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metadata
library_name: transformers
base_model: DavidAU/Qwen2.5-7B-Instruct-1M-Thinking-Claude-Gemini-GPT5.2-DISTILL
datasets:
  - TeichAI/claude-4.5-opus-high-reasoning-250x
  - TeichAI/gemini-3-pro-preview-high-reasoning-250x
  - TeichAI/gpt-5.2-high-reasoning-250x
language:
  - en
  - fr
  - de
  - es
  - it
  - pt
  - ru
  - zh
  - ja
tags:
  - thinking
  - reasoning
  - Gemini
  - Claude Opus
  - Gpt5.2
  - Distill
  - finetune
  - creative
  - creative writing
  - fiction writing
  - plot generation
  - sub-plot generation
  - story generation
  - scene continue
  - storytelling
  - fiction story
  - science fiction
  - romance
  - all genres
  - story
  - writing
  - vivid prose
  - vivid writing
  - fiction
  - roleplaying
  - bfloat16
  - swearing
  - rp
  - horror
  - unsloth
  - context 1 million
  - mlx
  - mlx-my-repo
pipeline_tag: text-generation

alexgusevski/Qwen2.5-7B-Instruct-1M-Thinking-Claude-Gemini-GPT5.2-DISTILL-mlx-5Bit

The Model alexgusevski/Qwen2.5-7B-Instruct-1M-Thinking-Claude-Gemini-GPT5.2-DISTILL-mlx-5Bit was converted to MLX format from DavidAU/Qwen2.5-7B-Instruct-1M-Thinking-Claude-Gemini-GPT5.2-DISTILL using mlx-lm version 0.29.1.

Use with mlx

pip install mlx-lm
from mlx_lm import load, generate

model, tokenizer = load("alexgusevski/Qwen2.5-7B-Instruct-1M-Thinking-Claude-Gemini-GPT5.2-DISTILL-mlx-5Bit")

prompt="hello"

if hasattr(tokenizer, "apply_chat_template") and tokenizer.chat_template is not None:
    messages = [{"role": "user", "content": prompt}]
    prompt = tokenizer.apply_chat_template(
        messages, tokenize=False, add_generation_prompt=True
    )

response = generate(model, tokenizer, prompt=prompt, verbose=True)