- 10 May, 2018 1 commit
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Nikita Titov authored
* fixed docs * reworker predict method of sklearn wrapper * fixed encapsulation * added test * fixed consistency between docstring and params docs * fixed verbose * replaced predict_proba with predict in test * fixed verbose again * fixed fraction params descriptions * added description of skip_drop and drop_rate constraints * fixed subsample_freq consistency with C++ default value * fixed nice look of params list * made force splits json file example clickable * fixed nice look of metrics list and added comma * reduced warning in test about same param specified twice * replaced pred_parameter with **kwargs in predict method * added test for **kwargs in predict method * fixed warnings * fixed pylint
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- 08 May, 2018 1 commit
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Nikita Titov authored
* updated pep8 to pycodestyle * fixed E722 do not use bare 'except' * fixed W605 invalid escape sequence '\*' * fixed W504 line break after binary operator * ignore W605 invalid escape sequence '\*' in nuget builder * made pycodestyle happy
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- 18 Apr, 2018 1 commit
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Guolin Ke authored
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- 24 Jan, 2018 1 commit
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Guolin Ke authored
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- 23 Dec, 2017 1 commit
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Guolin Ke authored
* fix early stopping edge case * fix message. * fix tests * fix GPU tests.
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- 24 Oct, 2017 1 commit
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Nikita Titov authored
* Update test_engine.py * Update test_engine.py
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- 18 Oct, 2017 1 commit
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Guolin Ke authored
commit c9e123f24fcbb159c04e6694c7f830530bb2f27e Author: Guolin Ke <i@yumumu.me> Date: Wed Oct 18 10:00:19 2017 +0800 change default max_cat_to_onehot commit 805a5c3125b9979d634922e1708877fa0fec80c6 Author: Guolin Ke <i@yumumu.me> Date: Tue Oct 17 22:57:18 2017 +0800 use one hot coding for the small cats
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- 16 Oct, 2017 2 commits
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Guolin Ke authored
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Guolin Ke authored
* many fixes for categorical feature * add l2 to categorcial split. * remove useless file * update version * add cat_l2 * update appveyor verison * remove file * fix tests. * change default cat_l2 value * fix a bug in bin finder * change default cat_smooth_ratio
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- 13 Oct, 2017 1 commit
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Guolin Ke authored
* refine categorical split * a bug fix * fix a bug
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- 28 Sep, 2017 1 commit
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ChenZhiyong authored
* refine categorical split * add test
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- 19 Sep, 2017 1 commit
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Nikita Titov authored
* added test for sklearn handle categorical features * use raw X, y in sklearn wrapper in case of pandas.DataFrame * fixed probs
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- 16 Sep, 2017 1 commit
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Scott Lundberg authored
* Fix feature attributions for regression models and add Python bindings * Address pylint issue * Lazy fix missing tree depth info
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- 24 Aug, 2017 1 commit
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wxchan authored
* expose feature importance to c_api * support type=gain * remove dump model from examples and tests temporarily because it's unstable * use double instead of float
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- 18 Aug, 2017 2 commits
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wxchan authored
* check params * add test case * fix pylint
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j-mark-hou authored
* added test for training when both train and valid are subsets of a single lgb.Dataset object * pep8 changes * more pep8 * added test involving subsets of subsets of lgb.Dataset objects * minor fix to contruction of X matrix * even more pep8 * simplified test further
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- 30 Jul, 2017 1 commit
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Guolin Ke authored
* finish the data loading part * allow prediction. * fix bug for decision type. * finish split finding part * fix bugs. * bug fixed. add a test . * fix pep8 . * update documents. * fix test bugs. * fix a format * fix import error in python test. * disable missing handle in categorial features. * fix a bug. * add more tests. * fix pep8 * fix bugs. * remove the missing handle code for categorical feature.
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- 11 Jul, 2017 1 commit
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Guolin Ke authored
* add draft of RF. * fix score bugs. * fix scores. * fix tests. * update document * fix GetPredictAt
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- 30 May, 2017 1 commit
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Guolin Ke authored
* fix multi-threading. * fix name style. * support in CLI version. * remove warnings. * Not default parameters. * fix if...else... . * fix bug. * fix warning. * refine c_api. * fix R-package. * fix R's warning. * fix tests. * fix pep8 .
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- 29 May, 2017 1 commit
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cbecker authored
* Add early stopping for prediction * Fix GBDT if-else prediction with early stopping * Small C++ embelishments to early stopping API and functions * Fix early stopping efficiency issue by creating a singleton for no early stopping * Python improvements to early stopping API * Add assertion check for binary and multiclass prediction score length * Update vcxproj and vcxproj.filters with new early stopping files * Remove inline from PredictRaw(), the linker was not able to find it otherwise
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- 11 May, 2017 1 commit
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Tsukasa OMOTO authored
https://docs.pytest.org/
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- 06 May, 2017 1 commit
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wxchan authored
* make test fail * change default best_iteration to 0 * fix test * change data_splitter to folds in cv * update docs
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- 02 May, 2017 1 commit
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wxchan authored
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- 26 Apr, 2017 1 commit
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wxchan authored
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- 18 Apr, 2017 1 commit
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wxchan authored
* change whitespace to underline in feature names * add test * fix bug * fix bug * warning -> fatal
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- 17 Apr, 2017 1 commit
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Guolin Ke authored
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- 15 Apr, 2017 1 commit
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wxchan authored
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- 13 Apr, 2017 1 commit
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Laurae authored
* RMSE (L2) -> MSE (true L2) * Remove sqrt unneeded reference * Square L2 test (RMSE to MSE) * No square root on test * Attempt to add RMSE
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- 09 Apr, 2017 1 commit
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Huan Zhang authored
* add dummy gpu solver code * initial GPU code * fix crash bug * first working version * use asynchronous copy * use a better kernel for root * parallel read histogram * sparse features now works, but no acceleration, compute on CPU * compute sparse feature on CPU simultaneously * fix big bug; add gpu selection; add kernel selection * better debugging * clean up * add feature scatter * Add sparse_threshold control * fix a bug in feature scatter * clean up debug * temporarily add OpenCL kernels for k=64,256 * fix up CMakeList and definition USE_GPU * add OpenCL kernels as string literals * Add boost.compute as a submodule * add boost dependency into CMakeList * fix opencl pragma * use pinned memory for histogram * use pinned buffer for gradients and hessians * better debugging message * add double precision support on GPU * fix boost version in CMakeList * Add a README * reconstruct GPU initialization code for ResetTrainingData * move data to GPU in parallel * fix a bug during feature copy * update gpu kernels * update gpu code * initial port to LightGBM v2 * speedup GPU data loading process * Add 4-bit bin support to GPU * re-add sparse_threshold parameter * remove kMaxNumWorkgroups and allows an unlimited number of features * add feature mask support for skipping unused features * enable kernel cache * use GPU kernels withoug feature masks when all features are used * REAdme. * REAdme. * update README * fix typos (#349) * change compile to gcc on Apple as default * clean vscode related file * refine api of constructing from sampling data. * fix bug in the last commit. * more efficient algorithm to sample k from n. * fix bug in filter bin * change to boost from average output. * fix tests. * only stop training when all classes are finshed in multi-class. * limit the max tree output. change hessian in multi-class objective. * robust tree model loading. * fix test. * convert the probabilities to raw score in boost_from_average of classification. * fix the average label for binary classification. * Add boost_from_average to docs (#354) * don't use "ConvertToRawScore" for self-defined objective function. * boost_from_average seems doesn't work well in binary classification. remove it. * For a better jump link (#355) * Update Python-API.md * for a better jump in page A space is needed between `#` and the headers content according to Github's markdown format [guideline](https://guides.github.com/features/mastering-markdown/) After adding the spaces, we can jump to the exact position in page by click the link. * fixed something mentioned by @wxchan * Update Python-API.md * add FitByExistingTree. * adapt GPU tree learner for FitByExistingTree * avoid NaN output. * update boost.compute * fix typos (#361) * fix broken links (#359) * update README * disable GPU acceleration by default * fix image url * cleanup debug macro * remove old README * do not save sparse_threshold_ in FeatureGroup * add details for new GPU settings * ignore submodule when doing pep8 check * allocate workspace for at least one thread during builing Feature4 * move sparse_threshold to class Dataset * remove duplicated code in GPUTreeLearner::Split * Remove duplicated code in FindBestThresholds and BeforeFindBestSplit * do not rebuild ordered gradients and hessians for sparse features * support feature groups in GPUTreeLearner * Initial parallel learners with GPU support * add option device, cleanup code * clean up FindBestThresholds; add some omp parallel * constant hessian optimization for GPU * Fix GPUTreeLearner crash when there is zero feature * use np.testing.assert_almost_equal() to compare lists of floats in tests * travis for GPU
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- 02 Apr, 2017 1 commit
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Laurae authored
* Python: Fix RandomState issue #376 * Add test case for Python's Shuffle=True
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- 28 Mar, 2017 1 commit
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wxchan authored
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- 24 Mar, 2017 1 commit
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Guolin Ke authored
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- 22 Mar, 2017 1 commit
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Guolin Ke authored
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- 01 Mar, 2017 2 commits
- 18 Feb, 2017 1 commit
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wxchan authored
* add data_splitter for cv * update gitignore * clean code
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- 02 Feb, 2017 1 commit
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wxchan authored
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- 23 Jan, 2017 1 commit
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wxchan authored
* use json instead of repr/eval for pandas_categorical * fix json dumps with numpy data * add more test cases
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- 16 Jan, 2017 1 commit
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wxchan authored
* fix bug for categorical_feature * add test on load model with categorical feature * add unseen category in test dataset * save/load pandas_categorical to model * fix logic * cast pandas columns to string * add load pandas_categorical from file to _InnerPredictor init
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- 12 Jan, 2017 1 commit
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wxchan authored
* suppprt pandas categorical * refine logic * make default=auto * fix train/valid categorical codes * add test * unify set _predictor * fix tests * fix warning * support feature_name=int
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