217 lines
6.8 KiB
Python
217 lines
6.8 KiB
Python
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"""
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Mode-matching / EME example for a straight rib-waveguide interface.
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This example shows the intended user-facing workflow for `meanas.fdfd.eme` on a
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simple straight interface:
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1. build two nearby waveguide cross-sections on a Yee grid,
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2. solve a small set of guided modes on each side,
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3. normalize those modes into E/H port fields,
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4. assemble the interface scattering matrix with `meanas.fdfd.eme.get_s(...)`,
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5. inspect the dominant modal coupling numerically and visually.
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"""
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from __future__ import annotations
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import importlib
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import numpy
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from numpy import pi
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import gridlock
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from gridlock import Extent
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from meanas.fdfd import eme, waveguide_2d
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from meanas.fdmath import unvec
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WL = 1310.0
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DX = 40.0
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WIDTH = 400.0
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THF = 161.0
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THP = 77.0
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EPS_SI = 3.51 ** 2
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EPS_OX = 1.453 ** 2
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MODE_NUMBERS = numpy.array([0])
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def require_optional(name: str, package_name: str | None = None):
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package_name = package_name or name
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try:
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return importlib.import_module(name)
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except ImportError as exc: # pragma: no cover - user environment guard
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raise SystemExit(
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f"This example requires the optional package '{package_name}'. "
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"Install example dependencies with `pip install -e './meanas[examples]'`.",
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) from exc
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def build_geometry(
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*,
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dx: float = DX,
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width: float = WIDTH,
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thf: float = THF,
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thp: float = THP,
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eps_si: float = EPS_SI,
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eps_ox: float = EPS_OX,
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) -> tuple[gridlock.Grid, numpy.ndarray, list[list[numpy.ndarray]], float]:
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x0 = (width / 2) % dx
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omega = 2 * pi / WL
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grid = gridlock.Grid(
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[
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numpy.arange(-800, 800 + dx, dx),
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numpy.arange(-400, 400 + dx, dx),
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numpy.arange(-2 * dx, 2 * dx + dx, dx),
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],
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periodic=True,
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)
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epsilon = grid.allocate(eps_ox)
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grid.draw_cuboid(
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epsilon,
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foreground=eps_si,
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x=Extent(center=x0, span=width + 1200),
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y=Extent(min=0, max=thf),
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z=Extent(min=-1e6, max=0),
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)
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grid.draw_cuboid(
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epsilon,
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foreground=eps_ox,
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x=Extent(max=-width / 2, span=300),
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y=Extent(min=thp, max=1e6),
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z=Extent(min=-1e6, max=0),
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)
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grid.draw_cuboid(
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epsilon,
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foreground=eps_ox,
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x=Extent(min=width / 2, span=300),
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y=Extent(min=thp, max=1e6),
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z=Extent(min=-1e6, max=0),
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)
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grid.draw_cuboid(
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epsilon,
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foreground=eps_si,
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x=Extent(max=-(width / 2 + 600), span=240),
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y=Extent(min=0, max=thf),
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z=Extent(min=0, max=1e6),
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)
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grid.draw_cuboid(
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epsilon,
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foreground=eps_si,
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x=Extent(max=width / 2 + 600, span=240),
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y=Extent(min=0, max=thf),
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z=Extent(min=0, max=1e6),
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)
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dxes = [grid.dxyz, grid.autoshifted_dxyz()]
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dxes_2d = [[d[0], d[1]] for d in dxes]
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return grid, epsilon, dxes_2d, omega
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def solve_cross_section_modes(
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epsilon_slice: numpy.ndarray,
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*,
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omega: float,
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dxes_2d: list[list[numpy.ndarray]],
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mode_numbers: numpy.ndarray = MODE_NUMBERS,
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) -> tuple[list[tuple[numpy.ndarray, numpy.ndarray]], numpy.ndarray]:
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e_xys, wavenumbers = waveguide_2d.solve_modes(
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epsilon=epsilon_slice.ravel(),
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omega=omega,
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dxes=dxes_2d,
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mode_numbers=mode_numbers,
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)
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eh_fields = [
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waveguide_2d.normalized_fields_e(
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e_xy,
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wavenumber=wavenumber,
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dxes=dxes_2d,
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omega=omega,
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epsilon=epsilon_slice.ravel(),
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)
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for e_xy, wavenumber in zip(e_xys, wavenumbers, strict=True)
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]
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return eh_fields, wavenumbers
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def print_summary(ss: numpy.ndarray, wavenumbers_left: numpy.ndarray, wavenumbers_right: numpy.ndarray, omega: float) -> None:
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n_left = len(wavenumbers_left)
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left_neff = numpy.real(wavenumbers_left / omega)
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right_neff = numpy.real(wavenumbers_right / omega)
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print('left effective indices:', ', '.join(f'{value:.5f}' for value in left_neff[:4]))
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print('right effective indices:', ', '.join(f'{value:.5f}' for value in right_neff[:4]))
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reflection = abs(ss[0, 0]) ** 2
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transmission = abs(ss[n_left, 0]) ** 2
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total_output = numpy.sum(abs(ss[:, 0]) ** 2)
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print(f'fundamental left-incident reflection |S_00|^2 = {reflection:.6f}')
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print(f'fundamental left-to-right transmission |S_{n_left},0|^2 = {transmission:.6f}')
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print(f'fundamental left-incident total output power = {total_output:.6f}')
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strongest = numpy.argsort(abs(ss[n_left:, 0]) ** 2)[::-1][:3]
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print('dominant transmitted right-side modes for left mode 0:')
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for mode_index in strongest:
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print(f' mode {mode_index}: |S|^2 = {abs(ss[n_left + mode_index, 0]) ** 2:.6f}')
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def plot_results(
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*,
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pyplot,
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ss: numpy.ndarray,
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left_mode: tuple[numpy.ndarray, numpy.ndarray],
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right_mode: tuple[numpy.ndarray, numpy.ndarray],
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shape_2d: tuple[int, int],
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) -> None:
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fig_s, ax_s = pyplot.subplots()
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image = ax_s.imshow(abs(ss) ** 2, origin='lower', cmap='magma')
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fig_s.colorbar(image, ax=ax_s)
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ax_s.set_title('Interface scattering magnitude |S|^2')
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ax_s.set_xlabel('Incident mode index')
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ax_s.set_ylabel('Outgoing mode index')
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e_left = unvec(left_mode[0], shape_2d)
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e_right = unvec(right_mode[0], shape_2d)
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left_intensity = numpy.sum(abs(e_left) ** 2, axis=0).T
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right_intensity = numpy.sum(abs(e_right) ** 2, axis=0).T
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fig_modes, axes = pyplot.subplots(1, 2, figsize=(10, 4))
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left_plot = axes[0].imshow(left_intensity, origin='lower', cmap='viridis')
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fig_modes.colorbar(left_plot, ax=axes[0])
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axes[0].set_title('Left fundamental mode |E|^2')
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right_plot = axes[1].imshow(right_intensity, origin='lower', cmap='viridis')
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fig_modes.colorbar(right_plot, ax=axes[1])
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axes[1].set_title('Right fundamental mode |E|^2')
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if pyplot.get_backend().lower().endswith('agg'):
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pyplot.close(fig_s)
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pyplot.close(fig_modes)
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else:
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pyplot.show()
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def main() -> None:
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pyplot = require_optional('matplotlib.pyplot', package_name='matplotlib')
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grid, epsilon, dxes_2d, omega = build_geometry()
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left_slice = epsilon[:, :, :, 1]
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right_slice = epsilon[:, :, :, -2]
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left_modes, wavenumbers_left = solve_cross_section_modes(left_slice, omega=omega, dxes_2d=dxes_2d)
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right_modes, wavenumbers_right = solve_cross_section_modes(right_slice, omega=omega, dxes_2d=dxes_2d)
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ss = eme.get_s(left_modes, wavenumbers_left, right_modes, wavenumbers_right, dxes=dxes_2d)
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print_summary(ss, wavenumbers_left, wavenumbers_right, omega)
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plot_results(
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pyplot=pyplot,
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ss=ss,
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left_mode=left_modes[0],
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right_mode=right_modes[0],
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shape_2d=grid.shape[:2],
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)
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if __name__ == '__main__':
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main()
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