首页> 外文会议>Engineering in Medicine and Biology Society, 1998. Proceedings of the 20th Annual International Conference of the IEEE >Clinical investigation of a knowledge-based data compression algorithm for dynamic neurologic FDG-PET images
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Clinical investigation of a knowledge-based data compression algorithm for dynamic neurologic FDG-PET images

机译:基于知识的动态神经FDG-PET图像数据压缩算法的临床研究

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A knowledge-based data compression algorithm for dynamic positron emission tomography (PET) images has been developed previously (D. Feng et al., "An optimal image sampling schedule design for cerebral blood volume and partial volume correction in neurologic FDG-PET studies", The 29/sup th/ Annual Scientific Meeting of A & NZ Society of Nuclear Medicine, April 4-8, 1998, Melbourne, Australia, to appear in Australia and New Zealand Journal of Medicine), and it has been shown that this algorithm can greatly reduce image storage requirements in both spatial and temporal domains, while retaining medically relevant information. However, this algorithm has not yet been validated with real clinical dynamic image data. Here, the authors validated this algorithm in clinical dynamic brain PET studies using the [/sup 18/F] 2-fluoro-deoxy-glucose (FDG) tracer. Compression performance and image quality were evaluated. Results demonstrate that the storage requirements for dynamic PET image data can be reduced by more than 95%, without loss in diagnostic quality. Furthermore, use of this compression algorithm greatly reduces the computational complexity of further clinical image processing such as generation of functional images. It could benefit to the current expansion in medical imaging, and image data management.
机译:以前已经开发了用于动态正电子发射断层扫描(PET)图像的基于知识的数据压缩算法(D. Feng等人,“神经系统FDG-PET研究中脑血容量和部分容量校正的最佳图像采样计划设计” ,于1998年4月4日至8日在澳大利亚墨尔本的A&NZ核医学学会第29 /年度科学会议上发表,该算法已被证明可以在保留医学相关信息的同时,极大地减少时空域中的图像存储需求。但是,该算法尚未通过实际的临床动态图像数据进行验证。在这里,作者使用[/ sup 18 / F] 2-氟-脱氧葡萄糖(FDG)示踪剂在临床动态脑部PET研究中验证了该算法。评估压缩性能和图像质量。结果表明,动态PET图像数据的存储需求可以减少95%以上,而不会降低诊断质量。此外,使用该压缩算法大大降低了进一步临床图像处理(例如功能图像的生成)的计算复杂性。它可能有益于当前在医学成像和图像数据管理方面的扩展。

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