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Umranz/Hydra-Turbo
Hydra-Turbo is a image-text-to-text model from Umranz. Use it for the image-text-to-text task on the model card, and read the license before you ship it in a product. The card lists the license as apache-2.0.
Hydra-Turbo is a dynamically uncensored and abliterated version of datalab-to/lift (which is built on the Qwen2VL architecture). This model was created using the Heretic framework, employing advanced orthogonal weight…
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From the Hugging Face model README
Hydra-Turbo is a dynamically uncensored and abliterated version of datalab-to/lift (which is built on the Qwen2VL architecture). This model was created using the Heretic framework, employing advanced orthogonal weight ablation to remove refusal vectors while completely preserving the model's underlying reasoning, intelligence, and multimodal capabilities.
Unlike traditional fine-tuning or full RLHF—which can cause "brain damage" to a model by catastrophically forgetting knowledge—Hydra-Turbo was optimized using a Pareto-optimal search across multiple ablation vectors.
The selected optimal trial yielded the following metrics on the standard refusal test set:
At a KL divergence of just 0.0275, the structural integrity and logic capabilities of the base model are perfectly intact. It simply no longer refuses instructions.
transformers or vLLM pipeline that supports Qwen2VL.You can load the model exactly as you would any Qwen2VL model, ensuring you have pillow and torchvision installed:
from transformers import AutoProcessor, Qwen2VLForConditionalGeneration
model_id = "Umranz/Hydra-Turbo"
processor = AutoProcessor.from_pretrained(model_id)
model = Qwen2VLForConditionalGeneration.from_pretrained(
model_id,
torch_dtype="auto",
device_map="auto"
)
Hydra-Turbo uses the default chat template inherited from its base model. Ensure you use the standard conversational API for multi-turn dialogue.
Because this model has had its safety guardrails mathematically ablated, it is highly compliant and will attempt to answer any prompt given to it.
datalab-to/lift