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    Aesthetic Quality Modifiers - Masterpiece (Anima) - v5,1 [anima-base-1]
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    Aesthetic Quality Modifiers - Masterpiece (Anima)

    Training data is a subset of all my manually rated datasets with the quality/aesthetic modifiers, including only the masterpiece tagged images.

    Description

    Trained on Anima Base 1

    Same dataset as v5.0 with a mix of natural language and tag captions

    Partitioned and trained at multi-res 1024, 1280, 1536

    Training config:

    # trained using diffusion-pipe commit b0aa4f1e03169f3280c8518d37570a448420f8be
    # NCCL_P2P_DISABLE="1" NCCL_IB_DISABLE="1" NCCL_CUMEM_ENABLE="0" deepspeed --num_gpus=1 train.py --deepspeed --config anima-lora.toml --i_know_what_i_am_doing
    
    output_dir = '/mnt/d/anima/training_output/anima-base-1-masterpiece-v51'
    
    dataset = 'dataset-anima-masterpiece.toml'
    
    # training settings
    epochs = 3
    # Per-resolution batch sizes
    micro_batch_size_per_gpu = [[1024, 32], [1280, 24], [1536, 16]]
    pipeline_stages = 1
    gradient_accumulation_steps = 1
    gradient_clipping = 1
    warmup_steps = 30
    lr_scheduler = 'cosine'
    
    # misc settings
    save_every_n_epochs = 1
    activation_checkpointing = true
    #reentrant_activation_checkpointing = true
    
    partition_method = 'parameters'
    
    save_dtype = 'bfloat16'
    caching_batch_size = 1
    map_num_proc = 8
    steps_per_print = 1
    compile = true
    
    [model]
    type = 'anima'
    transformer_path = '/mnt/c/workspace/models/diffusion_models/anima-base-v1.0.safetensors'
    vae_path = '/mnt/c/workspace/models/vae/qwen_image_vae.safetensors'
    llm_path = '/mnt/c/workspace/models/text_encoders/qwen_3_06b_base.safetensors'
    dtype = 'bfloat16'
    #cache_text_embeddings = false
    llm_adapter_lr = 0
    #timestep_sample_method = 'uniform'
    flux_shift = true
    multiscale_loss_weight = 0.5
    sigmoid_scale = 1.3
    
    [adapter]
    type = 'lora'
    rank = 32
    dtype = 'bfloat16'
    
    [optimizer]
    type = 'adamw_optimi'
    lr = 4e-5
    betas = [0.9, 0.99]
    weight_decay = 0.01
    eps = 1e-8
    resolutions = [1024, 1280, 1536]
    
    enable_ar_bucket = true
    min_ar = 0.5
    max_ar = 2.0
    num_ar_buckets = 9
    
    # Totals
    # 386 images
    # 16 repeats from captions.json
    
    # 153 images
    [[directory]]
    path = '/mnt/d/training_data/0_masterpieces_kirazuri/1536x1536'
    resolutions = [1024, 1280, 1536]
    
    # 44 images
    [[directory]]
    path = '/mnt/d/training_data/0_masterpieces_kirazuri/1280x1280'
    resolutions = [1024, 1280]
    
    # 189 images
    [[directory]]
    path = '/mnt/d/training_data/0_masterpieces_kirazuri/1024x1024'
    resolutions = [1024]
    



    FAQ

    LORA
    Anima

    Details

    Downloads
    9,706
    Platform
    SeaArt
    Platform Status
    Available
    Created
    4/30/2026
    Updated
    5/20/2026
    Deleted
    -
    Trigger Words:
    masterpiece
    very aesthetic

    Files