보존해주며 잡음제거 과정 다음에 진행되는 컬러 보간 과정에서의 잡음 번짐의 문제를 해결할 수 있다. 실험 결과를 통해 향상된 잡음 제거 효과를 확인하였다.

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A Study on the Robust Bimodal Speech-recognition System in Noisy Environments (잡음 환경에 강인한 이중모드 음성인식 시스템에 관한 연구)

  • 이철우;고인선;계영철
    • The Journal of the Acoustical Society of Korea
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    • v.22 no.1
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    • pp.28-34
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    • 2003
  • Recent researches have been focusing on jointly using lip motions (i.e. visual speech) and speech for reliable speech recognitions in noisy environments. This paper also deals with the method of combining the result of the visual speech recognizer and that of the conventional speech recognizer through putting weights on each result: the paper proposes the method of determining proper weights for each result and, in particular, the weights are autonomously determined, depending on the amounts of noise in the speech and the image quality. Simulation results show that combining the audio and visual recognition by the proposed method provides the recognition performance of 84% even in severely noisy environments. It is also shown that in the presence of blur in images, the newly proposed weighting method, which takes the blur into account as well, yields better performance than the other methods.

Multi-stage Image Restoration for High Resolution Panchromatic Imagery (고해상도 범색 영상을 위한 다중 단계 영상 복원)

  • Lee, Sanghoon
    • Korean Journal of Remote Sensing
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    • v.32 no.6
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    • pp.551-566
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    • 2016
  • In the satellite remote sensing, the operational environment of the satellite sensor causes image degradation during the image acquisition. The degradation results in noise and blurring which badly affect identification and extraction of useful information in image data. Especially, the degradation gives bad influence in the analysis of images collected over the scene with complicate surface structure such as urban area. This study proposes a multi-stage image restoration to improve the accuracy of detailed analysis for the images collected over the complicate scene. The proposed method assumes a Gaussian additive noise, Markov random field of spatial continuity, and blurring proportional to the distance between the pixels. Point-Jacobian Iteration Maximum A Posteriori (PJI-MAP) estimation is employed to restore a degraded image. The multi-stage process includes the image segmentation performing region merging after pixel-linking. A dissimilarity coefficient combining homogeneity and contrast is proposed for image segmentation. In this study, the proposed method was quantitatively evaluated using simulation data and was also applied to the two panchromatic images of super-high resolution: Dubaisat-2 data of 1m resolution from LA, USA and KOMPSAT3 data of 0.7 m resolution from Daejeon in the Korean peninsula. The experimental results imply that it can improve analytical accuracy in the application of remote sensing high resolution panchromatic imagery.

User-Guidable Abstract Line Drawing of 2D Images (사용자 제어가 용이한 이차원 영상의 추상화된 라인 드로잉 생성)

  • Son, Min-Jung;Lee, Yun-Jin;Kang, Hen-Ry;Lee, Seung-Yong
    • Journal of KIISE:Computer Systems and Theory
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    • v.37 no.2
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    • pp.110-125
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    • 2010
  • We present a novel scheme for generating line drawings from 2D images, aiming to facilitate effective visual communication. In contrast to conventional edge detectors, our technique imitates the human line drawing process to generate lines effectively and intuitively. Our technique consists of three parts: line extraction, line rendering, and user guidance. In line extraction, we extract lines by estimating a likelihood function to effectively find the genuine shape boundaries. In line rendering, we consider the feature scale and the blurriness of lines with which the detail and the focus-level of lines are controlled. We also employ stroke textures to provide a variety of illustration styles. User guidance is allowed to modify the shapes and positions of lines interactively, where immediate response is provided by GPU implementation of most line extraction operations. Experimental results demonstrate that our technique generates various kinds of line drawings from 2D images enabled by the control over detail, focus, and style.

Skinny Smudge Blending Method Using Arbitrary-shaped Master (임의 형상 마스터를 이용한 스키니 스머지 블렌딩 방법)

  • Kwak, Noyoon
    • Journal of Digital Convergence
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    • v.10 no.9
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    • pp.333-338
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    • 2012
  • This paper is related to a skinny smudge blending method using the arbitrary-shaped master adhered closely to the contour shape. The smudge tool is the popular graphic tool embedded in Adobe Photoshop CS6. The smudge tool is used to smear paint on your canvas. The effect is much like finger painting. We can use the smudge tool by selecting its icon on the toolbox of Adobe Photoshop CS6 and dragging in the direction you want to smudge while holding the mouse button down on the image. As the smudge tool blends all the pixels within a radius of the master to generate the result image, its disadvantages are to smudge even the pixels in the undesired region. In this paper to reduce the disadvantage, the skinny smudge blending method using arbitrary-shaped master is proposed. The proposed blending method has the advantage of applying the smudge effect to the desired regions regardless of the background as the arbitrary-shaped master adhered closely to the contour shape is extracted by color image segmentation.

Skinny Smudge Tool (스키니 스머지 툴)

  • Woo, Seung-Beom;Kwak, No-Yoon
    • 한국HCI학회:학술대회논문집
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    • 2009.02a
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    • pp.111-115
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    • 2009
  • This paper is related to a skinny smudge tool based on the image segmentation for a master shape. The smudge tool is the popular graphic tool embedded in Adobe Photoshop. The smudge tool is used to smear paint on your canvas. The effect is much like finger painting. You can use the smudge tool by clicking on the smudge icon and clicking on the canvas and while holding the mouse button down, dragging in the direction you want to smudge. A disadvantage of previous smudge tool is to also smear pixels in the undesired region according to generating the target image as blending all pixels in a diameter of the master. In this paper to reduce the disadvantage, the skinny smudge tool based on the image segmentation for a master shape is proposed. The proposed skinny smudge tool has the advantage of applying the smudge effect to the desired regions regardless of the background as the master shape adhered closely to the contour shape is extracted by color image segmentation.

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2D Virtual Color Hairstyler with Skinny Smudge Tool (스키니 스머지 툴을 이용한 2D 가상 컬러 헤어스타일러)

  • Kwak, Noyoon
    • Proceedings of the Korea Contents Association Conference
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    • 2009.05a
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    • pp.776-783
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    • 2009
  • This paper is related to a 2D virtual color hairstyler using skinny smudge tool. The smudge tool is the popular graphic tool embedded in Adobe Photoshop. The smudge tool is used to smear paint on your canvas. The effect is much like finger painting. You can use the smudge tool by clicking on the smudge icon and clicking on the canvas and while holding the mouse button down, dragging in the direction you want to smudge. A disadvantage of previous smudge tool is to also smear pixels in the undesired region according to generating the target image as blending all pixels in a diameter of the master. In this paper to reduce the disadvantage, the skinny smudge tool based on the image segmentation for a master shape is proposed. The proposed skinny smudge tool has the advantage of applying the smudge effect to the desired regions regardless of the background as the master shape adhered closely to the contour shape is extracted by color image segmentation.

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Region Segmentation and Volumetry of Brain MR Image represented as Blurred Gray Value by the Partial Volume Artifact (부분체적에 의해 번진 명암 값으로 표현된 뇌의 자기공명영상에 대한 영역분할 및 체적계산)

  • 성윤창;송창준;노승무;박종원
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.25 no.7A
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    • pp.1006-1016
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    • 2000
  • This study is to segment white matter, gray matter, and cerebrospinal fluid(CSF) on a brain MR image and to calculate the volume of each. First, after removing the background on a brain MR image, we segmented the whole region of a brain from a skull and a fat layer. Then, we calculated the partial volume of each component, which was present in scanning finite thickness, with the arithmetical analysis of gray value from the internal region of a brain showing the blurring effects on the basis of the MR image forming principle. Calculated partial volumes of white matter, gray matter and CSF were used to determine the threshold for the segmentation of each component on a brain MR image showing the blurring effects. Finally, the volumes of segmented white matter, gray matter, and CSF were calculated. The result of this study can be used as the objective diagnostic method to determine the degree of brain atrophy of patients who have neurodegenerative diseases such as Alzheimer's disease and cerebral palsy.

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