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    Sexiam Img2Img 2.0 - v1.0
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    Sexiam’s IMG2IMG + Upscale Workflow Guide (ComfyUI)

    A clean, practical walkthrough for using the workflow effectively.


    🧱 1. Load Your Checkpoint

    Start here:

    • Load your SDXL checkpoint

    • (Optional) Load an external VAE

    SDXL behaves differently depending on its VAE, so pick whichever looks best for your model.


    🔧 2. Set Your VAE Mode

    If you want to use the checkpoint’s built-in VAE, set:

    • “Use Checkpoint VAE?” = True

    If you want to use your external VAE, set:

    • “Use Checkpoint VAE?” = False


    🖼️ 3. Load Your Input Image

    Upload your source image using the Load Image node.

    Orientation Check

    Set the “Image is Portrait?” toggle correctly:

    • Portrait → True

    • Landscape → False

    Load an Upscale Model

    Pick the upscaler you want (Remacri, SwinIR, ESRGAN, etc.).
    You’re not upscaling the final output here — you’re shaping a clean latent size for SDXL.


    📏 Why the Workflow Uses ‘Upscale by Model’ Before Sampling

    You might ask:
    “Why am I using ‘Upscale by Model’ for image-to-image?”

    Here’s the short answer:

    ➡️ You’re not actually upscaling to output — you’re resizing the latent.
    SDXL was trained on ~1MP images, so pushing too high causes:

    • Generation errors

    • Warped structure

    • Model collapse

    This workflow uses a safe baseline:

    • 832×1216 (portrait)

    • 1216×832 (landscape)

    • Multiplied by 1.5× (50% larger)

    This is the maximum size SDXL samplers can reliably handle before breaking.

    If you're having issues, reset the “Scale to Target Ratio” nodes to whatever size works for your system.

    This workflow is ideal for using the input as a loose generational base, meaning:

    • Great for creative reinterpretations

    • Fine for refinement

    • Some proportions/details may change (normal for IMG2IMG)


    ✍️ 4. Enter Your Prompts

    Fill in your:

    • Positive prompt

    • Negative prompt

    These control the details, style, and adherence to the original image.


    🎛️ 5. Adjust KSampler Settings (Critical for IMG2IMG)

    For IMG2IMG, denoise strength is the most important setting:

    • 0.7 → Loose interpretation of the input

      • Model only reuses ~30% of the original

    • 0.5 → Preserves composition + color

      • Allows detail refinement

      • Great for keeping the structure mostly intact

    Use lower values when you want accuracy, higher when you want creativity.


    🔍 6. Optional: Final Model Upscaling (Use Only at Low Denoise)

    This section lets you upscale the final output if your denoise is 0.4 or lower.

    Why this matters:
    Low denoise keeps most of the latent structure, so upscaling is stable.

    Results vary based on:

    • GPU VRAM

    • System RAM

    • How large you upscale

    Steps:

    • Load the final image

    • Set the upscale multiplier

      • 1.5× → 50% bigger

      • → double the resolution

    • Choose an upscale model

      • Realistic outputs → clean general ESRGAN models

      • Stylized/anime outputs → anime-optimized upscale models


    # 📦 Required Custom Nodes

    These are the only node packs used in the workflow. Install them through ComfyUI-Manager or manually via GitHub.

    rgthree-comfy

    comfyui-mixlab-nodes

    Masquerade Nodes

    ComfyLiterals

    Description

    Workflows
    SDXL 1.0

    Details

    Downloads
    92
    Platform
    CivitAI
    Platform Status
    Available
    Created
    12/7/2025
    Updated
    12/15/2025
    Deleted
    -

    Files

    sexiamImg2img20_v10.zip

    Mirrors

    CivitAI (1 mirrors)