How to use from
MLX LM
Generate or start a chat session
# Install MLX LM
uv tool install mlx-lm
# Interactive chat REPL
mlx_lm.chat --model "abenzerps/K2-Horizon-MoVA-36B-A4B-MLX-4bit"
Run an OpenAI-compatible server
# Install MLX LM
uv tool install mlx-lm
# Start the server
mlx_lm.server --model "abenzerps/K2-Horizon-MoVA-36B-A4B-MLX-4bit"
# Calling the OpenAI-compatible server with curl
curl -X POST "http://localhost:8000/v1/chat/completions" \
   -H "Content-Type: application/json" \
   --data '{
     "model": "abenzerps/K2-Horizon-MoVA-36B-A4B-MLX-4bit",
     "messages": [
       {"role": "user", "content": "Hello"}
     ]
   }'
Quick Links

K2-Horizon-MoVA-36B-A4B MLX-4bit

MLX 4-bit conversion of IFM/K2-Horizon-MoVA-36B-A4B, a sparse Mixture-of-Experts model with Mixture-of-Values attention (MoVA), 36B total parameters, and approximately 4B active parameters per token. The source checkpoint supports a native context length of 524,288 tokens (512K).

Benchmarks

K2-Horizon-MoVA-36B-A4B benchmark results

Benchmark results reported by IFM for the original K2-Horizon-MoVA-36B-A4B checkpoint.

Release

Format Quantization Size
MLX safetensors Affine 4-bit, group size 64 21.07 GB

The MoE and MoVA router weights remain at 8-bit; other eligible weights use affine 4-bit quantization. This is a text-only release; no vision projector is required. The repository includes a source-compatible chat_template.jinja, the custom MLX model implementation required by this architecture, and SHA256SUMS.

Usage

pip install -U mlx-lm

mlx_lm.generate \
  --model abenzerps/K2-Horizon-MoVA-36B-A4B-MLX-4bit \
  --prompt "Explain why reproducible builds matter." \
  --max-tokens 512 --temp 1.0 --top-p 0.95

Use a current mlx-lm release. The source model supports 512K context; usable context length depends on available unified memory and KV-cache settings.

Source

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