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Update README.md
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README.md
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- [maskgit.sygil_muse_v0.1.pt](https://huggingface.co/Sygil/Sygil-Muse/blob/main/maskgit.sygil_muse_v0.1.pt): Maskgit trained from the VAE for 3.46M steps
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- [vae.sygil_muse_v0.5.pt](https://huggingface.co/Sygil/Sygil-Muse/blob/main/vae.sygil_muse_v0.5.pt): Trained from scratch for 1.99M steps with **dim: 128** and **vq_codebook_size: 8192**.
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- #### Beta:
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- [vae.
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- [maskgit.39000.pt](https://huggingface.co/Sygil/Sygil-Muse/blob/main/maskgit.39000.pt): Maskgit trained from the VAE for 39K steps using the hyperparameters `heads 16` and `depth 22` for testing, these values have huge performance effects, the vram usage was also increased so it is just for testing, the quality on this checkpoint did increase a lot and requires a lot less training which is something we want but we need to find a balance between quality and performance.
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Note: Checkpoints under the Beta section are updated daily or at least 3-4 times a week. While the beta checkpoints can be used as they are only the latest version is kept on the repo and the older checkpoints are removed when a new one
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**Hardware and others**
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- **Hardware:** 1 x Nvidia RTX 3050 GPU
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- **Hours Trained:** NaN.
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- **Gradient Accumulations**:
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- **Batch:** 1
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- **Learning Rate:** 1e-
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- **Learning Rate Scheduler:** `
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- **Scheduler Power:** 0.5
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- **Optimizer:** Adam
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- **Warmup Steps:** 10,000
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- **Number of Cycles:**
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- **Resolution/Image Size**: First trained at a resolution of 64x64, then increased to 256x256 and then to 512x512. Check the notes down below for more details on this.
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- **Dimension:** 128
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- **vq_codebook_dim:** 4096
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- **vq_codebook_size:**
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- **heads:** 8
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- **depth:** 4
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- **Random Crop:** True
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- **Total Training Steps:**
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Note: On Muse we can change the image_size or resolution at any time without having to train the model from scratch again, this allows us to first train the model at low resolution using the same `dim` and `vq_codebook_size` to train faster and then we can increase the `image_size` and use a higher resolution once the model has trained enough.
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- [maskgit.sygil_muse_v0.1.pt](https://huggingface.co/Sygil/Sygil-Muse/blob/main/maskgit.sygil_muse_v0.1.pt): Maskgit trained from the VAE for 3.46M steps
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- [vae.sygil_muse_v0.5.pt](https://huggingface.co/Sygil/Sygil-Muse/blob/main/vae.sygil_muse_v0.5.pt): Trained from scratch for 1.99M steps with **dim: 128** and **vq_codebook_size: 8192**.
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- #### Beta:
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- [vae.87000.pt](https://huggingface.co/Sygil/Sygil-Muse/blob/main/vae.87000.pt): Trained from scratch for 87K steps and higher **vq_codebook_dim** and **vq_codebook_size** than before.
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- [maskgit.39000.pt](https://huggingface.co/Sygil/Sygil-Muse/blob/main/maskgit.39000.pt): Maskgit trained from the VAE for 39K steps using the hyperparameters `heads 16` and `depth 22` for testing, these values have huge performance effects, the vram usage was also increased so it is just for testing, the quality on this checkpoint did increase a lot and requires a lot less training which is something we want but we need to find a balance between quality and performance.
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Note: Checkpoints under the Beta section are updated daily or at least 3-4 times a week. While the beta checkpoints can be used as they are only the latest version is kept on the repo and the older checkpoints are removed when a new one
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**Hardware and others**
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- **Hardware:** 1 x Nvidia RTX 3050 GPU
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- **Hours Trained:** NaN.
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- **Gradient Accumulations**: 20
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- **Batch:** 1
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- **Learning Rate:** 1e-5
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- **Learning Rate Scheduler:** `constant_with_warmup`
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- **Scheduler Power:** 0.5
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- **Optimizer:** Adam
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- **Warmup Steps:** 10,000
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- **Number of Cycles:** 1
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- **Resolution/Image Size**: First trained at a resolution of 64x64, then increased to 256x256 and then to 512x512. Check the notes down below for more details on this.
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- **Dimension:** 128
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- **vq_codebook_dim:** 4096
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- **vq_codebook_size:** 16384
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- **heads:** 8
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- **depth:** 4
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- **Random Crop:** True
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- **Total Training Steps:** 87,000
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Note: On Muse we can change the image_size or resolution at any time without having to train the model from scratch again, this allows us to first train the model at low resolution using the same `dim` and `vq_codebook_size` to train faster and then we can increase the `image_size` and use a higher resolution once the model has trained enough.
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