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Color quantisation technique based on image decomposition and its embedded system implementation

机译:基于图像分解的色彩量化技术及其嵌入式系统实现

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A new colour quantisation (CQ) technique and its corresponding embedded system realization are introduced. The CQ technique is based on image split into sub-images and the use of Kohonen self-organised neural network classifiers (SONNC). Initially, the dominant colours of each sub-image are extracted through SONNCs and then are used for the quantisation of the colours of the entire image. The proposed CQ technique can use both colour components and spatial features, achieving better approximation of the final image to the spatial characteristics of the original one. In addition, for the estimation of the proper number of dominant image colours, a new algorithm based on the projection of the image colours into the first two principal components is proposed. The image split into sub-images offers reduction of the on-chip memory requirements and is suitable for embedded system (or system-on-chip) implementation of the most timeconsuming part of the technique. Applying a systematic design methodology to the developed CQ algorithm, an efficient embedded architecture based on the ARM7 processor achieving high-speed processing and less energy consumption, is derived.
机译:介绍了一种新的色彩量化(CQ)技术及其相应的嵌入式系统实现。 CQ技术基于将图像分为子图像并使用Kohonen自组织神经网络分类器(SONNC)。最初,每个子图像的主色是通过SONNC提取的,然后用于量化整个图像的颜色。提出的CQ技术可以同时使用颜色分量和空间特征,从而使最终图像更好地近似于原始图像的空间特征。另外,为了估计适当的主导图像颜色数量,提出了一种基于图像颜色到前两个主成分中的投影的新算法。将图像分为子图像可减少片上存储器的需求,并适合该技术中最耗时的部分的嵌入式系统(或片上系统)实现。将系统的设计方法应用于已开发的CQ算法,得出了基于ARM7处理器的高效嵌入式体系结构,可实现高速处理并降低能耗。

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