Chapter 13 reduction
This commit is contained in:
@@ -16,62 +16,3 @@ boundary_lines = [
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width = 1500
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height = 1500
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grid_cell_size = 50
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overscan = 10 # 10 each way
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def get_distance_to_segment(x, y, segment):
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"""Return the distance from the point to the segment.
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Segment -> ((x1, y1), (x2, y2))
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All segments are horizontal or vertical.
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"""
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x1, y1 = segment[0]
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x2, y2 = segment[1]
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# if the segment is horizontal, the point will be closest to the y value of the segment
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if y1 == y2 and x >= min(x1, x2) and x <= max(x1, x2):
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return abs(y - y1)
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# if the segment is vertical, the point will be closest to the x value of the segment
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if x1 == x2 and y >= min(y1, y2) and y <= max(y1, y2):
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return abs(x - x1)
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# the point will be closest to one of the end points
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return np.sqrt(
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min(
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(x - x1) ** 2 + (y - y1) ** 2,
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(x - x2) ** 2 + (y - y2) ** 2
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)
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)
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def get_distance_likelihood(x, y):
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"""Return the distance from the point to the nearest segment as a decay function."""
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min_distance = None
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for segment in boundary_lines:
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distance = get_distance_to_segment(x, y, segment)
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if min_distance is None or distance < min_distance:
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min_distance = distance
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return 1.0 / (1 + min_distance/250) ** 2
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grid_cell_size = 50
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overscan = 10 # 10 each way
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# beam endpoint model
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def make_distance_grid():
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"""Take the boundary lines. With and overscan of 10 cells, and grid cell size of 5cm (50mm),
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make a grid of the distance to the nearest boundary line.
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"""
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grid = np.zeros((
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width // grid_cell_size + 2 * overscan,
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height // grid_cell_size + 2 * overscan
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), dtype=np.float)
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for x in range(grid.shape[0]):
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column_x = x * grid_cell_size - (overscan * grid_cell_size)
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for y in range(grid.shape[1]):
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row_y = y * grid_cell_size - (overscan * grid_cell_size)
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grid[x, y] = get_distance_likelihood(
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column_x, row_y
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)
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return grid
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distance_grid = make_distance_grid()
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@@ -15,63 +15,3 @@ boundary_lines = [
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width = 1500
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height = 1500
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grid_cell_size = 50
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overscan = 10 # 10 each way
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def get_distance_to_segment(x, y, segment):
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"""Return the distance from the point to the segment.
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Segment -> ((x1, y1), (x2, y2))
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All segments are horizontal or vertical.
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"""
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x1, y1 = segment[0]
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x2, y2 = segment[1]
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# if the segment is horizontal, the point will be closest to the y value of the segment
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if y1 == y2 and x >= min(x1, x2) and x <= max(x1, x2):
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return abs(y - y1)
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# if the segment is vertical, the point will be closest to the x value of the segment
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if x1 == x2 and y >= min(y1, y2) and y <= max(y1, y2):
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return abs(x - x1)
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# the point will be closest to one of the end points
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return np.sqrt(
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min(
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(x - x1) ** 2 + (y - y1) ** 2,
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(x - x2) ** 2 + (y - y2) ** 2
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)
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)
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def get_distance_likelihood(x, y):
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"""Return the distance from the point to the nearest segment as a decay function."""
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min_distance = None
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for segment in boundary_lines:
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distance = get_distance_to_segment(x, y, segment)
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if min_distance is None or distance < min_distance:
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min_distance = distance
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return 1.0 / (1 + min_distance/250) ** 2
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grid_cell_size = 50
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overscan = 10 # 10 each way
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# beam endpoint model
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def make_distance_grid():
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"""Take the boundary lines. With and overscan of 10 cells, and grid cell size of 5cm (50mm),
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make a grid of the distance to the nearest boundary line.
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"""
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grid = np.zeros((
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width // grid_cell_size + 2 * overscan,
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height // grid_cell_size + 2 * overscan
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), dtype=np.float)
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for x in range(grid.shape[0]):
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column_x = x * grid_cell_size - (overscan * grid_cell_size)
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for y in range(grid.shape[1]):
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row_y = y * grid_cell_size - (overscan * grid_cell_size)
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grid[x, y] = get_distance_likelihood(
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column_x, row_y
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)
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return grid
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distance_grid = make_distance_grid()
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@@ -15,63 +15,3 @@ boundary_lines = [
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width = 1500
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height = 1500
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grid_cell_size = 50
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overscan = 10 # 10 each way
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def get_distance_to_segment(x, y, segment):
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"""Return the distance from the point to the segment.
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Segment -> ((x1, y1), (x2, y2))
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All segments are horizontal or vertical.
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"""
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x1, y1 = segment[0]
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x2, y2 = segment[1]
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# if the segment is horizontal, the point will be closest to the y value of the segment
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if y1 == y2 and x >= min(x1, x2) and x <= max(x1, x2):
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return abs(y - y1)
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# if the segment is vertical, the point will be closest to the x value of the segment
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if x1 == x2 and y >= min(y1, y2) and y <= max(y1, y2):
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return abs(x - x1)
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# the point will be closest to one of the end points
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return np.sqrt(
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min(
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(x - x1) ** 2 + (y - y1) ** 2,
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(x - x2) ** 2 + (y - y2) ** 2
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)
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)
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def get_distance_likelihood(x, y):
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"""Return the distance from the point to the nearest segment as a decay function."""
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min_distance = None
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for segment in boundary_lines:
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distance = get_distance_to_segment(x, y, segment)
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if min_distance is None or distance < min_distance:
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min_distance = distance
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return 1.0 / (1 + min_distance/250) ** 2
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grid_cell_size = 50
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overscan = 10 # 10 each way
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# beam endpoint model
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def make_distance_grid():
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"""Take the boundary lines. With and overscan of 10 cells, and grid cell size of 5cm (50mm),
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make a grid of the distance to the nearest boundary line.
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"""
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grid = np.zeros((
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width // grid_cell_size + 2 * overscan,
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height // grid_cell_size + 2 * overscan
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), dtype=np.float)
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for x in range(grid.shape[0]):
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column_x = x * grid_cell_size - (overscan * grid_cell_size)
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for y in range(grid.shape[1]):
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row_y = y * grid_cell_size - (overscan * grid_cell_size)
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grid[x, y] = get_distance_likelihood(
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column_x, row_y
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)
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return grid
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distance_grid = make_distance_grid()
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@@ -15,63 +15,3 @@ boundary_lines = [
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width = 1500
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height = 1500
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grid_cell_size = 50
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overscan = 10 # 10 each way
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def get_distance_to_segment(x, y, segment):
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"""Return the distance from the point to the segment.
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Segment -> ((x1, y1), (x2, y2))
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All segments are horizontal or vertical.
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"""
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x1, y1 = segment[0]
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x2, y2 = segment[1]
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# if the segment is horizontal, the point will be closest to the y value of the segment
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if y1 == y2 and x >= min(x1, x2) and x <= max(x1, x2):
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return abs(y - y1)
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# if the segment is vertical, the point will be closest to the x value of the segment
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if x1 == x2 and y >= min(y1, y2) and y <= max(y1, y2):
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return abs(x - x1)
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# the point will be closest to one of the end points
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return np.sqrt(
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min(
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(x - x1) ** 2 + (y - y1) ** 2,
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(x - x2) ** 2 + (y - y2) ** 2
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)
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)
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def get_distance_likelihood(x, y):
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"""Return the distance from the point to the nearest segment as a decay function."""
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min_distance = None
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for segment in boundary_lines:
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distance = get_distance_to_segment(x, y, segment)
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if min_distance is None or distance < min_distance:
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min_distance = distance
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return 1.0 / (1 + min_distance/250) ** 2
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grid_cell_size = 50
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overscan = 10 # 10 each way
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# beam endpoint model
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def make_distance_grid():
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"""Take the boundary lines. With and overscan of 10 cells, and grid cell size of 5cm (50mm),
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make a grid of the distance to the nearest boundary line.
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"""
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grid = np.zeros((
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width // grid_cell_size + 2 * overscan,
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height // grid_cell_size + 2 * overscan
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), dtype=np.float)
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for x in range(grid.shape[0]):
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column_x = x * grid_cell_size - (overscan * grid_cell_size)
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for y in range(grid.shape[1]):
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row_y = y * grid_cell_size - (overscan * grid_cell_size)
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grid[x, y] = get_distance_likelihood(
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column_x, row_y
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)
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return grid
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distance_grid = make_distance_grid()
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@@ -15,63 +15,3 @@ boundary_lines = [
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width = 1500
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height = 1500
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grid_cell_size = 50
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overscan = 10 # 10 each way
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def get_distance_to_segment(x, y, segment):
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"""Return the distance from the point to the segment.
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Segment -> ((x1, y1), (x2, y2))
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All segments are horizontal or vertical.
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"""
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x1, y1 = segment[0]
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x2, y2 = segment[1]
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# if the segment is horizontal, the point will be closest to the y value of the segment
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if y1 == y2 and x >= min(x1, x2) and x <= max(x1, x2):
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return abs(y - y1)
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# if the segment is vertical, the point will be closest to the x value of the segment
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if x1 == x2 and y >= min(y1, y2) and y <= max(y1, y2):
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return abs(x - x1)
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# the point will be closest to one of the end points
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return np.sqrt(
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min(
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(x - x1) ** 2 + (y - y1) ** 2,
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(x - x2) ** 2 + (y - y2) ** 2
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)
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)
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def get_distance_likelihood(x, y):
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"""Return the distance from the point to the nearest segment as a decay function."""
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min_distance = None
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for segment in boundary_lines:
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distance = get_distance_to_segment(x, y, segment)
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if min_distance is None or distance < min_distance:
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min_distance = distance
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return 1.0 / (1 + min_distance/250) ** 2
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grid_cell_size = 50
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overscan = 10 # 10 each way
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# beam endpoint model
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def make_distance_grid():
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"""Take the boundary lines. With and overscan of 10 cells, and grid cell size of 5cm (50mm),
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make a grid of the distance to the nearest boundary line.
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"""
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grid = np.zeros((
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width // grid_cell_size + 2 * overscan,
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height // grid_cell_size + 2 * overscan
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), dtype=np.float)
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for x in range(grid.shape[0]):
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column_x = x * grid_cell_size - (overscan * grid_cell_size)
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for y in range(grid.shape[1]):
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row_y = y * grid_cell_size - (overscan * grid_cell_size)
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grid[x, y] = get_distance_likelihood(
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column_x, row_y
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)
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return grid
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distance_grid = make_distance_grid()
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@@ -28,62 +28,3 @@ def contains(x, y):
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if x > 1000 and y < 500:
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return False
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return True
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grid_cell_size = 50
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overscan = 10 # 10 each way
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def get_distance_to_segment(x, y, segment):
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"""Return the distance from the point to the segment.
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Segment -> ((x1, y1), (x2, y2))
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All segments are horizontal or vertical.
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"""
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x1, y1 = segment[0]
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x2, y2 = segment[1]
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# if the segment is horizontal, the point will be closest to the y value of the segment
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if y1 == y2 and x >= min(x1, x2) and x <= max(x1, x2):
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return abs(y - y1)
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# if the segment is vertical, the point will be closest to the x value of the segment
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if x1 == x2 and y >= min(y1, y2) and y <= max(y1, y2):
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return abs(x - x1)
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# the point will be closest to one of the end points
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return np.sqrt(
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min(
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(x - x1) ** 2 + (y - y1) ** 2,
|
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(x - x2) ** 2 + (y - y2) ** 2
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)
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)
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def get_distance_likelihood(x, y):
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"""Return the distance from the point to the nearest segment as a decay function."""
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min_distance = None
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for segment in boundary_lines:
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distance = get_distance_to_segment(x, y, segment)
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if min_distance is None or distance < min_distance:
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min_distance = distance
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return 1.0 / (1 + min_distance/250) ** 2
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grid_cell_size = 50
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overscan = 10 # 10 each way
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|
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# beam endpoint model
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def make_distance_grid():
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"""Take the boundary lines. With and overscan of 10 cells, and grid cell size of 5cm (50mm),
|
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make a grid of the distance to the nearest boundary line.
|
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"""
|
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grid = np.zeros((
|
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width // grid_cell_size + 2 * overscan,
|
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height // grid_cell_size + 2 * overscan
|
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), dtype=np.float)
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for x in range(grid.shape[0]):
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column_x = x * grid_cell_size - (overscan * grid_cell_size)
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for y in range(grid.shape[1]):
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row_y = y * grid_cell_size - (overscan * grid_cell_size)
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grid[x, y] = get_distance_likelihood(
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column_x, row_y
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)
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return grid
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distance_grid = make_distance_grid()
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@@ -16,6 +16,19 @@ boundary_lines = [
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width = 1500
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height = 1500
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def contains(x, y):
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"""Return True if the point is inside the arena.
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if the point is inside the rectangle, but not inside the cutout, it's inside the arena.
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"""
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# is it inside the rectangle?
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if x < 0 or x > width \
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or y < 0 or y > height:
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return False
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# is it inside the cutout?
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if x > 1000 and y < 500:
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return False
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return True
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grid_cell_size = 50
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overscan = 10 # 10 each way
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@@ -53,9 +66,6 @@ def get_distance_likelihood(x, y):
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return 1.0 / (1 + min_distance/250) ** 2
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|
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grid_cell_size = 50
|
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overscan = 10 # 10 each way
|
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|
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# beam endpoint model
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def make_distance_grid():
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"""Take the boundary lines. With and overscan of 10 cells, and grid cell size of 5cm (50mm),
|
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|
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@@ -29,6 +29,7 @@ def contains(x, y):
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return False
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return True
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grid_cell_size = 50
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overscan = 10 # 10 each way
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@@ -65,9 +66,6 @@ def get_distance_likelihood(x, y):
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return 1.0 / (1 + min_distance/250) ** 2
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grid_cell_size = 50
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overscan = 10 # 10 each way
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|
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# beam endpoint model
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def make_distance_grid():
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"""Take the boundary lines. With and overscan of 10 cells, and grid cell size of 5cm (50mm),
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@@ -166,27 +166,25 @@ class Simulation:
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def observe_distance_sensors(self, weights):
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# modify the current weights based on the distance sensors
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distance_sensor_left = np.zeros(
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(self.poses.shape[0], 2), dtype=np.float)
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distance_sensor_right = np.zeros(
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(self.poses.shape[0], 2), dtype=np.float)
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left_sensor = np.zeros((self.poses.shape[0], 2), dtype=np.float)
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right_sensor = np.zeros((self.poses.shape[0], 2), dtype=np.float)
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# left sensor
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poses_left_90 = np.radians(self.poses[:, 2] + 90)
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distance_sensor_left[:, 0] = self.poses[:, 0] + np.cos(poses_left_90) * robot.distance_sensor_side_mm
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distance_sensor_left[:, 1] = self.poses[:, 1] + np.sin(poses_left_90) * robot.distance_sensor_side_mm
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distance_sensor_left[:, 0] += np.cos(self.poses[:, 2]) * (self.distance_sensors.left + robot.distance_sensor_forward_mm)
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distance_sensor_left[:, 1] += np.sin(self.poses[:, 2]) * (self.distance_sensors.left + robot.distance_sensor_forward_mm)
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left_sensor[:, 0] = self.poses[:, 0] + np.cos(poses_left_90) * robot.dist_side_mm
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left_sensor[:, 1] = self.poses[:, 1] + np.sin(poses_left_90) * robot.dist_side_mm
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left_sensor[:, 0] += np.cos(self.poses[:, 2]) * (self.distance_sensors.left + robot.dist_forward_mm)
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left_sensor[:, 1] += np.sin(self.poses[:, 2]) * (self.distance_sensors.left + robot.dist_forward_mm)
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# right sensor
|
||||
poses_right_90 = np.radians(self.poses[:, 2] - 90)
|
||||
distance_sensor_right[:, 0] = self.poses[:, 0] + np.cos(poses_right_90) * robot.distance_sensor_side_mm
|
||||
distance_sensor_right[:, 1] = self.poses[:, 1] + np.sin(poses_right_90) * robot.distance_sensor_side_mm
|
||||
distance_sensor_right[:, 0] += np.cos(self.poses[:, 2]) * (self.distance_sensors.right + robot.distance_sensor_forward_mm)
|
||||
distance_sensor_right[:, 1] += np.sin(self.poses[:, 2]) * (self.distance_sensors.right + robot.distance_sensor_forward_mm)
|
||||
right_sensor[:, 0] = self.poses[:, 0] + np.cos(poses_right_90) * robot.dist_side_mm
|
||||
right_sensor[:, 1] = self.poses[:, 1] + np.sin(poses_right_90) * robot.dist_side_mm
|
||||
right_sensor[:, 0] += np.cos(self.poses[:, 2]) * (self.distance_sensors.right + robot.dist_forward_mm)
|
||||
right_sensor[:, 1] += np.sin(self.poses[:, 2]) * (self.distance_sensors.right + robot.dist_forward_mm)
|
||||
# Look up the distance in the arena
|
||||
for index in range(self.poses.shape[0]):
|
||||
sensor_weight = arena.get_distance_grid_at_point(distance_sensor_left[index,0], distance_sensor_left[index,1])
|
||||
sensor_weight += arena.get_distance_grid_at_point(distance_sensor_right[index,0], distance_sensor_right[index,1])
|
||||
sensor_weight = arena.get_distance_grid_at_point(left_sensor[index,0], left_sensor[index,1])
|
||||
sensor_weight += arena.get_distance_grid_at_point(right_sensor[index,0], right_sensor[index,1])
|
||||
weights[index] *= sensor_weight
|
||||
return weights
|
||||
|
||||
|
||||
@@ -17,8 +17,8 @@ ticks_to_mm = wheel_circumference_mm / ticks_per_revolution
|
||||
ticks_to_m = ticks_to_mm / 1000
|
||||
m_to_ticks = 1 / ticks_to_m
|
||||
wheelbase_mm = 170
|
||||
distance_sensor_side_mm = 37 # approx mm
|
||||
distance_sensor_forward_mm = 66 # approx mm
|
||||
dist_side_mm = 37 # approx mm
|
||||
dist_forward_mm = 66 # approx mm
|
||||
|
||||
motor_A2 = pwmio.PWMOut(board.GP17, frequency=100)
|
||||
motor_A1 = pwmio.PWMOut(board.GP16, frequency=100)
|
||||
|
||||
Reference in New Issue
Block a user