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Data Curation for Preclinical and Clinical Multimodal Imaging Studies

机译:临床前和临床多式联像成像研究的数据策析

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PurposeIn biomedical research, imaging modalities help discover pathological mechanisms to develop and evaluate novel diagnostic and theranostic approaches. However, while standards for data storage in the clinical medical imaging field exist, data curation standards for biomedical research are yet to be established. This work aimed at developing a free secure file format for multimodal imaging studies, supporting common in vivo imaging modalities up to five dimensions as a step towards establishing data curation standards for biomedical research.ProceduresImages are compressed using lossless compression algorithm. Cryptographic hashes are computed on the compressed image slices. The hashes and compressions are computed in parallel, speeding up computations depending on the number of available cores. Then, the hashed images with digitally signed timestamps are cryptographically written to file. Fields in the structure, compressed slices, hashes, and timestamps are serialized for writing and reading from files. The C++ implementation is tested on multimodal data from six imaging sites, well-documented, and integrated into a preclinical image analysis software.ResultsThe format has been tested with several imaging modalities including fluorescence molecular tomography/x-ray computed tomography (CT), positron emission tomography (PET)/CT, single-photon emission computed tomography/CT, and PET/magnetic resonance imaging. To assess performance, we measured the compression rate, ratio, and time spent in compression. Additionally, the time and rate of writing and reading on a network drive were measured. Our findings demonstrate that we achieve close to 50 % reduction in storage space for mu CT data. The parallelization speeds up the hash computations by a factor of 4. We achieve a compression rate of 137 MB/s for file of size 354 MB.ConclusionsThe development of this file format is a step to abstract and curate common processes involved in preclinical and clinical multimodal imaging studies in a standardized way. This work also defines better interface between multimodal imaging modalities and analysis software.
机译:目的生物医学研究,成像方式有助于发现人们发展和评估新型诊断和治疗方法的病理机制。但是,虽然存在临床医学成像领域的数据存储标准,但尚未建立生物医学研究的数据策策标准。这项工作旨在开发一种用于多模式成像研究的免费安全文件格式,在Vivo成像模型中的共同支持多达五个维度,作为建立生物医学研究的数据策级标准的步骤.ProcedUredureSImages使用无损压缩算法压缩。在压缩图像切片上计算加密哈希。哈希和按压并行计算,根据可用核心的数量加速计算。然后,具有数字签名时间戳的散列图像被加密写入文件。结构中的字段,压缩切片,哈希和时间戳被序列化以写入和读取文件。 C ++实现在来自六个成像站点的多模式数据上进行测试,记录良好的,并集成到临床前图像分析软件中。已经用几种成像模态进行了测试,包括荧光分子断层摄影/ X射线计算机断层扫描(CT),正电子计算发射断层扫描(PET)/ CT,单光子发射计算断层摄影/ CT,以及PET /磁共振成像。为了评估性能,我们测量了压缩中花费的压缩率,比率和时间。此外,测量了网络驱动器上的写入和读取的时间和速率。我们的研究结果表明,MU CT数据的存储空间减少了近50%。并行化将散列计算速度升高为4.我们达到了137 MB / s的压缩率为354 MB的文件。该文件格式的发展是摘要和策划临床前和临床涉及的常见过程的步骤以标准化方式进行多式联算成像研究。这项工作还定义了多模式成像模态和分析软件之间的更好的界面。

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