|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
import numpy as np |
|
import cv2 |
|
import pymeshlab |
|
import torch |
|
import torchvision |
|
import trimesh |
|
import json |
|
from pytorch3d.io import load_obj |
|
import os |
|
from termcolor import colored |
|
import os.path as osp |
|
from scipy.spatial import cKDTree |
|
import _pickle as cPickle |
|
import open3d as o3d |
|
|
|
from pytorch3d.structures import Meshes |
|
import torch.nn.functional as F |
|
|
|
|
|
|
|
from pytorch3d.renderer.mesh import rasterize_meshes |
|
from PIL import Image, ImageFont, ImageDraw |
|
from kaolin.ops.mesh import check_sign |
|
from kaolin.metrics.trianglemesh import point_to_mesh_distance |
|
|
|
from pytorch3d.loss import (mesh_laplacian_smoothing, mesh_normal_consistency) |
|
|
|
|
|
|
|
|
|
def rot6d_to_rotmat(x): |
|
"""Convert 6D rotation representation to 3x3 rotation matrix. |
|
Based on Zhou et al., "On the Continuity of Rotation Representations in Neural Networks", CVPR 2019 |
|
Input: |
|
(B,6) Batch of 6-D rotation representations |
|
Output: |
|
(B,3,3) Batch of corresponding rotation matrices |
|
""" |
|
x = x.view(-1, 3, 2) |
|
a1 = x[:, :, 0] |
|
a2 = x[:, :, 1] |
|
b1 = F.normalize(a1) |
|
b2 = F.normalize(a2 - torch.einsum("bi,bi->b", b1, a2).unsqueeze(-1) * b1) |
|
b3 = torch.cross(b1, b2) |
|
return torch.stack((b1, b2, b3), dim=-1) |
|
|
|
|
|
def obj_loader(path): |
|
|
|
reader = tinyobjloader.ObjReader() |
|
|
|
|
|
ret = reader.ParseFromFile(path) |
|
|
|
if ret == False: |
|
print("Failed to load : ", path) |
|
return None |
|
|
|
|
|
attrib = reader.GetAttrib() |
|
verts = np.array(attrib.vertices).reshape(-1, 3) |
|
|
|
shapes = reader.GetShapes() |
|
tri = shapes[0].mesh.numpy_indices().reshape(-1, 9) |
|
faces = tri[:, [0, 3, 6]] |
|
|
|
return verts, faces |
|
|
|
|
|
class HoppeMesh: |
|
|
|
def __init__(self, verts, faces): |
|
''' |
|
The HoppeSDF calculates signed distance towards a predefined oriented point cloud |
|
http://hhoppe.com/recon.pdf |
|
For clean and high-resolution pcl data, this is the fastest and accurate approximation of sdf |
|
:param points: pts |
|
:param normals: normals |
|
''' |
|
self.trimesh = trimesh.Trimesh(verts, faces, process=True) |
|
self.verts = np.array(self.trimesh.vertices) |
|
self.faces = np.array(self.trimesh.faces) |
|
self.vert_normals, self.faces_normals = compute_normal( |
|
self.verts, self.faces) |
|
|
|
def contains(self, points): |
|
|
|
labels = check_sign( |
|
torch.as_tensor(self.verts).unsqueeze(0), |
|
torch.as_tensor(self.faces), |
|
torch.as_tensor(points).unsqueeze(0)) |
|
return labels.squeeze(0).numpy() |
|
|
|
def triangles(self): |
|
return self.verts[self.faces] |
|
|
|
|
|
def tensor2variable(tensor, device): |
|
|
|
return torch.tensor(tensor, device=device, requires_grad=True) |
|
|
|
|
|
class GMoF(torch.nn.Module): |
|
|
|
def __init__(self, rho=1): |
|
super(GMoF, self).__init__() |
|
self.rho = rho |
|
|
|
def extra_repr(self): |
|
return 'rho = {}'.format(self.rho) |
|
|
|
def forward(self, residual): |
|
dist = torch.div(residual, residual + self.rho**2) |
|
return self.rho**2 * dist |
|
|
|
|
|
def mesh_edge_loss(meshes, target_length: float = 0.0): |
|
""" |
|
Computes mesh edge length regularization loss averaged across all meshes |
|
in a batch. Each mesh contributes equally to the final loss, regardless of |
|
the number of edges per mesh in the batch by weighting each mesh with the |
|
inverse number of edges. For example, if mesh 3 (out of N) has only E=4 |
|
edges, then the loss for each edge in mesh 3 should be multiplied by 1/E to |
|
contribute to the final loss. |
|
|
|
Args: |
|
meshes: Meshes object with a batch of meshes. |
|
target_length: Resting value for the edge length. |
|
|
|
Returns: |
|
loss: Average loss across the batch. Returns 0 if meshes contains |
|
no meshes or all empty meshes. |
|
""" |
|
if meshes.isempty(): |
|
return torch.tensor([0.0], |
|
dtype=torch.float32, |
|
device=meshes.device, |
|
requires_grad=True) |
|
|
|
N = len(meshes) |
|
edges_packed = meshes.edges_packed() |
|
verts_packed = meshes.verts_packed() |
|
edge_to_mesh_idx = meshes.edges_packed_to_mesh_idx() |
|
num_edges_per_mesh = meshes.num_edges_per_mesh() |
|
|
|
|
|
|
|
|
|
|
|
weights = num_edges_per_mesh.gather(0, edge_to_mesh_idx) |
|
weights = 1.0 / weights.float() |
|
|
|
verts_edges = verts_packed[edges_packed] |
|
v0, v1 = verts_edges.unbind(1) |
|
loss = ((v0 - v1).norm(dim=1, p=2) - target_length)**2.0 |
|
loss_vertex = loss * weights |
|
|
|
|
|
loss_all = loss_vertex.sum() / N |
|
|
|
return loss_all |
|
|
|
|
|
def remesh(obj_path, perc, device): |
|
|
|
ms = pymeshlab.MeshSet() |
|
ms.load_new_mesh(obj_path) |
|
ms.apply_coord_laplacian_smoothing() |
|
ms.meshing_isotropic_explicit_remeshing(targetlen=pymeshlab.PercentageValue(perc), adaptive=True) |
|
|
|
|
|
ms.save_current_mesh(obj_path.replace("recon", "remesh")) |
|
polished_mesh = trimesh.load_mesh(obj_path.replace("recon", "remesh")) |
|
verts_pr = torch.tensor( |
|
polished_mesh.vertices).float().unsqueeze(0).to(device) |
|
faces_pr = torch.tensor(polished_mesh.faces).long().unsqueeze(0).to(device) |
|
|
|
return verts_pr, faces_pr |
|
|
|
|
|
def possion(mesh, obj_path): |
|
|
|
mesh.export(obj_path) |
|
ms = pymeshlab.MeshSet() |
|
ms.load_new_mesh(obj_path) |
|
ms.surface_reconstruction_screened_poisson(depth=10) |
|
ms.set_current_mesh(1) |
|
ms.save_current_mesh(obj_path) |
|
|
|
return trimesh.load(obj_path) |
|
|
|
|
|
def get_mask(tensor, dim): |
|
|
|
mask = torch.abs(tensor).sum(dim=dim, keepdims=True) > 0.0 |
|
mask = mask.type_as(tensor) |
|
|
|
return mask |
|
|
|
|
|
def blend_rgb_norm(rgb, norm, mask): |
|
|
|
|
|
final = rgb * (1 - mask) + norm * (mask) |
|
|
|
return final.astype(np.uint8) |
|
|
|
|
|
def unwrap(image, data): |
|
|
|
img_uncrop = uncrop( |
|
np.array( |
|
Image.fromarray(image).resize( |
|
data['uncrop_param']['box_shape'][:2])), |
|
data['uncrop_param']['center'], data['uncrop_param']['scale'], |
|
data['uncrop_param']['crop_shape']) |
|
|
|
img_orig = cv2.warpAffine(img_uncrop, |
|
np.linalg.inv(data['uncrop_param']['M'])[:2, :], |
|
data['uncrop_param']['ori_shape'][::-1][1:], |
|
flags=cv2.INTER_CUBIC) |
|
|
|
return img_orig |
|
|
|
|
|
|
|
def update_mesh_shape_prior_losses(mesh, losses): |
|
|
|
|
|
losses["edge"]['value'] = mesh_edge_loss(mesh) |
|
|
|
losses["nc"]['value'] = mesh_normal_consistency(mesh) |
|
|
|
losses["laplacian"]['value'] = mesh_laplacian_smoothing(mesh, |
|
method="uniform") |
|
|
|
|
|
def rename(old_dict, old_name, new_name): |
|
new_dict = {} |
|
for key, value in zip(old_dict.keys(), old_dict.values()): |
|
new_key = key if key != old_name else new_name |
|
new_dict[new_key] = old_dict[key] |
|
return new_dict |
|
|
|
|
|
def load_checkpoint(model, cfg): |
|
|
|
model_dict = model.state_dict() |
|
main_dict = {} |
|
normal_dict = {} |
|
|
|
device = torch.device(f"cuda:{cfg['test_gpus'][0]}") |
|
|
|
if os.path.exists(cfg.resume_path) and cfg.resume_path.endswith("ckpt"): |
|
main_dict = torch.load(cfg.resume_path, |
|
map_location=device)['state_dict'] |
|
|
|
main_dict = { |
|
k: v |
|
for k, v in main_dict.items() |
|
if k in model_dict and v.shape == model_dict[k].shape and ( |
|
'reconEngine' not in k) and ("normal_filter" not in k) and ( |
|
'voxelization' not in k) |
|
} |
|
print(colored(f"Resume MLP weights from {cfg.resume_path}", 'green')) |
|
|
|
if os.path.exists(cfg.normal_path) and cfg.normal_path.endswith("ckpt"): |
|
normal_dict = torch.load(cfg.normal_path, |
|
map_location=device)['state_dict'] |
|
|
|
for key in normal_dict.keys(): |
|
normal_dict = rename(normal_dict, key, |
|
key.replace("netG", "netG.normal_filter")) |
|
|
|
normal_dict = { |
|
k: v |
|
for k, v in normal_dict.items() |
|
if k in model_dict and v.shape == model_dict[k].shape |
|
} |
|
print(colored(f"Resume normal model from {cfg.normal_path}", 'green')) |
|
|
|
model_dict.update(main_dict) |
|
model_dict.update(normal_dict) |
|
model.load_state_dict(model_dict) |
|
|
|
model.netG = model.netG.to(device) |
|
model.reconEngine = model.reconEngine.to(device) |
|
|
|
model.netG.training = False |
|
model.netG.eval() |
|
|
|
del main_dict |
|
del normal_dict |
|
del model_dict |
|
|
|
return model |
|
|
|
|
|
def read_smpl_constants(folder): |
|
"""Load smpl vertex code""" |
|
smpl_vtx_std = np.loadtxt(os.path.join(folder, 'vertices.txt')) |
|
min_x = np.min(smpl_vtx_std[:, 0]) |
|
max_x = np.max(smpl_vtx_std[:, 0]) |
|
min_y = np.min(smpl_vtx_std[:, 1]) |
|
max_y = np.max(smpl_vtx_std[:, 1]) |
|
min_z = np.min(smpl_vtx_std[:, 2]) |
|
max_z = np.max(smpl_vtx_std[:, 2]) |
|
|
|
smpl_vtx_std[:, 0] = (smpl_vtx_std[:, 0] - min_x) / (max_x - min_x) |
|
smpl_vtx_std[:, 1] = (smpl_vtx_std[:, 1] - min_y) / (max_y - min_y) |
|
smpl_vtx_std[:, 2] = (smpl_vtx_std[:, 2] - min_z) / (max_z - min_z) |
|
smpl_vertex_code = np.float32(np.copy(smpl_vtx_std)) |
|
"""Load smpl faces & tetrahedrons""" |
|
smpl_faces = np.loadtxt(os.path.join(folder, 'faces.txt'), |
|
dtype=np.int32) - 1 |
|
smpl_face_code = (smpl_vertex_code[smpl_faces[:, 0]] + |
|
smpl_vertex_code[smpl_faces[:, 1]] + |
|
smpl_vertex_code[smpl_faces[:, 2]]) / 3.0 |
|
smpl_tetras = np.loadtxt(os.path.join(folder, 'tetrahedrons.txt'), |
|
dtype=np.int32) - 1 |
|
|
|
return smpl_vertex_code, smpl_face_code, smpl_faces, smpl_tetras |
|
|
|
|
|
def surface_field_deformation(xyz, de_nn_verts, de_nn_normals, ori_nn_verts, ori_nn_normals): |
|
''' |
|
xyz: [B, N, 3] |
|
de_nn_verts: [B, N, 3] |
|
de_nn_normals: [B, N, 3] |
|
ori_nn_verts: [B, N, 3] |
|
ori_nn_normals: [B, N, 3] |
|
''' |
|
vector=xyz-de_nn_verts |
|
delta=torch.sum(vector*de_nn_normals, dim=-1, keepdim=True)*ori_nn_normals |
|
ori_xyz=ori_nn_verts+delta |
|
|
|
return ori_xyz |
|
|
|
|
|
def feat_select(feat, select): |
|
|
|
|
|
|
|
|
|
|
|
dim = feat.shape[1] // 2 |
|
idx = torch.tile((1-select), (1, dim, 1))*dim + \ |
|
torch.arange(0, dim).unsqueeze(0).unsqueeze(2).type_as(select) |
|
feat_select = torch.gather(feat, 1, idx.long()) |
|
|
|
return feat_select |
|
|
|
def get_visibility_color(xy, z, faces): |
|
"""get the visibility of vertices |
|
|
|
Args: |
|
xy (torch.tensor): [N,2] |
|
z (torch.tensor): [N,1] |
|
faces (torch.tensor): [N,3] |
|
size (int): resolution of rendered image |
|
""" |
|
|
|
xyz = torch.cat((xy, -z), dim=1) |
|
xyz = (xyz + 1.0) / 2.0 |
|
faces = faces.long() |
|
|
|
rasterizer = Pytorch3dRasterizer(image_size=2**12) |
|
meshes_screen = Meshes(verts=xyz[None, ...], faces=faces[None, ...]) |
|
raster_settings = rasterizer.raster_settings |
|
|
|
pix_to_face, zbuf, bary_coords, dists = rasterize_meshes( |
|
meshes_screen, |
|
image_size=raster_settings.image_size, |
|
blur_radius=raster_settings.blur_radius, |
|
faces_per_pixel=raster_settings.faces_per_pixel, |
|
bin_size=raster_settings.bin_size, |
|
max_faces_per_bin=raster_settings.max_faces_per_bin, |
|
perspective_correct=raster_settings.perspective_correct, |
|
cull_backfaces=raster_settings.cull_backfaces, |
|
) |
|
|
|
vis_vertices_id = torch.unique(faces[torch.unique(pix_to_face), :]) |
|
vis_mask = torch.zeros(size=(z.shape[0], 1)) |
|
vis_mask[vis_vertices_id] = 1.0 |
|
|
|
|
|
edge_mask = torch.zeros_like(pix_to_face) |
|
offset=1 |
|
for i in range(-1-offset, 2+offset): |
|
for j in range(-1-offset, 2+offset): |
|
if i == 0 and j == 0: |
|
continue |
|
shifted = torch.roll(pix_to_face, shifts=(i,j), dims=(0,1)) |
|
edge_mask = torch.logical_or(edge_mask, shifted == -1) |
|
|
|
|
|
edge_faces = torch.unique(pix_to_face[edge_mask]) |
|
edge_vertices = torch.unique(faces[edge_faces]) |
|
vis_mask[edge_vertices] = 0.0 |
|
|
|
return vis_mask |
|
|
|
|
|
def get_visibility(xy, z, faces): |
|
"""get the visibility of vertices |
|
|
|
Args: |
|
xy (torch.tensor): [N,2] |
|
z (torch.tensor): [N,1] |
|
faces (torch.tensor): [N,3] |
|
size (int): resolution of rendered image |
|
""" |
|
|
|
xyz = torch.cat((xy, -z), dim=1) |
|
xyz = (xyz + 1.0) / 2.0 |
|
faces = faces.long() |
|
|
|
rasterizer = Pytorch3dRasterizer(image_size=2**12) |
|
meshes_screen = Meshes(verts=xyz[None, ...], faces=faces[None, ...]) |
|
raster_settings = rasterizer.raster_settings |
|
|
|
pix_to_face, zbuf, bary_coords, dists = rasterize_meshes( |
|
meshes_screen, |
|
image_size=raster_settings.image_size, |
|
blur_radius=raster_settings.blur_radius, |
|
faces_per_pixel=raster_settings.faces_per_pixel, |
|
bin_size=raster_settings.bin_size, |
|
max_faces_per_bin=raster_settings.max_faces_per_bin, |
|
perspective_correct=raster_settings.perspective_correct, |
|
cull_backfaces=raster_settings.cull_backfaces, |
|
) |
|
|
|
vis_vertices_id = torch.unique(faces[torch.unique(pix_to_face), :]) |
|
vis_mask = torch.zeros(size=(z.shape[0], 1)) |
|
vis_mask[vis_vertices_id] = 1.0 |
|
|
|
|
|
|
|
|
|
return vis_mask |
|
|
|
|
|
def barycentric_coordinates_of_projection(points, vertices): |
|
''' https://github.com/MPI-IS/mesh/blob/master/mesh/geometry/barycentric_coordinates_of_projection.py |
|
''' |
|
"""Given a point, gives projected coords of that point to a triangle |
|
in barycentric coordinates. |
|
See |
|
**Heidrich**, Computing the Barycentric Coordinates of a Projected Point, JGT 05 |
|
at http://www.cs.ubc.ca/~heidrich/Papers/JGT.05.pdf |
|
|
|
:param p: point to project. [B, 3] |
|
:param v0: first vertex of triangles. [B, 3] |
|
:returns: barycentric coordinates of ``p``'s projection in triangle defined by ``q``, ``u``, ``v`` |
|
vectorized so ``p``, ``q``, ``u``, ``v`` can all be ``3xN`` |
|
""" |
|
|
|
v0, v1, v2 = vertices[:, 0], vertices[:, 1], vertices[:, 2] |
|
p = points |
|
|
|
q = v0 |
|
u = v1 - v0 |
|
v = v2 - v0 |
|
n = torch.cross(u, v) |
|
s = torch.sum(n * n, dim=1) |
|
|
|
|
|
|
|
|
|
s[s == 0] = 1e-6 |
|
oneOver4ASquared = 1.0 / s |
|
w = p - q |
|
b2 = torch.sum(torch.cross(u, w) * n, dim=1) * oneOver4ASquared |
|
b1 = torch.sum(torch.cross(w, v) * n, dim=1) * oneOver4ASquared |
|
weights = torch.stack((1 - b1 - b2, b1, b2), dim=-1) |
|
|
|
|
|
return weights |
|
|
|
|
|
def cal_sdf_batch(verts, faces, cmaps, vis, points): |
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
Bsize = points.shape[0] |
|
|
|
normals = Meshes(verts, faces).verts_normals_padded() |
|
|
|
|
|
|
|
|
|
|
|
if verts.shape[1] == 10475: |
|
faces = faces[:, ~SMPLX().smplx_eyeball_fid_mask] |
|
mouth_faces = torch.as_tensor( |
|
SMPLX().smplx_mouth_fid).unsqueeze(0).repeat(Bsize, 1, |
|
1).to(faces.device) |
|
faces = torch.cat([faces, mouth_faces], dim=1) |
|
|
|
triangles = face_vertices(verts, faces) |
|
normals = face_vertices(normals, faces) |
|
cmaps = face_vertices(cmaps, faces) |
|
vis = face_vertices(vis, faces) |
|
|
|
residues, pts_ind, _ = point_to_mesh_distance(points, triangles) |
|
closest_triangles = torch.gather( |
|
triangles, 1, pts_ind[:, :, None, None].expand(-1, -1, 3, |
|
3)).view(-1, 3, 3) |
|
closest_normals = torch.gather( |
|
normals, 1, pts_ind[:, :, None, None].expand(-1, -1, 3, |
|
3)).view(-1, 3, 3) |
|
closest_cmaps = torch.gather( |
|
cmaps, 1, pts_ind[:, :, None, None].expand(-1, -1, 3, |
|
3)).view(-1, 3, 3) |
|
closest_vis = torch.gather(vis, 1, pts_ind[:, :, None, |
|
None].expand(-1, -1, 3, |
|
1)).view(-1, 3, 1) |
|
bary_weights = barycentric_coordinates_of_projection( |
|
points.view(-1, 3), closest_triangles) |
|
|
|
pts_cmap = (closest_cmaps * bary_weights[:, :, None]).sum(1).unsqueeze(0) |
|
pts_vis = (closest_vis * |
|
bary_weights[:, :, None]).sum(1).unsqueeze(0).ge(1e-1) |
|
pts_norm = (closest_normals * |
|
bary_weights[:, :, None]).sum(1).unsqueeze(0) * torch.tensor( |
|
[-1.0, 1.0, -1.0]).type_as(normals) |
|
pts_norm = F.normalize(pts_norm, dim=2) |
|
pts_dist = torch.sqrt(residues) / torch.sqrt(torch.tensor(3)) |
|
|
|
pts_signs = 2.0 * (check_sign(verts, faces[0], points).float() - 0.5) |
|
pts_sdf = (pts_dist * pts_signs).unsqueeze(-1) |
|
|
|
return pts_sdf.view(Bsize, -1, |
|
1), pts_norm.view(Bsize, -1, 3), pts_cmap.view( |
|
Bsize, -1, 3), pts_vis.view(Bsize, -1, 1) |
|
|
|
|
|
def orthogonal(points, calibrations, transforms=None): |
|
''' |
|
Compute the orthogonal projections of 3D points into the image plane by given projection matrix |
|
:param points: [B, 3, N] Tensor of 3D points |
|
:param calibrations: [B, 3, 4] Tensor of projection matrix |
|
:param transforms: [B, 2, 3] Tensor of image transform matrix |
|
:return: xyz: [B, 3, N] Tensor of xyz coordinates in the image plane |
|
''' |
|
rot = calibrations[:, :3, :3] |
|
trans = calibrations[:, :3, 3:4] |
|
pts = torch.baddbmm(trans, rot, points) |
|
if transforms is not None: |
|
scale = transforms[:2, :2] |
|
shift = transforms[:2, 2:3] |
|
pts[:, :2, :] = torch.baddbmm(shift, scale, pts[:, :2, :]) |
|
return pts |
|
|
|
|
|
def projection(points, calib): |
|
if torch.is_tensor(points): |
|
calib = torch.as_tensor(calib) if not torch.is_tensor(calib) else calib |
|
return torch.mm(calib[:3, :3], points.T).T + calib[:3, 3] |
|
else: |
|
return np.matmul(calib[:3, :3], points.T).T + calib[:3, 3] |
|
|
|
|
|
def load_calib(calib_path): |
|
calib_data = np.loadtxt(calib_path, dtype=float) |
|
extrinsic = calib_data[:4, :4] |
|
intrinsic = calib_data[4:8, :4] |
|
calib_mat = np.matmul(intrinsic, extrinsic) |
|
calib_mat = torch.from_numpy(calib_mat).float() |
|
return calib_mat |
|
|
|
|
|
def load_obj_mesh_for_Hoppe(mesh_file): |
|
vertex_data = [] |
|
face_data = [] |
|
|
|
if isinstance(mesh_file, str): |
|
f = open(mesh_file, "r") |
|
else: |
|
f = mesh_file |
|
for line in f: |
|
if isinstance(line, bytes): |
|
line = line.decode("utf-8") |
|
if line.startswith('#'): |
|
continue |
|
values = line.split() |
|
if not values: |
|
continue |
|
|
|
if values[0] == 'v': |
|
v = list(map(float, values[1:4])) |
|
vertex_data.append(v) |
|
|
|
elif values[0] == 'f': |
|
|
|
if len(values) > 4: |
|
f = list(map(lambda x: int(x.split('/')[0]), values[1:4])) |
|
face_data.append(f) |
|
f = list( |
|
map(lambda x: int(x.split('/')[0]), |
|
[values[3], values[4], values[1]])) |
|
face_data.append(f) |
|
|
|
else: |
|
f = list(map(lambda x: int(x.split('/')[0]), values[1:4])) |
|
face_data.append(f) |
|
|
|
vertices = np.array(vertex_data) |
|
faces = np.array(face_data) |
|
faces[faces > 0] -= 1 |
|
|
|
normals, _ = compute_normal(vertices, faces) |
|
|
|
return vertices, normals, faces |
|
|
|
|
|
def load_obj_mesh_with_color(mesh_file): |
|
vertex_data = [] |
|
color_data = [] |
|
face_data = [] |
|
|
|
if isinstance(mesh_file, str): |
|
f = open(mesh_file, "r") |
|
else: |
|
f = mesh_file |
|
for line in f: |
|
if isinstance(line, bytes): |
|
line = line.decode("utf-8") |
|
if line.startswith('#'): |
|
continue |
|
values = line.split() |
|
if not values: |
|
continue |
|
|
|
if values[0] == 'v': |
|
v = list(map(float, values[1:4])) |
|
vertex_data.append(v) |
|
c = list(map(float, values[4:7])) |
|
color_data.append(c) |
|
|
|
elif values[0] == 'f': |
|
|
|
if len(values) > 4: |
|
f = list(map(lambda x: int(x.split('/')[0]), values[1:4])) |
|
face_data.append(f) |
|
f = list( |
|
map(lambda x: int(x.split('/')[0]), |
|
[values[3], values[4], values[1]])) |
|
face_data.append(f) |
|
|
|
else: |
|
f = list(map(lambda x: int(x.split('/')[0]), values[1:4])) |
|
face_data.append(f) |
|
|
|
vertices = np.array(vertex_data) |
|
colors = np.array(color_data) |
|
faces = np.array(face_data) |
|
faces[faces > 0] -= 1 |
|
|
|
return vertices, colors, faces |
|
|
|
|
|
def load_obj_mesh(mesh_file, with_normal=False, with_texture=False): |
|
vertex_data = [] |
|
norm_data = [] |
|
uv_data = [] |
|
|
|
face_data = [] |
|
face_norm_data = [] |
|
face_uv_data = [] |
|
|
|
if isinstance(mesh_file, str): |
|
f = open(mesh_file, "r") |
|
else: |
|
f = mesh_file |
|
for line in f: |
|
if isinstance(line, bytes): |
|
line = line.decode("utf-8") |
|
if line.startswith('#'): |
|
continue |
|
values = line.split() |
|
if not values: |
|
continue |
|
|
|
if values[0] == 'v': |
|
v = list(map(float, values[1:4])) |
|
vertex_data.append(v) |
|
elif values[0] == 'vn': |
|
vn = list(map(float, values[1:4])) |
|
norm_data.append(vn) |
|
elif values[0] == 'vt': |
|
vt = list(map(float, values[1:3])) |
|
uv_data.append(vt) |
|
|
|
elif values[0] == 'f': |
|
|
|
if len(values) > 4: |
|
f = list(map(lambda x: int(x.split('/')[0]), values[1:4])) |
|
face_data.append(f) |
|
f = list( |
|
map(lambda x: int(x.split('/')[0]), |
|
[values[3], values[4], values[1]])) |
|
face_data.append(f) |
|
|
|
else: |
|
f = list(map(lambda x: int(x.split('/')[0]), values[1:4])) |
|
face_data.append(f) |
|
|
|
|
|
if len(values[1].split('/')) >= 2: |
|
|
|
if len(values) > 4: |
|
f = list(map(lambda x: int(x.split('/')[1]), values[1:4])) |
|
face_uv_data.append(f) |
|
f = list( |
|
map(lambda x: int(x.split('/')[1]), |
|
[values[3], values[4], values[1]])) |
|
face_uv_data.append(f) |
|
|
|
elif len(values[1].split('/')[1]) != 0: |
|
f = list(map(lambda x: int(x.split('/')[1]), values[1:4])) |
|
face_uv_data.append(f) |
|
|
|
if len(values[1].split('/')) == 3: |
|
|
|
if len(values) > 4: |
|
f = list(map(lambda x: int(x.split('/')[2]), values[1:4])) |
|
face_norm_data.append(f) |
|
f = list( |
|
map(lambda x: int(x.split('/')[2]), |
|
[values[3], values[4], values[1]])) |
|
face_norm_data.append(f) |
|
|
|
elif len(values[1].split('/')[2]) != 0: |
|
f = list(map(lambda x: int(x.split('/')[2]), values[1:4])) |
|
face_norm_data.append(f) |
|
|
|
vertices = np.array(vertex_data) |
|
faces = np.array(face_data) |
|
faces[faces > 0] -= 1 |
|
|
|
if with_texture and with_normal: |
|
uvs = np.array(uv_data) |
|
face_uvs = np.array(face_uv_data) |
|
face_uvs[face_uvs > 0] -= 1 |
|
norms = np.array(norm_data) |
|
if norms.shape[0] == 0: |
|
norms, _ = compute_normal(vertices, faces) |
|
face_normals = faces |
|
else: |
|
norms = normalize_v3(norms) |
|
face_normals = np.array(face_norm_data) |
|
face_normals[face_normals > 0] -= 1 |
|
return vertices, faces, norms, face_normals, uvs, face_uvs |
|
|
|
if with_texture: |
|
uvs = np.array(uv_data) |
|
face_uvs = np.array(face_uv_data) - 1 |
|
return vertices, faces, uvs, face_uvs |
|
|
|
if with_normal: |
|
norms = np.array(norm_data) |
|
norms = normalize_v3(norms) |
|
face_normals = np.array(face_norm_data) - 1 |
|
return vertices, faces, norms, face_normals |
|
|
|
return vertices, faces |
|
|
|
|
|
def normalize_v3(arr): |
|
''' Normalize a numpy array of 3 component vectors shape=(n,3) ''' |
|
lens = np.sqrt(arr[:, 0]**2 + arr[:, 1]**2 + arr[:, 2]**2) |
|
eps = 0.00000001 |
|
lens[lens < eps] = eps |
|
arr[:, 0] /= lens |
|
arr[:, 1] /= lens |
|
arr[:, 2] /= lens |
|
return arr |
|
|
|
|
|
def compute_normal(vertices, faces): |
|
|
|
vert_norms = np.zeros(vertices.shape, dtype=vertices.dtype) |
|
|
|
tris = vertices[faces] |
|
|
|
face_norms = np.cross(tris[::, 1] - tris[::, 0], tris[::, 2] - tris[::, 0]) |
|
|
|
|
|
normalize_v3(face_norms) |
|
|
|
|
|
|
|
|
|
vert_norms[faces[:, 0]] += face_norms |
|
vert_norms[faces[:, 1]] += face_norms |
|
vert_norms[faces[:, 2]] += face_norms |
|
normalize_v3(vert_norms) |
|
|
|
return vert_norms, face_norms |
|
|
|
|
|
def save_obj_mesh(mesh_path, verts, faces): |
|
file = open(mesh_path, 'w') |
|
for v in verts: |
|
file.write('v %.4f %.4f %.4f\n' % (v[0], v[1], v[2])) |
|
for f in faces: |
|
f_plus = f + 1 |
|
file.write('f %d %d %d\n' % (f_plus[0], f_plus[1], f_plus[2])) |
|
file.close() |
|
|
|
|
|
def save_obj_mesh_with_color(mesh_path, verts, faces, colors): |
|
file = open(mesh_path, 'w') |
|
|
|
for idx, v in enumerate(verts): |
|
c = colors[idx] |
|
file.write('v %.4f %.4f %.4f %.4f %.4f %.4f\n' % |
|
(v[0], v[1], v[2], c[0], c[1], c[2])) |
|
for f in faces: |
|
f_plus = f + 1 |
|
file.write('f %d %d %d\n' % (f_plus[0], f_plus[1], f_plus[2])) |
|
file.close() |
|
|
|
|
|
def calculate_mIoU(outputs, labels): |
|
|
|
SMOOTH = 1e-6 |
|
|
|
outputs = outputs.int() |
|
labels = labels.int() |
|
|
|
intersection = ( |
|
outputs |
|
& labels).float().sum() |
|
union = (outputs | labels).float().sum() |
|
|
|
iou = (intersection + SMOOTH) / (union + SMOOTH |
|
) |
|
|
|
thresholded = torch.clamp( |
|
20 * (iou - 0.5), 0, |
|
10).ceil() / 10 |
|
|
|
return thresholded.mean().detach().cpu().numpy( |
|
) |
|
|
|
|
|
def mask_filter(mask, number=1000): |
|
"""only keep {number} True items within a mask |
|
|
|
Args: |
|
mask (bool array): [N, ] |
|
number (int, optional): total True item. Defaults to 1000. |
|
""" |
|
true_ids = np.where(mask)[0] |
|
keep_ids = np.random.choice(true_ids, size=number) |
|
filter_mask = np.isin(np.arange(len(mask)), keep_ids) |
|
|
|
return filter_mask |
|
|
|
|
|
def query_mesh(path): |
|
|
|
verts, faces_idx, _ = load_obj(path) |
|
|
|
return verts, faces_idx.verts_idx |
|
|
|
|
|
def add_alpha(colors, alpha=0.7): |
|
|
|
colors_pad = np.pad(colors, ((0, 0), (0, 1)), |
|
mode='constant', |
|
constant_values=alpha) |
|
|
|
return colors_pad |
|
|
|
|
|
def get_optim_grid_image(per_loop_lst, loss=None, nrow=4, type='smpl'): |
|
|
|
font_path = os.path.join(os.path.dirname(__file__), "tbfo.ttf") |
|
font = ImageFont.truetype(font_path, 30) |
|
grid_img = torchvision.utils.make_grid(torch.cat(per_loop_lst, dim=0), |
|
nrow=nrow) |
|
grid_img = Image.fromarray( |
|
((grid_img.permute(1, 2, 0).detach().cpu().numpy() + 1.0) * 0.5 * |
|
255.0).astype(np.uint8)) |
|
|
|
|
|
draw = ImageDraw.Draw(grid_img) |
|
grid_size = 512 |
|
if loss is not None: |
|
draw.text((10, 5), f"error: {loss:.3f}", (255, 0, 0), font=font) |
|
|
|
if type == 'smpl': |
|
for col_id, col_txt in enumerate([ |
|
'image', 'smpl-norm(render)', 'cloth-norm(pred)', 'diff-norm', |
|
'diff-mask' |
|
]): |
|
draw.text((10 + (col_id * grid_size), 5), |
|
col_txt, (255, 0, 0), |
|
font=font) |
|
elif type == 'cloth': |
|
for col_id, col_txt in enumerate( |
|
['cloth-norm(recon)']): |
|
draw.text((10 + (col_id * grid_size), 5), |
|
col_txt, (255, 0, 0), |
|
font=font) |
|
for col_id, col_txt in enumerate(['0', '90', '180', '270']): |
|
draw.text((10 + (col_id * grid_size), grid_size * 2 + 5), |
|
col_txt, (255, 0, 0), |
|
font=font) |
|
else: |
|
print(f"{type} should be 'smpl' or 'cloth'") |
|
|
|
grid_img = grid_img.resize((grid_img.size[0], grid_img.size[1]), |
|
Image.LANCZOS) |
|
|
|
return grid_img |
|
|
|
|
|
def clean_mesh(verts, faces): |
|
|
|
device = verts.device |
|
|
|
mesh_lst = trimesh.Trimesh(verts.detach().cpu().numpy(), |
|
faces.detach().cpu().numpy()) |
|
mesh_lst = mesh_lst.split(only_watertight=False) |
|
comp_num = [mesh.vertices.shape[0] for mesh in mesh_lst] |
|
mesh_clean = mesh_lst[comp_num.index(max(comp_num))] |
|
|
|
final_verts = torch.as_tensor(mesh_clean.vertices).float().to(device) |
|
final_faces = torch.as_tensor(mesh_clean.faces).int().to(device) |
|
|
|
return final_verts, final_faces |
|
|
|
|
|
def merge_mesh(verts_A, faces_A, verts_B, faces_B, color=False): |
|
|
|
sep_mesh = trimesh.Trimesh(np.concatenate([verts_A, verts_B], axis=0), |
|
np.concatenate( |
|
[faces_A, faces_B + faces_A.max() + 1], |
|
axis=0), |
|
maintain_order=True, |
|
process=False) |
|
if color: |
|
colors = np.ones_like(sep_mesh.vertices) |
|
colors[:verts_A.shape[0]] *= np.array([255.0, 0.0, 0.0]) |
|
colors[verts_A.shape[0]:] *= np.array([0.0, 255.0, 0.0]) |
|
sep_mesh.visual.vertex_colors = colors |
|
|
|
|
|
|
|
|
|
return sep_mesh |
|
|
|
|
|
def mesh_move(mesh_lst, step, scale=1.0): |
|
|
|
trans = np.array([1.0, 0.0, 0.0]) * step |
|
|
|
resize_matrix = trimesh.transformations.scale_and_translate( |
|
scale=(scale), translate=trans) |
|
|
|
results = [] |
|
|
|
for mesh in mesh_lst: |
|
mesh.apply_transform(resize_matrix) |
|
results.append(mesh) |
|
|
|
return results |
|
|
|
|
|
def rescale_smpl(fitted_path, scale=100, translate=(0, 0, 0)): |
|
|
|
fitted_body = trimesh.load(fitted_path, |
|
process=False, |
|
maintain_order=True, |
|
skip_materials=True) |
|
resize_matrix = trimesh.transformations.scale_and_translate( |
|
scale=(scale), translate=translate) |
|
|
|
fitted_body.apply_transform(resize_matrix) |
|
|
|
return np.array(fitted_body.vertices) |
|
|
|
|
|
class SMPLX(): |
|
|
|
def __init__(self): |
|
|
|
self.current_dir = "smpl_related" |
|
|
|
self.smpl_verts_path = osp.join(self.current_dir, |
|
"smpl_data/smpl_verts.npy") |
|
self.smpl_faces_path = osp.join(self.current_dir, |
|
"smpl_data/smpl_faces.npy") |
|
self.smplx_verts_path = osp.join(self.current_dir, |
|
"smpl_data/smplx_verts.npy") |
|
self.smplx_faces_path = osp.join(self.current_dir, |
|
"smpl_data/smplx_faces.npy") |
|
self.cmap_vert_path = osp.join(self.current_dir, |
|
"smpl_data/smplx_cmap.npy") |
|
|
|
self.smplx_to_smplx_path = osp.join(self.current_dir, |
|
"smpl_data/smplx_to_smpl.pkl") |
|
|
|
self.smplx_eyeball_fid = osp.join(self.current_dir, |
|
"smpl_data/eyeball_fid.npy") |
|
self.smplx_fill_mouth_fid = osp.join(self.current_dir, |
|
"smpl_data/fill_mouth_fid.npy") |
|
|
|
self.smplx_faces = np.load(self.smplx_faces_path) |
|
self.smplx_verts = np.load(self.smplx_verts_path) |
|
self.smpl_verts = np.load(self.smpl_verts_path) |
|
self.smpl_faces = np.load(self.smpl_faces_path) |
|
|
|
self.smplx_eyeball_fid_mask = np.load(self.smplx_eyeball_fid) |
|
self.smplx_mouth_fid = np.load(self.smplx_fill_mouth_fid) |
|
|
|
self.smplx_to_smpl = cPickle.load(open(self.smplx_to_smplx_path, 'rb')) |
|
|
|
self.model_dir = osp.join(self.current_dir, "models") |
|
|
|
|
|
|
|
|
|
|
|
self.smplx_flame_vid_path = osp.join( |
|
self.current_dir, "smpl_data/FLAME_SMPLX_vertex_ids.npy" |
|
) |
|
self.smplx_mano_vid_path = osp.join(self.current_dir, "smpl_data/MANO_SMPLX_vertex_ids.pkl") |
|
|
|
|
|
|
|
self.smpl_vert_seg_path = osp.join(self.current_dir, "smpl_vert_segmentation.json") |
|
self.front_flame_path = osp.join(self.current_dir, "smpl_data/FLAME_face_mask_ids.npy") |
|
self.smplx_vertex_lmkid_path = osp.join( |
|
self.current_dir, "smpl_data/smplx_vertex_lmkid.npy" |
|
) |
|
|
|
self.smplx_vertex_lmkid = np.load(self.smplx_vertex_lmkid_path) |
|
self.smpl_vert_seg = json.load(open(self.smpl_vert_seg_path)) |
|
self.smpl_mano_vid = np.concatenate( |
|
[ |
|
self.smpl_vert_seg["rightHand"], self.smpl_vert_seg["rightHandIndex1"], |
|
self.smpl_vert_seg["leftHand"], self.smpl_vert_seg["leftHandIndex1"] |
|
] |
|
) |
|
|
|
self.smplx_mano_vid_dict = np.load(self.smplx_mano_vid_path, allow_pickle=True) |
|
self.smplx_mano_vid = np.concatenate( |
|
[self.smplx_mano_vid_dict["left_hand"], self.smplx_mano_vid_dict["right_hand"]] |
|
) |
|
self.smplx_flame_vid = np.load(self.smplx_flame_vid_path, allow_pickle=True) |
|
self.smplx_front_flame_vid = self.smplx_flame_vid[np.load(self.front_flame_path)] |
|
|
|
|
|
|
|
self.smplx_mano_vertex_mask = torch.zeros(self.smplx_verts.shape[0], ).index_fill_( |
|
0, torch.tensor(self.smplx_mano_vid), 1.0 |
|
) |
|
self.smpl_mano_vertex_mask = torch.zeros(self.smpl_verts.shape[0], ).index_fill_( |
|
0, torch.tensor(self.smpl_mano_vid), 1.0 |
|
) |
|
|
|
|
|
self.front_flame_vertex_mask = torch.zeros(self.smplx_verts.shape[0], ).index_fill_( |
|
0, torch.tensor(self.smplx_front_flame_vid), 1.0 |
|
) |
|
self.eyeball_vertex_mask = torch.zeros(self.smplx_verts.shape[0], ).index_fill_( |
|
0, torch.tensor(self.smplx_faces[self.smplx_eyeball_fid_mask].flatten()), 1.0 |
|
) |
|
|
|
|
|
self.ghum_smpl_pairs = torch.tensor( |
|
[ |
|
(0, 24), (2, 26), (5, 25), (7, 28), (8, 27), (11, 16), (12, 17), (13, 18), (14, 19), |
|
(15, 20), (16, 21), (17, 39), (18, 44), (19, 36), (20, 41), (21, 35), (22, 40), |
|
(23, 1), (24, 2), (25, 4), (26, 5), (27, 7), (28, 8), (29, 31), (30, 34), (31, 29), |
|
(32, 32) |
|
] |
|
).long() |
|
|
|
|
|
self.smpl_joint_ids_24 = np.arange(22).tolist() + [68, 73] |
|
self.smpl_joint_ids_24_pixie = np.arange(22).tolist() + [61 + 68, 72 + 68] |
|
self.smpl_joint_ids_45 = np.arange(22).tolist() + [68, 73] + np.arange(55, 76).tolist() |
|
|
|
self.extra_joint_ids = np.array( |
|
[ |
|
61, 72, 66, 69, 58, 68, 57, 56, 64, 59, 67, 75, 70, 65, 60, 61, 63, 62, 76, 71, 72, |
|
74, 73 |
|
] |
|
) |
|
|
|
self.extra_joint_ids += 68 |
|
|
|
self.smpl_joint_ids_45_pixie = (np.arange(22).tolist() + self.extra_joint_ids.tolist()) |
|
|
|
|
|
def cmap_smpl_vids(self, type): |
|
|
|
|
|
|
|
|
|
|
|
cmap_smplx = torch.as_tensor(np.load(self.cmap_vert_path)).float() |
|
if type == 'smplx': |
|
return cmap_smplx |
|
elif type == 'smpl': |
|
bc = torch.as_tensor(self.smplx_to_smpl['bc'].astype(np.float32)) |
|
closest_faces = self.smplx_to_smpl['closest_faces'].astype( |
|
np.int32) |
|
|
|
cmap_smpl = torch.einsum('bij, bi->bj', cmap_smplx[closest_faces], |
|
bc) |
|
|
|
return cmap_smpl |
|
|
|
|
|
|
|
|
|
|
|
def apply_face_mask(mesh, face_mask): |
|
|
|
mesh.update_faces(face_mask) |
|
mesh.remove_unreferenced_vertices() |
|
|
|
return mesh |
|
|
|
|
|
def apply_vertex_mask(mesh, vertex_mask): |
|
|
|
faces_mask = vertex_mask[mesh.faces].any(dim=1) |
|
mesh = apply_face_mask(mesh, faces_mask) |
|
|
|
return mesh |
|
|
|
|
|
def apply_vertex_face_mask(mesh, vertex_mask, face_mask): |
|
|
|
faces_mask = vertex_mask[mesh.faces].any(dim=1) * torch.tensor(face_mask) |
|
mesh.update_faces(faces_mask) |
|
mesh.remove_unreferenced_vertices() |
|
|
|
return mesh |
|
|
|
|
|
def clean_floats(mesh): |
|
thres = mesh.vertices.shape[0] * 1e-2 |
|
mesh_lst = mesh.split(only_watertight=False) |
|
clean_mesh_lst = [mesh for mesh in mesh_lst if mesh.vertices.shape[0] > thres] |
|
return sum(clean_mesh_lst) |
|
|
|
def isin(input, test_elements): |
|
|
|
input = input.unsqueeze(-1) |
|
test_elements = test_elements.unsqueeze(0) |
|
|
|
|
|
comparison_result = torch.eq(input, test_elements) |
|
|
|
|
|
isin_result = comparison_result.sum(-1).bool() |
|
|
|
return isin_result |
|
|
|
|
|
|
|
def part_removal(full_mesh, part_mesh, thres, device, smpl_obj, region, clean=True): |
|
|
|
smpl_tree = cKDTree(smpl_obj.vertices) |
|
SMPL_container = SMPLX() |
|
|
|
from lib.dataset.PointFeat import ECON_PointFeat |
|
|
|
part_extractor = ECON_PointFeat( |
|
torch.tensor(part_mesh.vertices).unsqueeze(0).to(device), |
|
torch.tensor(part_mesh.faces).unsqueeze(0).to(device) |
|
) |
|
|
|
(part_dist, _) = part_extractor.query(torch.tensor(full_mesh.vertices).unsqueeze(0).to(device)) |
|
|
|
remove_mask = part_dist < thres |
|
|
|
if region == "hand": |
|
_, idx = smpl_tree.query(full_mesh.vertices, k=1) |
|
full_lmkid = SMPL_container.smplx_vertex_lmkid[idx] |
|
remove_mask = torch.logical_and( |
|
remove_mask, |
|
torch.tensor(full_lmkid >= 20).type_as(remove_mask).unsqueeze(0) |
|
) |
|
|
|
elif region == "face": |
|
_, idx = smpl_tree.query(full_mesh.vertices, k=5) |
|
face_space_mask = isin( |
|
torch.tensor(idx), torch.tensor(SMPL_container.smplx_front_flame_vid) |
|
) |
|
remove_mask = torch.logical_and( |
|
remove_mask, |
|
face_space_mask.any(dim=1).type_as(remove_mask).unsqueeze(0) |
|
) |
|
|
|
BNI_part_mask = ~(remove_mask).flatten()[full_mesh.faces].any(dim=1) |
|
full_mesh.update_faces(BNI_part_mask.detach().cpu()) |
|
full_mesh.remove_unreferenced_vertices() |
|
|
|
if clean: |
|
full_mesh = clean_floats(full_mesh) |
|
|
|
return full_mesh |
|
|
|
def keep_largest(mesh): |
|
mesh_lst = mesh.split(only_watertight=False) |
|
keep_mesh = mesh_lst[0] |
|
for mesh in mesh_lst: |
|
if mesh.vertices.shape[0] > keep_mesh.vertices.shape[0]: |
|
keep_mesh = mesh |
|
return keep_mesh |
|
|
|
|
|
def poisson(mesh, obj_path, depth=10, decimation=True): |
|
|
|
pcd_path = obj_path[:-4] + "_soups.ply" |
|
assert (mesh.vertex_normals.shape[1] == 3) |
|
mesh.export(pcd_path) |
|
pcl = o3d.io.read_point_cloud(pcd_path) |
|
with o3d.utility.VerbosityContextManager(o3d.utility.VerbosityLevel.Error) as cm: |
|
mesh, densities = o3d.geometry.TriangleMesh.create_from_point_cloud_poisson( |
|
pcl, depth=depth, n_threads=6 |
|
) |
|
|
|
|
|
largest_mesh = keep_largest(trimesh.Trimesh(np.array(mesh.vertices), np.array(mesh.triangles))) |
|
largest_mesh.export(obj_path) |
|
|
|
if decimation: |
|
|
|
low_res_mesh = largest_mesh.simplify_quadratic_decimation(50000) |
|
return low_res_mesh |
|
else: |
|
return largest_mesh |