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https://github.com/sbrl/research-rainfallradar
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summary logger → summarywriter
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2 changed files with 6 additions and 4 deletions
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@ -28,6 +28,7 @@ class RainfallWaterContraster(object):
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if filepath_checkpoint == None:
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writefile(self.filepath_summary, "") # Empty the file ahead of time
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self.model = self.make_model()
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if self.dir_output == None:
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raise Exception("Error: dir_output was not specified, and since no checkpoint was loaded training mode is activated.")
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@ -36,7 +37,7 @@ class RainfallWaterContraster(object):
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self.filepath_summary = os.path.join(self.dir_output, "summary.txt")
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summarywriter(self.model, self.filepath_summary)
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summarywriter(self.model, self.filepath_summary, append=True)
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writefile(os.path.join(self.dir_output, "params.json"), json.dumps(self.get_config()))
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else:
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self.model = self.load_model(filepath_checkpoint)
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@ -2,12 +2,12 @@ import tensorflow as tf
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from loguru import logger
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# from tensorflow.keras.applications.resnet_v2 import ResNet50V2
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from ..helpers.summarywriter import summarylogger
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from ..helpers.summarywriter import summarywriter
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from .convnext import make_convnext
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class LayerContrastiveEncoder(tf.keras.layers.Layer):
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def __init__(self, input_width, input_height, channels, feature_dim=2048, **kwargs):
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def __init__(self, input_width, input_height, channels, summary_file=None, feature_dim=2048, **kwargs):
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"""Creates a new contrastive learning encoder layer.
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Note that the input format MUST be channels_last. This is because Tensorflow/Keras' Dense layer does NOT support specifying an axis. Go complain to them, not me.
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While this is intended for contrastive learning, this can (in theory) be used anywhere as it's just a generic wrapper layer.
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@ -42,7 +42,8 @@ class LayerContrastiveEncoder(tf.keras.layers.Layer):
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# """
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# self.embedding = tf.keras.layers.Dense(self.param_feature_dim)
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summarylogger(self.encoder)
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if summary_file:
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summarywriter(self.encoder, append=True)
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def get_config(self):
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config = super(LayerContrastiveEncoder, self).get_config()
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