working
This commit is contained in:
1
.gitignore
vendored
1
.gitignore
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@ -4,5 +4,6 @@
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/.gpu-3d/
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/.gpu-3d/
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/.venv/
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/.venv/
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/venv/
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/venv/
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*.mp4
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yolo11*
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yolo11*
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3
.vscode/settings.json
vendored
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3
.vscode/settings.json
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{
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"liveServer.settings.port": 5501
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}
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main.py
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main.py
@ -11,7 +11,7 @@ from draw import draw_new
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from utils import find_closest
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from utils import find_closest
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from video_methods import initialize_method
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from video_methods import initialize_method
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model = YOLO("yolo11x-pose.pt")
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model = YOLO("yolo11s-pose.pt")
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if len(sys.argv) == 2:
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if len(sys.argv) == 2:
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method_type = sys.argv[1]
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method_type = sys.argv[1]
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moves_3d.py
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moves_3d.py
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import cv2
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import mediapipe as mp
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import cv2
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import mediapipe as mp
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import matplotlib.pyplot as plt
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from mpl_toolkits.mplot3d import Axes3D
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mp_drawing = mp.solutions.drawing_utils
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mp_drawing_styles = mp.solutions.drawing_styles
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mp_pose = mp.solutions.pose
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cap = cv2.VideoCapture(0)
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with mp_pose.Pose(
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min_detection_confidence=0.5,
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min_tracking_confidence=0.5) as pose:
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while cap.isOpened():
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success, image = cap.read()
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if not success:
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print("Ignoring empty camera frame.")
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# If loading a video, use 'break' instead of 'continue'.
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continue
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# To improve performance, optionally mark the image as not writeable to
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# pass by reference.
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image.flags.writeable = False
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image = cv2.cvtColor(image, cv2.COLOR_BGR2RGB)
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results = pose.process(image)
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print(f"\r{results.pose_world_landmarks[0]}", end="")
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# Draw the pose annotation on the image.
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image.flags.writeable = True
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image = cv2.cvtColor(image, cv2.COLOR_RGB2BGR)
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mp_drawing.draw_landmarks(
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image,
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results.pose_landmarks,
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mp_pose.POSE_CONNECTIONS,
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landmark_drawing_spec=mp_drawing_styles.get_default_pose_landmarks_style())
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# Flip the image horizontally for a selfie-view display.
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landmarks = results.pose_world_landmarks.landmark
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print(landmark)
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cap.release()
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92
moves_3d_mp4.py
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92
moves_3d_mp4.py
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import cv2
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import mediapipe as mp
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import matplotlib
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matplotlib.use("Agg") # <-- ważne: wyłącza GUI
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import matplotlib.pyplot as plt
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from mpl_toolkits.mplot3d import Axes3D
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import numpy as np
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# ---------------------
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# Wideo wejściowe
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# ---------------------
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cap = cv2.VideoCapture("input.mp4")
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fps = cap.get(cv2.CAP_PROP_FPS)
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width = 640
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height = 640
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# ---------------------
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# Wideo wyjściowe
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# ---------------------
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fourcc = cv2.VideoWriter_fourcc(*"MJPG")
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out = cv2.VideoWriter("output.mp4", fourcc, fps, (width, height))
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# ---------------------
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# MediaPipe Pose
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# ---------------------
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mp_pose = mp.solutions.pose
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pose = mp_pose.Pose(static_image_mode=False, model_complexity=1)
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frame_id = 0
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while True:
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ok, frame = cap.read()
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if not ok:
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break
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rgb = cv2.cvtColor(frame, cv2.COLOR_BGR2RGB)
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results = pose.process(rgb)
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# -----------------------------------------
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# 3D landmarki: pose_world_landmarks
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# -----------------------------------------
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if results.pose_world_landmarks:
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lm = results.pose_world_landmarks.landmark
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xs = np.array([p.x for p in lm])
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ys = np.array([p.y for p in lm])
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zs = np.array([p.z for p in lm])
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# -----------------------------
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# RYSOWANIE 3D w Matplotlib
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# -----------------------------
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fig = plt.figure(figsize=(6.4, 6.4), dpi=100)
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ax = fig.add_subplot(111, projection="3d")
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ax.scatter(xs, zs, ys, s=20)
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ax.set_xlim([-1, 1])
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ax.set_ylim([-1, 1])
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ax.set_zlim([-1, 1])
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ax.set_xlabel("X")
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ax.set_ylabel("Y")
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ax.set_zlabel("Z")
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ax.invert_zaxis()
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# -----------------------------------------
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# Konwersja wykresu Matplotlib → klatka do MP4
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# -----------------------------------------
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fig.canvas.draw()
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renderer = fig.canvas.get_renderer()
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w, h = fig.canvas.get_width_height()
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buf = renderer.buffer_rgba()
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plot_img = np.frombuffer(buf, dtype=np.uint8).reshape((h, w, 4))[:, :, :3]
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plt.close(fig)
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# Dopasowanie rozmiaru do wideo
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plot_img = cv2.resize(plot_img, (width, height))
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plot_img = cv2.cvtColor(plot_img, cv2.COLOR_RGB2BGR)
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out.write(plot_img)
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frame_id += 1
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cap.release()
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out.release()
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print("Zapisano: output.mp4")
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