3

I am looking to an opencv function (in python) detecting the line left ear - chin - right ear (that looks like a parabol) on human faces. Is there any kind of haarcascade doing this job? I already know the frontal face or the eyes haarcascades but I am looking for something more precise.

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what you are looking for is called face landmark detection . You can try DLIB . DLIB is written in C++ but it also have a python wrapper .Install Instructions

Now using DLib you can achieve this

Code

import cv2
import dlib
import numpy

PREDICTOR_PATH = "/home/zed/dlib/files/shape_predictor_68_face_landmarks.dat"
predictor = dlib.shape_predictor(PREDICTOR_PATH)
cascade_path='haarcascade_frontalface_default.xml'
cascade = cv2.CascadeClassifier(cascade_path)

# #This is using the Dlib Face Detector . Better result more time taking
# def get_landmarks(im):
#     rects = detector(im, 1)
#     rect=rects[0]
#     print type(rect.width())
#     fwd=int(rect.width())
#     if len(rects) == 0:
#         return None,None

#     return np.matrix([[p.x, p.y] for p in predictor(im, rects[0]).parts()]),fwd

def get_landmarks(im):
    rects = cascade.detectMultiScale(im, 1.3,5)
    x,y,w,h =rects[0]
    rect=dlib.rectangle(x,y,x+w,y+h)
    return numpy.matrix([[p.x, p.y] for p in predictor(im, rect).parts()])

def annotate_landmarks(im, landmarks):
    im = im.copy()
    for idx, point in enumerate(landmarks):
        pos = (point[0, 0], point[0, 1])
        cv2.putText(im, str(idx), pos,
                    fontFace=cv2.FONT_HERSHEY_SCRIPT_SIMPLEX,
                    fontScale=0.4,
                    color=(0, 0, 255))
        cv2.circle(im, pos, 3, color=(0, 255, 255))
    return im

im=cv2.imread('face_leo1.jpg')
cv2.imshow('Result',annotate_landmarks(im,get_landmarks(im)))
cv2.waitKey(0)
cv2.destroyAllWindows()

Results

enter image description here

Points related to landmark :

FACE_POINTS = list(range(17, 68))
MOUTH_POINTS = list(range(48, 61))
RIGHT_BROW_POINTS = list(range(17, 22))
LEFT_BROW_POINTS = list(range(22, 27))
RIGHT_EYE_POINTS = list(range(36, 42))
LEFT_EYE_POINTS = list(range(42, 48))
NOSE_POINTS = list(range(27, 35))
JAW_POINTS = list(range(0, 17))
CHIN_POINTS=list(range(6,11))
  • thanks that was exactly what I was looking for! – fonfonx May 13 '16 at 13:58
  • Nevertheless I get an error at the line rect=dlib.rectangle(x,y,x+w,y+h) which is Boost.Python.ArgumentError: Python argument types in rectangle.__init__(rectangle, numpy.int32, numpy.int32, numpy.int32, numpy.int32) did not match C++ signature: __init__(_object*, long left, long top, long right, long bottom) __init__(_object*) Did you already get this error and know how to fix it? – fonfonx May 13 '16 at 14:38
  • I didn't got any error exactly like this but I faced a lot of issues and came up with this solution and it worked. :/ you have the correct path to cascade ?? and the predictor ?? – Arijit May 13 '16 at 14:47
  • I solved the problem by writing x,y,w,h =rects[0].astype(long) – fonfonx May 13 '16 at 14:55
  • It works now? I added another method that uses the dlib facedetector instead of the Opencv haar cascade one – Arijit May 13 '16 at 15:00

protected by Community Feb 28 '17 at 10:36

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