사용자 LoRA

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404 CivitAI Toolkit

404 CivitAI Toolkit - AI Model cover image
업로드 날짜
2024. 12. 22. 오후 9:40
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51
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트리거 단어

404, text 404, logo 404, Civitai404

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  • 다른 사용자가 내 모델을 다운로드하도록 허용합니다
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설명

404 Lora Helper: A CivitAI Contest Toolkit🚀 Elevate Your 404 Contest Submissions with Specialized LoRAsA series of LoRAs designed specifically for the CivitAI 404 Contest. Each LoRA has been trained with the first ~800 image submissions from the contest, offering diverse ways to enhance your entries.🌟 Available LoRAs:1️⃣ LoRA1 - The Standard BearerTrained with CivitAI's trainer on 760 imagesLearning rate: 0.0005, Epoch: 16, Steps: 3200Optimizer: AdamW8bit, Base model version: sdxl_base_v1-02️⃣ LoRA2 - Lycoris FULL SpectrumFeaturing a variety of algorithms from the Lycoris FULL suiteModules include LohaModule, LoConModule, FullModule, and LokrModuleTailored adjustments for both UNet and Text Encoder componentsmodule type table: {'LohaModule': 176, 'LoConModule': 150, 'FullModule': 26, 'LokrModule': 700} enable_conv = true

UNet Target Modules and Names

unet_target_module = ["Transformer2DModel", "ResnetBlock2D", "Downsample2D", "Upsample2D"] unet_target_name = ["conv_in", "conv_out", "time_embedding.linear_1", "time_embedding.linear_2"]

Text Encoder Target Modules and Names

text_encoder_target_module = ["CLIPAttention", "CLIPMLP"] text_encoder_target_name = [] # "token_embedding" not supported

Module Algorithm Map

module_algo_map = { "CrossAttention": { # Attention Layer in UNet "algo": "lokr", "dim": 100000000000, "factor": 64 }, "FeedForward": { # MLP Layer in UNet "algo": "lokr", "dim": 100000000000, # Trigger full matrix "factor": 6 }, "ResnetBlock2D": { # ResBlock in UNet "algo": "lora", "dim": 64, "alpha": 1, "use_tucker": true, # Use tucker decomposition for convolution "factor": 8 }, "CLIPAttention": { # Attention Layer in TE "algo": "loha", "dim": 32, "alpha": 1 }, "CLIPMLP": { # MLP Layer in TE "algo": "lora", "dim": 64, # Trigger full matrix "alpha": 1 } }3️⃣ LoRA3 - The Fusion QuartetA dynamic blend of four different LoRAsNetwork dimensions and alpha dynamically resized for nuanced resultsA unique approach for diverse artistic outputsA Merge of 4 loras trained with Civitai trainer

ss_v2: "False", ss_network_dim: "Dynamic", ss_training_comment: "FFusion.AI - Dynamic resize with sv_ratio: 16.0 from 416; ", ss_network_module: "networks.lora", ss_base_model_version: "sdxl_base_v1-0", ss_network_alpha: "Dynamic"4️⃣ LoRA4 - The Compact 404A down-scaled version optimized to 64 dimensionsCombines the power of multiple LoRAs in a more compact formIdeal for streamlined yet rich artistic creationsAnother Mash Version downscaled to 64 DIM { ss_network_module: "networks.lora", ss_v2: "False", ss_base_model_version: "sdxl_base_v1-0", ss_network_dim: "Dynamic", ss_training_comment: "FFusion.AI - Dynamic resize with sv_ratio: 64.0 from 369; ", ss_network_alpha: "Dynamic" }🎨 Fusion Examples:Experiment with combining different LoRAs for unique effects. For instance:lora:FF_404_Inspiration:0.4lora:404-CIvitAI-lora:1lora:404FFusionV2:0.71📖 Recommended Usage:Pair these LoRAs with Harrlogos XL& The 404ra - add-on for Harrlogos!for enhanced text generation in your 404 project.Note: These LoRAs are crafted to inspire and assist in the CivitAI 404 Contest. We encourage responsible and creative use to explore the boundaries of AI art.loras are not supposed to provide out of the box results!!!For further details and access, visit Civitai 404 Contest page!

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