示例#1
0
def main():

    if not sys.argv or len(sys.argv) != 2:
        print(
            "Only the path of the output SVO file should be passed as argument."
        )
        exit(1)

    cam = sl.Camera()
    init = sl.InitParameters()

    init.camera_resolution = sl.RESOLUTION.RESOLUTION_HD720  # Use HD720 video mode (default
    init.coordinate_system = sl.COORDINATE_SYSTEM.COORDINATE_SYSTEM_RIGHT_HANDED_Y_UP  # Use a right-handed Y-up coordinate system
    init.coordinate_units = sl.UNIT.UNIT_METER  # Set units in meters

    # new for SVO
    init.depth_mode = sl.DEPTH_MODE.DEPTH_MODE_NONE
    ##

    status = cam.open(init)
    if status != sl.ERROR_CODE.SUCCESS:
        print(repr(status))
        exit()

    runtime = sl.RuntimeParameters()
    spatial = sl.SpatialMappingParameters()
    transform = sl.Transform()
    tracking = sl.TrackingParameters(transform)

    cam.enable_tracking(tracking)
    cam.enable_spatial_mapping(spatial)

    #from  Positional Tracking:
    # Track the camera position until Keyboard Interupt (ctrl-C)
    zed_pose = sl.Pose()
    zed_imu = sl.IMUData()
    runtime_parameters = sl.RuntimeParameters()

    path = '/media/nvidia/SD1/translation.csv'
    position_file = open(path, 'w')
    #END from positional tracking

    pymesh = sl.Mesh()
    print("Processing...")

    #new for SVO
    path_output = sys.argv[1]
    err = cam.enable_recording(
        path_output, sl.SVO_COMPRESSION_MODE.SVO_COMPRESSION_MODE_AVCHD)
    if err != sl.ERROR_CODE.SUCCESS:
        print(repr(status))
        exit(1)
    print("SVO is Recording, use Ctrl-C to stop.")
    frames_recorded = 0
    ##

    while True:
        try:
            cam.grab(runtime)

            # new for SVO
            state = cam.record()
            if state["status"]:
                frames_recorded += 1
            print("Frame count: " + str(frames_recorded), end="\r")
            ##

            cam.request_mesh_async()
            # Get the pose of the left eye of the camera with reference to the world frame
            cam.get_position(zed_pose,
                             sl.REFERENCE_FRAME.REFERENCE_FRAME_WORLD)
            cam.get_imu_data(zed_imu, sl.TIME_REFERENCE.TIME_REFERENCE_IMAGE)

            # Display the translation and timestamp
            py_translation = sl.Translation()
            tx = round(zed_pose.get_translation(py_translation).get()[0], 3)
            ty = round(zed_pose.get_translation(py_translation).get()[1], 3)
            tz = round(zed_pose.get_translation(py_translation).get()[2], 3)
            position_file.write("{0},{1},{2},{3}\n".format(
                tx, ty, tz, zed_pose.timestamp))

        except KeyboardInterrupt:
            cam.extract_whole_mesh(pymesh)
            cam.disable_tracking()
            cam.disable_spatial_mapping()
            # new for .svo
            cam.disable_recording()
            ##
            filter_params = sl.MeshFilterParameters()
            filter_params.set(sl.MESH_FILTER.MESH_FILTER_HIGH)
            print("Filtering params : {0}.".format(
                pymesh.filter(filter_params)))

            apply_texture = pymesh.apply_texture(
                sl.MESH_TEXTURE_FORMAT.MESH_TEXTURE_RGBA)
            print("Applying texture : {0}.".format(apply_texture))
            print_mesh_information(pymesh, apply_texture)

            save_filter(filter_params)
            save_mesh(pymesh)
            cam.close()
            position_file.close()
            save_position(path)
            print("\nFINISH")
            raise
示例#2
0
def main():
    # Create a Camera object
    zed = sl.Camera()

    # Create a InitParameters object and set configuration parameters
    init_params = sl.InitParameters()
    init_params.camera_resolution = sl.RESOLUTION.RESOLUTION_HD720  # Use HD720 video mode (default fps: 60)
    # Use a right-handed Y-up coordinate system
    init_params.coordinate_system = sl.COORDINATE_SYSTEM.COORDINATE_SYSTEM_RIGHT_HANDED_Y_UP
    init_params.coordinate_units = sl.UNIT.UNIT_METER  # Set units in meters

    # Open the camera
    err = zed.open(init_params)
    if err != sl.ERROR_CODE.SUCCESS:
        exit(1)

    # Enable positional tracking with default parameters
    py_transform = sl.Transform()  # First create a Transform object for TrackingParameters object
    tracking_parameters = sl.TrackingParameters(init_pos=py_transform)
    err = zed.enable_tracking(tracking_parameters)
    if err != sl.ERROR_CODE.SUCCESS:
        exit(1)

    # Track the camera position during 1000 frames
    i = 0
    zed_pose = sl.Pose()
    zed_imu = sl.IMUData()
    runtime_parameters = sl.RuntimeParameters()

    #added! 
    path = '/media/nvidia/SD1/position.csv'
    position_file = open(path,'w')
    
    while i < 1000:
        if zed.grab(runtime_parameters) == sl.ERROR_CODE.SUCCESS:
            # Get the pose of the left eye of the camera with reference to the world frame
            zed.get_position(zed_pose, sl.REFERENCE_FRAME.REFERENCE_FRAME_WORLD)
            zed.get_imu_data(zed_imu, sl.TIME_REFERENCE.TIME_REFERENCE_IMAGE)

            # Display the translation and timestamp
            py_translation = sl.Translation()
            tx = round(zed_pose.get_translation(py_translation).get()[0], 3)
            ty = round(zed_pose.get_translation(py_translation).get()[1], 3)
            tz = round(zed_pose.get_translation(py_translation).get()[2], 3)
            position_file.write("Translation: Tx: {0}, Ty: {1}, Tz {2}, Timestamp: {3}\n".format(tx, ty, tz, zed_pose.timestamp))

            # Display the orientation quaternion
            py_orientation = sl.Orientation()
            ox = round(zed_pose.get_orientation(py_orientation).get()[0], 3)
            oy = round(zed_pose.get_orientation(py_orientation).get()[1], 3)
            oz = round(zed_pose.get_orientation(py_orientation).get()[2], 3)
            ow = round(zed_pose.get_orientation(py_orientation).get()[3], 3)
            position_file.write("Orientation: Ox: {0}, Oy: {1}, Oz {2}, Ow: {3}\n".format(ox, oy, oz, ow))

	    # Display the Rotation Matrix
            py_rotationMatrix = zed_pose.get_rotation_matrix()
            position_file.write("Got Rotation Matrix, but did not print\n")

	    # Display the Rotation Vector
            py_rotationVector = zed_pose.get_rotation_vector()
            rx = round(py_rotationVector[0], 3)
            ry = round(py_rotationVector[1], 3)
            rz = round(py_rotationVector[2], 3)
            position_file.write("Rotation Vector: Rx: {0}, Ry: {1}, Rz {2}, Timestamp: {3}\n".format(rx, ry, rz, zed_pose.timestamp))

	    # Display the Euler Angles
            py_eulerAngles = zed_pose.get_euler_angles()
            ex = round(py_eulerAngles[0], 3)
            ey = round(py_eulerAngles[1], 3)
            ez = round(py_eulerAngles[2], 3)
            position_file.write("EulerAngles: EAx: {0}, EAy: {1}, EAz {2}, Timestamp: {3}\n".format(ex, ey, ez, zed_pose.timestamp))



            
            i = i + 1

    # Close the camera
    zed.close()

    # Close file
    position_file.close()
示例#3
0
def main():
    imu = PX4Data()
    # Create a Camera object
    zed = sl.Camera()

    # Create a InitParameters object and set configuration parameters
    init_params = sl.InitParameters()
    init_params.depth_mode = sl.DEPTH_MODE.DEPTH_MODE_PERFORMANCE
    init_params.camera_resolution = sl.RESOLUTION.RESOLUTION_VGA  # Use HD1080 video mode
    init_params.camera_fps = 120  # Set fps at 60
    init_params.coordinate_system = sl.COORDINATE_SYSTEM.COORDINATE_SYSTEM_RIGHT_HANDED_Z_UP_X_FWD
    init_params.coordinate_units = sl.UNIT.UNIT_METER  # Set units in meters

    # Open the camera
    err = zed.open(init_params)
    if err != sl.ERROR_CODE.SUCCESS:
        exit(1)


    # Enable positional tracking with default parameters
    py_transform = sl.Transform()  # First create a Transform object for TrackingParameters object
    tracking_parameters = sl.TrackingParameters(init_pos=py_transform)
    err = zed.enable_tracking(tracking_parameters)
    if err != sl.ERROR_CODE.SUCCESS:
        exit(1)

    # Capture 50 frames and stop
    i = 0
    image = sl.Mat()
    zed_pose = sl.Pose()
    zed_imu = sl.IMUData()
    runtime_parameters = sl.RuntimeParameters()
    runtime_parameters.sensing_mode = sl.SENSING_MODE.SENSING_MODE_STANDARD  # Use STANDARD sensing mode
    prevTimeStamp = 0
    file = open('data/data.txt', 'w')
    key = 0
    depth = sl.Mat()
    point_cloud = sl.Mat()
    pcList = []
    while key != 113:
        # Grab an image, a RuntimeParameters object must be given to grab()
        if zed.grab(runtime_parameters) == sl.ERROR_CODE.SUCCESS: # A new image is available if grab() returns SUCCESS
            timestamp = zed.get_timestamp(sl.TIME_REFERENCE.TIME_REFERENCE_CURRENT)  # Get the timestamp at the time the image was
            dt = (timestamp - prevTimeStamp) * 1.0 / 10 ** 9
            if dt > 0.03:
                # Get the pose of the left eye of the camera with reference to the world frame
                zed.get_position(zed_pose, sl.REFERENCE_FRAME.REFERENCE_FRAME_WORLD)

                # Display the translation and timestamp
                py_translation = sl.Translation()
                gnd_pos = zed_pose.get_translation(py_translation).get()
                tx = round(gnd_pos[0], 3)
                ty = round(gnd_pos[1], 3)
                tz = round(gnd_pos[2], 3)
                print("Translation: Tx: {0}, Ty: {1}, Tz {2}, Timestamp: {3}\n".format(tx, ty, tz, zed_pose.timestamp))

                # Display the orientation quaternion
                py_orientation = sl.Orientation()
                quat = zed_pose.get_orientation(py_orientation).get()
                ox = round(quat[0], 3)
                oy = round(quat[1], 3)
                oz = round(quat[2], 3)
                ow = round(quat[3], 3)
                print("Orientation: Ox: {0}, Oy: {1}, Oz {2}, Ow: {3}\n".format(ox, oy, oz, ow))

                zed.retrieve_image(image, sl.VIEW.VIEW_LEFT)
                img = image.get_data()
                cv2.imwrite('data/images/' + str(timestamp) + '.png', img)

                zed.retrieve_measure(depth, sl.MEASURE.MEASURE_DEPTH)
                # Retrieve colored point cloud. Point cloud is aligned on the left image.
                zed.retrieve_measure(point_cloud, sl.MEASURE.MEASURE_XYZRGBA)
                print(point_cloud.get_data().shape)
                pc = np.reshape(point_cloud.get_data(), (1, 376, 672, 4))
                pcList.append(pc)

                cv2.imshow("ZED", img)
                key = cv2.waitKey(1)

                prevTimeStamp = timestamp
                print(dt)
                print("Image resolution: {0} x {1} || Image timestamp: {2}\n".format(image.get_width(), image.get_height(), timestamp))

                file.write('%d '
                           '%.4f %.4f %.4f '
                           '%.4f %.4f %.4f %.4f '
                           '%.4f %.4f %.4f '
                           '%.4f %.4f %.4f '
                           '%.4f %.4f %.4f '
                           '%.4f %.4f %.4f '
                           '%.4f %.4f %.4f %.4f \n' % (timestamp, tx, ty, tz, ox, oy, oz, ow,
                                                       imu.acc.x, imu.acc.y, imu.acc.z,
                                                       imu.gyr.x, imu.gyr.y, imu.gyr.z,
                                                       imu.gps.x, imu.gps.y, imu.gps.z,
                                                       imu.vel.x, imu.vel.y, imu.vel.z,
                                                       imu.quat.x, imu.quat.y, imu.quat.z, imu.quat.w))
                i = i + 1

    # Close the camera
    pc = np.concatenate(pcList, axis=0)
    np.save('pc', pc)
    zed.close()
    file.close()
    imu.close()
示例#4
0
def main():

    #if len(sys.argv) != 2:
    #    print("Please specify path to .svo file.")
    #    exit()

    #filepath = sys.argv[1]
    #print("Reading SVO file: {0}".format(filepath))

    cam = sl.Camera()
    #init = sl.InitParameters(svo_input_filename=filepath)
    init = sl.InitParameters()

    #new
    init.camera_resolution = sl.RESOLUTION.RESOLUTION_HD720  # Use HD720 video mode (default
    # Use a right-handed Y-up coordinate system
    init.coordinate_system = sl.COORDINATE_SYSTEM.COORDINATE_SYSTEM_RIGHT_HANDED_Y_UP
    init.coordinate_units = sl.UNIT.UNIT_METER  # Set units in meters

    status = cam.open(init)
    if status != sl.ERROR_CODE.SUCCESS:
        print(repr(status))
        exit()

    runtime = sl.RuntimeParameters()
    spatial = sl.SpatialMappingParameters()
    transform = sl.Transform()
    tracking = sl.TrackingParameters(transform)

    cam.enable_tracking(tracking)
    cam.enable_spatial_mapping(spatial)

    #from  Positional Tracking:
    # Track the camera position until Keyboard Interupt (ctrl-C)
    #i = 0
    zed_pose = sl.Pose()
    zed_imu = sl.IMUData()
    runtime_parameters = sl.RuntimeParameters()

    path = '/media/nvidia/SD1/translation.csv'
    position_file = open(path, 'w')
    #END from positional tracking

    pymesh = sl.Mesh()
    print("Processing...")
    #for i in range(200):
    while True:
        try:
            cam.grab(runtime)
            cam.request_mesh_async()
            # Get the pose of the left eye of the camera with reference to the world frame
            cam.get_position(zed_pose,
                             sl.REFERENCE_FRAME.REFERENCE_FRAME_WORLD)
            cam.get_imu_data(zed_imu, sl.TIME_REFERENCE.TIME_REFERENCE_IMAGE)

            # Display the translation and timestamp
            py_translation = sl.Translation()
            tx = round(zed_pose.get_translation(py_translation).get()[0], 3)
            ty = round(zed_pose.get_translation(py_translation).get()[1], 3)
            tz = round(zed_pose.get_translation(py_translation).get()[2], 3)
            #position_file.write("Translation: Tx: {0}, Ty: {1}, Tz {2}, Timestamp: {3}\n".format(tx, ty, tz, zed_pose.timestamp))
            position_file.write("{0},{1},{2},{3}\n".format(
                tx, ty, tz, zed_pose.timestamp))

        except KeyboardInterrupt:
            cam.extract_whole_mesh(pymesh)
            cam.disable_tracking()
            cam.disable_spatial_mapping()

            filter_params = sl.MeshFilterParameters()
            filter_params.set(sl.MESH_FILTER.MESH_FILTER_HIGH)
            print("Filtering params : {0}.".format(
                pymesh.filter(filter_params)))

            apply_texture = pymesh.apply_texture(
                sl.MESH_TEXTURE_FORMAT.MESH_TEXTURE_RGBA)
            print("Applying texture : {0}.".format(apply_texture))
            #print_mesh_information(pymesh, apply_texture)

            #save_filter(filter_params)
            #save_mesh(pymesh)
            cam.close()
            position_file.close()
            #save_position(path)
            save_all(filter_params, pymesh, path)
            print("\nFINISH")
            raise
示例#5
0
def main():
    # Create a Camera object
    zed = sl.Camera()

    # Create a InitParameters object and set configuration parameters
    init_params = sl.InitParameters()
    init_params.camera_resolution = sl.RESOLUTION.RESOLUTION_HD720  # Use HD720 video mode (default fps: 60)
    # Use a right-handed Y-up coordinate system
    init_params.coordinate_system = sl.COORDINATE_SYSTEM.COORDINATE_SYSTEM_RIGHT_HANDED_Y_UP
    init_params.coordinate_units = sl.UNIT.UNIT_METER  # Set units in meters

    # Open the camera
    err = zed.open(init_params)
    if err != sl.ERROR_CODE.SUCCESS:
        exit(1)

    # Enable positional tracking with default parameters
    py_transform = sl.Transform(
    )  # First create a Transform object for TrackingParameters object
    tracking_parameters = sl.TrackingParameters(init_pos=py_transform)
    err = zed.enable_tracking(tracking_parameters)
    if err != sl.ERROR_CODE.SUCCESS:
        exit(1)

    # Track the camera position during 1000 frames
    i = 0
    zed_pose = sl.Pose()
    zed_imu = sl.IMUData()
    runtime_parameters = sl.RuntimeParameters()

    while i < 1000:
        if zed.grab(runtime_parameters) == sl.ERROR_CODE.SUCCESS:
            # Get the pose of the left eye of the camera with reference to the world frame
            zed.get_position(zed_pose,
                             sl.REFERENCE_FRAME.REFERENCE_FRAME_WORLD)
            zed.get_imu_data(zed_imu, sl.TIME_REFERENCE.TIME_REFERENCE_IMAGE)

            # Display the translation and timestamp
            py_translation = sl.Translation()
            tx = round(zed_pose.get_translation(py_translation).get()[0], 3)
            ty = round(zed_pose.get_translation(py_translation).get()[1], 3)
            tz = round(zed_pose.get_translation(py_translation).get()[2], 3)
            print("Translation: Tx: {0}, Ty: {1}, Tz {2}, Timestamp: {3}\n".
                  format(tx, ty, tz, zed_pose.timestamp))

            # Display the orientation quaternion
            py_orientation = sl.Orientation()
            ox = round(zed_pose.get_orientation(py_orientation).get()[0], 3)
            oy = round(zed_pose.get_orientation(py_orientation).get()[1], 3)
            oz = round(zed_pose.get_orientation(py_orientation).get()[2], 3)
            ow = round(zed_pose.get_orientation(py_orientation).get()[3], 3)
            print("Orientation: Ox: {0}, Oy: {1}, Oz {2}, Ow: {3}\n".format(
                ox, oy, oz, ow))

            #Display the IMU acceleratoin
            acceleration = [0, 0, 0]
            zed_imu.get_linear_acceleration(acceleration)
            ax = round(acceleration[0], 3)
            ay = round(acceleration[1], 3)
            az = round(acceleration[2], 3)
            print("IMU Acceleration: Ax: {0}, Ay: {1}, Az {2}\n".format(
                ax, ay, az))

            #Display the IMU angular velocity
            a_velocity = [0, 0, 0]
            zed_imu.get_angular_velocity(a_velocity)
            vx = round(a_velocity[0], 3)
            vy = round(a_velocity[1], 3)
            vz = round(a_velocity[2], 3)
            print("IMU Angular Velocity: Vx: {0}, Vy: {1}, Vz {2}\n".format(
                vx, vy, vz))

            # Display the IMU orientation quaternion
            imu_orientation = sl.Orientation()
            ox = round(zed_imu.get_orientation(imu_orientation).get()[0], 3)
            oy = round(zed_imu.get_orientation(imu_orientation).get()[1], 3)
            oz = round(zed_imu.get_orientation(imu_orientation).get()[2], 3)
            ow = round(zed_imu.get_orientation(imu_orientation).get()[3], 3)
            print(
                "IMU Orientation: Ox: {0}, Oy: {1}, Oz {2}, Ow: {3}\n".format(
                    ox, oy, oz, ow))

            i = i + 1

    # Close the camera
    zed.close()
示例#6
0
def main():

    if len(sys.argv) != 3:
        print(
            "Please specify collection time (seconds), and path to save files")
        exit()
    max_time = sys.argv[1]
    print(max_time)
    path = sys.argv[2]
    print(path)
    #delay program 60 sec, so that user can get to start location
    print(
        "\nYou have 60 seconds to get to start location before program will begin"
    )
    time.sleep(60)
    print("\nInitializing camera")

    cam = sl.Camera()
    init = sl.InitParameters()

    # Use HD720 video mode (default Use a right-handed Y-up coordinate system)
    init.camera_resolution = sl.RESOLUTION.RESOLUTION_HD720
    init.coordinate_system = sl.COORDINATE_SYSTEM.COORDINATE_SYSTEM_RIGHT_HANDED_Y_UP
    # Set units in meters
    init.coordinate_units = sl.UNIT.UNIT_METER
    status = cam.open(init)

    if status != sl.ERROR_CODE.SUCCESS:
        print(repr(status))
        exit()

    runtime = sl.RuntimeParameters()
    spatial = sl.SpatialMappingParameters()
    transform = sl.Transform()
    tracking = sl.TrackingParameters(transform)

    cam.enable_tracking(tracking)
    cam.enable_spatial_mapping(spatial)

    #for Positional Tracking:
    zed_pose = sl.Pose()
    zed_imu = sl.IMUData()
    runtime_parameters = sl.RuntimeParameters()
    #temporary file to save translation data to, until you know the filename (given from the user)
    #path = '/media/nvidia/SD1/translation.csv'
    position_file = open((path + ".csv"), 'w+')

    pymesh = sl.Mesh()
    print("Camera setup")

    #get start time
    start_time = time.time()

    print("Starting to collect data")

    while (time.time() - start_time) < float(max_time):
        cam.grab(runtime)
        cam.request_mesh_async()
        # Get the pose of the left eye of the camera with reference to the world frame
        cam.get_position(zed_pose, sl.REFERENCE_FRAME.REFERENCE_FRAME_WORLD)
        cam.get_imu_data(zed_imu, sl.TIME_REFERENCE.TIME_REFERENCE_IMAGE)

        # Display the translation and timestamp
        py_translation = sl.Translation()
        tx = round(zed_pose.get_translation(py_translation).get()[0], 3)
        ty = round(zed_pose.get_translation(py_translation).get()[1], 3)
        tz = round(zed_pose.get_translation(py_translation).get()[2], 3)
        #position_file.write("Translation: Tx: {0}, Ty: {1}, Tz {2}, Timestamp: {3}\n".format(tx, ty, tz, zed_pose.timestamp))
        position_file.write("{0},{1},{2},{3}\n".format(tx, ty, tz,
                                                       zed_pose.timestamp))

    print(
        "Finished collecting data, extracting mesh, saving and shutting down camera"
    )
    cam.extract_whole_mesh(pymesh)
    cam.disable_tracking()
    cam.disable_spatial_mapping()

    filter_params = sl.MeshFilterParameters()
    filter_params.set(sl.MESH_FILTER.MESH_FILTER_HIGH)
    print("Filtering params : {0}.".format(pymesh.filter(filter_params)))

    apply_texture = pymesh.apply_texture(
        sl.MESH_TEXTURE_FORMAT.MESH_TEXTURE_RGBA)
    print("Applying texture : {0}.".format(apply_texture))
    #print_mesh_information(pymesh, apply_texture)

    #save_filter(filter_params)
    #save_mesh(pymesh)
    cam.close()
    position_file.close()
    #save_position(path)
    save_all_path_arg(filter_params, pymesh, path)
    print("\nFINISH")