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change_hair_3090/hair_service_sd/momocv/MomocvFaceAlignment1K.py
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colomi 0eb61f3e60 初始化换发型项目:3个微服务代码 + 部署脚本
包含:
- hair_service_sd: 换发型/换发色算法服务 (端口 8801)
- photo_service: LoRA 训练调度服务 (端口 32678)
- stable-diffusion-webui: SD WebUI 推理服务 (端口 57860)
- kohya_ss_home: 训练环境代码
- meidaojia: 监控测试脚本
- setup.sh: 一键部署脚本 (conda环境恢复 + 配置生成 + 完整性检查)
- start_all_services.sh: 启动3个服务
- configure.ini.template: 路径模板化 (BASE_DIR自动推导)
- conda_envs/py310.yml: py310 环境定义

大文件 (weights/, models/, data/, conda_envs/*.tar.gz 等) 通过 .gitignore 排除,
由网盘单独上传。
2026-07-11 18:11:49 +08:00

452 lines
17 KiB
Python

import torch.nn as nn
import torch.utils.model_zoo as model_zoo
import torch
import numpy as np
import os
from utils import landmark_processor, umeyama
import cv2
__all__ = ['ResNet', 'resnet18', 'resnet34', 'resnet50', 'resnet101',
'resnet152']
model_urls = {
'resnet18': 'https://download.pytorch.org/models/resnet18-5c106cde.pth',
'resnet34': 'https://download.pytorch.org/models/resnet34-333f7ec4.pth',
'resnet50': 'https://download.pytorch.org/models/resnet50-19c8e357.pth',
'resnet101': 'https://download.pytorch.org/models/resnet101-5d3b4d8f.pth',
'resnet152': 'https://download.pytorch.org/models/resnet152-b121ed2d.pth',
}
def conv3x3(in_planes, out_planes, stride=1):
"""3x3 convolution with padding"""
return nn.Conv2d(in_planes, out_planes, kernel_size=3, stride=stride,
padding=1, bias=False)
def conv1x1(in_planes, out_planes, stride=1):
"""1x1 convolution"""
return nn.Conv2d(in_planes, out_planes, kernel_size=1, stride=stride, bias=False)
class BasicBlock(nn.Module):
expansion = 1
def __init__(self, inplanes, planes, stride=1, downsample=None):
super(BasicBlock, self).__init__()
self.conv1 = conv3x3(inplanes, planes, stride)
self.bn1 = nn.BatchNorm2d(planes)
self.relu = nn.ReLU(inplace=True)
self.conv2 = conv3x3(planes, planes)
self.bn2 = nn.BatchNorm2d(planes)
self.downsample = downsample
self.stride = stride
def forward(self, x):
identity = x
out = self.conv1(x)
out = self.bn1(out)
out = self.relu(out)
out = self.conv2(out)
out = self.bn2(out)
if self.downsample is not None:
identity = self.downsample(x)
out += identity
out = self.relu(out)
return out
class Bottleneck(nn.Module):
expansion = 4
def __init__(self, inplanes, planes, stride=1, downsample=None):
super(Bottleneck, self).__init__()
self.conv1 = conv1x1(inplanes, planes)
self.bn1 = nn.BatchNorm2d(planes)
self.conv2 = conv3x3(planes, planes, stride)
self.bn2 = nn.BatchNorm2d(planes)
self.conv3 = conv1x1(planes, planes * self.expansion)
self.bn3 = nn.BatchNorm2d(planes * self.expansion)
self.relu = nn.ReLU(inplace=True)
self.downsample = downsample
self.stride = stride
def forward(self, x):
identity = x
out = self.conv1(x)
out = self.bn1(out)
out = self.relu(out)
out = self.conv2(out)
out = self.bn2(out)
out = self.relu(out)
out = self.conv3(out)
out = self.bn3(out)
if self.downsample is not None:
identity = self.downsample(x)
out += identity
out = self.relu(out)
return out
class ResNet(nn.Module):
def __init__(self, block, layers, num_classes=1000, is_1k=False, zero_init_residual=False):
super(ResNet, self).__init__()
self.inplanes = 64
self.conv1 = nn.Conv2d(3, 64, kernel_size=7, stride=2, padding=3,
bias=False)
self.bn1 = nn.BatchNorm2d(64)
self.relu = nn.ReLU(inplace=True)
self.maxpool = nn.MaxPool2d(kernel_size=3, stride=2, padding=1)
self.layer1 = self._make_layer(block, 64, layers[0])
self.layer2 = self._make_layer(block, 128, layers[1], stride=2)
self.layer3 = self._make_layer(block, 256, layers[2], stride=2)
self.layer4 = self._make_layer(block, 512, layers[3], stride=2)
self.avgpool = nn.AdaptiveAvgPool2d((1, 1))
if is_1k:
self.fc = nn.Sequential(*[nn.Linear(512 * block.expansion, num_classes), nn.Tanh()])
else:
self.fc_key = nn.Sequential(*[nn.Linear(256 * block.expansion, 45 * 2), nn.Tanh()])
self.fc_ctrl = nn.Sequential(*[nn.Linear(256 * block.expansion, 48 * 2), nn.Tanh()])
self.is_1k = is_1k
for m in self.modules():
if isinstance(m, nn.Conv2d):
nn.init.kaiming_normal_(m.weight, mode='fan_out', nonlinearity='relu')
elif isinstance(m, nn.BatchNorm2d):
nn.init.constant_(m.weight, 1)
nn.init.constant_(m.bias, 0)
# Zero-initialize the last BN in each residual branch,
# so that the residual branch starts with zeros, and each residual block behaves like an identity.
# This improves the model by 0.2~0.3% according to https://arxiv.org/abs/1706.02677
if zero_init_residual:
for m in self.modules():
if isinstance(m, Bottleneck):
nn.init.constant_(m.bn3.weight, 0)
elif isinstance(m, BasicBlock):
nn.init.constant_(m.bn2.weight, 0)
def _make_layer(self, block, planes, blocks, stride=1):
downsample = None
if stride != 1 or self.inplanes != planes * block.expansion:
downsample = nn.Sequential(
conv1x1(self.inplanes, planes * block.expansion, stride),
nn.BatchNorm2d(planes * block.expansion),
)
layers = []
layers.append(block(self.inplanes, planes, stride, downsample))
self.inplanes = planes * block.expansion
for _ in range(1, blocks):
layers.append(block(self.inplanes, planes))
return nn.Sequential(*layers)
def forward(self, x):
x = self.conv1(x)
x = self.bn1(x)
x = self.relu(x)
x = self.maxpool(x)
x = self.layer1(x)
x = self.layer2(x)
x = self.layer3(x)
x = self.layer4(x)
if self.is_1k:
key = self.avgpool(x)
key = key.view(key.size(0), -1)
key = self.fc(key)
return key
else:
key, ctrl = torch.chunk(x, 2, dim=1)
key = self.avgpool(key)
key = key.view(key.size(0), -1)
key = self.fc_key(key)
ctrl = self.avgpool(ctrl)
ctrl = ctrl.view(ctrl.size(0), -1)
ctrl = self.fc_ctrl(ctrl)
return key, ctrl
def resnet18(pretrained=False, **kwargs):
"""Constructs a ResNet-18 model.
Args:
pretrained (bool): If True, returns a model pre-trained on ImageNet
"""
model = ResNet(BasicBlock, [2, 2, 2, 2], **kwargs)
if pretrained:
model.load_state_dict(model_zoo.load_url(model_urls['resnet18']), strict=False)
return model
def resnet34(pretrained=False, **kwargs):
"""Constructs a ResNet-34 model.
Args:
pretrained (bool): If True, returns a model pre-trained on ImageNet
"""
model = ResNet(BasicBlock, [3, 4, 6, 3], **kwargs)
if pretrained:
model.load_state_dict(model_zoo.load_url(model_urls['resnet34']))
return model
def resnet50(pretrained=False, **kwargs):
"""Constructs a ResNet-50 model.
Args:
pretrained (bool): If True, returns a model pre-trained on ImageNet
"""
model = ResNet(Bottleneck, [3, 4, 6, 3], **kwargs)
if pretrained:
model.load_state_dict(model_zoo.load_url(model_urls['resnet50']))
return model
def resnet101(pretrained=False, **kwargs):
"""Constructs a ResNet-101 model.
Args:
pretrained (bool): If True, returns a model pre-trained on ImageNet
"""
model = ResNet(Bottleneck, [3, 4, 23, 3], **kwargs)
if pretrained:
model.load_state_dict(model_zoo.load_url(model_urls['resnet101']))
return model
def resnet152(pretrained=False, **kwargs):
"""Constructs a ResNet-152 model.
Args:
pretrained (bool): If True, returns a model pre-trained on ImageNet
"""
model = ResNet(Bottleneck, [3, 8, 36, 3], **kwargs)
if pretrained:
model.load_state_dict(model_zoo.load_url(model_urls['resnet152']))
return model
class Model1k(nn.Module):
def __init__(self, gpu_id=None):
super(Model1k, self).__init__()
self.device = torch.device('cuda:{}'.format(gpu_id) if gpu_id is not None else 'cpu')
self.face_alignment_net = resnet18(pretrained=False, num_classes=1000 * 2, is_1k=True)
self.model_path, _ = os.path.split(os.path.realpath(__file__))
weights = torch.load(os.path.join(self.model_path, 'face_alignment_1k.pth'),
map_location=lambda storage, loc: storage)
self.load_state_dict(weights)
self.to(self.device)
self.eval()
def forward(self, imgs):
pred_key_pts = self.face_alignment_net(imgs)
pred_key_pts = pred_key_pts + 0.5
return pred_key_pts
class MomocvFaceAlignment1K(object):
def __init__(self, gpu_id=None):
self.gpu_id = gpu_id
self.device = torch.device('cuda:{}'.format(gpu_id) if gpu_id is not None else 'cpu')
self.face_alignment_net = Model1k(gpu_id)
# self.eye_alignment_net = get_left_eye_symbol()
# self.model_path, _ = os.path.split(os.path.realpath(__file__))
# weights = torch.load(os.path.join(self.model_path, 'LeftEye.pth'), map_location=lambda storage, loc: storage)
# self.eye_alignment_net.load_state_dict(weights)
# self.eye_alignment_net.to(self.device)
# self.eye_alignment_net.eval()
self.trackingFaceRects = []
print('conansherry MomocvFaceAlignment1K')
def forward(self, img_tensor):
fullyconnected1 = self.face_alignment_net(img_tensor).detach().cpu().numpy()
return fullyconnected1
def detect(self, img, landmarks):
dst_size = 256
landmarks_res = []
with torch.no_grad():
input_numpy = np.zeros((len(landmarks), 3, dst_size, dst_size), dtype=np.float32)
all_mat = []
for ix, landmark in enumerate(landmarks):
M = landmark_processor.get_transform_mat_full_face(landmark, dst_size)
all_mat.append(M)
tmp = cv2.warpAffine(img, M, (dst_size, dst_size))
# cv2.imshow('inp', tmp)
# cv2.waitKey()
input_numpy[ix, :, :, :] = tmp.transpose((2, 0, 1)).astype(np.float32) / 255
in_tensor = torch.from_numpy(input_numpy)
in_tensor = in_tensor.to(self.device)
fullyconnected1 = self.face_alignment_net(in_tensor).detach().cpu().numpy()
for ix, pts in enumerate(fullyconnected1):
orig_pts = (np.reshape(pts, (2, 1000)).transpose((1, 0)) * dst_size)
orig_pts = landmark_processor.transform_points(orig_pts, all_mat[ix], invert=True)
landmarks_res.append(orig_pts)
return landmarks_res
# def detect_eye(self, img, landmarks):
# dst_size = 96
# src_len = cv2.norm(landmarks[96] - landmarks[88])
# dst_len = 96 * 0.7
# degree = math.atan2(landmarks[88, 1] - landmarks[96, 1], landmarks[88, 0] - landmarks[96, 0])
# src_center = (landmarks[88] + landmarks[96]) / 2
# offset = np.array([0.5, 0.5]) * 96 - src_center
# left_M = cv2.getRotationMatrix2D((src_center[0], src_center[1]), math.degrees(degree), dst_len / src_len)
# left_M[:, 2] += offset
# left_eye_img = cv2.warpAffine(img, left_M, (dst_size, dst_size))
#
# dst_size = 96
# src_len = cv2.norm(landmarks[105] - landmarks[113])
# dst_len = 96 * 0.7
# degree = math.atan2(landmarks[113, 1] - landmarks[105, 1], landmarks[113, 0] - landmarks[105, 0])
# src_center = (landmarks[105] + landmarks[113]) / 2
# offset = np.array([0.5, 0.5]) * 96 - src_center
# right_M = cv2.getRotationMatrix2D((src_center[0], src_center[1]), math.degrees(degree), dst_len / src_len)
# right_M[:, 2] += offset
# right_eye_img = cv2.warpAffine(img, right_M, (dst_size, dst_size))
# right_eye_img = cv2.flip(right_eye_img, 1)
#
# # cv2.imshow('left_eye_img', left_eye_img)
# # cv2.imshow('right_eye_img', right_eye_img)
#
# with torch.no_grad():
# input_numpy = np.zeros((2, 3, dst_size, dst_size), dtype=np.float32)
# input_numpy[0, :, :, :] = left_eye_img.transpose((2, 0, 1)).astype(np.float32) / 255
# input_numpy[1, :, :, :] = right_eye_img.transpose((2, 0, 1)).astype(np.float32) / 255
# in_tensor = torch.from_numpy(input_numpy)
# in_tensor = in_tensor.to(self.device)
# fullyconnected1 = self.eye_alignment_net(in_tensor).detach().cpu().numpy()
# landmarks_res = []
# all_mat = [left_M, right_M]
# for ix, pts in enumerate(fullyconnected1):
# orig_pts = (np.reshape(pts, (2, 17)).transpose((1, 0)) * dst_size)
# if ix == 1:
# orig_pts[:, 0] = dst_size - orig_pts[:, 0]
# orig_pts = landmark_processor.transform_points(orig_pts, all_mat[ix], invert=True)
# landmarks_res.append(orig_pts)
# return landmarks_res
def stable_forward(self, image, detected_faces, reset=False):
if reset is True:
self.trackingFaceRects = []
if len(self.trackingFaceRects) == 0:
for face_rect in detected_faces:
new_tracking_rect = [face_rect, True, [0, 0], 0, None]
self.trackingFaceRects.append(new_tracking_rect)
with torch.no_grad():
landmarks = []
for ix, tracking_face_rect in enumerate(self.trackingFaceRects):
if tracking_face_rect[1] == True:
d = tracking_face_rect[0]
src_center = np.array([d[2] - (d[2] - d[0]) / 2.0, d[3] - (d[3] - d[1]) / 2.0])
rotate_degree = tracking_face_rect[3]
scale = 256 * 0.6 / min(d[2] - d[0], d[3] - d[1])
dst_center = np.array([0.5, 0.5]) * 256
offset = dst_center - src_center
M = cv2.getRotationMatrix2D((src_center[0], src_center[1]), rotate_degree, scale)
M[:, 2] += offset
else:
rotate_degree = 0
M = landmark_processor.get_transform_mat_mmcv_bigger(tracking_face_rect[4], 256)
inp = cv2.warpAffine(image, M, (256, 256))
# cv2.imshow('inp_{}'.format(ix), inp)
# cv2.waitKey()
orig_inp = inp
inp = inp.transpose((2, 0, 1)).astype(np.float32)
inp = inp[np.newaxis, :, :, :] / 255
in_tensor = torch.from_numpy(inp)
in_tensor = in_tensor.cuda(0)
fullyconnected1 = self.forward(in_tensor)
fullyconnected1 = fullyconnected1[0]
orig_pts = (np.reshape(fullyconnected1, (2, 1000)).transpose((1, 0))) * 256
t2 = cv2.getTickCount()
orig_pts = landmark_processor.transform_points(orig_pts, M, invert=True)
# orig_pts = orig_pts.transpose((1, 0))
fullyconnected1 = orig_pts
# update tracking infos
tracking_face_rect[1] = False
tracking_face_rect[2] = None
tracking_face_rect[3] = rotate_degree
tracking_face_rect[4] = fullyconnected1
# fullyconnected1 = landmark_processor.pts_1k_to_137(fullyconnected1)
# eye_landmark = self.detect_eye(image, fullyconnected1)
# fullyconnected1[87:104] = eye_landmark[0]
# fullyconnected1[104:121] = eye_landmark[1]
landmarks.append(fullyconnected1)
return landmarks
def detect_according_5pts(self, img, pts5):
dst_size = 256
with torch.no_grad():
input_numpy = np.zeros((1, 3, dst_size, dst_size), dtype=np.float32)
eye_dis = 0.34
mouth_dis = 0.34
g_Average_5point_180 = np.array([
eye_dis, 0.3,
1 - eye_dis, 0.3,
0.5, 0.6,
mouth_dis, 0.63,
1 - mouth_dis, 0.63
])
# print(g_Average_5point_180)
left_eye = np.array([pts5[0], pts5[5]])
right_eye = np.array([pts5[1], pts5[6]])
nose = np.array([pts5[2], pts5[7]])
left_mouth = np.array([pts5[3], pts5[8]])
right_mouth = np.array([pts5[4], pts5[9]])
pts5_src = np.vstack((left_eye, right_eye,
nose,
left_mouth, right_mouth))
pts5_src = np.array(pts5_src).astype(np.int32)
pts5_dst = g_Average_5point_180.reshape((5, -1)) * dst_size
mat = umeyama(pts5_src, pts5_dst, True)[0:2]
tmp = cv2.warpAffine(img, mat, (dst_size, dst_size))
# cv2.imshow("tmp", tmp)
# cv2.waitKey()
input_numpy[0, :, :, :] = tmp.transpose((2, 0, 1)).astype(np.float32) / 255
in_tensor = torch.from_numpy(input_numpy)
in_tensor = in_tensor.to(self.device)
fullyconnected1 = self.face_alignment_net(in_tensor).detach().cpu().numpy()
orig_pts = (np.reshape(fullyconnected1[0], (2, 1000)).transpose((1, 0)) * dst_size)
orig_pts = landmark_processor.transform_points(orig_pts, mat, invert=True)
return orig_pts