fix old variable name
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@ -211,14 +211,14 @@ class Arc(Shape):
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#t0 = ellipeinc(a0 - pi / 2, m)
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#t0 = ellipeinc(a0 - pi / 2, m)
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#perimeter2 = r0 * (t1 - t0)
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#perimeter2 = r0 * (t1 - t0)
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def get_arclens(n_pts: int, a0: float, a1: float) -> NDArray[numpy.float64]:
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def get_arclens(n_pts: int, a0: float, a1: float) -> tuple[NDArray[numpy.float64], NDArray[numpy.float64]]:
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""" Get `n_pts` arclengths """
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""" Get `n_pts` arclengths """
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t, dt = numpy.linspace(a0, a1, n_pts, retstep=True) # NOTE: could probably use an adaptive number of points
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t, dt = numpy.linspace(a0, a1, n_pts, retstep=True) # NOTE: could probably use an adaptive number of points
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r0sin = r0 * numpy.sin(t)
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r0sin = r0 * numpy.sin(t)
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r1cos = r1 * numpy.cos(t)
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r1cos = r1 * numpy.cos(t)
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arc_dl = numpy.sqrt(r0sin * r0sin + r1cos * r1cos)
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arc_dl = numpy.sqrt(r0sin * r0sin + r1cos * r1cos)
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#arc_lengths = numpy.diff(t) * (v[1:] + v[:-1]) / 2
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#arc_lengths = numpy.diff(t) * (arc_dl[1:] + arc_dl[:-1]) / 2
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arc_lengths = (v[1:] + v[:-1]) * dt / 2
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arc_lengths = (arc_dl[1:] + arc_dl[:-1]) * dt / 2
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return arc_lengths, t
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return arc_lengths, t
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if num_vertices is not None:
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if num_vertices is not None:
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@ -227,6 +227,7 @@ class Arc(Shape):
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perimeter_outer = get_arclens(n_pts, *a_ranges[1])[0].sum()
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perimeter_outer = get_arclens(n_pts, *a_ranges[1])[0].sum()
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implied_arclen = (perimeter_outer + perimeter_inner + self.width * 2) / num_vertices
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implied_arclen = (perimeter_outer + perimeter_inner + self.width * 2) / num_vertices
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max_arclen = min(implied_arclen, max_arclen if max_arclen is not None else numpy.inf)
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max_arclen = min(implied_arclen, max_arclen if max_arclen is not None else numpy.inf)
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assert max_arclen is not None
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def get_thetas(inner: bool) -> NDArray[numpy.float64]:
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def get_thetas(inner: bool) -> NDArray[numpy.float64]:
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""" Figure out the parameter values at which we should place vertices to meet the arclength constraint"""
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""" Figure out the parameter values at which we should place vertices to meet the arclength constraint"""
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