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11.3 value update (#27)
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* 11.3 value update

---------

Co-authored-by: github-actions <[email protected]>
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Mar Balibrea Rull and github-actions authored Mar 7, 2023
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8 changes: 4 additions & 4 deletions README.md
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Expand Up @@ -14,13 +14,13 @@ Axis network cameras can be used for computer vision applications and can run ma
| ---------- | ---------- | :----------: | :----------: | :----------: |
| ARTPEC-7 (Q1615 Mk III) | [MobilenetV2](https://raw.githubusercontent.com/google-coral/test_data/master/mobilenet_v2_1.0_224_quant_edgetpu.tflite) ([ckpt](http://download.tensorflow.org/models/tflite_11_05_08/mobilenet_v2_1.0_224_quant.tgz)) | 1 | <!--A7_tf1_mnv2--> 4.55 ms <!--end_A7_tf1_mnv2--> | Top 1: 68.9% <br/> Top 5: 88.2% |
| ARTPEC-7 (Q1615 Mk III) | [MobilenetV2](https://raw.githubusercontent.com/google-coral/test_data/master/tf2_mobilenet_v2_1.0_224_ptq_edgetpu.tflite) | 2 | <!--A7_tf2_mnv2--> 4.58 ms <!--end_A7_tf2_mnv2--> | Top 1: 69.6% <br/> Top 5: 89.1% |
| ARTPEC-7 (Q1615 Mk III) | [MobilenetV3](https://raw.githubusercontent.com/google-coral/test_data/master/tf2_mobilenet_v3_edgetpu_1.0_224_ptq_edgetpu.tflite) | 2 | <!--A7_tf2_mnv3--> 4.70 ms <!--end_A7_tf2_mnv3--> | Top 1: 72.7% <br/> Top 5: 91.1% |
| ARTPEC-8 (P1465-LE) | [MobilenetV2](https://raw.githubusercontent.com/google-coral/test_data/master/mobilenet_v2_1.0_224_quant.tflite) ([ckpt](http://download.tensorflow.org/models/tflite_11_05_08/mobilenet_v2_1.0_224_quant.tgz)) | 1 | <!--A8_P_tf1_mnv2--> 9.48 ms <!--end_A8_P_tf1_mnv2--> | Top 1: 68.8% <br/> Top 5: 88.9% |
| ARTPEC-7 (Q1615 Mk III) | [MobilenetV3](https://raw.githubusercontent.com/google-coral/test_data/master/tf2_mobilenet_v3_edgetpu_1.0_224_ptq_edgetpu.tflite) | 2 | <!--A7_tf2_mnv3--> 4.68 ms <!--end_A7_tf2_mnv3--> | Top 1: 72.7% <br/> Top 5: 91.1% |
| ARTPEC-8 (P1465-LE) | [MobilenetV2](https://raw.githubusercontent.com/google-coral/test_data/master/mobilenet_v2_1.0_224_quant.tflite) ([ckpt](http://download.tensorflow.org/models/tflite_11_05_08/mobilenet_v2_1.0_224_quant.tgz)) | 1 | <!--A8_P_tf1_mnv2--> 9.96 ms <!--end_A8_P_tf1_mnv2--> | Top 1: 68.8% <br/> Top 5: 88.9% |
| ARTPEC-8 (Q1656-LE) | [MobilenetV2](https://raw.githubusercontent.com/google-coral/test_data/master/mobilenet_v2_1.0_224_quant.tflite) ([ckpt](http://download.tensorflow.org/models/tflite_11_05_08/mobilenet_v2_1.0_224_quant.tgz)) | 1 | <!--A8_tf1_mnv2--> 5.19 ms <!--end_A8_tf1_mnv2--> | Top 1: 68.8% <br/> Top 5: 88.9% |
| CV25 (M3085-V) | [MobilenetV2](https://acap-ml-model-storage.s3.amazonaws.com/mobilenetv2_cavalry.bin) ([ckpt](http://download.tensorflow.org/models/tflite_11_05_08/mobilenet_v2_1.0_224_quant.tgz)) | 1 | <!--cv25_tf1_mnv2--> 5.59 ms <!--end_cv25_tf1_mnv2--> | Top 1: 66.7% <br/> Top 5: 87.1% |
| CV25 (M3085-V) | [EfficientNet-Lite0](https://acap-ml-model-storage.s3.amazonaws.com/EfficientNet-lite0.bin) ([ckpt](https://storage.googleapis.com/cloud-tpu-checkpoints/efficientnet/lite/efficientnet-lite0.tar.gz)) | 1 | <!--cv25_tf1_ens--> 7.00 ms <!--end_cv25_tf1_ens--> | Top 1: 71.2% <br/> Top 5: 90.3% |
| CV25 (M3085-V) | [EfficientNet-Lite0](https://acap-ml-model-storage.s3.amazonaws.com/EfficientNet-lite0.bin) ([ckpt](https://storage.googleapis.com/cloud-tpu-checkpoints/efficientnet/lite/efficientnet-lite0.tar.gz)) | 1 | <!--cv25_tf1_ens--> 7.01 ms <!--end_cv25_tf1_ens--> | Top 1: 71.2% <br/> Top 5: 90.3% |

*Values for AXIS OS 11.2.*
*Values for AXIS OS 11.3.*

## How are the measures calculated?

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