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Added accuracy scores to table
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README.md

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models/anomaly_detection/micronet_medium/tflite_int8/README.md

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models/anomaly_detection/micronet_medium/tflite_int8/definition.yaml

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benchmark:
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DCASE 2020 Task 2 Slide rail:
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AUC: 0.9632
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AUC: 0.963
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description: This is a fully quantized version (asymmetrical int8) of the MicroNet
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Medium model developed by Arm, from the MicroNets paper. It is trained on the 'slide
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rail' task from http://dcase.community/challenge2020/task-unsupervised-detection-of-anomalous-sounds.

models/anomaly_detection/micronet_small/tflite_int8/README.md

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models/anomaly_detection/micronet_small/tflite_int8/definition.yaml

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benchmark:
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DCASE 2020 Task 2 Slide rail:
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AUC: 0.9548
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AUC: 0.955
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description: This is a fully quantized version (asymmetrical int8) of the MicroNet
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Small model developed by Arm, from the MicroNets paper. It is trained on the 'slide
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rail' task from http://dcase.community/challenge2020/task-unsupervised-detection-of-anomalous-sounds.

models/image_classification/mobilenet_v2_1.0_224/tflite_int8/README.md

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models/image_classification/mobilenet_v2_1.0_224/tflite_int8/definition.yaml

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benchmark:
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ILSVRC 2012:
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top-1-accuracy: '69.68'
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top-1-accuracy: 0.697
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description: "INT8 quantised version of MobileNet v2 model. Trained on ImageNet."
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license:
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- Apache-2.0

models/image_classification/mobilenet_v2_1.0_224/tflite_uint8/README.md

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models/keyword_spotting/cnn_large/tflite_int8/README.md

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models/keyword_spotting/cnn_large/tflite_int8/definition.yaml

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benchmark:
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Google Speech Commands test set:
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Accuracy: 92.92%
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Accuracy: 0.929
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description: 'This is a fully quantized version (asymmetrical int8) of the CNN Large
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model developed by Arm, with training checkpoints, from the Hello Edge paper. Code
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to recreate this model can be found here: https://github.com/ARM-software/ML-examples/tree/master/tflu-kws-cortex-m'

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