Family Trinity · 26B parameters

Trinity Mini 26B-A3B

MoE 26B/3B active parameters from a US lab. Fast thanks to the 3B active parameters. Apache 2.0.

🇺🇸 Arcee AI·License Apache 2.0·Context 128k tokens·Output March 2025·Fits within the 128 GB of the GIGABYTE AI TOP ATOM← Catalog

01What it can do

Strengths
  • Efficient MoE (3.5B active)
  • 131k context
  • Good at agent tasks
  • Apache 2.0
Limitations to know
  • —Few public benchmarks
  • —Less well known than Mistral/Qwen
Architecture
MoE · 26B total / 3.5B active · Arcee AI · 131k context
Training
Arcee AI — compact MoE for agents and enterprise.
Ideal for
Compact MoEEfficient chat

04Install

Install Ollama for your OS. Check the model and its quantization before downloading. Start with 4096 tokens of context, then check placement with ollama ps. A command below is not proof that a test was run on your machine.

$ollama pull hf.co/arcee-ai/Trinity-Mini-26B-GGUF
⚠
First download: between 2 and 40 GB depending on the selected quantization. Plan for sufficient disk space; a stable connection is recommended. Subsequent launches are instant.

02Required memory

Approximate GPU VRAM required to run this model, including 4k tokens of context overhead. For a longer context, add ~1 GB per 8k-token increment.

Q4_K_M
The lightest, ~5% loss
15 GB
Q5_K_M
Good quality/size compromise
18 GB
Q8_0
Nearly indistinguishable from FP16
28 GB
FP16
Full precision — server use
52 GB
Fallback CPU · If you don't have a GPU, allow 24 GB of RAM minimum to run this model at reduced speed.

What hardware do you need for Trinity Mini 26B-A3B?

To run Trinity Mini 26B-A3B locally with Q4 quantization, you need about 15 GB of VRAM. An option to compare: GMKtec EVO-X2 64GB / 1TB (Ryzen AI Max+ 395) — leave some headroom for the system and context; check engine compatibility with the GPU.

Current offer: GMKtec EVO-X2 64GB / 1TB (Ryzen AI Max+ 395)
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Why this choice? Our complete guide on GMKtec EVO-X2 64GB / 1TB (Ryzen AI Max+ 395) →

Affiliate links — commission possible at no extra cost to you; independent recommendations. As an Amazon Associate, BestLLMfor earns from qualifying purchases.

On the go: Trinity Mini 26B-A3B also runs on a RTX laptop PC (16 GB of VRAM) →

This model in your private ChatGPT, without the cloud

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03Expected speed

Tokens generated per second in Q4_K_M, 4k context. Beyond 20 t/s, reading is comfortable. Below 10 t/s, that's just for testing.

Entry-level
~15t/s
GTX 1650, RX 6600, MBA M2 8GB
Mid-range
~40t/s
RTX 4060, 4070, MBP M3 Pro
High-end
~100t/s
RTX 4090, M4 Max, Radeon 7900