实现效果:
实现代码
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import numpy as np from skimage import img_as_float import matplotlib.pyplot as plt from skimage import io import math import numpy.matlib file_name2 = 'D:/2020121173119242.png' # 图片路径 img = io.imread(file_name2) img = img_as_float(img) row, col, channel = img.shape img_out = img * 1.0 degree = 70 center_x = (col - 1 ) / 2.0 center_y = (row - 1 ) / 2.0 xx = np.arange (col) yy = np.arange (row) x_mask = numpy.matlib.repmat (xx, row, 1 ) y_mask = numpy.matlib.repmat (yy, col, 1 ) y_mask = np.transpose(y_mask) xx_dif = x_mask - center_x yy_dif = center_y - y_mask r = np.sqrt(xx_dif * xx_dif + yy_dif * yy_dif) theta = np.arctan(yy_dif / xx_dif) mask_1 = xx_dif < 0 theta = theta * ( 1 - mask_1) + (theta + math.pi) * mask_1 theta = theta + r / degree x_new = r * np.cos(theta) + center_x y_new = center_y - r * np.sin(theta) int_x = np.floor (x_new) int_x = int_x.astype( int ) int_y = np.floor (y_new) int_y = int_y.astype( int ) for ii in range (row): for jj in range (col): new_xx = int_x [ii, jj] new_yy = int_y [ii, jj] if x_new [ii, jj] < 0 or x_new [ii, jj] > col - 1 : continue if y_new [ii, jj] < 0 or y_new [ii, jj] > row - 1 : continue img_out[ii, jj, :] = img[new_yy, new_xx, :] plt.figure ( 1 ) plt.imshow (img) plt.axis( 'off' ) plt.figure ( 2 ) plt.imshow (img_out) plt.axis( 'off' ) plt.show() |
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原文链接:https://www.cnblogs.com/mtcnn/p/9412156.html