[R] put 'verbose' in correct argument (#9942)
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@ -251,9 +251,9 @@
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#' watchlist <- list(train = dtrain, eval = dtest)
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#'
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#' ## A simple xgb.train example:
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#' param <- list(max_depth = 2, eta = 1, verbose = 0, nthread = nthread,
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#' param <- list(max_depth = 2, eta = 1, nthread = nthread,
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#' objective = "binary:logistic", eval_metric = "auc")
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#' bst <- xgb.train(param, dtrain, nrounds = 2, watchlist)
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#' bst <- xgb.train(param, dtrain, nrounds = 2, watchlist, verbose = 0)
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#'
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#' ## An xgb.train example where custom objective and evaluation metric are
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#' ## used:
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@ -272,13 +272,13 @@
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#'
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#' # These functions could be used by passing them either:
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#' # as 'objective' and 'eval_metric' parameters in the params list:
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#' param <- list(max_depth = 2, eta = 1, verbose = 0, nthread = nthread,
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#' param <- list(max_depth = 2, eta = 1, nthread = nthread,
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#' objective = logregobj, eval_metric = evalerror)
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#' bst <- xgb.train(param, dtrain, nrounds = 2, watchlist)
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#' bst <- xgb.train(param, dtrain, nrounds = 2, watchlist, verbose = 0)
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#'
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#' # or through the ... arguments:
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#' param <- list(max_depth = 2, eta = 1, verbose = 0, nthread = nthread)
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#' bst <- xgb.train(param, dtrain, nrounds = 2, watchlist,
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#' param <- list(max_depth = 2, eta = 1, nthread = nthread)
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#' bst <- xgb.train(param, dtrain, nrounds = 2, watchlist, verbose = 0,
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#' objective = logregobj, eval_metric = evalerror)
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#'
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#' # or as dedicated 'obj' and 'feval' parameters of xgb.train:
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@ -287,10 +287,10 @@
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#'
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#'
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#' ## An xgb.train example of using variable learning rates at each iteration:
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#' param <- list(max_depth = 2, eta = 1, verbose = 0, nthread = nthread,
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#' param <- list(max_depth = 2, eta = 1, nthread = nthread,
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#' objective = "binary:logistic", eval_metric = "auc")
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#' my_etas <- list(eta = c(0.5, 0.1))
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#' bst <- xgb.train(param, dtrain, nrounds = 2, watchlist,
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#' bst <- xgb.train(param, dtrain, nrounds = 2, watchlist, verbose = 0,
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#' callbacks = list(cb.reset.parameters(my_etas)))
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#'
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#' ## Early stopping:
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@ -303,9 +303,9 @@ dtest <- with(
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watchlist <- list(train = dtrain, eval = dtest)
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## A simple xgb.train example:
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param <- list(max_depth = 2, eta = 1, verbose = 0, nthread = nthread,
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param <- list(max_depth = 2, eta = 1, nthread = nthread,
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objective = "binary:logistic", eval_metric = "auc")
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bst <- xgb.train(param, dtrain, nrounds = 2, watchlist)
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bst <- xgb.train(param, dtrain, nrounds = 2, watchlist, verbose = 0)
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## An xgb.train example where custom objective and evaluation metric are
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## used:
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@ -324,13 +324,13 @@ evalerror <- function(preds, dtrain) {
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# These functions could be used by passing them either:
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# as 'objective' and 'eval_metric' parameters in the params list:
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param <- list(max_depth = 2, eta = 1, verbose = 0, nthread = nthread,
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param <- list(max_depth = 2, eta = 1, nthread = nthread,
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objective = logregobj, eval_metric = evalerror)
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bst <- xgb.train(param, dtrain, nrounds = 2, watchlist)
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bst <- xgb.train(param, dtrain, nrounds = 2, watchlist, verbose = 0)
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# or through the ... arguments:
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param <- list(max_depth = 2, eta = 1, verbose = 0, nthread = nthread)
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bst <- xgb.train(param, dtrain, nrounds = 2, watchlist,
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param <- list(max_depth = 2, eta = 1, nthread = nthread)
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bst <- xgb.train(param, dtrain, nrounds = 2, watchlist, verbose = 0,
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objective = logregobj, eval_metric = evalerror)
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# or as dedicated 'obj' and 'feval' parameters of xgb.train:
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@ -339,10 +339,10 @@ bst <- xgb.train(param, dtrain, nrounds = 2, watchlist,
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## An xgb.train example of using variable learning rates at each iteration:
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param <- list(max_depth = 2, eta = 1, verbose = 0, nthread = nthread,
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param <- list(max_depth = 2, eta = 1, nthread = nthread,
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objective = "binary:logistic", eval_metric = "auc")
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my_etas <- list(eta = c(0.5, 0.1))
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bst <- xgb.train(param, dtrain, nrounds = 2, watchlist,
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bst <- xgb.train(param, dtrain, nrounds = 2, watchlist, verbose = 0,
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callbacks = list(cb.reset.parameters(my_etas)))
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## Early stopping:
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