Detaylar
Öneriler
v2
v1
hyper bottom heavy

hyper bottom heavy

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#อนิเมะ
#concept
#thighs
#thick
#booty
#thicc
#thick thighs
#wide
#หนักส่วนล่าง
#ก้นหนักมาก
#
#hyper
#อนิเมะ
#concept
#thighs
#thick
#booty
#thicc
#thick thighs
#wide
#หนักส่วนล่าง
#ก้นหนักมาก
#
#hyper

This LoRA model is similar to my HyperAss model but focuses more on thick thighs and . Great for that pear shaped look. You can always increase the LoRA strength for a bigger effect.

If you don't want crazy large sizes, just keep the LoRA strength at 1. It does in-between sizes just fine.

v2 Changelog 2023/06/13:

, its been almost 5 months o.o

  • Improved the overall quality. Less overcooked results at high strength.

  • The shape should be even more pear like now, smaller top and larger bottom in general.

  • Added size tags, similar to my other models. See tag data attached with model in the downloads section for details. A few tags are pretty important.

  • Uses Kohya's LoCon LoRA but does not require any additional extensions to run.

  • Doubled the dataset size.

  • Added tag "from front" to assist with front facing shots, and a few others in the tag docs

Notes:

I used this to train my image tagging classifiers for sizes
https://github.com/huggingface/transformers/tree/main/examples/pytorch/image-classification

Çeviriyi görüntüle

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Veri Mevcut Değil
T
Model ile konuşma
Duyuru
2023-03-20
Model yayınlama
2023-06-14
Model bilgilerini güncelle
Model detayları
Tür
LORA
Yayınlanma tarihi
2023-06-14
Temel Model
SD 1.4
Tetikleyici Kelime
bottomheavy
huge
gigantic
thick thighs
massive thighs
hyper thighs
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Sürüm tanıtımı

Similar to my last released model, this one should be less damaging to the overall style while also making it easier to achieve large sizes.

Also I improved the accuracy of the tags, and doubled the dataset size to ~400 images.

Increasing LoRA strength is actually useful for achieving larger sizes in combination with the right size tags.

Training Details:

  • ~400 images

  • 160 epocs

  • learning rate 2e-4

  • text encoder LR 1e-4

  • base model Av3

  • clip skip 2

  • random flip

  • tag drop chance 0.15

  • network dropout 0.25

  • bucketing at 768

  • dim 32

  • alpha 16

  • 225 tokens

  • cosine with restarts

  • training with tags, tags attached next to model download

    • use the new weighted captions + dropout in Kohya that way more important tags were trained at a higher weight (weight of:2).

  • Kohya LoRA LoCon, does not require any additional extensions to use

Lisans Kapsamı
Model Source: civitai

1. Yeniden paylaşılan modellerin hakları orijinal yaratıcılara aittir.

2. Orijinal model yaratıcıları, modellerini talep etmek için resmi kanallar aracılığıyla SeaArt AI personeliyle iletişime geçmelidir. Talep etmek için tıklayın

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