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    逆时偏移成像中基于两种波场存储策略的优化算法研究

    Research on optimized algorithm for reverse-time migration imaging based on two wavefield storage strategies

    • 摘要: 基于双程波动方程的逆时偏移是一种精度较高的成像方法,能够处理全波型数据且不受地层倾角限制,进而实现复杂构造的准确成像。传统震源波场存储的策略是在每个时刻反复读写磁盘,不仅占用大量存储空间,而且因频繁的I/O操作导致显著延迟,严重地制约着计算效率。针对该问题,利用两种存储策略对传统的成像算法进行优化:一是根据Nyquist采样定理对震源波场进行抽样存储,以减少I/O读写次数;二是仅存储有效边界波场并在反传过程中实时重构震源波场。系统分析了上述两种优化成像算法,结果表明二者均能降低存储需求,显著提升计算效率。数值算例结果表明,两种算法的成像精度基本一致,抽样存储震源波场时需合理设置存储间隔,能够在满足成像需求的同时提高计算效率,边界波场重构策略需要占用更多的GPU显存,使用GPU加速计算大型三维模型时需合理选择成像算法。

       

      Abstract: Reverse time migration based on the two-way wave equation is a high-precision imaging method that handles full wavefields without dip angle limitations, thereby enabling accurate imaging of complex structures. However, the conventional strategy of storing the entire source wavefield requires repeated disk read/write operations at each time step, which not only consumes substantial storage but also introduces significant I/O latency, imposing severe constraints on computational efficiency. To address this issue, we adopt two storage strategies to optimize the conventional imaging algorithm: one involves sampling and storing the source wavefield based on the Nyquist sampling theorem to reduce I/O frequency, and the other stores only the effective boundary wavefield and reconstructs the source wavefield during backpropagation. The systematic analysis of both optimized imaging algorithms demonstrates that both can effectively reduce storage requirements and significantly enhance computational efficiency. Numerical examples show that the imaging accuracy of the two algorithms is basically the same. When sampling and storing the source wavefield, the storage interval needs to be reasonably set to balance imaging requirements and computational efficiency. In contrast, the boundary wavefield reconstruction strategy requires more GPU video memory. When applying GPU acceleration to large 3D models, the imaging algorithm should be reasonably selected.

       

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