你已经派生过 gprMax
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https://gitee.com/sunhf/gprMax.git
已同步 2025-08-08 07:24:19 +08:00
Further refinements.
这个提交包含在:
@@ -9,12 +9,12 @@ from scipy.io import loadmat
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# Title and file path for FDTD model output
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modeltitle = 'rtm_model'
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modeltitle = 'bgr_6'
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fn = Path(__file__)
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fn = Path(fn.parent, modeltitle)
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# Load B-scan data to be migrated
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matfile = Path(str(Path(__file__).parent.resolve()), 'bgr_6.mat')
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matfile = Path(str(Path(__file__).parent.resolve()), modeltitle + '.mat')
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matcontents = loadmat(str(matfile))
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data = matcontents['data']
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data = np.transpose(data) # Transpose to rows: samples, cols: traces
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@@ -32,7 +32,7 @@ v = 0.12e9
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depth = v * maxtime / 2
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# FDTD discretisation, 2D domain dims, and time window
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dl = 0.005 # metres
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dl = 0.001 # metres
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pml_cells = 10
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extra_cells = 10 # Allow some extra cells after PML before placing sources
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x_cells = data.shape[1] + 2 * pml_cells + 2 * extra_cells
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@@ -42,23 +42,28 @@ y = y_cells * dl
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z_cells = int(np.ceil(depth / dl) + 2 * pml_cells + 2 * extra_cells)
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z = z_cells * dl
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# Can build FDTD model from:
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# 1. Matrix of velocity/permittivity, then write to file, and import
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# 2. Directly using geometry primitives, i.e. boxes, etc...
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# Option 1:
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# Holds permittivity field to import into FDTD model
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er = np.ones((x_cells, y_cells, z_cells - (pml_cells + extra_cells)))
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er_value = np.around(4 * (c / v)**2, decimals=2) # 4xEr as velocity doubled
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er = er * er_value
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mat_ers = np.unique(er)
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# er = np.ones((x_cells, y_cells, z_cells - (pml_cells + extra_cells)))
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# er_value = np.around(4 * (c / v)**2, decimals=2) # 4xEr as velocity doubled
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# er = er * er_value
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# mat_ers = np.unique(er)
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# Write materials text file
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with open(fn.with_suffix('.txt'), 'w') as fmaterials:
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for i, mat_er in enumerate(mat_ers):
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er[er==mat_er] = i
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fmaterials.write(f'#material: {mat_er} 0 1 0 mat{i}\n')
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# with open(fn.with_suffix('.txt'), 'w') as fmaterials:
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# for i, mat_er in enumerate(mat_ers):
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# er[er==mat_er] = i
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# fmaterials.write(f'#material: {mat_er} 0 1 0 mat{i}\n')
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# Write permittivity HDF5 file
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with h5py.File(fn.with_suffix('.h5'), 'w') as fdata:
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fdata.attrs['Title'] = modeltitle
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fdata.attrs['dx_dy_dz'] = (dl, dl, dl)
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fdata['/data'] = er.astype('int16')
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# # Write permittivity HDF5 file
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# with h5py.File(fn.with_suffix('.h5'), 'w') as fdata:
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# fdata.attrs['Title'] = modeltitle
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# fdata.attrs['dx_dy_dz'] = (dl, dl, dl)
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# fdata['/data'] = er.astype('int16')
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# Build FDTD model
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scene = gprMax.Scene()
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@@ -73,8 +78,19 @@ scene.add(domain)
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scene.add(dxdydz)
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scene.add(time_window)
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go = gprMax.GeometryObjectsRead(p1=(0, 0, 0), geofile=fn.with_suffix('.h5'),
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matfile=fn.with_suffix('.txt'))
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# Option 1
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# go = gprMax.GeometryObjectsRead(p1=(0, 0, 0), geofile=fn.with_suffix('.h5'),
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# matfile=fn.with_suffix('.txt'))
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# scene.add(go)
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# Option 2
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mat = gprMax.Material(er=np.around(4 * (c / v)**2, decimals=2), se=0, mr=1,
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sm=0, id='mat1')
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scene.add(mat)
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b1 = gprMax.Box(p1=(0, 0, 0), p2=(domain.props.p1[0], dl,
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domain.props.p1[2] - (pml_cells + extra_cells) * dl),
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material_id='mat1')
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scene.add(b1)
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# Specify waveforms and sources from reversed B-scan data
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for i in range(data.shape[1]):
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@@ -105,12 +121,11 @@ snap = gprMax.Snapshot(p1=((pml_cells + extra_cells) * dl,
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filename=fn.with_suffix('').parts[-1] + '_rtm_result',
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fileext=fileext, time=maxtime)
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scene.add(go)
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scene.add(gv)
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scene.add(snap)
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# Run FDTD model
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#gprMax.run(scenes=[scene], n=1, geometry_only=False, outputfile=fn)
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gprMax.run(scenes=[scene], n=1, geometry_only=False, outputfile=fn)
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# Open RTM results file
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filename = Path(str(fn) + '_snaps', fn.with_suffix('').parts[-1] + '_rtm_result' + fileext)
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@@ -125,7 +140,6 @@ outputdata = outputdata.squeeze()
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outputdata = outputdata.transpose()
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# Plot RTM result
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min_max_plt = (-1000, 1000)
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fig, (ax1, ax2) = plt.subplots(nrows=2, ncols=1, num=str(filename),
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figsize=(15, 10), facecolor='w', edgecolor='w')
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orig_plt = ax1.imshow(data, extent=[0, data.shape[1] * trac_int,
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