• Title/Summary/Keyword: Processing Department

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Analysis of Implementing Mobile Heterogeneous Computing for Image Sequence Processing

  • BAEK, Aram;LEE, Kangwoon;KIM, Jae-Gon;CHOI, Haechul
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • v.11 no.10
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    • pp.4948-4967
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    • 2017
  • On mobile devices, image sequences are widely used for multimedia applications such as computer vision, video enhancement, and augmented reality. However, the real-time processing of mobile devices is still a challenge because of constraints and demands for higher resolution images. Recently, heterogeneous computing methods that utilize both a central processing unit (CPU) and a graphics processing unit (GPU) have been researched to accelerate the image sequence processing. This paper deals with various optimizing techniques such as parallel processing by the CPU and GPU, distributed processing on the CPU, frame buffer object, and double buffering for parallel and/or distributed tasks. Using the optimizing techniques both individually and combined, several heterogeneous computing structures were implemented and their effectiveness were analyzed. The experimental results show that the heterogeneous computing facilitates executions up to 3.5 times faster than CPU-only processing.

An Implementation of Pipelined Prallel Processing System for Multi-Access Memory System

  • Lee, Hyung;Cho, Hyeon-Koo;You, Dae-Sang;Park, Jong-Won
    • Proceedings of the IEEK Conference
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    • 2002.07a
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    • pp.149-151
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    • 2002
  • We had been developing the variety of parallel processing systems in order to improve the processing speed of visual media applications. These systems were using multi-access memory system(MAMS) as a parallel memory system, which provides the capability of the simultaneous accesses of image points in a line-segment with an arbitrary degree, which is required in many low-level image processing operations such as edge or line detection in a particular direction, and so on. But, the performance of these systems did not give a faithful speed because of asynchronous feature between MAMS and processing elements. To improve the processing speed of these systems, we have been investigated a pipelined parallel processing system using MAMS. Although the system is considered as being the single instruction multiple data(SIMD) type like the early developed systems, the performance of the system yielded about 2.5 times faster speed.

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A Hardware/Software Codesign for Image Processing in a Processor Based Embedded System for Vehicle Detection

  • Moon, Ho-Sun;Moon, Sung-Hwan;Seo, Young-Bin;Kim, Yong-Deak
    • Journal of Information Processing Systems
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    • v.1 no.1 s.1
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    • pp.27-31
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    • 2005
  • Vehicle detector system based on image processing technology is a significant domain of ITS (Intelligent Transportation System) applications due to its advantages such as low installation cost and it does not obstruct traffic during the installation of vehicle detection systems on the road[1]. In this paper, we propose architecture for vehicle detection by using image processing. The architecture consists of two main parts such as an image processing part, using high speed FPGA, decision and calculation part using CPU. The CPU part takes care of total system control and synthetic decision of vehicle detection. The FPGA part assumes charge of input and output image using video encoder and decoder, image classification and image memory control.

Word Sense Disambiguation Based on Local Syntactic Relations and Sense Co-occurrence Information (국소 구문 관계 및 의미 공기 정보에 기반한 명사 의미 모호성 해소)

  • Kim, Young-Kil;Hong, Mun-Pyo;Kim, Chang-Hyun;Seo, Young-Ae;Yang, Seong-Il;Ryu, Chul;Huang, Yin-Xia;Choi, Sung-Kwon;Park, Sang-Kyu
    • Annual Conference on Human and Language Technology
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    • 2002.10e
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    • pp.184-188
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    • 2002
  • 본 논문에서는 단순히 주변에 위치하는 어휘들간의 문맥 공기 정보를 이용하는 방식과는 달리 국소 구문 관계 및 의미 공기 정보에 기반한 명사 의미 모호성 해소 방안을 제안한다. 기존의 WSD 방법은 구조 분석의 어려움으로 인하여 문장의 구문 관계를 충분히 고려하지 못하고 주변 어휘들과의 공기 관계로 그 의미를 파악하려 했다. 그러나 본 논문에서는 동사구의 논항 의미 관계뿐만 아니라 명사구내에서의 의미 관계도 고려한 국소 구문관계를 고려한 명사 의미 모호성 해소 방법을 제안한다. 이 때, 명사들의 의미는 자동번역 시스템의 목적에 맞게 공기(co-occurrence)하는 동사들에 따라 분류하였다. 그리고 한중 자동 번역 지식으로 사용되는 명사 의미 코드가 부착된 74,880 의미 격틀의 의미 공기정보를 이용하였으며 형태소 태깅된 말뭉치로부터 의미모호성이 발생하지 않게 의미 공기정보 및 명사구 의미 공기 정보를 자동으로 추출하였다. 실험 결과, 의미 모호성이 발생하는 명사들에 대해서 83.9%의 의미 모호성 해소 정확률을 보였다.

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