KV-cache quantization without any fork (recommended, 2026): upstream llama.cpp/Ollama now cover this natively — use -ctk q8_0 -ctv q8_0 (half KV memory, negligible quality loss: perplexity +0.002–0.05) or -ctk q4_0 -ctv q4_0 (quarter memory, ≈7.6% perplexity increase). In Ollama: OLLAMA_KV_CACHE_TYPE=q8_0 with OLLAMA_FLASH_ATTENTION=1. Keep K and V types symmetric to stay on the fast fused Flash-Attention path. Since April 2026, mainline llama.cpp also applies Hadamard rotation to KV activations (PR #21038), which greatly improves low-bit KV quality (opt-out: LLAMA_ATTN_ROT_DISABLE=1).

The RotorQuant/TurboQuant fork flow below is experimental/legacy: the TurboQuant llama.cpp PR was closed without merging (June 2026) and the fork is unmaintained relative to mainline. It is NOT required to use this model.

Qwen3.6 35B-A3B - TurboQuant MLX 8-bit

8-bit weight-quantized MLX version of Qwen/Qwen3.6-35B-A3B with the legacy TurboQuant KV-cache fork (superseded by upstream llama.cpp KV options). Optimized for Apple Silicon inference via the MLX framework. Only 3B parameters are active per token despite 35B total, making this model significantly more efficient at inference time than its parameter count suggests.

Approximate model size: ~35 GB

Model Specifications

Property Value
Base Model Qwen/Qwen3.6-35B-A3B
Parameters 35 billion total (3 billion active per token)
Architecture Mixture-of-Experts (MoE) (3B active per token)
Modality Text-only (language tower extracted from a multimodal base; vision tower not included)
License Apache 2.0
Weight Quantization 8-bit (~35 GB)
KV-Cache Quantization TurboQuant
Framework MLX (Apple Silicon)

Quickstart

import mlx.core as mx
from mlx_lm import load, generate

model, tokenizer = load("majentik/Qwen3.6-35B-A3B-TurboQuant-MLX-8bit")

prompt = "Give me a short introduction to Mixture-of-Experts models."
response = generate(model, tokenizer, prompt=prompt, max_tokens=512)
print(response)

Text-only extraction. This repo contains only the quantized language tower of Qwen3.6-35B-A3B. The upstream vision tower (333 tensors) and MTP head are not included, so image/video input does not work and mlx_vlm.load(...) fails with a Missing ... parameters error (the vision tower it expects is absent from the checkpoint). Load it with mlx_lm (recent version with qwen3_5_moe support) as shown above. For image/video input, use the upstream BF16 model Qwen/Qwen3.6-35B-A3B on a runtime that supports it.

About the RotorQuant / TurboQuant labels

RotorQuant and TurboQuant are this project's release labels, not distinct quantization algorithms — for any given tier, both brand repos carry byte-identical weights produced with the standard MLX / llama.cpp quantizers. No brand-specific speedup is claimed or measured. The KV-cache fork these labels originally referred to is legacy; for KV-cache memory savings use the upstream options described above (-ctk/-ctv q8_0, OLLAMA_KV_CACHE_TYPE).

KV-Cache Quantization Comparison

Method Prefill Speed Decode Speed Memory Savings Reference
TurboQuant 1x (baseline) 1x (baseline) High arXiv: 2504.19874

Memory Estimates (Qwen3.6 35B-A3B)

Precision Approximate Size MLX Variant
FP16 (original) ~70 GB (approx.) --
8-bit quantized ~35 GB This model
4-bit quantized ~18 GB TurboQuant-MLX-4bit
2-bit quantized ~9 GB TurboQuant-MLX-2bit

Hardware Requirements

This model requires approximately 35 GB of unified memory. Recommended hardware:

  • Apple M2 Max (32 GB+)
  • Apple M3 Max (48 GB+)
  • Apple M4 Max (48 GB+)

See Also

Quant trade-off (MLX lane)

Bits Approx size Use case Recommendation
2-bit ~9.1 GB Aggressive quantization Very low-RAM Macs
3-bit ~13 GB Lossy but small Low-RAM Macs
4-bit ~15 GB Balanced default Recommended for most Macs
5-bit ~18 GB Higher fidelity Quality-sensitive
6-bit ~21 GB Approaching FP16 quality High-fidelity
8-bit ~27 GB Near-lossless reference Fidelity-critical work

(Current variant — 8bit — is bolded.)

Variants in this family

(Showing 24 sibling variants under majentik/qwen3.6-35b-a3b-*. The current variant — TurboQuant-MLX-8bit — is bolded.)

Variant Runtime Approx size Use case
RotorQuant-GGUF-IQ4_XS llama.cpp ~30 GB Lossy 4-bit, low-RAM CPU/edge
RotorQuant-GGUF-Q2_K llama.cpp ~21 GB Lossy, low-RAM CPU/edge
RotorQuant-GGUF-Q3_K_M llama.cpp ~27 GB Smaller 3-bit, CPU-friendly
RotorQuant-GGUF-Q4_K_M llama.cpp ~38 GB Balanced default
RotorQuant-GGUF-Q5_K_M llama.cpp ~46 GB Higher fidelity, more RAM
RotorQuant-GGUF-Q8_0 llama.cpp ~74 GB Near-lossless reference
RotorQuant-MLX-2bit mlx-lm ~11 GB Apple Silicon, smallest
RotorQuant-MLX-3bit mlx-lm ~16 GB Apple Silicon, small
RotorQuant-MLX-4bit mlx-lm ~22 GB Apple Silicon balanced
RotorQuant-MLX-5bit mlx-lm ~27 GB Apple Silicon, higher fidelity
RotorQuant-MLX-6bit mlx-lm ~32 GB Apple Silicon, near-lossless
RotorQuant-MLX-8bit mlx-lm ~41 GB Apple Silicon reference
TurboQuant-MLX-2bit mlx-lm ~11 GB Apple Silicon, smallest
TurboQuant-MLX-3bit mlx-lm ~16 GB Apple Silicon, small
TurboQuant-MLX-4bit mlx-lm ~22 GB Apple Silicon balanced
TurboQuant-MLX-5bit mlx-lm ~27 GB Apple Silicon, higher fidelity
TurboQuant-MLX-6bit mlx-lm ~32 GB Apple Silicon, near-lossless
TurboQuant-MLX-8bit mlx-lm ~41 GB Apple Silicon reference
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