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749 lines
26 KiB
Python
749 lines
26 KiB
Python
# ##### BEGIN GPL LICENSE BLOCK #####
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#
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# This program is free software; you can redistribute it and/or
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# modify it under the terms of the GNU General Public License
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# as published by the Free Software Foundation; either version 2
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# of the License, or (at your option) any later version.
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#
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# This program is distributed in the hope that it will be useful,
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# but WITHOUT ANY WARRANTY; without even the implied warranty of
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# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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# GNU General Public License for more details.
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#
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# You should have received a copy of the GNU General Public License
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# along with this program; if not, write to the Free Software Foundation,
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# Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301, USA.
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#
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# ##### END GPL LICENSE BLOCK #####
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# <pep8 compliant>
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bl_info = {
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"name": "Cloud Generator",
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"author": "Nick Keeline(nrk)",
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"version": (1, 0),
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"blender": (2, 75, 0),
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"location": "Blender Render: Tool Shelf > Create Tab",
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"description": "Creates Volumetric Clouds",
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"wiki_url": "http://wiki.blender.org/index.php/Extensions:2.6/Py/"
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"Scripts/Object/Cloud_Gen",
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"category": "Object",
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}
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import bpy
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from bpy.props import BoolProperty, EnumProperty
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from bpy.types import Operator, Panel
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# This routine takes an object and deletes all of the geometry in it
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# and adds a bounding box to it.
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# It will add or subtract the bound box size by the variable sizeDifference.
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def getMeshandPutinEditMode(scene, object):
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# Go into Object Mode
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bpy.ops.object.mode_set(mode='OBJECT')
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# Deselect All
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bpy.ops.object.select_all(action='DESELECT')
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# Select the object
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object.select = True
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scene.objects.active = object
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# Go into Edit Mode
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bpy.ops.object.mode_set(mode='EDIT')
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return object.data
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def maxAndMinVerts(scene, object):
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mesh = getMeshandPutinEditMode(scene, object)
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verts = mesh.vertices
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#Set the max and min verts to the first vertex on the list
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maxVert = [verts[0].co[0], verts[0].co[1], verts[0].co[2]]
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minVert = [verts[0].co[0], verts[0].co[1], verts[0].co[2]]
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#Create Max and Min Vertex array for the outer corners of the box
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for vert in verts:
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#Max vertex
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if vert.co[0] > maxVert[0]:
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maxVert[0] = vert.co[0]
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if vert.co[1] > maxVert[1]:
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maxVert[1] = vert.co[1]
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if vert.co[2] > maxVert[2]:
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maxVert[2] = vert.co[2]
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#Min Vertex
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if vert.co[0] < minVert[0]:
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minVert[0] = vert.co[0]
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if vert.co[1] < minVert[1]:
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minVert[1] = vert.co[1]
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if vert.co[2] < minVert[2]:
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minVert[2] = vert.co[2]
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return [maxVert, minVert]
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def makeObjectIntoBoundBox(scene, object, sizeDifference, takeFromObject):
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# Let's find the max and min of the reference object,
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# it can be the same as the destination object
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[maxVert, minVert] = maxAndMinVerts(scene, takeFromObject)
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#get objects mesh
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mesh = getMeshandPutinEditMode(scene, object)
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#Add the size difference to the max size of the box
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maxVert[0] = maxVert[0] + sizeDifference
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maxVert[1] = maxVert[1] + sizeDifference
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maxVert[2] = maxVert[2] + sizeDifference
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#subtract the size difference to the min size of the box
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minVert[0] = minVert[0] - sizeDifference
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minVert[1] = minVert[1] - sizeDifference
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minVert[2] = minVert[2] - sizeDifference
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#Create arrays of verts and faces to be added to the mesh
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addVerts = []
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#X high loop
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addVerts.append([maxVert[0], maxVert[1], maxVert[2]])
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addVerts.append([maxVert[0], maxVert[1], minVert[2]])
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addVerts.append([maxVert[0], minVert[1], minVert[2]])
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addVerts.append([maxVert[0], minVert[1], maxVert[2]])
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#x low loop
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addVerts.append([minVert[0], maxVert[1], maxVert[2]])
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addVerts.append([minVert[0], maxVert[1], minVert[2]])
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addVerts.append([minVert[0], minVert[1], minVert[2]])
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addVerts.append([minVert[0], minVert[1], maxVert[2]])
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# Make the faces of the bounding box.
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addFaces = []
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# Draw a box on paper and number the vertices.
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# Use right hand rule to come up with number orders for faces on
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# the box (with normals pointing out).
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addFaces.append([0, 3, 2, 1])
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addFaces.append([4, 5, 6, 7])
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addFaces.append([0, 1, 5, 4])
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addFaces.append([1, 2, 6, 5])
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addFaces.append([2, 3, 7, 6])
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addFaces.append([0, 4, 7, 3])
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# Delete all geometry from the object.
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bpy.ops.mesh.select_all(action='SELECT')
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bpy.ops.mesh.delete(type='VERT')
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# Must be in object mode for from_pydata to work
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bpy.ops.object.mode_set(mode='OBJECT')
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# Add the mesh data.
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mesh.from_pydata(addVerts, [], addFaces)
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# Update the mesh
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mesh.update()
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def applyScaleRotLoc(scene, obj):
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# Deselect All
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bpy.ops.object.select_all(action='DESELECT')
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# Select the object
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obj.select = True
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scene.objects.active = obj
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bpy.ops.object.transform_apply(location=True, rotation=True, scale=True)
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def totallyDeleteObject(scene, obj):
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scene.objects.unlink(obj)
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bpy.data.objects.remove(obj)
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def makeParent(parentobj, childobj, scene):
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applyScaleRotLoc(scene, parentobj)
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applyScaleRotLoc(scene, childobj)
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childobj.parent = parentobj
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def addNewObject(scene, name, copyobj):
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# Create new mesh
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mesh = bpy.data.meshes.new(name)
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# Create a new object.
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ob_new = bpy.data.objects.new(name, mesh)
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tempme = copyobj.data
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ob_new.data = tempme.copy()
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ob_new.scale = copyobj.scale
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ob_new.location = copyobj.location
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# Link new object to the given scene and select it.
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scene.objects.link(ob_new)
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ob_new.select = True
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return ob_new
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def getpdensitytexture(object):
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for mslot in object.material_slots:
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mat = mslot.material
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for tslot in mat.texture_slots:
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if tslot != 'NoneType':
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tex = tslot.texture
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if tex.type == 'POINT_DENSITY':
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if tex.point_density.point_source == 'PARTICLE_SYSTEM':
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return tex
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def removeParticleSystemFromObj(scene, object):
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# Deselect All
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bpy.ops.object.select_all(action='DESELECT')
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# Select the object.
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object.select = True
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scene.objects.active = object
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bpy.ops.object.particle_system_remove()
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# Deselect All
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bpy.ops.object.select_all(action='DESELECT')
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def convertParticlesToMesh(scene, particlesobj, destobj, replacemesh):
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# Select the Destination object.
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destobj.select = True
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scene.objects.active = destobj
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#Go to Edit Mode
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bpy.ops.object.mode_set(mode='EDIT', toggle=False)
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#Delete everything in mesh if replace true
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if replacemesh:
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bpy.ops.mesh.select_all(action='SELECT')
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bpy.ops.mesh.delete(type='VERT')
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meshPnts = destobj.data
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listCloudParticles = particlesobj.particles
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listMeshPnts = []
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for pTicle in listCloudParticles:
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listMeshPnts.append(pTicle.location)
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# Must be in object mode for from_pydata to work.
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bpy.ops.object.mode_set(mode='OBJECT')
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# Add in the mesh data.
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meshPnts.from_pydata(listMeshPnts, [], [])
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# Update the mesh.
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meshPnts.update()
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def combineObjects(scene, combined, listobjs):
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# scene is the current scene
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# combined is the object we want to combine everything into
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# listobjs is the list of objects to stick into combined
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# Deselect All
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bpy.ops.object.select_all(action='DESELECT')
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# Select the new object.
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combined.select = True
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scene.objects.active = combined
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# Add data
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if len(listobjs) > 0:
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for i in listobjs:
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# Add a modifier
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bpy.ops.object.modifier_add(type='BOOLEAN')
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union = combined.modifiers
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union[0].name = "AddEmUp"
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union[0].object = i
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union[0].operation = 'UNION'
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# Apply modifier
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bpy.ops.object.modifier_apply(apply_as='DATA', modifier=union[0].name)
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# Returns the action we want to take
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def getActionToDo(obj):
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if not obj or obj.type != 'MESH':
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return 'NOT_OBJ_DO_NOTHING'
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elif obj is None:
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return 'NO_SELECTION_DO_NOTHING'
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elif "CloudMember" in obj:
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if obj["CloudMember"] != None:
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if obj["CloudMember"] == "MainObj":
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return 'DEGENERATE'
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elif obj["CloudMember"] == "CreatedObj" and len(obj.particle_systems) > 0:
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return 'CLOUD_CONVERT_TO_MESH'
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else:
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return 'CLOUD_DO_NOTHING'
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elif obj.type == 'MESH':
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return 'GENERATE'
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else:
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return 'DO_NOTHING'
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class VIEW3D_PT_tools_cloud(Panel):
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bl_space_type = 'VIEW_3D'
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bl_region_type = 'TOOLS'
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bl_category = 'Create'
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bl_label = "Cloud Generator"
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bl_context = "objectmode"
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bl_options = {'DEFAULT_CLOSED'}
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def draw(self, context):
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if context.scene.render.engine == "BLENDER_RENDER":
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active_obj = context.active_object
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layout = self.layout
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col = layout.column(align=True)
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WhatToDo = getActionToDo(active_obj)
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if WhatToDo == 'DEGENERATE':
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col.operator("cloud.generate_cloud", text="DeGenerate")
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elif WhatToDo == 'CLOUD_CONVERT_TO_MESH':
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col.operator("cloud.generate_cloud", text="Convert to Mesh")
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elif WhatToDo == 'NO_SELECTION_DO_NOTHING':
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col.label(text="Select one or more")
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col.label(text="objects to generate")
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col.label(text="a cloud")
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elif WhatToDo == 'CLOUD_DO_NOTHING':
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col.label(text="Must select")
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col.label(text="bound box")
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elif WhatToDo == 'GENERATE':
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col.operator("cloud.generate_cloud", text="Generate Cloud")
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col.prop(context.scene, "cloud_type")
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col.prop(context.scene, "cloudparticles")
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col.prop(context.scene, "cloudsmoothing")
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else:
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col.label(text="Select one or more")
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col.label(text="objects to generate")
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col.label(text="a cloud")
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if context.scene.render.engine == "CYCLES":
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layout = self.layout
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layout.label(text="Blender Render Only")
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class GenerateCloud(Operator):
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"""Create a Cloud,Undo Cloud, or convert to Mesh Cloud depending on selection"""
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bl_idname = "cloud.generate_cloud"
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bl_label = "Generate Cloud"
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bl_register = True
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bl_undo = True
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@classmethod
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def poll(cls, context):
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if not context.active_object:
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return False
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else:
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return (context.active_object.type == 'MESH')
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def execute(self, context):
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# Make variable that is the current .blend file main data blocks
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space_data = bpy.context.space_data
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if True in space_data.layers_local_view:
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self.report({'INFO'}, 'Global Perspective mode only unable to continue.')
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return {'FINISHED'}
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blend_data = context.blend_data
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# Make variable that is the active object selected by user
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active_object = context.active_object
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# Make variable scene that is current scene
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scene = context.scene
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# Parameters the user may want to change:
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# Number of points this number is multiplied by the volume to get
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# the number of points the scripts will put in the volume.
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numOfPoints = 1.0
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maxNumOfPoints = 100000
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maxPointDensityRadius = 1.5
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scattering = 2.5
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pointDensityRadiusFactor = 1.0
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densityScale = 1.5
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# What should we do?
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WhatToDo = getActionToDo(active_object)
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if WhatToDo == 'DEGENERATE':
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# Degenerate Cloud
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mainObj = active_object
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cloudMembers = active_object.children
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createdObjects = []
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definitionObjects = []
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for member in cloudMembers:
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applyScaleRotLoc(scene, member)
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if member["CloudMember"] == "CreatedObj":
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createdObjects.append(member)
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else:
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definitionObjects.append(member)
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for defObj in definitionObjects:
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# Delete cloudmember data from objects
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if "CloudMember" in defObj:
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del(defObj["CloudMember"])
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for createdObj in createdObjects:
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totallyDeleteObject(scene, createdObj)
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# Delete the blend_data object
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totallyDeleteObject(scene, mainObj)
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# Select all of the left over boxes so people can immediately
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# press generate again if they want.
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for eachMember in definitionObjects:
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eachMember.draw_type = 'SOLID'
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eachMember.select = True
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eachMember.hide_render = False
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elif WhatToDo == 'CLOUD_CONVERT_TO_MESH':
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cloudParticles = active_object.particle_systems.active
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bounds = active_object.parent
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###############Create CloudPnts for putting points in#########
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# Create a new object cloudPnts
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cloudPnts = addNewObject(scene, "CloudPoints", bounds)
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cloudPnts["CloudMember"] = "CreatedObj"
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cloudPnts.draw_type = 'WIRE'
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cloudPnts.hide_render = True
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makeParent(bounds, cloudPnts, scene)
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convertParticlesToMesh(scene, cloudParticles, cloudPnts, True)
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removeParticleSystemFromObj(scene, active_object)
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pDensity = getpdensitytexture(bounds)
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pDensity.point_density.point_source = 'OBJECT'
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pDensity.point_density.object = cloudPnts
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#Let's resize the bound box to be more accurate.
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how_much_bigger = pDensity.point_density.radius
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makeObjectIntoBoundBox(scene, bounds, how_much_bigger, cloudPnts)
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else:
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# Generate Cloud
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###############Create Combined Object bounds##################
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# Make a list of all Selected objects.
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selectedObjects = bpy.context.selected_objects
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if not selectedObjects:
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selectedObjects = [bpy.context.active_object]
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# Create a new object bounds
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bounds = addNewObject(scene,
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"CloudBounds",
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selectedObjects[0])
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bounds.draw_type = 'BOUNDS'
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bounds.hide_render = False
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# Just add a Definition Property designating this
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# as the blend_data object.
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bounds["CloudMember"] = "MainObj"
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# Since we used iteration 0 to copy with object we
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# delete it off the list.
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firstObject = selectedObjects[0]
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del selectedObjects[0]
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# Apply location Rotation and Scale to all objects involved.
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applyScaleRotLoc(scene, bounds)
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for each in selectedObjects:
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applyScaleRotLoc(scene, each)
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# Let's combine all of them together.
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combineObjects(scene, bounds, selectedObjects)
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# Let's add some property info to the objects.
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for selObj in selectedObjects:
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selObj["CloudMember"] = "DefinitioinObj"
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selObj.name = "DefinitioinObj"
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selObj.draw_type = 'WIRE'
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selObj.hide_render = True
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makeParent(bounds, selObj, scene)
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# Do the same to the 1. object since it is no longer in list.
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firstObject["CloudMember"] = "DefinitioinObj"
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firstObject.name = "DefinitioinObj"
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firstObject.draw_type = 'WIRE'
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firstObject.hide_render = True
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makeParent(bounds, firstObject, scene)
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###############Create Cloud for putting Cloud Mesh############
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# Create a new object cloud.
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cloud = addNewObject(scene, "CloudMesh", bounds)
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cloud["CloudMember"] = "CreatedObj"
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cloud.draw_type = 'WIRE'
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cloud.hide_render = True
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makeParent(bounds, cloud, scene)
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bpy.ops.object.editmode_toggle()
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bpy.ops.mesh.select_all(action='SELECT')
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#Don't subdivide object or smooth if smoothing box not checked.
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if scene.cloudsmoothing:
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bpy.ops.mesh.subdivide(number_cuts=2, fractal=0, smoothness=1)
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# bpy.ops.object.transform_apply(location=True)
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bpy.ops.mesh.vertices_smooth(repeat=20)
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bpy.ops.mesh.tris_convert_to_quads()
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bpy.ops.mesh.faces_shade_smooth()
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bpy.ops.object.editmode_toggle()
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###############Create Particles in cloud obj##################
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# Set time to 0.
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scene.frame_current = 0
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# Add a new particle system.
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bpy.ops.object.particle_system_add()
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#Particle settings setting it up!
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cloudParticles = cloud.particle_systems.active
|
|
cloudParticles.name = "CloudParticles"
|
|
cloudParticles.settings.frame_start = 0
|
|
cloudParticles.settings.frame_end = 0
|
|
cloudParticles.settings.emit_from = 'VOLUME'
|
|
cloudParticles.settings.lifetime = scene.frame_end
|
|
cloudParticles.settings.draw_method = 'DOT'
|
|
cloudParticles.settings.render_type = 'NONE'
|
|
cloudParticles.settings.distribution = 'RAND'
|
|
cloudParticles.settings.physics_type = 'NEWTON'
|
|
cloudParticles.settings.normal_factor = 0
|
|
|
|
#Gravity does not effect the particle system
|
|
eWeights = cloudParticles.settings.effector_weights
|
|
eWeights.gravity = 0
|
|
|
|
####################Create Volume Material####################
|
|
# Deselect All
|
|
bpy.ops.object.select_all(action='DESELECT')
|
|
|
|
# Select the object.
|
|
bounds.select = True
|
|
scene.objects.active = bounds
|
|
|
|
# Turn bounds object into a box. Use itself as a reference.
|
|
makeObjectIntoBoundBox(scene, bounds, 1.0, bounds)
|
|
|
|
# Delete all material slots in bounds object.
|
|
for i in range(len(bounds.material_slots)):
|
|
bounds.active_material_index = i - 1
|
|
bpy.ops.object.material_slot_remove()
|
|
|
|
# Add a new material.
|
|
cloudMaterial = blend_data.materials.new("CloudMaterial")
|
|
bpy.ops.object.material_slot_add()
|
|
bounds.material_slots[0].material = cloudMaterial
|
|
|
|
# Set Up the Cloud Material
|
|
cloudMaterial.name = "CloudMaterial"
|
|
cloudMaterial.type = 'VOLUME'
|
|
mVolume = cloudMaterial.volume
|
|
mVolume.scattering = scattering
|
|
mVolume.density = 0
|
|
mVolume.density_scale = densityScale
|
|
mVolume.transmission_color = 3.0, 3.0, 3.0
|
|
mVolume.step_size = 0.1
|
|
mVolume.use_light_cache = True
|
|
mVolume.cache_resolution = 45
|
|
|
|
# Add a texture
|
|
# vMaterialTextureSlots = cloudMaterial.texture_slots # UNUSED
|
|
cloudtex = blend_data.textures.new("CloudTex", type='CLOUDS')
|
|
cloudtex.noise_type = 'HARD_NOISE'
|
|
cloudtex.noise_scale = 2
|
|
mtex = cloudMaterial.texture_slots.add()
|
|
mtex.texture = cloudtex
|
|
mtex.texture_coords = 'ORCO'
|
|
mtex.use_map_color_diffuse = True
|
|
|
|
# Set time
|
|
scene.frame_current = 1
|
|
|
|
# Add a Point Density texture
|
|
pDensity = blend_data.textures.new("CloudPointDensity", 'POINT_DENSITY')
|
|
|
|
mtex = cloudMaterial.texture_slots.add()
|
|
mtex.texture = pDensity
|
|
mtex.texture_coords = 'GLOBAL'
|
|
mtex.use_map_density = True
|
|
mtex.use_rgb_to_intensity = True
|
|
mtex.texture_coords = 'GLOBAL'
|
|
|
|
pDensity.point_density.vertex_cache_space = 'WORLD_SPACE'
|
|
pDensity.point_density.use_turbulence = True
|
|
pDensity.point_density.noise_basis = 'VORONOI_F2'
|
|
pDensity.point_density.turbulence_depth = 3
|
|
|
|
pDensity.use_color_ramp = True
|
|
pRamp = pDensity.color_ramp
|
|
#pRamp.use_interpolation = 'LINEAR'
|
|
pRampElements = pRamp.elements
|
|
#pRampElements[1].position = .9
|
|
#pRampElements[1].color = 0.18, 0.18, 0.18, 0.8
|
|
bpy.ops.texture.slot_move(type='UP')
|
|
|
|
# Estimate the number of particles for the size of bounds.
|
|
volumeBoundBox = (bounds.dimensions[0] * bounds.dimensions[1] * bounds.dimensions[2])
|
|
numParticles = int((2.4462 * volumeBoundBox + 430.4) * numOfPoints)
|
|
if numParticles > maxNumOfPoints:
|
|
numParticles = maxNumOfPoints
|
|
if numParticles < 10000:
|
|
numParticles = int(numParticles + 15 * volumeBoundBox)
|
|
print(numParticles)
|
|
|
|
# Set the number of particles according to the volume
|
|
# of bounds.
|
|
cloudParticles.settings.count = numParticles
|
|
|
|
pDensity.point_density.radius = (.00013764 * volumeBoundBox + .3989) * pointDensityRadiusFactor
|
|
|
|
if pDensity.point_density.radius > maxPointDensityRadius:
|
|
pDensity.point_density.radius = maxPointDensityRadius
|
|
|
|
# Set time to 1.
|
|
scene.frame_current = 1
|
|
|
|
if not scene.cloudparticles:
|
|
###############Create CloudPnts for putting points in#########
|
|
# Create a new object cloudPnts
|
|
cloudPnts = addNewObject(scene, "CloudPoints", bounds)
|
|
cloudPnts["CloudMember"] = "CreatedObj"
|
|
cloudPnts.draw_type = 'WIRE'
|
|
cloudPnts.hide_render = True
|
|
|
|
makeParent(bounds, cloudPnts, scene)
|
|
|
|
convertParticlesToMesh(scene, cloudParticles, cloudPnts, True)
|
|
|
|
# Add a modifier.
|
|
bpy.ops.object.modifier_add(type='DISPLACE')
|
|
|
|
cldPntsModifiers = cloudPnts.modifiers
|
|
cldPntsModifiers[0].name = "CloudPnts"
|
|
cldPntsModifiers[0].texture = cloudtex
|
|
cldPntsModifiers[0].texture_coords = 'OBJECT'
|
|
cldPntsModifiers[0].texture_coords_object = cloud
|
|
cldPntsModifiers[0].strength = -1.4
|
|
|
|
# Apply modifier
|
|
bpy.ops.object.modifier_apply(apply_as='DATA', modifier=cldPntsModifiers[0].name)
|
|
|
|
pDensity.point_density.point_source = 'OBJECT'
|
|
pDensity.point_density.object = cloudPnts
|
|
|
|
removeParticleSystemFromObj(scene, cloud)
|
|
|
|
else:
|
|
|
|
pDensity.point_density.point_source = 'PARTICLE_SYSTEM'
|
|
pDensity.point_density.object = cloud
|
|
pDensity.point_density.particle_system = cloudParticles
|
|
|
|
if scene.cloud_type == '1': # Cumulous
|
|
print("Cumulous")
|
|
mVolume.density_scale = 2.22
|
|
pDensity.point_density.turbulence_depth = 10
|
|
pDensity.point_density.turbulence_strength = 6.3
|
|
pDensity.point_density.turbulence_scale = 2.9
|
|
pRampElements[1].position = .606
|
|
pDensity.point_density.radius = pDensity.point_density.radius + 0.1
|
|
|
|
elif scene.cloud_type == '2': # Cirrus
|
|
print("Cirrus")
|
|
pDensity.point_density.turbulence_strength = 22
|
|
mVolume.transmission_color = 3.5, 3.5, 3.5
|
|
mVolume.scattering = 0.13
|
|
|
|
elif scene.cloud_type == '3': # Explosion
|
|
mVolume.emission = 1.42
|
|
mtex.use_rgb_to_intensity = False
|
|
pRampElements[0].position = 0.825
|
|
pRampElements[0].color = 0.119, 0.119, 0.119, 1
|
|
pRampElements[1].position = .049
|
|
pRampElements[1].color = 1.0, 1.0, 1.0, 0
|
|
pDensity.point_density.turbulence_strength = 1.5
|
|
pRampElement1 = pRampElements.new(.452)
|
|
pRampElement1.color = 0.814, 0.112, 0, 1
|
|
pRampElement2 = pRampElements.new(.234)
|
|
pRampElement2.color = 0.814, 0.310, 0.002, 1
|
|
pRampElement3 = pRampElements.new(0.669)
|
|
pRampElement3.color = 0.0, 0.0, 0.040, 1
|
|
|
|
# Select the object.
|
|
bounds.select = True
|
|
scene.objects.active = bounds
|
|
|
|
#Let's resize the bound box to be more accurate.
|
|
how_much_bigger = pDensity.point_density.radius + 0.1
|
|
|
|
#If it's a particle cloud use cloud mesh if otherwise use point mesh
|
|
if not scene.cloudparticles:
|
|
makeObjectIntoBoundBox(scene, bounds, how_much_bigger, cloudPnts)
|
|
else:
|
|
makeObjectIntoBoundBox(scene, bounds, how_much_bigger, cloud)
|
|
|
|
return {'FINISHED'}
|
|
|
|
|
|
def register():
|
|
bpy.utils.register_module(__name__)
|
|
|
|
bpy.types.Scene.cloudparticles = BoolProperty(
|
|
name="Particles",
|
|
description="Generate Cloud as Particle System",
|
|
default=False)
|
|
|
|
bpy.types.Scene.cloudsmoothing = BoolProperty(
|
|
name="Smoothing",
|
|
description="Smooth Resultant Geometry From Gen Cloud Operation",
|
|
default=True)
|
|
|
|
bpy.types.Scene.cloud_type = EnumProperty(
|
|
name="Type",
|
|
description="Select the type of cloud to create with material settings",
|
|
items=[("0", "Stratus", "Generate Stratus_foggy Cloud"),
|
|
("1", "Cumulous", "Generate Cumulous_puffy Cloud"),
|
|
("2", "Cirrus", "Generate Cirrus_wispy Cloud"),
|
|
("3", "Explosion", "Generate Explosion"),
|
|
],
|
|
default='0')
|
|
|
|
|
|
def unregister():
|
|
bpy.utils.unregister_module(__name__)
|
|
|
|
del bpy.types.Scene.cloudparticles
|
|
del bpy.types.Scene.cloud_type
|
|
|
|
|
|
if __name__ == "__main__":
|
|
register()
|