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Wavelet Transform for Image Compression Using Multi-Resolution Analytics: Application to Wireless Sensors Data
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作者 Wasiu Opeyemi Oduola Cajetan M. Akujuobi 《Advances in Pure Mathematics》 2017年第8期430-440,共11页
The aggregation of data in recent years has been expanding at an exponential rate. There are various data generating sources that are responsible for such a tremendous data growth rate. Some of the data origins includ... The aggregation of data in recent years has been expanding at an exponential rate. There are various data generating sources that are responsible for such a tremendous data growth rate. Some of the data origins include data from the various social media, footages from video cameras, wireless and wired sensor network measurements, data from the stock markets and other financial transaction data, supermarket transaction data and so on. The aforementioned data may be high dimensional and big in Volume, Value, Velocity, Variety, and Veracity. Hence one of the crucial challenges is the storage, processing and extraction of relevant information from the data. In the special case of image data, the technique of image compressions may be employed in reducing the dimension and volume of the data to ensure it is convenient for processing and analysis. In this work, we examine a proof-of-concept multiresolution analytics that uses wavelet transforms, that is one popular mathematical and analytical framework employed in signal processing and representations, and we study its applications to the area of compressing image data in wireless sensor networks. The proposed approach consists of the applications of wavelet transforms, threshold detections, quantization data encoding and ultimately apply the inverse transforms. The work specifically focuses on multi-resolution analysis with wavelet transforms by comparing 3 wavelets at the 5 decomposition levels. Simulation results are provided to demonstrate the effectiveness of the methodology. 展开更多
关键词 wavelets multi-resolution Analysis Image compressions WIRELESS Sensor Networks MATHEMATICAL data ANALYTICS
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多分辨率网格的数据压缩 被引量:1
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作者 王正山 黄加强 顾耀林 《微计算机信息》 北大核心 2006年第10X期207-209,共3页
在对三角形网格多分辨率分析中,为了避免重新网格化的过程,基于小波变换,扩展了Lounsbery的方法。该算法直接对不规则网格进行渐进压缩,得到了不同分辨率的网格。在此过程中还可以基于三角形网格的连接信息,对三角形网格进行优化,使之... 在对三角形网格多分辨率分析中,为了避免重新网格化的过程,基于小波变换,扩展了Lounsbery的方法。该算法直接对不规则网格进行渐进压缩,得到了不同分辨率的网格。在此过程中还可以基于三角形网格的连接信息,对三角形网格进行优化,使之更加规则,从而使本文算法得到了改善。实验结果表明,算法速度快,效果良好,有一定的实用性。 展开更多
关键词 小波 不规则网格 多分辨率 数据压缩
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