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A Space Efficient Direct Access Data Compression Approach for Mass Spectrometry Imaging

机译:质谱成像的空间高效直接访问数据压缩方法

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摘要

Advances in mass spectrometry imaging that improve both spatial and mass resolution are resulting in increasingly larger data files that are difficult to handle with current software. We have developed a novel near-lossless compression method with data entropy reduction that reduces the file size significantly. The reduction in data size can be set at four different levels (coarse, medium, fine, and superfine) prior to running the data compression. This can be applied to spectra or spectrum-by-spectrum, or it can be applied to transpose arrays or array-by-array, to efficiently read the data without decompressing the whole data set. The results show that a compression ratio of up to 5.9:1 was achieved for data from commercial mass spectrometry software programs and 55:1 for data from our in-house developed mslQuant program. Comparing the average signals from regions of interest, the maximum deviation was 0.2% between compressed and uncompressed data sets with coarse accuracy for the data entropy reduction. In addition, when accessing the compressed data by selecting a random m/z value using mslQuant, the time to update an image on the computer screen was only slightly increased from 92 (+/- 32) ms (uncompressed) to 114 (+/- 13) ms (compressed). Furthermore, the compressed data can be stored on readily accessible servers for data evaluation without further data reprocessing. We have developed a space efficient, direct access data compression algorithm for mass spectrometry imaging, which can be used for various data-demanding mass spectrometry imaging applications.
机译:质谱成像的进步,即改善空间和质量分辨率,导致难以处理当前软件的数据文件越来越大的数据文件。我们开发了一种新型近无损压缩方法,具有数据熵减少,可显着降低文件大小。在运行数据压缩之前,可以在四种不同的级别(粗,介质,精细和超细)设置数据大小的降低。这可以应用于频谱或偏差频谱,或者可以应用于跨越阵列或逐个阵列,以有效地读取数据而不减压整个数据集。结果表明,来自商业质谱软件程序的数据和55:1的压缩比为55:1,从我们内部开发的MuslQuant程序中实现了55:1。比较来自感兴趣区域的平均信号,在压缩和未压缩数据集之间的最大偏差为0.2%,对于数据熵减少,压缩和未压缩的数据集之间的压缩数据集之间的0.2%。另外,当通过使用mslquant选择随机m / z值访问压缩数据时,在计算机屏幕上更新图像的时间仅略微增加到92(+/- 32)ms(未压缩)到114(+ / - 13)MS(压缩)。此外,压缩数据可以存储在易于访问的服务器上,用于数据评估,无需进一步的数据再处理。我们开发了一种用于质谱成像的空间高效直接访问数据压缩算法,可用于各种数据苛刻的质谱成像应用。

著录项

  • 来源
    《Analytical chemistry》 |2018年第6期|共7页
  • 作者单位

    Uppsala Univ Dept Pharmaceut Biosci Natl Resource Mass Spectrometry Imaging Sci Life Lab Biomol Mass Spectrometry Imaging Box 591 BMC S-75124 Uppsala Sweden;

    Uppsala Univ Dept Pharmaceut Biosci Natl Resource Mass Spectrometry Imaging Sci Life Lab Biomol Mass Spectrometry Imaging Box 591 BMC S-75124 Uppsala Sweden;

    Uppsala Univ Dept Pharmaceut Biosci Natl Resource Mass Spectrometry Imaging Sci Life Lab Biomol Mass Spectrometry Imaging Box 591 BMC S-75124 Uppsala Sweden;

    Uppsala Univ Dept Pharmaceut Biosci Natl Resource Mass Spectrometry Imaging Sci Life Lab Biomol Mass Spectrometry Imaging Box 591 BMC S-75124 Uppsala Sweden;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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