MobileNetV3-Large optimized for Arm-based Ethos-U NPU
An INT8-quantized version of MobileNetV3-Large for image classification, exported to ExecuTorch (.pte) and lowered to a single Ethos-U85 NPU partition for Arm-based Ethos-U NPU systems.
Summary
This repository contains an Arm-optimized version of mobilenet_v3_large for image classification, quantized to INT8 via static post-training quantization — per-channel symmetric weights, per-tensor affine (asymmetric) activations. The model is provided in ExecuTorch (.pte) format, targeting Ethos-U NPU systems.
This version is intended to demonstrate efficient inference on Arm-based platforms while preserving the original model's intended behavior. Arm has evaluated this model on ImageNet-1k and measured performance on a representative evaluation target.
Key results
| Area | Result |
|---|---|
| Model format | ExecuTorch (.pte) |
| Target device class | Ethos-U NPU |
| Reference device | Alif DK-E8 (Cortex-M55 + Ethos-U85-256 NPU, bare-metal) |
| Primary performance result | p50 latency 35.17 ms (28.43 inferences/s) |
| Accuracy result | Top-1 72.93%, Top-5 91.23% |
| Size / memory result | 5.11 MB (4.13x smaller than the 21.11 MB FP32 state dict) |
Original model
| Field | Value |
|---|---|
| Original model | mobilenet_v3_large |
| Original source | torchvision/models/mobilenetv3.py |
| Original developer | |
| Original model card | torchvision.models.mobilenet_v3_large |
| Original license | BSD-3-Clause |
Model files
| File | Description |
|---|---|
mobilenet_v3_large_ethosu_optimized.pte |
Arm-optimized model for deployment |
config.yaml |
Model I/O contract used by the example |
benchmarks/ |
FP32 baseline and Arm-optimized benchmark records |
Performance
Performance was measured on the reference configuration below. Results are intended to make the optimization reproducible but do not guarantee identical performance on every Arm-based system.
Reference configuration
| Field | Value |
|---|---|
| Device / platform | Alif DK-E8 |
| CPU / accelerator | Cortex-M55 (1 core @ 400 MHz) + Ethos-U85 NPU (256 MACs/cycle @ 400 MHz) |
| OS | bare-metal |
| Runtime | ExecuTorch 1.1.0 |
| Backend / delegate | CMSIS-NN, Ethos-U-Driver |
| Batch size | 1 |
| Precision | INT8 — per-channel symmetric weights, per-tensor affine (asymmetric) activations, a8w8 Vela quantization scheme |
| Quantization method | Static PTQ (PT2E), per-channel weight granularity, histogram-based activation observers |
| Runs | 10 warmup + 100 measured |
Performance results
| Metric | Original / baseline | Arm-optimized | Improvement |
|---|---|---|---|
| p50 latency | N/A | 35.17 ms | N/A |
| p90 latency | N/A | 35.17 ms | N/A |
| Model size | 21.11 MB | 5.11 MB | 4.13x smaller |
The "Original / baseline" model size is the FP32 PyTorch state dict.
Because the Ethos-U85 NPU architecture natively processes integer workloads and does not support floating-point execution, the FP32 baseline cannot be compiled into an Ethos-U85 delegate .pte file, making NPU-accelerated baseline latency and throughput figures non-applicable.
Accuracy
Accuracy was evaluated on the ImageNet-1k validation split, comparing the FP32 baseline against the Arm-optimized INT8 model via a PyTorch FP32-vs-PT2E INT8 simulation, not on the exported .pte running on Ethos-U85.
Evaluation setup
| Field | Value |
|---|---|
| Dataset | ImageNet-1k |
| Split | val |
| Number of samples | 50,000 |
| Metric(s) | Top-1 Accuracy, Top-5 Accuracy |
| Evaluation runtime | PyTorch (FP32 vs. PT2E INT8 simulation) |
Accuracy results
| Metric | Original / baseline | Arm-optimized | Change |
|---|---|---|---|
| Top-1 Accuracy | 75.26% | 72.93% | -2.33 pp |
| Top-5 Accuracy | 92.57% | 91.23% | -1.34 pp |
A separate 2000-sample check on the Ethos-U85 Corstone-320 FVP emulator scored 72.60% Top-1 vs. 72.80% for the PyTorch-eager INT8 simulation on the same subsample (-0.20 pp), validating the PyTorch result as a reasonable proxy for on-device accuracy.
Accuracy was measured using the described evaluation setup. Users should re-evaluate the model on their own data before production use.
Arm optimization approach
Arm optimized this model for efficient inference on Arm-based platforms using a hardware-aware conversion and validation flow.
For this release, Arm used:
| Optimization area | Applied? | Notes |
|---|---|---|
| Model conversion | Yes | Converted to ExecuTorch .pte and ahead-of-time compiled with Arm's Vela compiler for the Ethos-U85-256 target |
| Quantization | Yes | PT2E static PTQ — per-channel symmetric weights, per-tensor affine (asymmetric) activations; calibrated on 5,000 random ImageNet-1k images |
| Runtime/backend selection | Yes | CMSIS-NN + Ethos-U-Driver via the ExecuTorch Ethos-U delegate |
| Graph/runtime compatibility updates | Yes | Performed as part of the Ethos-U85 export pipeline |
| Accuracy validation | Yes | Compared against the original model or published baseline |
| Performance validation | Yes | Measured on the reference Arm platform |
No layers were kept in FP32 — all layers were quantized.
The goal of this process is to improve deployment characteristics such as latency, memory use, model size, and runtime compatibility while preserving the model's intended behavior. Detailed conversion scripts, calibration configuration, or backend-specific implementation details may be provided separately where appropriate.
Expected input
| Property | Value |
|---|---|
| Input shape | [1, 3, 224, 224] |
| Input type | float32 |
| Input range | [0.0, 1.0] |
| Preprocessing | Resize shorter side to 232, center crop to 224x224, convert to tensor, ImageNet mean/std normalization (mean=[0.485, 0.456, 0.406], std=[0.229, 0.224, 0.225]) |
Expected output
| Property | Value |
|---|---|
| Output shape | [1, 1000] |
| Output type | float32 (raw class logits, unnormalized, ImageNet-1k class ordering) |
| Postprocessing | softmax, top-5 |
Intended use
This model is intended for developers evaluating image classification workloads on Arm-based platforms. It is suitable as a reference implementation for benchmarking, prototyping, and integration exploration.
Limitations
- Performance depends on the target device, runtime version, backend/delegate support, memory configuration, and system load.
- Accuracy was evaluated on ImageNet-1k val and may not generalize to all domains. The reported accuracy is based on a PyTorch quantized-vs-FP32 simulation pass, not a measurement of the exported
.pterunning on the Corstone-320 FVP or on Ethos-U85 silicon. - This release preserves the original model's intended task and behavior, but users should validate it for their own application, data, and deployment environment.
- This repository is not a replacement for the original model documentation.
- The
.pterequires Ethos-U85 hardware or the Corstone-320 FVP to execute; it cannot run on a standard desktop/CPU ExecuTorch Python runtime because the Ethos-U backend delegate is not registered there. - The model uses a fixed input size of 224x224 and batch size 1; dynamic shapes are not supported.
Additional notes
- Calibration used 5,000 randomly sampled images from the ImageNet-1k val set, with a static histogram observer.
- Flash deployment configuration: the on-device benchmark used the 5,362,272-byte Ethos-U85
.ptestored in the Alif DK-E8's OSPI1 flash. The artifact occupies 5.1139 MiB (15.9808%) of the board's 32 MiB OSPI1 flash. The report lists 200 MB/s as the theoretical OSPI1 flash bandwidth; no measured flash-bandwidth result was reported.
About this version
Original Model: mobilenet_v3_large by Google - Repository
Optimization/conversion: Arm-Optimized version for execution on Arm-based platforms.
Converted/optimized by: Arm
License: The Original Model and the Optimized Model are subject to BSD-3-Clause.
This repository contains a converted or optimized version of the Original Model (the “Optimized Model”). The Original Model has been converted or optimized as described above for execution on Arm-based platforms.
No retraining or fine-tuning of the Original Model was performed as part of the conversion or optimization. The conversion or optimization was not intended to change the Original Model’s behavior or intended use.
Original Model and Documentation
For information about the Original Model, including its development, training data, intended uses, limitations and other relevant information, please refer to the Original Model repository. Information in that repository was provided by the original developer or other third parties and, unless expressly stated otherwise, has not been independently verified by Arm.
Licenses and Third-Party Terms
Use of the Original Model and the Optimized Model is subject to the applicable licenses, usage restrictions and other terms identified above and in the relevant repositories. Publication of the Optimized Model does not grant any rights beyond those provided under the applicable license terms.
You are responsible for reviewing those terms and ensuring that your use of the Original Model and the Optimized Model is permitted.
Purpose of this Release
The Optimized Model is provided as a reference implementation to demonstrate and evaluate execution and performance on Arm-based systems. It is not a production-ready or supported solution.
Arm’s publication of the Optimized Model does not constitute an endorsement or certification of the Original Model or a representation that the Optimized Model is suitable for production use or any particular purpose.
To the fullest extent permitted by applicable law (i) the Optimized Model is provided “as is.” Arm makes no representations or warranties that the Original Model, the Optimized Model or their outputs are accurate, safe, secure, non-infringing, legally compliant, suitable for production use or fit for any particular purpose; and (ii) Arm will not be liable for any loss or damage arising from or in connection with the Optimized Model, its use or its outputs.
You are responsible for independently evaluating the Optimized Model, its outputs and its suitability for your intended use, including compliance with applicable legal, regulatory, safety and security requirements.
Arm does not commit to provide ongoing support, maintenance or updates for the Optimized Model. Any use of or reliance on the Optimized Model or its outputs is at your own risk.
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