tf.raw_ops.MatrixSolve
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Solves systems of linear equations.
tf.raw_ops.MatrixSolve(
matrix, rhs, adjoint=False, name=None
)
Matrix
is a tensor of shape [..., M, M]
whose inner-most 2 dimensions
form square matrices. Rhs
is a tensor of shape [..., M, K]
. The output
is
a tensor shape [..., M, K]
. If adjoint
is False
then each output matrix
satisfies matrix[..., :, :] * output[..., :, :] = rhs[..., :, :]
.
If adjoint
is True
then each output matrix satisfies
adjoint(matrix[..., :, :]) * output[..., :, :] = rhs[..., :, :]
.
Args |
matrix
|
A Tensor . Must be one of the following types: float64 , float32 , half , complex64 , complex128 .
Shape is [..., M, M] .
|
rhs
|
A Tensor . Must have the same type as matrix .
Shape is [..., M, K] .
|
adjoint
|
An optional bool . Defaults to False .
Boolean indicating whether to solve with matrix or its (block-wise)
adjoint.
|
name
|
A name for the operation (optional).
|
Returns |
A Tensor . Has the same type as matrix .
|
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Last updated 2023-10-06 UTC.
[null,null,["Last updated 2023-10-06 UTC."],[],[],null,["# tf.raw_ops.MatrixSolve\n\n\u003cbr /\u003e\n\nSolves systems of linear equations.\n\n#### View aliases\n\n\n**Compat aliases for migration**\n\nSee\n[Migration guide](https://www.tensorflow.org/guide/migrate) for\nmore details.\n\n[`tf.compat.v1.raw_ops.MatrixSolve`](https://www.tensorflow.org/api_docs/python/tf/raw_ops/MatrixSolve)\n\n\u003cbr /\u003e\n\n tf.raw_ops.MatrixSolve(\n matrix, rhs, adjoint=False, name=None\n )\n\n`Matrix` is a tensor of shape `[..., M, M]` whose inner-most 2 dimensions\nform square matrices. `Rhs` is a tensor of shape `[..., M, K]`. The `output` is\na tensor shape `[..., M, K]`. If `adjoint` is `False` then each output matrix\nsatisfies `matrix[..., :, :] * output[..., :, :] = rhs[..., :, :]`.\nIf `adjoint` is `True` then each output matrix satisfies\n`adjoint(matrix[..., :, :]) * output[..., :, :] = rhs[..., :, :]`.\n\n\u003cbr /\u003e\n\n\u003cbr /\u003e\n\n\u003cbr /\u003e\n\n| Args ---- ||\n|-----------|----------------------------------------------------------------------------------------------------------------------------------|\n| `matrix` | A `Tensor`. Must be one of the following types: `float64`, `float32`, `half`, `complex64`, `complex128`. Shape is `[..., M, M]`. |\n| `rhs` | A `Tensor`. Must have the same type as `matrix`. Shape is `[..., M, K]`. |\n| `adjoint` | An optional `bool`. Defaults to `False`. Boolean indicating whether to solve with `matrix` or its (block-wise) adjoint. |\n| `name` | A name for the operation (optional). |\n\n\u003cbr /\u003e\n\n\u003cbr /\u003e\n\n\u003cbr /\u003e\n\n\u003cbr /\u003e\n\n| Returns ------- ||\n|---|---|\n| A `Tensor`. Has the same type as `matrix`. ||\n\n\u003cbr /\u003e"]]