record training progress
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@ -11,6 +11,7 @@ from __future__ import absolute_import
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import os
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import sys
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import re
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import ctypes
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import collections
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@ -530,7 +531,7 @@ class Booster(object):
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return fmap
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def train(params, dtrain, num_boost_round=10, evals=(), obj=None, feval=None, early_stopping_rounds=None):
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def train(params, dtrain, num_boost_round=10, evals=(), obj=None, feval=None, early_stopping_rounds=None,evals_result=None):
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"""
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Train a booster with given parameters.
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@ -542,7 +543,7 @@ def train(params, dtrain, num_boost_round=10, evals=(), obj=None, feval=None, ea
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Data to be trained.
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num_boost_round: int
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Number of boosting iterations.
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watchlist : list of pairs (DMatrix, string)
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watchlist (evals): list of pairs (DMatrix, string)
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List of items to be evaluated during training, this allows user to watch
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performance on the validation set.
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obj : function
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@ -557,6 +558,8 @@ def train(params, dtrain, num_boost_round=10, evals=(), obj=None, feval=None, ea
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Returns the model from the last iteration (not the best one).
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If early stopping occurs, the model will have two additional fields:
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bst.best_score and bst.best_iteration.
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evals_result: dict
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This dictionary stores the evaluation results of all the items in watchlist
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Returns
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-------
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@ -566,15 +569,39 @@ def train(params, dtrain, num_boost_round=10, evals=(), obj=None, feval=None, ea
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evals = list(evals)
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bst = Booster(params, [dtrain] + [d[0] for d in evals])
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if evals_result is not None:
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if type(evals_result) is not dict:
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raise TypeError('evals_result has to be a dictionary')
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else:
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evals_name = [d[1] for d in evals]
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evals_result.clear()
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evals_result.update({key:[] for key in evals_name})
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if not early_stopping_rounds:
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for i in range(num_boost_round):
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bst.update(dtrain, i, obj)
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if len(evals) != 0:
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bst_eval_set = bst.eval_set(evals, i, feval)
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if isinstance(bst_eval_set, string_types):
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sys.stderr.write(bst_eval_set + '\n')
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msg = bst_eval_set
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#sys.stderr.write(bst_eval_set + '\n')
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# if evals_result is not None:
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# res = re.findall(":([0-9.]+).",bst_eval_set)
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# for key,val in zip(evals_name,res):
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# evals_result[key].append(val)
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else:
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sys.stderr.write(bst_eval_set.decode() + '\n')
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msg = bst_eval_set.decode()
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# sys.stderr.write(bst_eval_set.decode() + '\n')
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# if evals_result is not None:
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# res = re.findall(":([0-9.]+).",bst_eval_set.decode())
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# for key,val in zip(evals_name,res):
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# evals_result[key].append(val)
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sys.stderr.write(msg + '\n')
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if evals_result is not None:
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res = re.findall(":([0-9.]+).",msg)
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for key,val in zip(evals_name,res):
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evals_result[key].append(val)
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return bst
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else:
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@ -617,6 +644,11 @@ def train(params, dtrain, num_boost_round=10, evals=(), obj=None, feval=None, ea
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sys.stderr.write(msg + '\n')
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if evals_result is not None:
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res = re.findall(":([0-9.]+).",msg)
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for key,val in zip(evals_name,res):
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evals_result[key].append(val)
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score = float(msg.rsplit(':', 1)[1])
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if (maximize_score and score > best_score) or \
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(not maximize_score and score < best_score):
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