python 使用递归的方式实现语义图片分割功能

实现效果

第一张图为原图,其余的图为分割后的图形

代码实现:

# -*-coding:utf-8-*-

import numpy as np

import cv2

#----------------------------------------------------------------------

def obj_clip(img, foreground, border):

result = []

height ,width = np.shape(img)

visited = set()

for h in range(height):

for w in range(width):

if img[h,w] == foreground and not (h,w) in visited:

obj = visit(img, height, width, h, w, visited, foreground, border)

result.append(obj)

return result

#----------------------------------------------------------------------

def visit(img, height, width, h, w, visited, foreground, border):

visited.add((h,w))

result = [(h,w)]

if w > 0 and not (h, w-1) in visited:

if img[h, w-1] == foreground:

result += visit(img, height, width, h, w-1, visited , foreground, border)

elif border is not None and img[h, w-1] == border:

result.append((h, w-1))

if w < width-1 and not (h, w+1) in visited:

if img[h, w+1] == foreground:

result += visit(img, height, width, h, w+1, visited, foreground, border)

elif border is not None and img[h, w+1] == border:

result.append((h, w+1))

if h > 0 and not (h-1, w) in visited:

if img[h-1, w] == foreground:

result += visit(img, height, width, h-1, w, visited, foreground, border)

elif border is not None and img[h-1, w] == border:

result.append((h-1, w))

if h < height-1 and not (h+1, w) in visited:

if img[h+1, w] == foreground :

result += visit(img, height, width, h+1, w, visited, foreground, border)

elif border is not None and img[h+1, w] == border:

result.append((h+1, w))

return result

#----------------------------------------------------------------------

if __name__ == "__main__":

import cv2

import sys

sys.setrecursionlimit(100000)

img = np.zeros([400,400])

cv2.rectangle(img, (10,10), (150,150), 1.0, 5)

cv2.circle(img, (270,270), 70, 1.0, 5)

cv2.line(img, (100,10), (100,150), 0.5, 5)

#cv2.putText(img, "Martin",(200,200), 1.0, 5)

cv2.imshow("img", img*255)

cv2.waitKey(0)

for obj in obj_clip(img, 1.0, 0.5):

clip = np.zeros([400, 400])

for h, w in obj:

clip[h, w] = 0.2

cv2.imshow("aa", clip*255)

cv2.waitKey(0)

总结

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