首页> 外文会议>MIPPR 2007: Multispectral Image Processing; Proceedings of SPIE-The International Society for Optical Engineering; vol.6787 >Vector quantization with reversible variable-length coding for ultra- spectral sounder data compression: an application to future NOAA weather satellite data rebroadcast
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Vector quantization with reversible variable-length coding for ultra- spectral sounder data compression: an application to future NOAA weather satellite data rebroadcast

机译:具有可逆可变长度编码的矢量量化,用于超光谱测深仪数据压缩:在未来NOAA天气卫星数据转播中的应用

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Contemporary and future ultraspectral sounders represent significant technical advancement for environmental and meteorological prediction and monitoring. Given their large volume of spectral observations, the use of robust data compression techniques will be beneficial to data transmission and storage. The retrieval of geophysical parameters from ultraspectral sounder observation via the radiative transfer equation is a mathematically ill-posed problem. Lossless compression of ultraspectral sounder data is desired by the science community to avoid potential retrieval degradation. For NOAA's future geostationary weather satellites, the data is managed to be transmitted down to the ground within the bandwidth capabilities of the satellite transmitter and ground station receiving system. The data is then compressed at the ground station for distribution to the user community, as is traditionally performed with the GOES data via satellite rebroadcast. In this paper we investigate a lossless compression method with fast precomputed vector quantization (FPVQ) and reversible variable-length coding (RVLC). The FPVQ produces high compression gain for ground operation while RVLC affords better detection of bit errors remaining after channel decoding due to synchronization losses over a noisy channel. The FPVQ-RVLC compression method provides a good tool for satellite rebroadcast of ultraspectral sounder data.
机译:当代和未来的超光谱探测仪代表了环境和气象预报和监测的重大技术进步。鉴于其大量的光谱观测结果,使用可靠的数据压缩技术将有利于数据传输和存储。通过辐射传递方程从超光谱测深仪观测中检索地球物理参数是一个数学不适定的问题。科学界希望对超光谱测深仪数据进行无损压缩,以避免潜在的检索退化。对于NOAA的未来地球静止气象卫星,数据被管理为在卫星发射机和地面站接收系统的带宽范围内向下传送到地面。数据随后在地面站被压缩以分发给用户社区,这与传统上通过卫星转播对GOES数据执行的操作一样。在本文中,我们研究了一种具有快速预计算矢量量化(FPVQ)和可逆可变长度编码(RVLC)的无损压缩方法。 FPVQ为地面操作提供了高压缩增益,而RVLC提供了更好的检测通道解码后由于噪声通道上的同步损耗而残留的误码的能力。 FPVQ-RVLC压缩方法为超光谱探测器数据的卫星转播提供了一个很好的工具。

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