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Commit b2a35e34 authored by Raffaelbdl's avatar Raffaelbdl
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......@@ -5,7 +5,9 @@ import cv2
from utils import *
from config import emotions, input_shape, modelName
model = keras.models.load_model("models/"+modelName) #Load our model
#model = tf.keras.models.load_model("models/"+modelName) #Load our model
model = tf.saved_model.load("models/"+modelName)
print('Model used:', modelName)
def detectEmotion(face):
......
......@@ -3,9 +3,10 @@ import cv2
import imageProcess as ip
import faceAnalysis as fa
import random
from time import sleep
from config import emotions
cap = cv2.VideoCapture(0) #0 means we capture the first camera, your webcam probably
cap = cv2.VideoCapture(4) #0 means we capture the first camera, your webcam probably
score = 0
N = 15
......@@ -32,9 +33,12 @@ while cap.isOpened(): #or while 1. cap.isOpened() is false if there is a probl
smiley, emotion = smileyRandom(emotion)
cv2.imshow("Caméra", frame) #Show you making emotional faces
cv2.imshow("Camera", frame) #Show you making emotional faces
cv2.putText(smiley, "Score: "+str(score), (40,40), cv2.FONT_HERSHEY_SIMPLEX, 1, (0,0,255), 2)
cv2.imshow("Smiley", smiley) #Show the smiley to mimic
#sleep(0.5)
if cv2.waitKey(1) & 0xFF == ord('q'): #If you press Q, stop the while and so the capture
break
......
......@@ -18,8 +18,8 @@ def afficher(image):
def predir(modele, image):
# Return output of image from modele
return modele.predict(np.array([image]))[0, :]
#return modele.predict(np.array([image]))[0, :]
return modele(np.array([image]))[0, :]
def normAndResize(image, input_shape):
# For an array image of shape (a,b,c) or (a,b), transform it into (h,l,p). Also normalize it.
......
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