def eta(self): "Grid of positive frequency fourier-modes" dnu = self.frequencies[1] - self.frequencies[0] eta = fftfreq(int(len(self.frequencies) / self.n_obs), d=dnu, b=2 * np.pi) return eta[eta > self.eta_min]
def ugrid_raw0(self): """ The 1D grid of u (fourier dual of l) at nu0. Used as the grid on a side of a 2D grid of the sky. """ return fftfreq(self.spatial_dist.ncells, d=self.spatial_dist.resolution[0], b=2 * np.pi)
def eta(self): return -fftfreq(len(self.f0), d=(self.f0[1] - self.f0[0]) * self.beam_model.nu0.value )[1:len(self.f0) / 2][::-1] / self.beam_model.nu0.unit
def ugrid_raw0(self): return fftfreq(self.ncells, d=self.resolution[0], b=2 * np.pi)
def uv_grid(self): """The grid of uv along one side""" return fftfreq(N=self.n_cells, d=self.cell_size, b=2 * np.pi)