267 lines
8.7 KiB
Python
Executable File
267 lines
8.7 KiB
Python
Executable File
#!/usr/bin/env python3
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import itertools
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import numpy
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import stl.mesh
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import trimesh
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import meshutil
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import meshgen
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# I should be moving some of these things out into more of a
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# standard library than an 'examples' script
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# The first "working" example I had of the recursive 3D geometry
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# that actually kept the manifold throughout:
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def ram_horn():
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b0 = numpy.array([
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[0, 0, 0],
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[1, 0, 0],
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[1, 1, 0],
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[0, 1, 0],
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], dtype=numpy.float64) - [0.5, 0.5, 0]
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xf0_to_1 = meshutil.Transform().translate(0,0,1)
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b1 = xf0_to_1.apply_to(b0)
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meshes = []
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meshes.append(meshutil.join_boundary_simple(b0, b1))
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meshes.append(meshutil.close_boundary_simple(b0))
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for i in range(4):
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# Opening boundary:
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b = b1
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xf = meshutil.Transform() \
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.translate(0,0,-1) \
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.scale(0.5) \
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.translate(0.25,0.25,1) \
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.rotate([0,0,1], i*numpy.pi/2)
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for layer in range(128):
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b_sub0 = xf.apply_to(b)
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incr = meshutil.Transform() \
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.scale(0.9) \
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.rotate([-1,0,1], 0.3) \
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.translate(0,0,0.8)
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b_sub1 = incr.compose(xf).apply_to(b)
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m = meshutil.join_boundary_simple(b_sub0, b_sub1)
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meshes.append(m)
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xf = incr.compose(xf)
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# Close final boundary:
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meshes.append(meshutil.close_boundary_simple(b_sub1[::-1,:]))
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# ::-1 is to reverse the boundary's order to fix winding order.
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# Not sure of the "right" way to fix winding order here.
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# The boundary vertices go in an identical order... it's just
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# that clockwise/counter-clockwise flip.
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# I keep confusing the 'incremental' transform with the
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# transform to get b_open in the first place
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# I don't need to subdivide *geometry*.
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# I need to subdivide *space* and then put geometry in it.
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mesh = meshutil.FaceVertexMesh.concat_many(meshes)
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return mesh
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# Rewriting the above in terms of generators & iterated transforms
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def ram_horn_gen(b, xf):
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while True:
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b1 = xf.apply_to(b)
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yield [b1]
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incr = meshutil.Transform() \
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.scale(0.9) \
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.rotate([-1,0,1], 0.3) \
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.translate(0,0,0.8)
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xf = incr.compose(xf)
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def ram_horn2():
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b0 = numpy.array([
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[0, 0, 0],
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[1, 0, 0],
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[1, 1, 0],
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[0, 1, 0],
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], dtype=numpy.float64) - [0.5, 0.5, 0]
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xf0_to_1 = meshutil.Transform().translate(0,0,1)
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b1 = xf0_to_1.apply_to(b0)
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meshes = []
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meshes.append(meshutil.join_boundary_simple(b0, b1))
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meshes.append(meshutil.close_boundary_simple(b0))
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for i in range(4):
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# Opening boundary:
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xf = meshutil.Transform() \
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.translate(0,0,-1) \
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.scale(0.5) \
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.translate(0.25,0.25,1) \
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.rotate([0,0,1], i*numpy.pi/2)
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gen = ram_horn_gen(b1, xf)
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mesh = meshgen.gen2mesh(gen, count=128, close_last=True)
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meshes.append(mesh)
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mesh = meshutil.FaceVertexMesh.concat_many(meshes)
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return mesh
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# Interlocking twists.
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# ang/dz control resolution. dx0 controls radius. count controls
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# how many twists. scale controls speed they shrink at.
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def twist(ang=0.1, dz=0.2, dx0=2, count=4, scale=0.98):
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b = numpy.array([
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[0, 0, 0],
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[1, 0, 0],
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[1, 1, 0],
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[0, 1, 0],
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], dtype=numpy.float64) - [0.5, 0.5, 0]
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meshes = []
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for i in range(count):
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xf = meshutil.Transform() \
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.translate(dx0, 0, 0) \
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.rotate([0,0,1], numpy.pi * 2 * i / count)
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b0 = xf.apply_to(b)
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meshes.append(meshutil.close_boundary_simple(b0))
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for layer in range(256):
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b_sub0 = xf.apply_to(b)
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incr = meshutil.Transform() \
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.rotate([0,0,1], ang) \
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.translate(0,0,dz) \
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.scale(scale)
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b_sub1 = xf.compose(incr).apply_to(b)
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m = meshutil.join_boundary_simple(b_sub0, b_sub1)
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meshes.append(m)
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xf = xf.compose(incr)
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# Close final boundary:
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meshes.append(meshutil.close_boundary_simple(b_sub1[::-1,:]))
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mesh = meshutil.FaceVertexMesh.concat_many(meshes)
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return mesh
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def twist_nonlinear(dx0 = 2, dz=0.2, count=3, scale=0.99, layers=100):
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# This can be a function rather than a constant:
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angs = numpy.power(numpy.linspace(0.4, 2.0, layers), 2.0) / 10.0
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ang_fn = lambda i: angs[i]
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# (could it also be a function of space rather than which layer?)
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b = numpy.array([
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[0, 0, 0],
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[1, 0, 0],
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[1, 1, 0],
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[0, 1, 0],
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], dtype=numpy.float64) - [0.5, 0.5, 0]
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meshes = []
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for i in range(count):
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xf = meshutil.Transform() \
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.translate(dx0, 0, 0) \
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.rotate([0,0,1], numpy.pi * 2 * i / count)
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b0 = xf.apply_to(b)
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meshes.append(meshutil.close_boundary_simple(b0))
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for layer in range(layers):
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b_sub0 = xf.apply_to(b)
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ang = ang_fn(layer)
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incr = meshutil.Transform() \
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.rotate([0,0,1], ang) \
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.translate(0,0,dz) \
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.scale(scale)
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b_sub1 = xf.compose(incr).apply_to(b)
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m = meshutil.join_boundary_simple(b_sub0, b_sub1)
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meshes.append(m)
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xf = xf.compose(incr)
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# Close final boundary:
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meshes.append(meshutil.close_boundary_simple(b_sub1[::-1,:]))
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mesh = meshutil.FaceVertexMesh.concat_many(meshes)
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return mesh
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def twist_from_gen():
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b = numpy.array([
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[0, 0, 0],
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[1, 0, 0],
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[1, 0, 1],
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[0, 0, 1],
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], dtype=numpy.float64) - [0.5, 0, 0.5]
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b = meshutil.subdivide_boundary(b)
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b = meshutil.subdivide_boundary(b)
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b = meshutil.subdivide_boundary(b)
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bs = [b]
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# since it needs a generator:
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gen_inner = itertools.repeat(bs)
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gen = meshgen.gen_inc_y(meshgen.gen_twisted_boundary(gen_inner))
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mesh = meshgen.gen2mesh(gen, 100, True)
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return mesh
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# frames = How many step to build this from:
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# turn = How many full turns to make in inner twist
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# count = How many inner twists to have
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def twisty_torus(frames = 200, turns = 4, count = 4, rad = 4):
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b = numpy.array([
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[0, 0, 0],
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[1, 0, 0],
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[1, 0, 1],
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[0, 0, 1],
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], dtype=numpy.float64) - [0.5, 0, 0.5]
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b = meshutil.subdivide_boundary(b)
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b = meshutil.subdivide_boundary(b)
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b = meshutil.subdivide_boundary(b)
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bs = [b]
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# since it needs a generator:
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gen_inner = itertools.repeat(bs)
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# In order to make this line up properly:
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angle = numpy.pi * 2 * turns / frames
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gen = meshgen.gen_torus_xy(meshgen.gen_twisted_boundary(gen=gen_inner, count=count, ang=angle), rad=rad, frames=frames)
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return meshgen.gen2mesh(gen, 0, flip_order=True, loop=True)
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def spiral_nested_2():
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# Slow.
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b = numpy.array([
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[0, 0, 0],
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[1, 0, 0],
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[1, 0, 1],
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[0, 0, 1],
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], dtype=numpy.float64) - [0.5, 0, 0.5]
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b *= 0.3
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b = meshutil.subdivide_boundary(b)
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b = meshutil.subdivide_boundary(b)
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bs = [b]
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# since it needs a generator:
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gen1 = itertools.repeat(bs)
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gen2 = meshgen.gen_twisted_boundary(gen1, ang=-0.2, dx0=0.5)
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gen3 = meshgen.gen_twisted_boundary(gen2, ang=0.05, dx0=1)
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gen = meshgen.gen_inc_y(gen3, dy=0.1)
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return meshgen.gen2mesh(
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gen, count=250, flip_order=True, close_first=True, close_last=True)
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def spiral_nested_3():
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# Slower.
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b = numpy.array([
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[0, 0, 0],
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[1, 0, 0],
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[1, 0, 1],
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[0, 0, 1],
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], dtype=numpy.float64) - [0.5, 0, 0.5]
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b *= 0.3
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b = meshutil.subdivide_boundary(b)
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b = meshutil.subdivide_boundary(b)
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bs = [b]
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# since it needs a generator:
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gen1 = itertools.repeat(bs)
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gen2 = meshgen.gen_twisted_boundary(gen1, ang=-0.2, dx0=0.5)
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gen3 = meshgen.gen_twisted_boundary(gen2, ang=0.07, dx0=1)
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gen4 = meshgen.gen_twisted_boundary(gen3, ang=-0.03, dx0=3)
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gen = meshgen.gen_inc_y(gen4, dy=0.1)
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return meshgen.gen2mesh(
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gen, count=500, flip_order=True, close_first=True, close_last=True)
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def main():
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fns = {
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ram_horn: "ramhorn.stl",
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ram_horn2: "ramhorn2.stl",
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twist: "twist.stl",
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twist_nonlinear: "twist_nonlinear.stl",
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twist_from_gen: "twist_from_gen.stl",
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twisty_torus: "twisty_torus.stl",
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spiral_nested_2: "spiral_nested_2.stl",
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spiral_nested_3: "spiral_nested_3.stl",
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}
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for f in fns:
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fname = fns[f]
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print("Generate {}...".format(fname))
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mesh = f()
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nv = mesh.v.shape[0]
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nf = mesh.f.shape[0]
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print("Saving {} verts & {} faces...".format(nv, nf))
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mesh.to_stl_mesh().save(fname)
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print("Done.")
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if __name__ == "__main__":
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main()
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