mirror of
https://github.com/LmeSzinc/StarRailCopilot.git
synced 2024-11-27 02:27:12 +00:00
194 lines
7.3 KiB
Python
194 lines
7.3 KiB
Python
import os
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from functools import cached_property
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import cv2
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import numpy as np
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from module.base.utils import (
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color_similarity_2d,
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crop,
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get_bbox,
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get_bbox_reversed,
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image_paste,
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image_size
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)
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from module.config.utils import iter_folder
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from tasks.map.minimap.utils import map_image_preprocess, rotate_bound
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from tasks.map.resource.const import ResourceConst
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def register_output(output):
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def register_wrapper(func):
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def wrapper(self, *args, **kwargs):
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image = func(self, *args, **kwargs)
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self.DICT_GENERATE[output] = image
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return image
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return wrapper
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return register_wrapper
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class ResourceGenerator(ResourceConst):
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DICT_GENERATE = {}
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"""
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Input images
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"""
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@cached_property
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@register_output('./srcmap/direction/Arrow.png')
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def Arrow(self):
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return self.load_image('./resources/direction/Arrow.png')
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"""
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Output images
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"""
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@cached_property
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def _ArrowRorateDict(self):
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"""
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Returns:
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"""
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image = self.Arrow
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arrows = {}
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for degree in range(0, 360):
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rotated = rotate_bound(image, degree)
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rotated = crop(rotated, area=get_bbox(rotated, threshold=15))
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# rotated = cv2.resize(rotated, None, fx=self.ROTATE, fy=self.ROTATE, interpolation=cv2.INTER_NEAREST)
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rotated = color_similarity_2d(rotated, color=self.DIRECTION_ARROW_COLOR)
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arrows[degree] = rotated
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return arrows
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@cached_property
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@register_output('./srcmap/direction/ArrowRotateMap.png')
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def ArrowRotateMap(self):
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radius = self.DIRECTION_RADIUS
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image = np.zeros((10 * radius * 2, 9 * radius * 2), dtype=np.uint8)
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for degree in range(0, 360, 5):
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y, x = divmod(degree / 5, 8)
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rotated = self._ArrowRorateDict.get(degree)
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point = (radius + int(x) * radius * 2, radius + int(y) * radius * 2)
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# print(degree, y, x, point[0],point[0] + radius, point[1],point[1] + rotated.shape[1])
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image_paste(rotated, image, origin=point)
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image = cv2.resize(image, None,
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fx=self.DIRECTION_SEARCH_SCALE, fy=self.DIRECTION_SEARCH_SCALE,
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interpolation=cv2.INTER_NEAREST)
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return image
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@cached_property
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@register_output('./srcmap/direction/ArrowRotateMapAll.png')
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def ArrowRotateMapAll(self):
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radius = self.DIRECTION_RADIUS
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image = np.zeros((136 * radius * 2, 9 * radius * 2), dtype=np.uint8)
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for degree in range(360 * 3):
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y, x = divmod(degree, 8)
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rotated = self._ArrowRorateDict.get(degree % 360)
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point = (radius + int(x) * radius * 2, radius + int(y) * radius * 2)
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# print(degree, y, x, point)
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image_paste(rotated, image, origin=point)
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image = cv2.resize(image, None,
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fx=self.DIRECTION_SEARCH_SCALE, fy=self.DIRECTION_SEARCH_SCALE,
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interpolation=cv2.INTER_NEAREST)
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return image
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@cached_property
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def _map_background(self):
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image = self.load_image('./resources/position/background.png')
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height, width, channel = image.shape
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grid = (10, 10)
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background = np.zeros((height * grid[0], width * grid[1], channel), dtype=np.uint8)
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for y in range(grid[0]):
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for x in range(grid[1]):
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image_paste(image, background, origin=(width * x, height * y))
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background = background.copy()
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return background
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def _map_image_standardize(self, image, padding=0):
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"""
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Remove existing paddings
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Map stroke color is about 127~134, background is 199~208
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"""
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image = crop(image, get_bbox_reversed(image, threshold=160))
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if padding > 0:
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size = np.array((padding, padding)) * 2 + image_size(image)
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background = crop(self._map_background, area=(0, 0, *size))
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image_paste(image, background, origin=(padding, padding))
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return background
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else:
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return image
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def _map_image_extract_feat(self, image):
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"""
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Extract a feature image for positioning.
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"""
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image = self._map_image_standardize(image, padding=ResourceConst.POSITION_FEATURE_PAD)
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image = map_image_preprocess(image)
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scale = self.POSITION_SEARCH_SCALE
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image = cv2.resize(image, None, fx=scale, fy=scale, interpolation=cv2.INTER_AREA)
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return image
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def _map_image_extract_area(self, image):
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"""
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Extract accessible area on map.
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*.area.png has `area` in red, extract into a binary image.
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"""
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# To the same size as feature map
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image = self._map_image_standardize(image, padding=ResourceConst.POSITION_FEATURE_PAD)
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image = color_similarity_2d(image, color=(255, 0, 0))
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scale = self.POSITION_SEARCH_SCALE
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image = cv2.resize(image, None, fx=scale, fy=scale, interpolation=cv2.INTER_NEAREST)
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_, image = cv2.threshold(image, 180, 255, cv2.THRESH_BINARY)
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# Make the area a little bit larger
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kernel = self.POSITION_AREA_DILATE
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kernel = cv2.getStructuringElement(cv2.MORPH_RECT, (kernel, kernel))
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image = cv2.dilate(image, kernel)
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# Black area on white background
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# image = cv2.subtract(255, image)
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return image
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@cached_property
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def GernerateMapFloors(self):
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for world in iter_folder(self.filepath('./resources/position'), is_dir=True):
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world_name = os.path.basename(world)
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for floor in iter_folder(world, ext='.png'):
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print(f'Read image: {floor}')
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image = self.load_image(floor)
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floor_name = os.path.basename(floor)[:-4]
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if floor_name.endswith('.area'):
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# ./srcmap/position/{world_name}/xxx.area.png
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output = f'./srcmap/position/{world_name}/{floor_name}.png'
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register_output(output)(ResourceGenerator._map_image_extract_area)(self, image)
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else:
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output = f'./srcmap/position/{world_name}/{floor_name}.png'
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register_output(output)(ResourceGenerator._map_image_standardize)(self, image)
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output = f'./srcmap/position/{world_name}/{floor_name}.feat.png'
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register_output(output)(ResourceGenerator._map_image_extract_feat)(self, image)
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# Floor images are cached already, no need to return a real value
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return True
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def generate_output(self):
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os.makedirs(self.filepath('./srcmap'), exist_ok=True)
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# Calculate all resources
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for method in self.__dir__():
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if not method.startswith('__') and not method.islower():
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_ = getattr(self, method)
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# Create output folder
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folders = set([os.path.dirname(file) for file in self.DICT_GENERATE.keys()])
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for output in folders:
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output = self.filepath(output)
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os.makedirs(output, exist_ok=True)
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# Save image
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for output, image in self.DICT_GENERATE.items():
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self.save_image(image, file=output)
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if __name__ == '__main__':
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os.chdir(os.path.join(os.path.dirname(__file__), '../../../'))
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ResourceConst.SRCMAP = '../srcmap'
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ResourceGenerator().generate_output()
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