objective_function.cpp 3.5 KB
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#include <LightGBM/objective_function.h>
#include "regression_objective.hpp"
#include "binary_objective.hpp"
#include "rank_objective.hpp"
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#include "multiclass_objective.hpp"
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#include "xentropy_objective.hpp"
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namespace LightGBM {

ObjectiveFunction* ObjectiveFunction::CreateObjectiveFunction(const std::string& type, const ObjectiveConfig& config) {
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  if (type == std::string("regression") || type == std::string("regression_l2")
      || type == std::string("mean_squared_error") || type == std::string("mse")) {
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    return new RegressionL2loss(config);
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  } else if (type == std::string("regression_l1") || type == std::string("mean_absolute_error")  || type == std::string("mae")) {
    return new RegressionL1loss(config);
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  } else if (type == std::string("quantile")) {
    return new RegressionQuantileloss(config);
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  } else if (type == std::string("huber")) {
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    return new RegressionHuberLoss(config);
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  } else if (type == std::string("fair")) {
    return new RegressionFairLoss(config);
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  } else if (type == std::string("poisson")) {
    return new RegressionPoissonLoss(config);
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  } else if (type == std::string("binary")) {
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    return new BinaryLogloss(config);
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  } else if (type == std::string("lambdarank")) {
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    return new LambdarankNDCG(config);
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  } else if (type == std::string("multiclass")) {
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    return new MulticlassSoftmax(config);
  } else if (type == std::string("multiclassova")) {
    return new MulticlassOVA(config);
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  } else if (type == std::string("xentropy") || type == std::string("cross_entropy")) {
    return new CrossEntropy(config);
  } else if (type == std::string("xentlambda") || type == std::string("cross_entropy_lambda")) {
    return new CrossEntropyLambda(config);
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  } else if (type == std::string("mean_absolute_percentage_error") || type == std::string("mape")) {
    return new RegressionMAPELOSS(config);
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  } else if (type == std::string("gamma")) {
    return new RegressionGammaLoss(config);
  } else if (type == std::string("tweedie")) {
    return new RegressionTweedieLoss(config);
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  }
  return nullptr;
}
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ObjectiveFunction* ObjectiveFunction::CreateObjectiveFunction(const std::string& str) {
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  auto strs = Common::Split(str.c_str(), ' ');
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  auto type = strs[0];
  if (type == std::string("regression")) {
    return new RegressionL2loss(strs);
  } else if (type == std::string("regression_l1")) {
    return new RegressionL1loss(strs);
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  } else if (type == std::string("quantile")) {
    return new RegressionQuantileloss(strs);
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  } else if (type == std::string("huber")) {
    return new RegressionHuberLoss(strs);
  } else if (type == std::string("fair")) {
    return new RegressionFairLoss(strs);
  } else if (type == std::string("poisson")) {
    return new RegressionPoissonLoss(strs);
  } else if (type == std::string("binary")) {
    return new BinaryLogloss(strs);
  } else if (type == std::string("lambdarank")) {
    return new LambdarankNDCG(strs);
  } else if (type == std::string("multiclass")) {
    return new MulticlassSoftmax(strs);
  } else if (type == std::string("multiclassova")) {
    return new MulticlassOVA(strs);
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  } else if (type == std::string("xentropy") || type == std::string("cross_entropy")) {
    return new CrossEntropy(strs);
  } else if (type == std::string("xentlambda") || type == std::string("cross_entropy_lambda")) {
    return new CrossEntropyLambda(strs);
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  } else if (type == std::string("gamma")) {
    return new RegressionGammaLoss(strs);
  } else if (type == std::string("tweedie")) {
    return new RegressionTweedieLoss(strs);
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  }
  return nullptr;
}

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}  // namespace LightGBM