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4 changes: 4 additions & 0 deletions doc/release_notes.rst
Original file line number Diff line number Diff line change
Expand Up @@ -4,6 +4,10 @@ Release Notes
Upcoming Version
----------------

**Features**

* ``add_variables(binary=True, ...)`` now accepts ``lower``/``upper`` bounds, as long as they are 0 or 1. Previously binary bounds could only be set via the ``.lower``/``.upper`` setters after creation. (https://github.com/PyPSA/linopy/issues/776)

**Bug fixes**

* LP file export now honors bounds tightened below ``[0, 1]`` on a binary variable via the ``.lower``/``.upper`` setters after creation (e.g. ``upper = 0``). Previously such bounds were written only by ``io_api="direct"`` and dropped by ``io_api="lp"``. (https://github.com/PyPSA/linopy/issues/776)
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20 changes: 12 additions & 8 deletions linopy/model.py
Original file line number Diff line number Diff line change
Expand Up @@ -620,11 +620,11 @@ def add_variables(
Parameters
----------
lower : float/array_like, optional
Lower bound of the variable(s). Ignored if `binary` is True.
The default is -inf.
Lower bound of the variable(s). For binary variables it
defaults to 0 and, if given, must be 0 or 1. The default is -inf.
upper : TYPE, optional
Upper bound of the variable(s). Ignored if `binary` is True.
The default is inf.
Upper bound of the variable(s). For binary variables it
defaults to 1 and, if given, must be 0 or 1. The default is inf.
coords : list/dict/xarray.Coordinates, optional
The coords of the variable array. When provided with **named
dimensions** (a ``Mapping``, ``xarray.Coordinates``, a
Expand Down Expand Up @@ -773,10 +773,14 @@ def add_variables(
)

if binary:
if (lower != -inf) or (upper != inf):
raise ValueError("Binary variables cannot have lower or upper bounds.")
else:
lower, upper = 0, 1
if np.isscalar(lower) and lower == -inf:
lower = 0
elif not (np.isin(lower, (0, 1)) | pd.isna(lower)).all():
raise ValueError("Binary variable lower bounds must be 0 or 1.")
if np.isscalar(upper) and upper == inf:
upper = 1
elif not (np.isin(upper, (0, 1)) | pd.isna(upper)).all():
raise ValueError("Binary variable upper bounds must be 0 or 1.")

if semi_continuous:
if not np.isscalar(lower) or float(lower) <= 0: # type: ignore[arg-type]
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57 changes: 57 additions & 0 deletions test/test_variable_assignment.py
Original file line number Diff line number Diff line change
Expand Up @@ -248,6 +248,63 @@ def test_variable_assignment_binary_with_error() -> None:
m.add_variables(lower=-2, coords=coords, binary=True)


def test_variable_assignment_binary_force_on() -> None:
"""A scalar bound defaults the other end: lower=1 forces the binary on."""
forced_on = Model().add_variables(
binary=True, lower=1, coords=[pd.RangeIndex(4, name="t")]
)
assert (forced_on.lower.values == 1).all()
assert (forced_on.upper.values == 1).all()


@pytest.mark.parametrize(
"upper",
[
pytest.param([1, 1, 0, 0], id="list"),
pytest.param(np.array([1.0, 1.0, 0.0, 0.0]), id="ndarray"),
pytest.param(pd.Series([1, 1, 0, 0]), id="series"),
pytest.param(
xr.DataArray([1, np.nan, 0, 1], dims="t", coords={"t": range(4)}),
id="dataarray-nan",
),
],
)
def test_variable_assignment_binary_array_bounds_ok(upper) -> None:
"""0/1 bounds accepted, NaN tolerated (for masking), across containers."""
Model().add_variables(binary=True, upper=upper, coords=[pd.RangeIndex(4, name="t")])


@pytest.mark.parametrize(
"upper",
[
pytest.param([1, 1, 2, 0], id="list"),
pytest.param(np.array([0.5, 1.0, 0.0, 1.0]), id="fractional"),
pytest.param(pd.Series([2, 1, 0, 1]), id="series"),
pytest.param(
xr.DataArray([1, np.nan, 2, 0], dims="t", coords={"t": range(4)}),
id="dataarray-nan",
),
],
)
def test_variable_assignment_binary_array_bounds_error(upper) -> None:
"""A non-0/1 value is rejected, even when NaN is also present."""
with pytest.raises(ValueError, match="must be 0 or 1"):
Model().add_variables(
binary=True, upper=upper, coords=[pd.RangeIndex(4, name="t")]
)


@pytest.mark.parametrize("bound", [0, 1, 0.0, 1.0])
def test_variable_assignment_binary_scalar_bound_ok(bound) -> None:
Model().add_variables(binary=True, upper=bound, coords=[pd.RangeIndex(2)])


@pytest.mark.parametrize("bound", [0.5, 2, -1])
def test_variable_assignment_binary_scalar_bound_error(bound) -> None:
with pytest.raises(ValueError, match="must be 0 or 1"):
Model().add_variables(binary=True, upper=bound, coords=[pd.RangeIndex(2)])


def test_variable_assignment_integer() -> None:
m = Model()

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