apodex·Qwen3_5MoeForConditionalGeneration

Apodex 1.1 Mini — Hardware Requirements & GPU Compatibility

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Apodex 1.1 Mini is a 36.0B-parameter open language model from apodex. It supports a context window of up to 262,144 tokens. At Q4_K_M it needs about 21.95 GB of VRAM — see which GPUs and Macs can run it below.

5.7K downloads 125 likes 11.3K quant downloads262K context

Specifications

Publisher
apodex
Parameters
36.0B
Architecture
Qwen3_5MoeForConditionalGeneration
Context Length
262,144 tokens
Vocabulary Size
248,320
Release Date
2026-08-17
License
Apache 2.0

Get Started

How Much VRAM Does Apodex 1.1 Mini Need?

Select a quantization to see compatible GPUs below.

QuantizationBitsVRAM
Q2_K3.4015.7 GB
Q3_K_M3.9017.9 GB
Q4_K_M4.8021.9 GB
Q5_K_M5.7026 GB
Q6_K6.6030.0 GB
Q8_08.0036.3 GB

est.= calculated VRAM estimate; no published GGUF file found for that quantization yet. Other rows are verified against real community uploads.

Which GPUs Can Run Apodex 1.1 Mini?

Q4_K_M · 21.9 GB

Apodex 1.1 Mini (Q4_K_M) requires 21.9 GB of VRAM to load the model weights. For comfortable inference with headroom for KV cache and system overhead, 29+ GB is recommended. Using the full 262K context window can add up to 10.7 GB, bringing total usage to 32.6 GB. 7 GPUs can run it, including NVIDIA GeForce RTX 5090.

All compatible consumer-level GPUs are running near their VRAM limit. You may also want to consider professional GPUs (e.g., NVIDIA A100, H100) which offer significantly more VRAM. For more headroom and better throughput, consider a multi-GPU configuration with tensor parallelism (supported by tools like vLLM, llama.cpp, or text-generation-inference).

Which Devices Can Run Apodex 1.1 Mini?

Q4_K_M · 21.9 GB

41 devices with unified memory can run Apodex 1.1 Mini, including NVIDIA DGX H100, NVIDIA DGX A100 640GB, Mac Mini M4 Pro (24 GB).

Runs great

Plenty of headroom

Where to Download Apodex 1.1 Mini

Community quantizations of this model — GGUF for llama.cpp, Ollama, and LM Studio, plus AWQ/MLX variants where available.

Related Models

Frequently Asked Questions

How much VRAM does Apodex 1.1 Mini need?

Apodex 1.1 Mini requires 21.9 GB of VRAM at Q4_K_M, or 72.3 GB at BF16. Full 262K context adds up to 10.7 GB (32.6 GB total).

VRAM = Weights + KV Cache + Overhead

Weights = 36.0B × 4.8 bits ÷ 8 = 21.6 GB

KV Cache + Overhead 0.3 GB (at 2K context + ~0.3 GB framework)

KV Cache + Overhead 11 GB (at full 262K context)

VRAM usage by quantization

21.9 GB
32.6 GB

Learn more about VRAM estimation →

Can NVIDIA GeForce RTX 4090 run Apodex 1.1 Mini?

Yes, at Q4_K_M (21.9 GB) or lower. Higher quantizations like Q5_K_S (25.1 GB) exceed the NVIDIA GeForce RTX 4090's 24 GB.

What's the best quantization for Apodex 1.1 Mini?

For Apodex 1.1 Mini, Q4_K_M (21.9 GB) offers the best balance of quality and VRAM usage. Q5_K_S (25.1 GB) provides better quality if you have the VRAM. The smallest option is IQ2_M at 12.5 GB.

VRAM requirement by quantization

IQ2_M
12.5 GB
Q3_K_M
17.9 GB
Q4_K_M
21.9 GB
Q5_K_S
25.1 GB
Q6_K
30.0 GB
BF16
72.3 GB

★ Recommended — best balance of quality and VRAM usage.

Learn more about quantization →

Can I run Apodex 1.1 Mini on a Mac?

Apodex 1.1 Mini requires at least 12.5 GB at IQ2_M, which exceeds the unified memory of most consumer Macs. You would need a Mac Studio or Mac Pro with a high-memory configuration.

Can I run Apodex 1.1 Mini locally?

Yes — Apodex 1.1 Mini can run locally on consumer hardware. At Q4_K_M quantization it needs 21.9 GB of VRAM. Popular tools include Ollama, LM Studio, and llama.cpp.

How fast is Apodex 1.1 Mini?

At Q4_K_M, Apodex 1.1 Mini can reach ~219 tok/s on AMD Instinct MI350X. On NVIDIA GeForce RTX 4090: ~30 tok/s. Speed depends mainly on GPU memory bandwidth. Real-world results typically within ±20%.

tok/s = (bandwidth GB/s ÷ model GB) × efficiency

Example: NVIDIA B2008000 ÷ 21.9 × 0.65 = ~237 tok/s

Estimated speed at Q4_K_M (21.9 GB)

~237 tok/s
~30 tok/s
~237 tok/s
~219 tok/s

Real-world results typically within ±20%. Speed depends on batch size, quantization kernel, and software stack.

Learn more about tok/s estimation →

What's the download size of Apodex 1.1 Mini?

At Q4_K_M, the download is about 21.57 GB. The full-precision BF16 version is 71.90 GB. The smallest option (IQ2_M) is 12.13 GB.

Which GPUs can run Apodex 1.1 Mini?

7 consumer GPUs can run Apodex 1.1 Mini at Q4_K_M (21.9 GB). Top options include AMD Radeon RX 7900 XTX, NVIDIA GeForce RTX 3090.

Which devices can run Apodex 1.1 Mini?

41 devices with unified memory can run Apodex 1.1 Mini at Q4_K_M (21.9 GB), including AMD Ryzen AI 9 HX 370 (Strix Point) Laptop, ASUS Ascent GX10, Asus ROG Flow Z13 (2025, Ryzen AI Max+ 395, 128 GB), Beelink GTR9 Pro (Ryzen AI Max+ 395, 128 GB). Apple Silicon Macs use unified memory shared between CPU and GPU, making them well-suited for local LLM inference.