2018-09-13 20:12:21 +01:00
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{ stdenv
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, buildPythonPackage
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, fetchPypi
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2019-12-10 08:18:07 +00:00
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, pythonOlder
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2018-09-13 20:12:21 +01:00
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, dask
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, numpy, toolz # dask[array]
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, numba
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, pandas
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, scikitlearn
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, scipy
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, dask-glm
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, six
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, multipledispatch
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, packaging
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, pytest
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, xgboost
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, tensorflow
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, joblib
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, distributed
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}:
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buildPythonPackage rec {
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2019-12-19 17:14:55 +00:00
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version = "1.2.0";
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2018-09-13 20:12:21 +01:00
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pname = "dask-ml";
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2019-12-10 08:18:07 +00:00
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disabled = pythonOlder "3.6"; # >= 3.6
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2018-09-13 20:12:21 +01:00
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src = fetchPypi {
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inherit pname version;
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2019-12-19 17:14:55 +00:00
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sha256 = "0ppg8licvkxz1af2q87cxms2p6ss2r5d4fdkbcivph56r0v0ci2k";
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2018-09-13 20:12:21 +01:00
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};
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2019-12-10 08:18:07 +00:00
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propagatedBuildInputs = [
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dask
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dask-glm
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distributed
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multipledispatch
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numba
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numpy
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packaging
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pandas
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scikitlearn
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scipy
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six
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toolz
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];
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2018-09-13 20:12:21 +01:00
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2019-12-10 08:18:07 +00:00
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# has non-standard build from source, and pypi doesn't include tests
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2018-09-13 20:12:21 +01:00
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doCheck = false;
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2019-12-10 08:18:07 +00:00
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# in lieu of proper tests
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pythonImportsCheck = [
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"dask_ml"
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"dask_ml.naive_bayes"
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"dask_ml.wrappers"
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"dask_ml.utils"
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];
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2018-09-13 20:12:21 +01:00
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meta = with stdenv.lib; {
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2020-04-01 02:11:51 +01:00
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homepage = "https://github.com/dask/dask-ml";
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2018-09-13 20:12:21 +01:00
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description = "Scalable Machine Learn with Dask";
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license = licenses.bsd3;
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maintainers = [ maintainers.costrouc ];
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};
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}
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