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Commit cfad92c9 authored by tomrink's avatar tomrink
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import glob import glob
import tensorflow as tf import tensorflow as tf
from util.setup import logdir, modeldir, cachepath, now, ancillary_path from util.setup import logdir, modeldir, cachepath, now, ancillary_path
from util.util import EarlyStop, normalize, denormalize, resample from util.util import EarlyStop, normalize, denormalize, resample, get_grid_values_all
import os, datetime import os, datetime
import numpy as np import numpy as np
import pickle import pickle
...@@ -49,13 +49,13 @@ mean_std_dct.update(mean_std_dct_l2) ...@@ -49,13 +49,13 @@ mean_std_dct.update(mean_std_dct_l2)
# emis_params = ['temp_10_4um_nom', 'temp_11_0um_nom', 'temp_12_0um_nom', 'temp_13_3um_nom', 'temp_3_75um_nom', # emis_params = ['temp_10_4um_nom', 'temp_11_0um_nom', 'temp_12_0um_nom', 'temp_13_3um_nom', 'temp_3_75um_nom',
# 'temp_6_7um_nom', 'temp_6_2um_nom', 'temp_7_3um_nom', 'temp_8_5um_nom', 'temp_9_7um_nom'] # 'temp_6_7um_nom', 'temp_6_2um_nom', 'temp_7_3um_nom', 'temp_8_5um_nom', 'temp_9_7um_nom']
data_params = ['refl_0_65um_nom', 'temp_11_0um_nom', 'cld_temp_acha', 'cld_press_acha', 'cloud_fraction'] data_params = ['temp_11_0um_nom', 'temp_12_0um_nom', 'cld_temp_acha', 'cld_press_acha']
label_params = ['refl_0_65um_nom', 'temp_11_0um_nom', 'cld_temp_acha', 'cld_press_acha', 'cloud_fraction'] label_params = ['temp_11_0um_nom', 'temp_12_0um_nom', 'cld_temp_acha', 'cld_press_acha']
DO_ZERO_OUT = False DO_ZERO_OUT = False
data_idx, label_idx = 4, 4 data_idx, label_idx = 0, 0
data_param = data_params[data_idx] data_param = data_params[data_idx]
label_param = label_params[label_idx] label_param = label_params[label_idx]
print(data_param+', '+label_param) print(data_param+', '+label_param)
...@@ -603,8 +603,8 @@ class SRCNN: ...@@ -603,8 +603,8 @@ class SRCNN:
ckpt.restore(ckpt_manager.latest_checkpoint) ckpt.restore(ckpt_manager.latest_checkpoint)
data = normalize(nda_lr, param, mean_std_dct) data = normalize(nda_lr, param, mean_std_dct)
#data = np.expand_dims(data, axis=0) data = np.expand_dims(data, axis=0)
#data = np.expand_dims(data, axis=3) data = np.expand_dims(data, axis=3)
self.reset_test_metrics() self.reset_test_metrics()
...@@ -668,6 +668,24 @@ def run_evaluate_static(in_file, out_file, ckpt_dir): ...@@ -668,6 +668,24 @@ def run_evaluate_static(in_file, out_file, ckpt_dir):
return out_sr return out_sr
def run_evaluate_static_new(in_file, out_file, ckpt_dir):
nda = np.load(in_file)
nda = nda[:, data_idx, 3:131:2, 3:131:2]
nda = resample(x_64, y_64, nda, t, s)
nda = np.expand_dims(nda, axis=3)
h5f = h5py.File(in_file, 'r')
grd = get_grid_values_all(h5f, data_param)
nn = SRCNN()
out_sr = nn.run_evaluate(grd, data_param, ckpt_dir)
if out_file is not None:
np.save(out_file, out_sr)
else:
return out_sr
if __name__ == "__main__": if __name__ == "__main__":
nn = SRCNN() nn = SRCNN()
nn.run('matchup_filename') nn.run('matchup_filename')
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