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https://github.com/brycedrennan/imaginAIry
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Specify advanced text based masks using boolean logic and strength modifiers. Mask descriptions must be lowercase. Keywords uppercase. Valid symbols: `AND`, `OR`, `NOT`, `()`, and mask strength modifier `{*1.5}` where `+` can be any of `+ - * /`. Single-character boolean operators also work. When writing strength modifies know that pixel values are between 0 and 1. - feature: apply mask edits to original files - feature: auto-rotate images if exif data specifies to do so - fix: accept mask images in command line
330 lines
19 KiB
Markdown
330 lines
19 KiB
Markdown
# ImaginAIry 🤖🧠
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AI imagined images. Pythonic generation of stable diffusion images.
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"just works" on Linux and macOS(M1) (and maybe windows?).
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## Examples
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```bash
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# on macOS, make sure rust is installed first
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>> pip install imaginairy
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>> imagine "a scenic landscape" "a photo of a dog" "photo of a fruit bowl" "portrait photo of a freckled woman"
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```
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<details closed>
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<summary>Console Output</summary>
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```bash
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🤖🧠 received 4 prompt(s) and will repeat them 1 times to create 4 images.
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Loading model onto mps backend...
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Generating 🖼 : "a scenic landscape" 512x512px seed:557988237 prompt-strength:7.5 steps:40 sampler-type:PLMS
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PLMS Sampler: 100%|████████████████████████████████████████████████████████████████████████████████████████████████████████████████████████████| 40/40 [00:29<00:00, 1.36it/s]
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🖼 saved to: ./outputs/000001_557988237_PLMS40_PS7.5_a_scenic_landscape.jpg
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Generating 🖼 : "a photo of a dog" 512x512px seed:277230171 prompt-strength:7.5 steps:40 sampler-type:PLMS
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PLMS Sampler: 100%|████████████████████████████████████████████████████████████████████████████████████████████████████████████████████████████| 40/40 [00:28<00:00, 1.41it/s]
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🖼 saved to: ./outputs/000002_277230171_PLMS40_PS7.5_a_photo_of_a_dog.jpg
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Generating 🖼 : "photo of a fruit bowl" 512x512px seed:639753980 prompt-strength:7.5 steps:40 sampler-type:PLMS
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PLMS Sampler: 100%|████████████████████████████████████████████████████████████████████████████████████████████████████████████████████████████| 40/40 [00:28<00:00, 1.40it/s]
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🖼 saved to: ./outputs/000003_639753980_PLMS40_PS7.5_photo_of_a_fruit_bowl.jpg
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Generating 🖼 : "portrait photo of a freckled woman" 512x512px seed:500686645 prompt-strength:7.5 steps:40 sampler-type:PLMS
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PLMS Sampler: 100%|████████████████████████████████████████████████████████████████████████████████████████████████████████████████████████████| 40/40 [00:29<00:00, 1.37it/s]
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🖼 saved to: ./outputs/000004_500686645_PLMS40_PS7.5_portrait_photo_of_a_freckled_woman.jpg
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```
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</details>
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000019_786355545_PLMS50_PS7.5_a_scenic_landscape.jpg" height="256"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000032_337692011_PLMS40_PS7.5_a_photo_of_a_dog.jpg" height="256"><br>
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000056_293284644_PLMS40_PS7.5_photo_of_a_bowl_of_fruit.jpg" height="256"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000078_260972468_PLMS40_PS7.5_portrait_photo_of_a_freckled_woman.jpg" height="256">
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### Prompt Based Editing [by clipseg](https://github.com/timojl/clipseg)
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Specify advanced text based masks using boolean logic and strength modifiers. Mask descriptions must be lowercase. Keywords uppercase.
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Valid symbols: `AND`, `OR`, `NOT`, `()`, and mask strength modifier `{*1.5}` where `+` can be any of `+ - * /`. Single-character boolean
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operators also work. When writing strength modifies know that pixel values are between 0 and 1.
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```bash
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>> imagine \
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--init-image pearl_earring.jpg \
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--mask-prompt "face{*1.9}" \
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--mask-mode keep \
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--init-image-strength .4 \
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"a female doctor" "an elegant woman"
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```
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/mask_examples/pearl000.jpg" height="200">➡️
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/mask_examples/pearl002.jpg" height="200">
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/mask_examples/pearl004.jpg" height="200">
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/mask_examples/pearl001.jpg" height="200">
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/mask_examples/pearl003.jpg" height="200">
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```bash
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>> imagine \
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--init-image fruit-bowl.jpg \
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--mask-prompt "fruit OR fruit stem{*1.5}" \
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--mask-mode replace \
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--init-image-strength .1 \
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"a bowl of kittens" "a bowl of gold coins" "a bowl of popcorn" "a bowl of spaghetti"
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```
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000056_293284644_PLMS40_PS7.5_photo_of_a_bowl_of_fruit.jpg" height="200">➡️
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/mask_examples/bowl004.jpg" height="200">
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/mask_examples/bowl001.jpg" height="200">
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/mask_examples/bowl002.jpg" height="200">
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/mask_examples/bowl003.jpg" height="200">
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### Face Enhancement [by CodeFormer](https://github.com/sczhou/CodeFormer)
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```bash
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>> imagine "a couple smiling" --steps 40 --seed 1 --fix-faces
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```
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<img src="https://github.com/brycedrennan/imaginAIry/raw/master/assets/000178_1_PLMS40_PS7.5_a_couple_smiling_nofix.png" height="256"> ➡️
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<img src="https://github.com/brycedrennan/imaginAIry/raw/master/assets/000178_1_PLMS40_PS7.5_a_couple_smiling_fixed.png" height="256">
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### Upscaling [by RealESRGAN](https://github.com/xinntao/Real-ESRGAN)
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```bash
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>> imagine "colorful smoke" --steps 40 --upscale
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```
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<img src="https://github.com/brycedrennan/imaginAIry/raw/master/assets/000206_856637805_PLMS40_PS7.5_colorful_smoke.jpg" height="128"> ➡️
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<img src="https://github.com/brycedrennan/imaginAIry/raw/master/assets/000206_856637805_PLMS40_PS7.5_colorful_smoke_upscaled.jpg" height="256">
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### Tiled Images
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```bash
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>> imagine "gold coins" "a lush forest" "piles of old books" leaves --tile
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```
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000066_801493266_PLMS40_PS7.5_gold_coins.jpg" height="128"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000066_801493266_PLMS40_PS7.5_gold_coins.jpg" height="128"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000066_801493266_PLMS40_PS7.5_gold_coins.jpg" height="128">
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000118_597948545_PLMS40_PS7.5_a_lush_forest.jpg" height="128"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000118_597948545_PLMS40_PS7.5_a_lush_forest.jpg" height="128"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000118_597948545_PLMS40_PS7.5_a_lush_forest.jpg" height="128">
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<br>
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000075_961095192_PLMS40_PS7.5_piles_of_old_books.jpg" height="128"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000075_961095192_PLMS40_PS7.5_piles_of_old_books.jpg" height="128"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000075_961095192_PLMS40_PS7.5_piles_of_old_books.jpg" height="128">
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000040_527733581_PLMS40_PS7.5_leaves.jpg" height="128"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000040_527733581_PLMS40_PS7.5_leaves.jpg" height="128"><img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000040_527733581_PLMS40_PS7.5_leaves.jpg" height="128">
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### Image-to-Image
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```bash
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>> imagine "portrait of a smiling lady. oil painting" --init-image girl_with_a_pearl_earring.jpg
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```
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/tests/data/girl_with_a_pearl_earring.jpg" height="256"> ➡️
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<img src="https://raw.githubusercontent.com/brycedrennan/imaginAIry/master/assets/000105_33084057_DDIM40_PS7.5_portrait_of_a_smiling_lady._oil_painting._.jpg" height="256">
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### Generate image captions
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```bash
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>> aimg describe assets/mask_examples/bowl001.jpg
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a bowl full of gold bars sitting on a table
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```
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## Features
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- It makes images from text descriptions! 🎉
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- Generate images either in code or from command line.
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- It just works. Proper requirements are installed. model weights are automatically downloaded. No huggingface account needed.
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(if you have the right hardware... and aren't on windows)
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- No more distorted faces!
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- Noisy logs are gone (which was surprisingly hard to accomplish)
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- WeightedPrompts let you smash together separate prompts (cat-dog)
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- Tile Mode creates tileable images
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- Prompt metadata saved into image file metadata
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- Edit images by describing the part you want edited (see example above)
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- Have AI generate captions for images `aimg describe <filename-or-url>`
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## How To
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For full command line instructions run `aimg --help`
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```python
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from imaginairy import imagine, imagine_image_files, ImaginePrompt, WeightedPrompt, LazyLoadingImage
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url = "https://upload.wikimedia.org/wikipedia/commons/thumb/6/6c/Thomas_Cole_-_Architect%E2%80%99s_Dream_-_Google_Art_Project.jpg/540px-Thomas_Cole_-_Architect%E2%80%99s_Dream_-_Google_Art_Project.jpg"
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prompts = [
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ImaginePrompt("a scenic landscape", seed=1, upscale=True),
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ImaginePrompt("a bowl of fruit"),
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ImaginePrompt([
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WeightedPrompt("cat", weight=1),
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WeightedPrompt("dog", weight=1),
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]),
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ImaginePrompt(
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"a spacious building",
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init_image=LazyLoadingImage(url=url)
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),
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ImaginePrompt(
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"a bowl of strawberries",
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init_image=LazyLoadingImage(filepath="mypath/to/bowl_of_fruit.jpg"),
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mask_prompt="fruit OR stem{*2}", # amplify the stem mask x2
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mask_mode="replace",
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),
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ImaginePrompt("strawberries", tile_mode=True),
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]
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for result in imagine(prompts):
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# do something
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result.save("my_image.jpg")
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# or
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imagine_image_files(prompts, outdir="./my-art")
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```
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## Requirements
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- ~10 gb space for models to download
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- A decent computer with either a CUDA supported graphics card or M1 processor.
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- Python installed. Preferably Python 3.10.
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- For macOS [rust must be installed](https://www.rust-lang.org/tools/install)
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to compile the `tokenizer` library.
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be installed via: `curl --proto '=https' --tlsv1.2 -sSf https://sh.rustup.rs | sh`
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## Running in Docker
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See example Dockerfile (works on machine where you can pass the gpu into the container)
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```bash
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docker build . -t imaginairy
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# you really want to map the cache or you end up wasting a lot of time and space redownloading the model weights
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docker run -it --gpus all -v $HOME/.cache/huggingface:/root/.cache/huggingface -v $HOME/.cache/torch:/root/.cache/torch -v `pwd`/outputs:/outputs imaginairy /bin/bash
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```
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## Running on Google Colab
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[Example Colab](https://colab.research.google.com/drive/1rOvQNs0Cmn_yU1bKWjCOHzGVDgZkaTtO?usp=sharing)
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## ChangeLog
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- feature: Specify advanced text based masks using boolean logic and strength modifiers. Mask descriptions must be lowercase. Keywords uppercase.
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Valid symbols: `AND`, `OR`, `NOT`, `()`, and mask strength modifier `{+0.1}` where `+` can be any of `+ - * /`
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- feature: apply mask edits to original files
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- feature: auto-rotate images if exif data specifies to do so
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- fix: accept mask images in command line
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**1.6.2**
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- fix: another bfloat16 fix
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**1.6.1**
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- fix: make sure image tensors come to the CPU as float32 so there aren't compatability issues with non-bfloat16 cpus
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**1.6.0**
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- fix: *maybe* address #13 with `expected scalar type BFloat16 but found Float`
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- at minimum one can specify `--precision full` now and that will probably fix the issue
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- feature: tile mode can now be specified per-prompt
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**1.5.3**
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- fix: missing config file for describe feature
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**1.5.1**
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- img2img now supported with PLMS (instead of just DDIM)
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- added image captioning feature `aimg describe dog.jpg` => `a brown dog sitting on grass`
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- added new commandline tool `aimg` for additional image manipulation functionality
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**1.4.0**
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- support multiple additive targets for masking with `|` symbol. Example: "fruit|stem|fruit stem"
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**1.3.0**
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- added prompt based image editing. Example: "fruit => gold coins"
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- test coverage improved
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**1.2.0**
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- allow urls as init-images
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** previous **
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- img2img actually does # of steps you specify
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- performance optimizations
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- numerous other changes
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## Models Used
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- CLIP - https://openai.com/blog/clip/
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- LDM - Latent Diffusion
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- Stable Diffusion
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- https://github.com/CompVis/stable-diffusion
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- https://huggingface.co/CompVis/stable-diffusion-v1-4
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- https://laion.ai/blog/laion-5b/
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## Not Supported
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- a web interface. this is a python library
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- training
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## Todo
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- refactor how output versions are selected (upscaled, modified original, etc)
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- performance optimizations
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- ✅ https://github.com/huggingface/diffusers/blob/main/docs/source/optimization/fp16.mdx
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- ✅ https://github.com/CompVis/stable-diffusion/compare/main...Doggettx:stable-diffusion:autocast-improvements#
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- ✅ https://www.reddit.com/r/StableDiffusion/comments/xalaws/test_update_for_less_memory_usage_and_higher/
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- https://github.com/neonsecret/stable-diffusion https://github.com/CompVis/stable-diffusion/pull/177
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- https://github.com/huggingface/diffusers/pull/532/files
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- ✅ deploy to pypi
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- find similar images https://knn5.laion.ai/?back=https%3A%2F%2Fknn5.laion.ai%2F&index=laion5B&useMclip=false
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- Development Environment
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- ✅ add tests
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- set up ci (test/lint/format)
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- add docs
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- remove yaml config
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- delete more unused code
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- Interface improvements
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- ✅ init-image at command line
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- prompt expansion
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- Image Generation Features
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- ✅ add k-diffusion sampling methods
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- why is k-diffusion so slow compared to plms? 2 it/s vs 8 it/s
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- negative prompting
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- some syntax to allow it in a text string
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- upscaling
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- ✅ realesrgan
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- ldm
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- https://github.com/lowfuel/progrock-stable
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- stable super-res?
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- todo: try with 1-0-0-0 mask at full image resolution (rencoding entire image+predicted image at every step)
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- todo: use a gaussian pyramid and only include the "high-detail" level of the pyramid into the next step
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- https://www.reddit.com/r/StableDiffusion/comments/xkjjf9/upscale_to_huge_sizes_and_add_detail_with_sd/
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- ✅ face enhancers
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- ✅ gfpgan - https://github.com/TencentARC/GFPGAN
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- ✅ codeformer - https://github.com/sczhou/CodeFormer
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- ✅ image describe feature -
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- ✅ https://github.com/salesforce/BLIP
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- https://github.com/rmokady/CLIP_prefix_caption
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- https://github.com/pharmapsychotic/clip-interrogator (blip + clip)
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- https://github.com/KaiyangZhou/CoOp
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- outpainting
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- https://github.com/parlance-zz/g-diffuser-bot/search?q=noise&type=issues
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- ✅ inpainting
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- https://github.com/andreas128/RePaint
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- img2img but keeps img stable
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- https://www.reddit.com/r/StableDiffusion/comments/xboy90/a_better_way_of_doing_img2img_by_finding_the/
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- https://gist.github.com/trygvebw/c71334dd127d537a15e9d59790f7f5e1
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- https://github.com/pesser/stable-diffusion/commit/bbb52981460707963e2a62160890d7ecbce00e79
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- CPU support
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- ✅ img2img for plms
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- img2img for kdiff functions
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- image masking
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- https://boolean-parser.readthedocs.io/en/latest/index.html
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- https://github.com/facebookresearch/detectron2
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- images as actual prompts instead of just init images
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- requires model fine-tuning since SD1.4 expects 77x768 text encoding input
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- https://twitter.com/Buntworthy/status/1566744186153484288
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- https://github.com/justinpinkney/stable-diffusion
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- https://github.com/LambdaLabsML/lambda-diffusers
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- https://www.reddit.com/r/MachineLearning/comments/x6k5bm/n_stable_diffusion_image_variations_released/
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-
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- animations
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- https://github.com/francislabountyjr/stable-diffusion/blob/main/inferencing_notebook.ipynb
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- https://www.youtube.com/watch?v=E7aAFEhdngI
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- cross-attention control:
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- https://github.com/bloc97/CrossAttentionControl/blob/main/CrossAttention_Release_NoImages.ipynb
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- guided generation
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- https://colab.research.google.com/drive/1dlgggNa5Mz8sEAGU0wFCHhGLFooW_pf1#scrollTo=UDeXQKbPTdZI
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- https://colab.research.google.com/github/aicrumb/doohickey/blob/main/Doohickey_Diffusion.ipynb#scrollTo=PytCwKXCmPid
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- https://github.com/mlfoundations/open_clip
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- https://github.com/openai/guided-diffusion
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- ✅ tiling
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- output show-work videos
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- image variations https://github.com/lstein/stable-diffusion/blob/main/VARIATIONS.md
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- textual inversion
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- https://www.reddit.com/r/StableDiffusion/comments/xbwb5y/how_to_run_textual_inversion_locally_train_your/
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- https://colab.research.google.com/github/huggingface/notebooks/blob/main/diffusers/sd_textual_inversion_training.ipynb#scrollTo=50JuJUM8EG1h
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- https://colab.research.google.com/github/huggingface/notebooks/blob/main/diffusers/stable_diffusion_textual_inversion_library_navigator.ipynb
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- https://github.com/Jack000/glid-3-xl-stable
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- fix saturation at high CFG https://www.reddit.com/r/StableDiffusion/comments/xalo78/fixing_excessive_contrastsaturation_resulting/
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- https://www.reddit.com/r/StableDiffusion/comments/xbrrgt/a_rundown_of_twenty_new_methodsoptions_added_to/
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## Noteable Stable Diffusion Implementations
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- https://github.com/huggingface/diffusers/tree/main/src/diffusers/pipelines/stable_diffusion
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- https://github.com/lstein/stable-diffusion
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- https://github.com/AUTOMATIC1111/stable-diffusion-webui
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- https://github.com/blueturtleai/gimp-stable-diffusion
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## Further Reading
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- Differences between samplers
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- https://www.reddit.com/r/StableDiffusion/comments/xbeyw3/can_anyone_offer_a_little_guidance_on_the/
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- https://www.reddit.com/r/bigsleep/comments/xb5cat/wiskkeys_lists_of_texttoimage_systems_and_related/
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- https://huggingface.co/blog/annotated-diffusion
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- https://huggingface.co/blog/assets/78_annotated-diffusion/unet_architecture.jpg |