How to use from the
Use from the
Transformers library
# Use a pipeline as a high-level helper
from transformers import pipeline

pipe = pipeline("text-generation", model="ukkathva/TelecomGPT-R1-27B-FP8-Dynamic")
messages = [
    {
        "role": "user",
        "content": [
            {"type": "image", "url": "https://huggingface.co/datasets/huggingface/documentation-images/resolve/main/p-blog/candy.JPG"},
            {"type": "text", "text": "What animal is on the candy?"}
        ]
    },
]
pipe(text=messages)
# Load model directly
from transformers import AutoProcessor, AutoModelForMultimodalLM

processor = AutoProcessor.from_pretrained("ukkathva/TelecomGPT-R1-27B-FP8-Dynamic")
model = AutoModelForMultimodalLM.from_pretrained("ukkathva/TelecomGPT-R1-27B-FP8-Dynamic", device_map="auto")
messages = [
    {
        "role": "user",
        "content": [
            {"type": "image", "url": "https://huggingface.co/datasets/huggingface/documentation-images/resolve/main/p-blog/candy.JPG"},
            {"type": "text", "text": "What animal is on the candy?"}
        ]
    },
]
inputs = processor.apply_chat_template(
	messages,
	add_generation_prompt=True,
	tokenize=True,
	return_dict=True,
	return_tensors="pt",
).to(model.device)

outputs = model.generate(**inputs, max_new_tokens=40)
print(processor.decode(outputs[0][inputs["input_ids"].shape[-1]:]))
Quick Links

TelecomGPT-R1-27B-FP8-Dynamic

FP8 Dynamic quantization of KU-DFI/TelecomGPT-R1.

Quantization

  • Scheme: FP8_DYNAMIC
  • Serialization: compressed-tensors
  • Target modules: Linear
  • lm_head: unquantized
  • Calibration dataset: none
  • Source precision: BF16

Intended use

Telecom reasoning, alarm analysis, root-cause analysis, protocol reasoning, and evaluation against operator-specific incident datasets.

A100 note

NVIDIA A100 is an Ampere GPU and does not provide native Hopper-style FP8 Tensor Core execution. The FP8 checkpoint still reduces model-weight memory, and vLLM can use its supported Ampere execution path when loading the model.

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