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Hailo-8 M.2 AI Accelerator Module, 26TOPS Hailo-8 AI Processor Optional For PCIe To M.2 Adapter Board, For Raspberry Pi 5
Hailo-8 M.2 AI Accelerator Module, 26TOPS Hailo-8 AI Processor Optional For PCIe To M.2 Adapter Board, For Raspberry Pi 5
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DESCRIPTION
Equipped With 26TOPS Hailo-8 M.2 AI Accelerator Module
This AI kit is launched by Waveshare to provide a more cost-effective and high-performance AI solution for the Raspberry Pi 5, optional for PCIe To M.2 adapter, suitable for applications such as process control, safety, home automation and robotics, etc.

Hailo-8
the Hailo-8 AI M.2 module only

Hailo-8 Acce A
Hailo-8 M.2 module + PCIe TO M.2 adapter and accessories (can be directly accessed to Raspberry Pi 5)
- Hailo-8 AI M.2 module
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Powered by 26 Tera-Operations Per Second (TOPS) Hailo-8 AI Processor
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2.5W typical power consumption
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Scalable, enabling simultaneous processing of multi-streams & multi-models
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Enabling real-time, low latency and high-efficiency AI inferencing on the edge devices
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Supports TensorFlow, TensorFlow Lite, ONNX, Keras, Pytorch frameworks
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Supports Linux and Windows
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Supports the temperature range of -40°C to 85°C
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- PCIe To M.2 adapter
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Onboard power monitoring chip and EEPROM, supports real-time monitoring of device power status for more stable operation
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Raspberry Pi HAT+ compliant
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Reserved airflow vent, supports installing cooling fan for better heat dissipation of the AI module to improve performance
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Immersion gold process design, anti-oxidation and more durable
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| AI PERFORMANCE | 26 TOPS |
| FORM FACTOR | M.2 Key M |
| POWER SUPPLY | 3.3V ± 5% |
| POWER CONSUMPTION | 2.5W (Typ.) |
| INTERFACE | PCIe Gen3, 4-lane |
| CERTIFICATE | CE, FCC Class A |
| STORAGE TEMPERATURE | -40 ~ 85°C |
| OPERATING TEMPERATURE | -40 ~ 85°C |
| OPERATING HUMIDITY | 5% ~ 90%RH (no frosting) |
| DIMENSIONS | 22×80mm with breakable extensions to 22×42mm and 22×60mm |
The Hailo-8 M.2 module is an AI accelerator module for AI applications, based on the 26 tera-operations per second (TOPS) Hailo-8 AI processor with high power efficiency. The M.2 AI accelerator features a full PCIe Gen-3.0 4-lane interface, delivering unprecedented AI performance for edge devices.
The M.2 module can be plugged into an existing edge device with M.2 socket to provide low-power deep neural network inferencing. Leveraging Hailo's comprehensive Dataflow Compiler and its support for standard AI frameworks, customers can easily port their Neural Network models to the Hailo-8 and introduce high-performance AI products to the market quickly.

| NN Model | mAP | Hailo-8L FPS |
| yolov4_tiny | 18.98 | 610 |
| yolov6n | 34.3 | 345 |
| yolov7 | 49.8 | 45 |
| yolox_s_wide | 42.4 | 75 |
| yolov3 | 38 | 26 |
| yolov8n | 37.23 | 270 |
| yolov8s | 44.75 | 128 |
| yolov8m | 50.08 | 55 |
| Type | NN Model | Input Resolution | FPS | Power(W) | FPS/W |
| Classification | ResNet-50 v1 | 224x224 | 1332 | 3.45 | 386 |
| MobileNet_v2_1.0 | 224x224 | 2444 | 2.152 | 1135 | |
| EfficientNet_M | 240x240 | 889 | 3.5 | 254 | |
| Object Detection | SSD_MobileNet_v1 | 300x300 | 1055 | 2.2 | 479 |
| YOLOv5m | 640x640 | 218 | 4.6 | 47.3 | |
| Segmentation | stdc1 | 1024x1920 | 54 | 2.9 | 18.6 |
| Multi stream object detection (8 streams) | YOLOv3 | 608x608 | 69 | 4.9 | 14 |
Based On 16PIN PCIe Interface Of Raspberry Pi 5

Standard Raspberry Pi 40PIN Header, Comes With 2*20 Pin Header For Stacking With Other HATs. Compact Size, More Space-Saving, Supports Installing Cooling Fan

Can Be Used Together With The Pi5 Active Cooler B To Achieve Better Heat Dissipation Effect For The Pi5 And AI Accelerator Module, Keeping It Cool Even Under Heavy Processing And Maximizing The Module Performance

Real-Time Monitoring Of Device Power Status For More Stable Operation


* for reference only, the cooling fan is NOT included.



PACKAGE CONTENT
Weight: 0.04 kg
Hailo-8
Hailo-8 AI M.2 Module ×1

Hailo-8 Acce A
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Hailo-8 AI M.2 Module x1
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PCIe TO M.2 HAT+ x1
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Standoff pack x1
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16P-Cable-40mm x1
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2*20 Pin header x1

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