- refactore utils
- added code for experiemntal single axis rotaion (Zwischenstand)
This commit is contained in:
@@ -7,7 +7,7 @@ import argparse
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import mimetypes
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import mimetypes
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import json
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import json
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from pathlib import Path
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from pathlib import Path
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from ar_tag_pose.utils import to_board_pose_euler
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from ar_tag_pose.utils import to_tf, to_board_pose_euler
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from detector_board import BoardDetector
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from detector_board import BoardDetector
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from detector_board_aruco import BoardDetectorAruco
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from detector_board_aruco import BoardDetectorAruco
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from detector_board_charuco import BoardDetectorCharuco
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from detector_board_charuco import BoardDetectorCharuco
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@@ -103,6 +103,10 @@ class Detector(abc.ABC):
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frame_go = True
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frame_go = True
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frame_num = 0
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frame_num = 0
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out = None
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out = None
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r_vec = None
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t_vec = None
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tvec_world = None
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rvec_world = None
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while cap.isOpened():
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while cap.isOpened():
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if self.src_images:
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if self.src_images:
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cap.set(cv.CAP_PROP_POS_FRAMES, frame_num)
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cap.set(cv.CAP_PROP_POS_FRAMES, frame_num)
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@@ -141,13 +145,23 @@ class Detector(abc.ABC):
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elif k == ord('x'):
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elif k == ord('x'):
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for det in self.detector:
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for det in self.detector:
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det.calibration_clear()
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det.calibration_clear()
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elif k == ord('e'):
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if t_vec is not None and r_vec is not None:
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rvec_world, tvec_world = r_vec, t_vec
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elif k == ord('r'):
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tvec_world = None
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rvec_world = None
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y_pos = 30
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y_pos = 30
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for det in self.detector:
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for det in self.detector:
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success, r_vec, t_vec = det.process(img)
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success, r_vec, t_vec = det.process(img)
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if success:
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if success:
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r_vec_obj, _ = to_board_pose_euler(r_vec, t_vec)
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if rvec_world is not None:
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rot = [round(180.0 / math.pi * v, 1) for v in r_vec_obj]
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rot_e = to_board_pose_euler(to_tf(rvec_world, tvec_world), to_tf(r_vec, t_vec))
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else:
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rot_e = to_board_pose_euler(to_tf(r_vec, t_vec))
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rot = [round(180.0 / math.pi * v, 1) for v in rot_e]
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cv.putText(img, f"{det}: Tilt: {rot[0]:.1f}, Roll: {rot[1]:.1f}, Azimuth: {rot[2]:.1f}",
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cv.putText(img, f"{det}: Tilt: {rot[0]:.1f}, Roll: {rot[1]:.1f}, Azimuth: {rot[2]:.1f}",
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(30, y_pos), cv.FONT_HERSHEY_SIMPLEX, 0.75, (0, 255, 0), 2)
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(30, y_pos), cv.FONT_HERSHEY_SIMPLEX, 0.75, (0, 255, 0), 2)
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y_pos += 30
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y_pos += 30
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+19
-5
@@ -1,8 +1,11 @@
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import numpy as np
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import numpy as np
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import cv2 as cv
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import cv2 as cv
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import math
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import math
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import vg
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from scipy.spatial.transform import RigidTransform as Tf
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from scipy.spatial.transform import Rotation as R
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def rotation_matrix_to_euler_angles(R):
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def rotation_matrix_to_euler_angles(R: np.ndarray) -> np.ndarray:
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sy = math.sqrt(R[0,0]**2 + R[1,0]**2)
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sy = math.sqrt(R[0,0]**2 + R[1,0]**2)
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singular = sy < 1e-6
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singular = sy < 1e-6
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@@ -17,11 +20,22 @@ def rotation_matrix_to_euler_angles(R):
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z = 0
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z = 0
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return np.array([x, y, z])
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return np.array([x, y, z])
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def to_board_pose_euler(r_vec, t_vec):
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def to_tf(r_vec: np.ndarray, t_vec: np.ndarray) -> np.ndarray:
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r_mat = np.ndarray((3, 3))
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r_mat = np.ndarray((3, 3))
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cv.Rodrigues(r_vec, r_mat)
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cv.Rodrigues(r_vec, r_mat)
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r_mat = np.hstack((r_mat, t_vec))
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r_mat = np.hstack((r_mat, t_vec))
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r_mat = np.vstack((r_mat, np.array([0, 0, 0, 1])))
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r_mat = np.vstack((r_mat, np.array([0, 0, 0, 1])))
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r_mat = np.linalg.inv(r_mat)
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return r_mat
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res = rotation_matrix_to_euler_angles(r_mat)
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return res, r_mat[:,3]
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def to_board_pose_euler(t1: np.ndarray, t2: np.ndarray | None = None) -> np.ndarray:
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if t2 is None:
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tf = np.linalg.inv(t1)
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else:
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tf = np.linalg.inv(t1)*t2
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res = np.array([0,0,0], dtype=np.float64)
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# res = rotation_matrix_to_euler_angles(tf)
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cv.Rodrigues(tf[0:3, 0:3], res)
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return res
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