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Implement diagonal operator (#562)
* Implement diagonal operator This implements mx.diagonal in operator level, inspired by @ManishAradwad. * added `mx.diag` with tests * corrected few things * nits in bindings * updates to diag --------- Co-authored-by: ManishAradwad <manisharadwad@gmail.com> Co-authored-by: Awni Hannun <awni@apple.com>
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@ -35,6 +35,8 @@ Operations
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cos
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cosh
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dequantize
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diag
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diagonal
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divide
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divmod
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equal
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@ -395,7 +395,7 @@ class array {
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// The ArrayDesc contains the details of the materialized array including the
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// shape, strides, the data type. It also includes
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// the primitive which knows how to compute the array's data from its inputs
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// and a the list of array's inputs for the primitive.
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// and the list of array's inputs for the primitive.
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std::shared_ptr<ArrayDesc> array_desc_{nullptr};
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};
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78
mlx/ops.cpp
78
mlx/ops.cpp
@ -227,7 +227,7 @@ array ones_like(const array& a, StreamOrDevice s /* = {} */) {
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array eye(int n, int m, int k, Dtype dtype, StreamOrDevice s /* = {} */) {
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if (n <= 0 || m <= 0) {
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throw std::invalid_argument("N and M must be positive integers.");
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throw std::invalid_argument("[eye] N and M must be positive integers.");
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}
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array result = zeros({n, m}, dtype, s);
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if (k >= m || -k >= n) {
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@ -3251,4 +3251,80 @@ array addmm(
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return out;
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}
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array diagonal(
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const array& a,
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int offset /* = 0 */,
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int axis1 /* = 0 */,
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int axis2 /* = 1 */,
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StreamOrDevice s /* = {} */
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) {
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int ndim = a.ndim();
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if (ndim < 2) {
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std::ostringstream msg;
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msg << "[diagonal] Array must have at least two dimensions, but got "
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<< ndim << " dimensions.";
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throw std::invalid_argument(msg.str());
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}
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auto ax1 = (axis1 < 0) ? axis1 + ndim : axis1;
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if (ax1 < 0 || ax1 >= ndim) {
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std::ostringstream msg;
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msg << "[diagonal] Invalid axis1 " << axis1 << " for array with " << ndim
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<< " dimensions.";
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throw std::out_of_range(msg.str());
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}
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auto ax2 = (axis2 < 0) ? axis2 + ndim : axis2;
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if (ax2 < 0 || ax2 >= ndim) {
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std::ostringstream msg;
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msg << "[diagonal] Invalid axis2 " << axis2 << " for array with " << ndim
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<< " dimensions.";
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throw std::out_of_range(msg.str());
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}
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if (ax1 == ax2) {
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throw std::invalid_argument(
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"[diagonal] axis1 and axis2 cannot be the same axis");
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}
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auto off1 = std::max(-offset, 0);
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auto off2 = std::max(offset, 0);
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auto diag_size = std::min(a.shape(ax1) - off1, a.shape(ax2) - off2);
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diag_size = std::max(diag_size, 0);
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std::vector<array> indices = {
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arange(off1, off1 + diag_size, s), arange(off2, off2 + diag_size, s)};
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std::vector<int> slice_sizes = a.shape();
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slice_sizes[ax1] = 1;
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slice_sizes[ax2] = 1;
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auto out = gather(a, indices, {ax1, ax2}, slice_sizes, s);
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return moveaxis(squeeze(out, {ax1 + 1, ax2 + 1}, s), 0, -1, s);
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}
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array diag(const array& a, int k /* = 0 */, StreamOrDevice s /* = {} */) {
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if (a.ndim() == 1) {
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int a_size = a.size();
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int n = a_size + std::abs(k);
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auto res = zeros({n, n}, a.dtype(), s);
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std::vector<array> indices;
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auto s1 = std::max(0, -k);
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auto s2 = std::max(0, k);
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indices.push_back(arange(s1, a_size + s1, uint32, s));
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indices.push_back(arange(s2, a_size + s2, uint32, s));
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return scatter(res, indices, reshape(a, {a_size, 1, 1}, s), {0, 1}, s);
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} else if (a.ndim() == 2) {
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return diagonal(a, k, 0, 1, s);
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} else {
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std::ostringstream msg;
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msg << "[diag] array must be 1-D or 2-D, got array with " << a.ndim()
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<< " dimensions.";
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throw std::invalid_argument(msg.str());
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}
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}
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} // namespace mlx::core
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11
mlx/ops.h
11
mlx/ops.h
@ -1105,4 +1105,15 @@ array addmm(
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const float& beta = 1.f,
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StreamOrDevice s = {});
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/** Extract a diagonal or construct a diagonal array */
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array diagonal(
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const array& a,
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int offset = 0,
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int axis1 = 0,
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int axis2 = 1,
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StreamOrDevice s = {});
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/** Extract diagonal from a 2d array or create a diagonal matrix. */
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array diag(const array& a, int k = 0, StreamOrDevice s = {});
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} // namespace mlx::core
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@ -1486,5 +1486,26 @@ void init_array(py::module_& m) {
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"decimals"_a = 0,
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py::kw_only(),
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"stream"_a = none,
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"See :func:`round`.");
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"See :func:`round`.")
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.def(
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"diagonal",
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[](const array& a,
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int offset,
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int axis1,
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int axis2,
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StreamOrDevice s) { return diagonal(a, offset, axis1, axis2, s); },
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"offset"_a = 0,
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"axis1"_a = 0,
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"axis2"_a = 1,
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"stream"_a = none,
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"See :func:`diagonal`.")
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.def(
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"diag",
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[](const array& a, int k, StreamOrDevice s) { return diag(a, k, s); },
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"k"_a = 0,
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py::kw_only(),
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"stream"_a = none,
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R"pbdoc(
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Extract a diagonal or construct a diagonal matrix.
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)pbdoc");
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}
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@ -3577,4 +3577,61 @@ void init_ops(py::module_& m) {
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Returns:
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array: ``alpha * (a @ b) + beta * c``
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)pbdoc");
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m.def(
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"diagonal",
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&diagonal,
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"a"_a,
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"offset"_a = 0,
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"axis1"_a = 0,
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"axis2"_a = 1,
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"stream"_a = none,
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R"pbdoc(
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diagonal(a: array, offset: int = 0, axis1: int = 0, axis2: int = 1, stream: Union[None, Stream, Device] = None) -> array
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Return specified diagonals.
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If ``a`` is 2-D, then a 1-D array containing the diagonal at the given
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``offset`` is returned.
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If ``a`` has more than two dimensions, then ``axis1`` and ``axis2``
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determine the 2D subarrays from which diagonals are extracted. The new
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shape is the original shape with ``axis1`` and ``axis2`` removed and a
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new dimension inserted at the end corresponding to the diagonal.
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Args:
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a (array): Input array
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offset (int, optional): Offset of the diagonal from the main diagonal.
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Can be positive or negative. Default: ``0``.
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axis1 (int, optional): The first axis of the 2-D sub-arrays from which
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the diagonals should be taken. Default: ``0``.
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axis2 (int, optional): The second axis of the 2-D sub-arrays from which
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the diagonals should be taken. Default: ``1``.
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Returns:
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array: The diagonals of the array.
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)pbdoc");
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m.def(
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"diag",
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&diag,
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"a"_a,
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py::pos_only(),
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"k"_a = 0,
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py::kw_only(),
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"stream"_a = none,
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R"pbdoc(
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diag(a: array, /, k: int = 0, *, stream: Union[None, Stream, Device] = None) -> array
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Extract a diagonal or construct a diagonal matrix.
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If ``a`` is 1-D then a diagonal matrix is constructed with ``a`` on the
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:math:`k`-th diagonal. If ``a`` is 2-D then the :math:`k`-th diagonal is
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returned.
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Args:
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a (array): 1-D or 2-D input array.
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k (int, optional): The diagonal to extract or construct.
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Default: ``0``.
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Returns:
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array: The extracted diagonal or the constructed diagonal matrix.
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)pbdoc");
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}
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@ -1785,6 +1785,62 @@ class TestOps(mlx_tests.MLXTestCase):
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out = a @ b
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self.assertTrue(mx.array_equal(out, mx.zeros((10, 10))))
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def test_diagonal(self):
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x = mx.array(
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[
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[[0, 1, 2, 3], [4, 5, 6, 7], [8, 9, 10, 11]],
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[[12, 13, 14, 15], [16, 17, 18, 19], [20, 21, 22, 23]],
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]
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)
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expected = [[0, 13], [4, 17], [8, 21]]
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self.assertListEqual(mx.diagonal(x, 0, -1, 0).tolist(), expected)
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expected = [[1, 14], [5, 18], [9, 22]]
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self.assertListEqual(mx.diagonal(x, -1, 2, 0).tolist(), expected)
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def test_diag(self):
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# Test 1D input
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x = mx.array([1, 2, 3, 4])
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expected = mx.array([[1, 0, 0, 0], [0, 2, 0, 0], [0, 0, 3, 0], [0, 0, 0, 4]])
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result = mx.diag(x)
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self.assertTrue(mx.array_equal(result, expected))
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# Test 1D with offset
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x = mx.array([2, 6])
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result = mx.diag(x, k=5)
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expected = mx.array(np.diag(x, k=5))
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self.assertTrue(mx.array_equal(result, expected))
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# Test 2D input
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x = mx.array([[1, 2, 3], [4, 5, 6], [7, 8, 9]])
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expected = mx.array([1, 5, 9])
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result = mx.diag(x)
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self.assertTrue(mx.array_equal(result, expected))
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# Test with offset
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expected = mx.array([2, 6])
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result = mx.diag(x, 1)
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self.assertTrue(mx.array_equal(result, expected))
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# Test non-square
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x = mx.array([[1, 2, 3], [4, 5, 6]])
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result = mx.diag(x)
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expected = mx.array(np.diag(x))
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self.assertTrue(mx.array_equal(result, expected))
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result = mx.diag(x, k=10)
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expected = mx.array(np.diag(x, k=10))
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self.assertTrue(mx.array_equal(result, expected))
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result = mx.diag(x, k=-10)
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expected = mx.array(np.diag(x, k=-10))
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self.assertTrue(mx.array_equal(result, expected))
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result = mx.diag(x, k=-1)
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expected = mx.array(np.diag(x, k=-1))
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self.assertTrue(mx.array_equal(result, expected))
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if __name__ == "__main__":
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unittest.main()
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@ -1,6 +1,5 @@
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// Copyright © 2023 Apple Inc.
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#include <cmath>
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#include <iostream> // TODO
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#include <numeric>
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#include "doctest/doctest.h"
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@ -2634,3 +2633,86 @@ TEST_CASE("test divmod") {
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eval(out_holder);
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CHECK_EQ(out_holder[0].item<float>(), 1.0);
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}
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TEST_CASE("test diagonal") {
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auto x = array({0, 1, 2, 3, 4, 5, 6, 7}, {4, 2});
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auto out = diagonal(x);
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CHECK(array_equal(out, array({0, 3}, {2})).item<bool>());
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CHECK_THROWS_AS(diagonal(x, 1, 6, 0), std::out_of_range);
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CHECK_THROWS_AS(diagonal(x, 1, 0, -3), std::out_of_range);
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x = array({0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11}, {3, 4});
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out = diagonal(x, 2, 1, 0);
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CHECK(array_equal(out, array({8}, {1})).item<bool>());
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out = diagonal(x, -1, 0, 1);
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CHECK(array_equal(out, array({4, 9}, {2})).item<bool>());
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out = diagonal(x, -5, 0, 1);
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eval(out);
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CHECK_EQ(out.shape(), std::vector<int>{0});
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x = array({0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11}, {3, 2, 2});
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out = diagonal(x, 1, 0, 1);
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CHECK(array_equal(out, array({2, 3}, {2, 1})).item<bool>());
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out = diagonal(x, 0, 2, 0);
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CHECK(array_equal(out, array({0, 5, 2, 7}, {2, 2})).item<bool>());
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out = diagonal(x, 1, -1, 0);
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CHECK(array_equal(out, array({4, 9, 6, 11}, {2, 2})).item<bool>());
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x = reshape(arange(16), {2, 2, 2, 2});
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out = diagonal(x, 0, 0, 1);
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CHECK(array_equal(out, array({0, 12, 1, 13, 2, 14, 3, 15}, {2, 2, 2}))
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.item<bool>());
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CHECK_THROWS_AS(diagonal(x, 0, 1, 1), std::invalid_argument);
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x = array({0, 1}, {2});
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CHECK_THROWS_AS(diagonal(x, 0, 0, 1), std::invalid_argument);
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}
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TEST_CASE("test diag") {
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// To few or too many dimensions
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CHECK_THROWS(diag(array(0.0)));
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CHECK_THROWS(diag(array({0.0}, {1, 1, 1})));
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// Test with 1D array
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auto x = array({0, 1, 2, 3}, {4});
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auto out = diag(x, 0);
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CHECK(
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array_equal(
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out, array({0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 2, 0, 0, 0, 0, 3}, {4, 4}))
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.item<bool>());
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out = diag(x, 1);
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CHECK(array_equal(
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out,
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array(
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{0, 0, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 0,
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2, 0, 0, 0, 0, 0, 3, 0, 0, 0, 0, 0},
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{5, 5}))
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.item<bool>());
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out = diag(x, -1);
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CHECK(array_equal(
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out,
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array(
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{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1, 0,
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0, 0, 0, 0, 2, 0, 0, 0, 0, 0, 3, 0},
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{5, 5}))
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.item<bool>());
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// Test with 2D array
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x = array({0, 1, 2, 3, 4, 5, 6, 7, 8}, {3, 3});
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out = diag(x, 0);
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CHECK(array_equal(out, array({0, 4, 8}, {3})).item<bool>());
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out = diag(x, 1);
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CHECK(array_equal(out, array({1, 5}, {2})).item<bool>());
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out = diag(x, -1);
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CHECK(array_equal(out, array({3, 7}, {2})).item<bool>());
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}
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