2022.9.20時点で一番公式に近く、かつ、シンプルな方法をまとめました。
EC2のAMI
EC2のAMIはこれを使いましょう。GPUを使うのに必要なドライバなどはすべて入っております。
Deep Learning AMI GPU PyTorch 1.12.0 (Amazon Linux 2) 20220913
EC2のインスタンスタイプ
g4dn.xlarge
または p3.2xlarge
以上を使ってください。
GPUデバイスの確認
g4dn.xlarge
[ec2-user@ip-10-0-0-232 my-stable-diffusion]$ lspci | grep -i nvidia
00:1e.0 3D controller: NVIDIA Corporation TU104GL [Tesla T4] (rev a1)
EC2のインスタンスストレージを使うこと。
rootデバイスはEBSなので、巨大なモデルファイルなどをpythonがメモリに読み込むだけで果てしなく時間がかかります。インスタンスに付属しているローカルストレージを使いましょう。
後は公式手順に沿って実行するだけ。
・stable diffusionのリポジトリをクローン
・haggingfaceからモデルファイルをダウンロード
・セットアップ。
おまけ
ログ
(ldm) [ec2-user@ip-10-0-0-232 stable-diffusion]$ python scripts/txt2img.py --prompt "a photograph of an astronaut riding a horse" --plms
Global seed set to 42
Loading model from models/ldm/stable-diffusion-v1/model.ckpt
Global Step: 470000
LatentDiffusion: Running in eps-prediction mode
DiffusionWrapper has 859.52 M params.
making attention of type 'vanilla' with 512 in_channels
Working with z of shape (1, 4, 32, 32) = 4096 dimensions.
making attention of type 'vanilla' with 512 in_channels
Some weights of the model checkpoint at openai/clip-vit-large-patch14 were not used when initializing CLIPTextModel: ['vision_model.encoder.layers.9.self_attn.k_proj.weight', 'vision_model.encoder.layers.14.self_attn.k_proj.bias', 'vision_model.encoder.layers.7.layer_norm1.bias', 'vision_model.encoder.layers.0.self_attn.q_proj.bias', 'vision_model.encoder.layers.6.layer_norm2.bias', 'vision_model.encoder.layers.23.mlp.fc1.weight', 'vision_model.encoder.layers.13.layer_norm2.weight', 'vision_model.encoder.layers.23.self_attn.out_proj.bias', 'vision_model.encoder.layers.20.self_attn.q_proj.bias', 'vision_model.encoder.layers.15.mlp.fc1.weight', 'vision_model.encoder.layers.15.self_attn.v_proj.bias', 'vision_model.encoder.layers.1.self_attn.k_proj.bias', 'vision_model.encoder.layers.15.layer_norm1.weight', 'vision_model.encoder.layers.9.self_attn.q_proj.weight', 'vision_model.encoder.layers.14.self_attn.v_proj.weight', 'vision_model.encoder.layers.12.mlp.fc1.weight', 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'vision_model.encoder.layers.3.layer_norm1.weight', 'vision_model.encoder.layers.0.self_attn.q_proj.weight', 'vision_model.encoder.layers.11.mlp.fc2.weight', 'vision_model.encoder.layers.11.self_attn.q_proj.bias', 'vision_model.encoder.layers.21.self_attn.k_proj.weight', 'vision_model.embeddings.position_ids', 'vision_model.encoder.layers.4.self_attn.k_proj.weight', 'vision_model.encoder.layers.20.self_attn.q_proj.weight', 'vision_model.encoder.layers.4.self_attn.out_proj.bias', 'vision_model.encoder.layers.23.self_attn.out_proj.weight', 'vision_model.encoder.layers.17.self_attn.k_proj.weight', 'vision_model.encoder.layers.1.layer_norm2.weight', 'vision_model.encoder.layers.22.mlp.fc2.weight', 'visual_projection.weight', 'text_projection.weight', 'vision_model.encoder.layers.6.self_attn.out_proj.bias', 'vision_model.encoder.layers.14.mlp.fc2.bias', 'vision_model.encoder.layers.18.mlp.fc2.bias', 'vision_model.encoder.layers.1.mlp.fc1.bias', 'vision_model.encoder.layers.8.mlp.fc1.weight', 'vision_model.encoder.layers.0.self_attn.out_proj.bias', 'vision_model.encoder.layers.19.self_attn.v_proj.bias', 'vision_model.encoder.layers.4.mlp.fc1.weight', 'vision_model.encoder.layers.8.layer_norm1.bias', 'vision_model.encoder.layers.19.layer_norm1.weight', 'vision_model.encoder.layers.5.self_attn.q_proj.weight', 'vision_model.encoder.layers.9.self_attn.v_proj.bias', 'vision_model.encoder.layers.8.self_attn.k_proj.weight', 'vision_model.encoder.layers.8.layer_norm2.weight']
- This IS expected if you are initializing CLIPTextModel from the checkpoint of a model trained on another task or with another architecture (e.g. initializing a BertForSequenceClassification model from a BertForPreTraining model).
- This IS NOT expected if you are initializing CLIPTextModel from the checkpoint of a model that you expect to be exactly identical (initializing a BertForSequenceClassification model from a BertForSequenceClassification model).
Creating invisible watermark encoder (see https://github.com/ShieldMnt/invisible-watermark)...
Sampling: 0%| | 0/2 [00:00<?, ?it/sData shape for PLMS sampling is (3, 4, 64, 64) | 0/1 [00:00<?, ?it/s]
Running PLMS Sampling with 50 timesteps
PLMS Sampler: 100%|████████████████████████████████████████████████████████████████████████████████████████████████████| 50/50 [00:37<00:00, 1.34it/s]
data: 100%|██████████████████████████████████████████████████████████████████████████████████████████████████████████████| 1/1 [00:42<00:00, 42.73s/it]
Sampling: 50%|█████████████████████████████████████████████████████ | 1/2 [00:42<00:42, 42.73s/itData shape for PLMS sampling is (3, 4, 64, 64) | 0/1 [00:00<?, ?it/s]
Running PLMS Sampling with 50 timesteps
PLMS Sampler: 100%|████████████████████████████████████████████████████████████████████████████████████████████████████| 50/50 [00:36<00:00, 1.36it/s]
data: 100%|██████████████████████████████████████████████████████████████████████████████████████████████████████████████| 1/1 [00:40<00:00, 40.46s/it]
Sampling: 100%|██████████████████████████████████████████████████████████████████████████████████████████████████████████| 2/2 [01:23<00:00, 41.60s/it]
Your samples are ready and waiting for you here:
outputs/txt2img-samples
Enjoy.
(ldm) [ec2-user@ip-10-0-0-232 stable-diffusion]$