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Spread spectrum for compressed sensing techniques in magnetic resonance imaging

机译:磁共振成像中压缩传感技术的扩频

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Magnetic resonance imaging (MRI) probes signals through Fourier measurements. Accelerating the acquisition process is of major interest for various MRI applications. The recent theory of compressed sensing shows that sparse or compressible signals may be reconstructed from a small number of random measurements in a sensing basis incoherent with the sparsity basis. In this context, we advocate the use of a chirp modulation of MRI signals prior to probing an incomplete Fourier coverage, in the perspective of accelerating the acquisition process relative to a standard setting with complete coverage. We analyze the spread spectrum phenomenon related to the modulation and we prove its effectiveness in enhancing the overall quality of image reconstruction. We also study its impact at each scale of decomposition in a wavelet sparsity basis. Our preliminary results rely both on theoretical considerations related to the mutual coherence between the sparsity and sensing bases, as well as on numerical simulations from synthetic signals.
机译:磁共振成像(MRI)通过傅立叶测量来探测信号。加速采集过程是各种MRI应用的主要兴趣所在。压缩感测的最新理论表明,稀疏或可压缩信号可以在与稀疏性基础不一致的感测基础上从少量随机测量中重建。在这种情况下,从加速相对于具有完全覆盖范围的标准设置的采集过程的角度出发,我们主张在探查不完全的傅立叶覆盖范围之前先使用MRI信号的线性调频调制。我们分析了与调制有关的扩频现象,并证明了其在增强图像重建总体质量方面的有效性。我们还以小波稀疏为基础研究了它在分解的每个尺度上的影响。我们的初步结果既取决于与稀疏度和感测碱基之间的相干性相关的理论考虑,也取决于来自合成信号的数值模拟。

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