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M5Stack LLM AX630C Large Language Model Module Development Kit Dual Cortex AI Processor 4GB LPDDR4 32GB eMMC Offline AI — image 1
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M5Stack LLM AX630C Large Language Model Module Development Kit Dual Cortex AI Processor 4GB LPDDR4 32GB eMMC Offline AI

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Electronics for premium buyers

The M5Stack LLM AX630C Large Language Model Module Development Kit Dual Cortex AI Processor 4GB LPDDR4 32GB eMMC Offline AI by M5Stack is a premium electronics designed for premium buyers. It features Processor SoC: AX630C@Dual Cortex A53 1.2 GHz and Memory: 4GB LPDDR4 (1GB system memory + 3GB dedicated to hardware acceleration).

₹9,856-21%
MRP:₹12,499Save ₹2,643
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Color: Black

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Total: ₹9,856
Buying tip: A top-tier option — the best features and quality available in this category.
Estimated delivery: 4 Aug18 Aug
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Quick Specs

Processor SoC: AX630C@Dual Cortex A53 1.2 GHz
Memory: 4GB LPDDR4 (1GB system memory + 3GB dedicated to hardware acceleration)
Storage: 32GB eMMC5.1
Communication: Serial communication, default baud rate 115200@8N1 (adjustable)
Microphone: MSM421A
Audio Driver: AW8737

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SKU: bg-2048631Category: Electronics

About This Product

The M5Stack LLM AX630C Large Language Model Module Development Kit Dual Cortex AI Processor 4GB LPDDR4 32GB eMMC Offline AI by M5Stack is a premium electronics designed for premium buyers. It delivers reliable performance at an accessible price.

Key Specifications

  • Processor SoC: AX630C@Dual Cortex A53 1.2 GHz — smooth, lag-free performance
  • Memory: 4GB LPDDR4 (1GB system memory + 3GB dedicated to hardware acceleration) — effortless multitasking
  • Storage: 32GB eMMC5.1 — plenty of room for files, apps, and media
  • Communication: Serial communication, default baud rate 115200@8N1 (adjustable)
  • Microphone: MSM421A
  • Audio Driver: AW8737
  • Speaker: 8Ω@1W, size: 2014 cavity speaker
  • Built-in Functions: KWS (wake word), ASR (speech recognition), LLM (large language model), TTS (text-to-speech)

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Specifications:
Introduction: 1. Module LLM Kit is a smart modular kit focused on offline AI inference and data communication interface applications. It integrates the Module LLM and Module13.2 LLM Mate modules to meet the offline AI inference and data interaction requirements across various scenarios. 2. Module LLM is an integrated offline large language model (LLM) inference module designed specifically for terminal devices that require efficient and intelligent interaction. Whether for smart home applications, voice assistants, or industrial control, Module LLM delivers a smooth and natural AI experience without relying on the cloud, ensuring privacy, security, and stability. 3. Module13.2 LLM Mate Module provides a variety of interface functions to facilitate system integration and expansion. It achieves stacked power supply with Module LLM via the M5-Bus interface; its built-in CH340N USB conversion chip offers USB-to-serial debugging functionality, while the Type-C interface is used for USB log output. Additionally, the RJ45 interface works with the onboard network transformer to extend to a 100 Mbps Ethernet port and core serial port (supporting SBC applications); the FPC-8P interface connects directly to Module LLM, ensuring stable serial communication; furthermore, an HT3.96*9P solder pad is reserved for DIY expansion. 4. The Module LLM module integrates the StackFlow framework along with the Arduino/UiFlow libraries, allowing edge intelligence to be implemented with just a few lines of code. Powered by the AiXin AX630C SoC processor and featuring a high-efficiency NPU delivering 3.2 TOPS with native support for Transformer models, it effortlessly handles complex AI tasks. Equipped with 4GB LPDDR4 memory (1GB for user applications and 3GB dedicated to hardware acceleration) and 32GB eMMC storage, it supports parallel multi-model loading and chained inference, ensuring smooth multitasking. With an operating power consumption of only about 1.5W, it is far more energy efficient than similar products, making it ideal for long-term operation. 5. Module LLM is compatible with multiple models and comes pre-installed with the Qwen2.5-0.5B large language model, featuring built-in functions including KWS (wake word), ASR (speech recognition), LLM (large language model), and TTS (text-to-speech). It also supports apt-based rapid updates of software and model packages. By installing the openai-api plugin, it becomes compatible with the OpenAI standard API, supporting chat, conversation completion, speech-to-text, and text-to-speech among various application modes. The official apt repository offers abundant large model resources—including deepseek-r1-distill-qwen-1.5b, InternVL2_5-1B-MPO, Llama-3.2-1B, Qwen2.5-0.5B, and Qwen2.5-1.5B—as well as a text-to-speech model (melotts) and speech-to-text models (whisper-tiny, whisper-base) and visual models (such as yolo11 and other SOTA models). The repository is continuously updated to support the most cutting-edge model applications, meeting the demands of complex AI tasks. 6. Module LLM Kit is plug-and-play, and when paired with the M5 host, it provides an instant AI interactive experience. Users can seamlessly integrate it into existing smart devices without cumbersome setup, quickly enabling intelligent features and enhancing device performance. This product is ideal for offline voice assistants, text-to-speech conversion, smart home control, interactive robots, and more.

Features:
1. High-Performance Processor: Powered by the AX630C SoC with optimized TOPS for efficient AI operations.
2. Enhanced Memory: Equipped with 4GB LPDDR4, ensuring smooth system operation and hardware acceleration.
3. Compact Storage: Integrated 32GB eMMC5.1 for reliable and high-speed data storage.
4. Versatile Audio System: Combines a quality microphone and high-definition speaker for clear sound functionality.
5. RGB LED Indicators: Features three RGB LEDs for customizable status notifications.

Package Included:
1 x Module LLM
1 x Module LLM Mate
2 x FPC-8P Wire


Product Safety Information

Setup Guide

1
Identify the pins
Locate VCC (power), GND (ground), and data pins (SDA/SCL for I2C, MOSI/MISO for SPI, or TX/RX for UART). Refer to the pinout diagram on the product page.
2
Wire to your microcontroller
Connect VCC to 3.3V or 5V (check the module spec), GND to GND, and data pins to the appropriate GPIO pins on your Arduino or Raspberry Pi.
3
Install libraries
In Arduino IDE, go to Sketch → Include Library → Manage Libraries and search for the sensor library. Install the recommended version.
4
Upload example sketch
Open File → Examples → [library name] → Basic Example. Upload to your board and open Serial Monitor to view output.
5
Calibrate if needed
Some sensors (temperature, humidity, distance) may need a short warm-up period or calibration. Run the calibration sketch if provided.