Low-noise least square reverse time migration method
A least squares, reverse time migration technology, applied in the fields of exploration geophysics and inversion synthesis, which can solve problems affecting iterative convergence speed and imaging results, etc.
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[0059] Embodiment 1 provides a low-noise least squares reverse time migration method, comprising the following steps:
[0060] First, establish the function F(m) of the least squares inverse time offset, and its expression is:
[0061]
[0062] In the formula, F(m) is the function of least squares inverse time migration; m represents the reflection coefficient model, which is a matrix; d and d obs represent the predicted and observed data, respectively.
[0063] Among them, the observation data d obs The forward model is obtained by solving the two-way wave equation for the true velocity model, and the predicted data d is obtained by applying the Kerchhoff approximation forward model to the migration velocity model and the reflection coefficient model m, such as figure 1 and 2 shown.
[0064] Then, by adding a sparse constraint term R(m) to the function F(m) of the least squares inverse time migration, the side lobes caused by the limited frequency band of the data and ...
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