Source code for nvtripy.frontend.ops.reduce.prod

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from typing import Optional, Sequence, Union

from nvtripy import export
from nvtripy.frontend.ops.reduce.utils import reduce_impl
from nvtripy.trace.ops.reduce import Prod
from nvtripy.utils import wrappers


[docs] @export.public_api(document_under="operations/functions") @wrappers.interface( dtype_constraints={"input": "T1", wrappers.RETURN_VALUE: "T1"}, dtype_variables={"T1": ["float32", "int32", "int64", "float16", "bfloat16"]}, ) def prod( input: "nvtripy.Tensor", dim: Optional[Union[int, Sequence[int]]] = None, keepdim: bool = False ) -> "nvtripy.Tensor": """ Returns a new tensor containing the product of the elements of the input tensor along the specified dimension. Args: input: The input tensor. dim: The dimension or dimensions along which to reduce. If this is not provided, all dimensions are reduced. keepdim: Whether to retain reduced dimensions in the output. If this is False, reduced dimensions will be squeezed. Returns: A new tensor. .. code-block:: python :linenos: input = tp.reshape(tp.arange(6, dtype=tp.float32), (2, 3)) output = tp.prod(input, 0) assert np.array_equal(cp.from_dlpack(output).get(), np.prod(np.arange(6, dtype=np.float32).reshape((2, 3)), 0)) """ return reduce_impl(Prod, input, dim, keepdim)