solidrust / internistai-base-7b-v0.2-AWQ

huggingface.co
Total runs: 22
24-hour runs: 1
7-day runs: 5
30-day runs: 8
Model's Last Updated: September 03 2024
text-generation

Introduction of internistai-base-7b-v0.2-AWQ

Model Details of internistai-base-7b-v0.2-AWQ

internistai/base-7b-v0.2 AWQ

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Model Summary

Internist.ai 7b is a medical domain large language model trained by medical doctors to demonstrate the benefits of a physician-in-the-loop approach. The training data was carefully curated by medical doctors to ensure clinical relevance and required quality for clinical practice.

With this 7b model we release the first 7b model to score above the 60% pass threshold on MedQA (USMLE) and outperfoms models of similar size accross most medical evaluations.

This model serves as a proof of concept and larger models trained on a larger corpus of medical literature are planned. Do not hesitate to reach out to us if you would like to sponsor some compute to speed up this training.

How to use
Install the necessary packages
pip install --upgrade autoawq autoawq-kernels
Example Python code
from awq import AutoAWQForCausalLM
from transformers import AutoTokenizer, TextStreamer

model_path = "solidrust/base-7b-v0.2-AWQ"
system_message = "You are base-7b-v0.2, incarnated as a powerful AI. You were created by internistai."

# Load model
model = AutoAWQForCausalLM.from_quantized(model_path,
                                          fuse_layers=True)
tokenizer = AutoTokenizer.from_pretrained(model_path,
                                          trust_remote_code=True)
streamer = TextStreamer(tokenizer,
                        skip_prompt=True,
                        skip_special_tokens=True)

# Convert prompt to tokens
prompt_template = """\
<|im_start|>system
{system_message}<|im_end|>
<|im_start|>user
{prompt}<|im_end|>
<|im_start|>assistant"""

prompt = "You're standing on the surface of the Earth. "\
        "You walk one mile south, one mile west and one mile north. "\
        "You end up exactly where you started. Where are you?"

tokens = tokenizer(prompt_template.format(system_message=system_message,prompt=prompt),
                  return_tensors='pt').input_ids.cuda()

# Generate output
generation_output = model.generate(tokens,
                                  streamer=streamer,
                                  max_new_tokens=512)
About AWQ

AWQ is an efficient, accurate and blazing-fast low-bit weight quantization method, currently supporting 4-bit quantization. Compared to GPTQ, it offers faster Transformers-based inference with equivalent or better quality compared to the most commonly used GPTQ settings.

AWQ models are currently supported on Linux and Windows, with NVidia GPUs only. macOS users: please use GGUF models instead.

It is supported by:

Runs of solidrust internistai-base-7b-v0.2-AWQ on huggingface.co

22
Total runs
1
24-hour runs
4
3-day runs
5
7-day runs
8
30-day runs

More Information About internistai-base-7b-v0.2-AWQ huggingface.co Model

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internistai-base-7b-v0.2-AWQ huggingface.co is an AI model on huggingface.co that provides internistai-base-7b-v0.2-AWQ's model effect (), which can be used instantly with this solidrust internistai-base-7b-v0.2-AWQ model. huggingface.co supports a free trial of the internistai-base-7b-v0.2-AWQ model, and also provides paid use of the internistai-base-7b-v0.2-AWQ. Support call internistai-base-7b-v0.2-AWQ model through api, including Node.js, Python, http.

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solidrust internistai-base-7b-v0.2-AWQ online free

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internistai-base-7b-v0.2-AWQ install

internistai-base-7b-v0.2-AWQ is an open source model from GitHub that offers a free installation service, and any user can find internistai-base-7b-v0.2-AWQ on GitHub to install. At the same time, huggingface.co provides the effect of internistai-base-7b-v0.2-AWQ install, users can directly use internistai-base-7b-v0.2-AWQ installed effect in huggingface.co for debugging and trial. It also supports api for free installation.

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