2024-05-21 02:17:46 +00:00
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"""
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Needs to be refactored to DRY, but works for now
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"""
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import numpy as np
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import pytest
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from pathlib import Path
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import cv2
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from pydantic import BaseModel, ValidationError
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from numpydantic import NDArray, Shape
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from numpydantic import dtype as dt
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from numpydantic.interface.video import VideoProxy
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2024-05-21 04:21:45 +00:00
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@pytest.mark.parametrize("input_type", [str, Path])
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2024-05-21 04:20:56 +00:00
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def test_video_validation(avi_video, input_type):
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2024-05-21 02:17:46 +00:00
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"""Color videos should validate for normal uint8 shape specs"""
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shape = (100, 50)
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vid = avi_video(shape=shape, is_color=True)
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shape_str = f"*, {shape[0]}, {shape[1]}, 3"
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class MyModel(BaseModel):
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array: NDArray[Shape[shape_str], dt.UInt8]
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# should correctly validate :)
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2024-05-21 04:20:56 +00:00
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instance = MyModel(array=input_type(vid))
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2024-05-21 02:17:46 +00:00
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assert isinstance(instance.array, VideoProxy)
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def test_video_from_videocapture(avi_video):
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"""Should be able to pass an opened videocapture object"""
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shape = (100, 50)
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vid = avi_video(shape=shape, is_color=True)
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shape_str = f"*, {shape[0]}, {shape[1]}, 3"
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class MyModel(BaseModel):
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array: NDArray[Shape[shape_str], dt.UInt8]
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# should still correctly validate!
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opened_vid = cv2.VideoCapture(str(vid))
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try:
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instance = MyModel(array=opened_vid)
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assert isinstance(instance.array, VideoProxy)
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finally:
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opened_vid.release()
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def test_video_wrong_shape(avi_video):
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shape = (100, 50)
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# generate video with purposely wrong shape
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vid = avi_video(shape=(shape[0] + 10, shape[1] + 10), is_color=True)
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shape_str = f"*, {shape[0]}, {shape[1]}, 3"
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class MyModel(BaseModel):
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array: NDArray[Shape[shape_str], dt.UInt8]
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# should correctly validate :)
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with pytest.raises(ValidationError):
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instance = MyModel(array=vid)
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def test_video_getitem(avi_video):
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"""
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Should be able to get individual frames and slices as if it were a normal array
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"""
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shape = (100, 50)
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vid = avi_video(shape=shape, frames=10, is_color=True)
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shape_str = f"*, {shape[0]}, {shape[1]}, 3"
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class MyModel(BaseModel):
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array: NDArray[Shape[shape_str], dt.UInt8]
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instance = MyModel(array=vid)
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fifth_frame = instance.array[5]
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# the first frame should have 1's in the 1,1 position
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assert (fifth_frame[5, 5, :] == [5, 5, 5]).all()
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# and nothing in the 6th position
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assert (fifth_frame[6, 6, :] == [0, 0, 0]).all()
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# slicing should also work as if it were just a numpy array
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single_slice = instance.array[3, 0:10, 0:5]
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assert single_slice[3, 3, 0] == 3
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assert single_slice[4, 4, 0] == 0
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assert single_slice.shape == (10, 5, 3)
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# also get a range of frames
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2024-05-21 04:16:16 +00:00
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# range without further slices
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range_slice = instance.array[3:5]
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assert range_slice.shape == (2, 100, 50, 3)
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assert range_slice[0, 3, 3, 0] == 3
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assert range_slice[0, 4, 4, 0] == 0
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2024-05-21 02:17:46 +00:00
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# full range
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range_slice = instance.array[3:5, 0:10, 0:5]
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assert range_slice.shape == (2, 10, 5, 3)
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assert range_slice[0, 3, 3, 0] == 3
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assert range_slice[0, 4, 4, 0] == 0
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# starting range
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range_slice = instance.array[6:, 0:10, 0:10]
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assert range_slice.shape == (4, 10, 10, 3)
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assert range_slice[-1, 9, 9, 0] == 9
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assert range_slice[-2, 9, 9, 0] == 0
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# ending range
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range_slice = instance.array[:3, 0:5, 0:5]
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assert range_slice.shape == (3, 5, 5, 3)
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# stepped range
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range_slice = instance.array[0:5:2, 0:6, 0:6]
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# second slice should be the second frame (instead of the first)
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assert range_slice.shape == (3, 6, 6, 3)
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assert range_slice[1, 2, 2, 0] == 2
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assert range_slice[1, 3, 3, 0] == 0
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# and the third should be the fourth (instead of the second)
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assert range_slice[2, 4, 4, 0] == 4
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assert range_slice[2, 5, 5, 0] == 0
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with pytest.raises(NotImplementedError):
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# shouldn't be allowed to set
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instance.array[5] = 10
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def test_video_attrs(avi_video):
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"""Should be able to access opencv properties"""
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shape = (100, 50)
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vid = avi_video(shape=shape, is_color=True)
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shape_str = f"*, {shape[0]}, {shape[1]}, 3"
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class MyModel(BaseModel):
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array: NDArray[Shape[shape_str], dt.UInt8]
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instance = MyModel(array=vid)
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instance.array.set(cv2.CAP_PROP_POS_FRAMES, 5)
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assert int(instance.array.get(cv2.CAP_PROP_POS_FRAMES)) == 5
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def test_video_close(avi_video):
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"""Should close and reopen video file if needed"""
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shape = (100, 50)
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vid = avi_video(shape=shape, is_color=True)
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shape_str = f"*, {shape[0]}, {shape[1]}, 3"
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class MyModel(BaseModel):
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array: NDArray[Shape[shape_str], dt.UInt8]
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instance = MyModel(array=vid)
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assert isinstance(instance.array.video, cv2.VideoCapture)
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# closes releases and removed reference
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instance.array.close()
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assert instance.array._video is None
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# reopen
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assert isinstance(instance.array.video, cv2.VideoCapture)
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