Holo4-27B MLX

MLX quantizations of Hcompany/Holo4-27B, a 27B dense vision-language model (VLM) for Computer Use, tool-driven work, and agentic workflows.

Upstream benchmarks

Holo4-27B benchmark results

Results reported by H Company from evaluations of the original Holo4-27B model across computer tasks, long workflows, and tool servers.

MLX Files

Quantization File Size
4-bit Holo4-27B-MLX-4bit 14.95 GB
6-bit Holo4-27B-MLX-6bit 21.21 GB
8-bit Holo4-27B-MLX-8bit 27.48 GB

Usage with MLX-VLM

Installation

pip install -U mlx-vlm

Python API

from mlx_vlm import load, generate
from mlx_vlm.prompt_utils import apply_chat_template
from mlx_vlm.utils import load_config

# Load 4-bit (or subfolder="Holo4-27B-MLX-6bit", subfolder="Holo4-27B-MLX-8bit")
model_path = "abenzerps/Holo4-27B-MLX"
subfolder = "Holo4-27B-MLX-4bit"

model, processor = load(model_path, subfolder=subfolder)
config = load_config(model_path, subfolder=subfolder)

prompt = "Describe the user interface elements shown in this screenshot."
image = ["screenshot.png"]

formatted_prompt = apply_chat_template(
    processor, config, prompt, num_images=len(image)
)

output = generate(model, processor, formatted_prompt, image, verbose=True)
print(output)

Command Line Interface

# 4-bit
python -m mlx_vlm.generate \
    --model abenzerps/Holo4-27B-MLX --subfolder Holo4-27B-MLX-4bit \
    --image screenshot.png \
    --prompt "What action should be taken next to achieve the user goal?"

# 6-bit
python -m mlx_vlm.generate \
    --model abenzerps/Holo4-27B-MLX --subfolder Holo4-27B-MLX-6bit \
    --image screenshot.png \
    --prompt "What action should be taken next to achieve the user goal?"

# 8-bit
python -m mlx_vlm.generate \
    --model abenzerps/Holo4-27B-MLX --subfolder Holo4-27B-MLX-8bit \
    --image screenshot.png \
    --prompt "What action should be taken next to achieve the user goal?"

Source

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