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zeromodels/internvl3.5-30b-a3b
internvl3.5-30b-a3b is a image-text-to-text model from zeromodels. Use it for the image-text-to-text task on the model card, and read the license before you ship it in a product. It is set up for zeromodels. The card lists the license as apache-2.0.
[](https://github.com/IMvision12/ZeroModels) [](https://imvision12.github.io/ZeroModels/internvl/) [](https://huggingface.co/collections/zeromodels/internvl-6a8eae0aeee279da77e075c7)
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From the Hugging Face model README
Pure-Keras 3 conversion of OpenGVLab/InternVL3_5-30B-A3B-HF for zeromodels. One implementation runs unmodified on TensorFlow / Torch / JAX. This is a InternVL3.5 (mixture-of-experts) checkpoint, served as image + text -> text via InternVLProcessor; weights are stored in bfloat16.
For model details, license, and usage terms, see the upstream model card.
Paper: InternVL3.5: Advancing Open-Source Multimodal Models in Versatility, Reasoning, and Efficiency (arXiv:2508.18265) · HF Papers
Paper: Qwen3 Technical Report (arXiv:2505.09388) · HF Papers
Paper: YaRN: Efficient Context Window Extension of Large Language Models (arXiv:2309.00071) · HF Papers
import os
os.environ["KERAS_BACKEND"] = "torch" # or "jax" / "tensorflow"
from PIL import Image
from zeromodels.models.internvl import InternVLConditionalGenerate, InternVLProcessor
model = InternVLConditionalGenerate.from_weights("zeromodels/internvl3.5-30b-a3b")
processor = InternVLProcessor.from_weights("zeromodels/internvl3.5-30b-a3b")
inputs = processor(conversation=[
{"role": "user", "content": [
{"type": "image", "image": Image.open("photo.jpg")},
{"type": "text", "text": "Describe this image in one sentence."},
]}
])
outputs = model.generate(**inputs, max_new_tokens=64)
print(processor.decode(outputs[0]))
Load any InternVL variant the same way with from_weights("zeromodels/<variant>"). Browse them all in the InternVL collection.
A huge thank you to the OpenGVLab team for creating and releasing the InternVL models.
License: apache-2.0 (per the upstream model card).