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Adaptive digital image data compression using RIDPCM and a neural network for subimage classification

机译:使用RIDPCM和神经网络进行自适应数字图像数据压缩以进行子图像分类

摘要

Recursive Interpolated Differential Pulse Code Modulation (RIDPCM) is a fast and efficient method of digital image data compression. It is a simple algorithm which produces a high quality reconstructed image at a low bit rate. However, RIDPCM compresses the entire image the same regardless of image detail. This paper introduces a variation on RIDPCM which adapts the bit rate according to the detail of the image. Adaptive RIDPCM (ARIDPCM) is accomplished by dividing the original image into smaller subimages and extracting features from them. These subimage features are passed through a trained neural network classifier. The output of the network is a class label which denotes the estimated subimage activity level or subimage type. Each class is assigned a specific bit rate and the subimage information is quantized accordingly. ARIDPCM produces a reconstructed image of higher quality than RIDPCM with the benefit of a further reduced bit rate.
机译:递归内插差分脉冲编码调制(RIDPCM)是一种快速有效的数字图像数据压缩方法。这是一种简单的算法,可以以低比特率生成高质量的重建图像。但是,无论图像细节如何,RIDPCM都会以相同的方式压缩整个图像。本文介绍了RIDPCM的一种变体,它根据图像的细节调整了比特率。自适应RIDPCM(ARIDPCM)通过将原始图像划分为较小的子图像并从中提取特征来实现。这些子图像特征通过训练有素的神经网络分类器传递。网络的输出是一个类别标签,它表示估计的子图像活动级别或子图像类型。为每个类别分配特定的比特率,并相应地量化子图像信息。 ARIDPCM可产生比RIDPCM更高质量的重建图像,并具有进一步降低比特率的优势。

著录项

  • 作者

    Allan Todd Stuart 1964-;

  • 作者单位
  • 年度 1992
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
  • 中图分类

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