Random Search in hyperparam
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@ -365,42 +365,46 @@ def mutation_random_search(individual, **kwargs):
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:param pmut: individual probability o
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:return:
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"""
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import copy
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new = copy.deepcopy(individual)
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vars = kwargs.get('variables', None)
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tvar = kwargs.get('target_variable', None)
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l = len(vars)
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il = len(individual['explanatory_variables'])
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il = len(new['explanatory_variables'])
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#
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if il > 1:
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for l in range(il):
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il = len(individual['explanatory_variables'])
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il = len(new['explanatory_variables'])
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rnd = random.uniform(0, 1)
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if rnd > .5:
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rnd = random.randint(0, il-1)
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val = individual['explanatory_variables'][rnd]
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individual['explanatory_variables'].remove(val)
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individual['explanatory_params'].pop(rnd)
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if rnd < il and il > 1:
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val = individual['explanatory_variables'][rnd]
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new['explanatory_variables'].remove(val)
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new['explanatory_params'].pop(rnd)
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else:
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rnd = random.randint(0, l-1)
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while rnd in individual['explanatory_variables']:
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while rnd in new['explanatory_variables']:
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rnd = random.randint(0, l-1)
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individual['explanatory_variables'].append(rnd)
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individual['explanatory_params'].append(random_param(vars[rnd]))
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new['explanatory_variables'].append(rnd)
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new['explanatory_params'].append(random_param(vars[rnd]))
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for ct in np.arange(len(individual['explanatory_variables'])):
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for ct in np.arange(len(new['explanatory_variables'])):
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rnd = random.uniform(0, 1)
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if rnd > .5:
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mutate_variable_params(individual['explanatory_params'][ct], vars[ct])
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mutate_variable_params(new['explanatory_params'][ct], vars[ct])
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rnd = random.uniform(0, 1)
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if rnd > .5:
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mutate_variable_params(individual['target_params'], tvar)
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mutate_variable_params(new['target_params'], tvar)
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individual['f1'] = None
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individual['f2'] = None
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new['f1'] = None
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new['f2'] = None
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return individual
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return new
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def mutate_variable_params(param, var):
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@ -66,9 +66,7 @@ def execute( dataset, **kwargs):
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new[key] = ret[key]
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new_stat[key] = ret[key]
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print(new)
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if new['f1'] <= individual['f1'] and new['f2'] <= individual['f2']:
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if new['f1'] < individual['f1'] or (new['f1'] == individual['f1'] and new['f2'] < individual['f2']):
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individual = new
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no_improvement_count = 0
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stat[i] = new_stat
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@ -58,7 +58,7 @@ target_variable = {'name': 'Load', 'data_label': 'load', 'type': 'common'}
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nodes=['192.168.28.38']
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deho_mv.random_search(datsetname, dataset,
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ngen=200, mgen=200,
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ngen=200, mgen=70,
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window_size=2000, train_rate=.9, increment_rate=1,
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experiments=1,
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fts_method=wmvfts.WeightedMVFTS,
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