Introduction of timeseries-classification-from-scratch
Model Details of timeseries-classification-from-scratch
Timeseries classification from scratch
Based on the
Timeseries classification from scratch
example on
keras.io
created by
hfawaz
.
Model description
The model is a Fully Convolutional Neural Network originally proposed in
this paper
.
The implementation is based on the TF 2 version provided
here
.
The hyperparameters (kernel_size, filters, the usage of BatchNorm) were found via random search using
KerasTuner
.
Intended uses & limitations
Given a time series of 500 samples, the goal is to automatically detect the presence of a specific issue with the engine.
The data used to train the model was already
z-normalized
: each timeseries sample has a mean equal to zero and a standard deviation equal to one.
Training and evaluation data
The dataset used here is called
FordA
. The data comes from the
UCR archive
. The dataset contains:
3601 training instances
1320 testing instances
Each timeseries corresponds to a measurement of engine noise captured by a motor sensor.
Training procedure
Training hyperparameters
The following hyperparameters were used during training:
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