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    SciStyle - v1.0
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    SciStyle

    v1 of SciStyle is a test model for a new image captioning pipeline I've been working on. The model was trained on a subset of 1k images of various styles/mediums. Surprised by the results for a model trained on only 1k images, I decided to release it here. The full model is currently being worked on.

    For more info on the image captioning pipeline, refer to my Discord thread linked bellow


    Questions/Feedback/Updates?

    Visit my thread on the Unstable Diffusion Discord


    Info

    S&D

    Base Model: Stable Diffusion v1.5

    Type: Experimental Fine-tune

    Clip: 1

    Medium: Multi-medium

    Caption Style: Natural Language + Booru Style

    Dataset Size: Subset, 4k images out of 25k images + DnD dataset

    Training Resolution: 768x768

    Difference from v1: More fantasy focused, additional training on a DnD dataset.


    V1

    Base Model: Stable Diffusion v1.5

    Type: Experimental Fine-tune

    Clip: 1

    Medium: Multi-medium

    Caption Style: Natural Language + Booru Style

    Dataset Size: Subset, 1k images out of 25k images

    Training Resolution: 768x768


    V2

    Base Model: Stable Diffusion v1.5

    Type: Experimental Fine-tune

    Clip: 1

    Medium: Multi-medium

    Caption Style: Natural Language + Booru Style

    Dataset Size: Subset, 6.5k images out of 25k images

    Training Resolution: 768x768

    Difference from v1: More species from various Sci-fi and fantasy universes.


    Features

    1. Multi-medium: Capable of generating images from multiple art mediums, simply include the medium in the prompt.

    2. Natural Language & Booru: Accepts both natural language prompts and booru style prompts.

    3. Extra Detail: Understands subtle details often skipped by SD models. Such as, number of objects/subjects in a scene, background information, color information for various parts of the image, atmosphere, ect.. (see my discord thread above for more info on how this is achieved.)

    4. Flexible: Can easily be merged with other SD1.5 checkpoints / LoRAs


    Usage

    Special Tokens:

    • SciStyle, can be used as a class token at the beginning of the prompt, but is not necessary.

    • Tag for various art mediums, i.e., a comic book illustration of, 90s anime screencap of or, simply add the medium towards the end of the prompt; comic book illustration, photorealistic. These are just examples of tag placement. Feel free to experiment with other mediums


    Recommended Settings

    Sampler/Solver:

    • Euler a

      • Steps: 20 - 32

      • CFG: 6 - 7.5

    • DPM++ SDE Karras

      • Steps: 30 - 40

      • CFG: 6 - 8.5

    • DPM++ 2M SDE Karras

      • Steps: 50+

      • CFG: 7 - 8

    These are just recommendations.

    Hires Fix

    Settings for all ESRGAN models:

    • Upscale by

      • 1.5 if resolution is > 512x768

      • Don't exceed 2.0 (unless you have a beefy rig)

    • Denoise Strength

      • 0.25 - 0.35

    • Hires Steps

      • If sampling steps > 60,

        • hires steps = half of sampling steps

      • Otherwise, leave at 0

    Extensions

    ADetailer
    Download here

    Neutral Prompt

    Download here

    Read repo(s) Descriptions for usage guides

    Negative Embeddings

    Only if you want to remake one of the sample images. Personally, I would avoid using negative embeddings and instead use a simple negative prompt and then add+ or subtract- tokens per new idea. I only use them to speed-up inference during sample generation. That being said, other negative embeddings such as EasyNegative, ect.. are also fine to use with this model.


    Checkout my other models

    SDXL

    SD1.5

    LoRA

    Description

    Initial Release
    Subset

    Checkpoint
    SD 1.5

    Details

    Downloads
    292
    Platform
    CivitAI
    Platform Status
    Deleted
    Created
    11/18/2023
    Updated
    9/28/2025
    Deleted
    9/22/2025
    Trigger Words:
    SciStyle

    Files

    scistyle_v10.safetensors

    Mirrors

    CivitAI (1 mirrors)