bug fix with number of GPU, columns as identifiers
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@ -245,15 +245,12 @@ class Discriminator(GNet):
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:label
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"""
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x = args['inputs']
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print ()
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print (x[:3,:])
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print()
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label = args['label']
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with tf.compat.v1.variable_scope('D', reuse=tf.compat.v1.AUTO_REUSE , regularizer=l2_regularizer(0.00001)):
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for i, dim in enumerate(self.D_STRUCTURE[1:]):
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kernel = self.get.variables(name='W_' + str(i), shape=[self.D_STRUCTURE[i], dim])
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bias = self.get.variables(name='b_' + str(i), shape=[dim])
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print (["\t",bias,kernel])
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# print (["\t",bias,kernel])
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x = tf.nn.relu(tf.add(tf.matmul(x, kernel), bias))
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x = self.normalize(inputs=x, name='cln' + str(i), shift=1,labels=label, n_labels=self.NUM_LABELS)
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i = len(self.D_STRUCTURE)
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@ -538,6 +535,7 @@ if __name__ == '__main__' :
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# Now we get things done ...
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column = SYS_ARGS['column']
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column_id = SYS_ARGS['id'] if 'id' in SYS_ARGS else 'person_id'
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column_id = column_id.split(',') if ',' in column_id else column_id
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df = pd.read_csv(SYS_ARGS['raw-data'])
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LABEL = pd.get_dummies(df[column_id]).astype(np.float32).values
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@ -38,7 +38,7 @@ def train (**args) :
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else:
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logger = None
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trainer = gan.Train(context=context,max_epochs=max_epochs,real=real,label=labels,column=column,column_id=column_id,logger = logger,logs=logs)
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trainer = gan.Train(context=context,max_epochs=max_epochs,num_gpu=num_gpu,real=real,label=labels,column=column,column_id=column_id,logger = logger,logs=logs)
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return trainer.apply()
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def generate(**args):
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@ -57,6 +57,9 @@ def generate(**args):
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column_id = args['id']
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logs = args['logs']
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context = args['context']
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num_gpu = 1 if 'num_gpu' not in args else args['num_gpu']
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max_epochs = 10 if 'max_epochs' not in args else args['max_epochs']
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#
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#@TODO:
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# If the identifier is not present, we should fine a way to determine or make one
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@ -67,9 +70,9 @@ def generate(**args):
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values.sort()
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labels = pd.get_dummies(df[column_id]).astype(np.float32).values
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handler = gan.Predict (context=context,label=labels,values=values,column=column)
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handler = gan.Predict (context=context,label=labels,max_epochs=max_epochs,num_gpu=num_gpu,values=values,column=column,logs=logs)
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handler.load_meta(column)
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r = handler.apply()
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_df = df.copy()
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_df[column] = r[column]
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return _df
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return _df
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2
setup.py
2
setup.py
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@ -4,7 +4,7 @@ import sys
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def read(fname):
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return open(os.path.join(os.path.dirname(__file__), fname)).read()
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args = {"name":"data-maker","version":"1.0.3","author":"Vanderbilt University Medical Center","author_email":"steve.l.nyemba@vanderbilt.edu","license":"MIT",
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args = {"name":"data-maker","version":"1.0.5","author":"Vanderbilt University Medical Center","author_email":"steve.l.nyemba@vanderbilt.edu","license":"MIT",
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"packages":find_packages(),"keywords":["healthcare","data","transport","protocol"]}
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args["install_requires"] = ['data-transport@git+https://dev.the-phi.com/git/steve/data-transport.git','tensorflow==1.15','pandas','pandas-gbq','pymongo']
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args['url'] = 'https://hiplab.mc.vanderbilt.edu/aou/data-maker.git'
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