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Add tanh op to XNNPACK backend
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10 files changed

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backends/xnnpack/operators/__init__.py

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@@ -50,5 +50,6 @@
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op_static_constant_pad,
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op_static_resize_bilinear_2d,
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op_sub,
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op_tanh,
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op_to_copy,
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)

backends/xnnpack/operators/op_tanh.py

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# Copyright (c) Meta Platforms, Inc. and affiliates.
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# All rights reserved.
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#
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# This source code is licensed under the BSD-style license found in the
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# LICENSE file in the root directory of this source tree.
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from typing import Dict
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import torch
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from executorch.backends.xnnpack.operators.node_visitor import (
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NodeVisitor,
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register_node_visitor,
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)
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from executorch.backends.xnnpack.serialization.xnnpack_graph_schema import (
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XNNGraph,
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XNNTanh,
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XNode,
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)
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from executorch.backends.xnnpack.utils.utils import get_input_node
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@register_node_visitor
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class TanhVisitor(NodeVisitor):
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target = "aten.tanh.default"
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def __init__(self, *args) -> None:
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super().__init__(*args)
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def define_node(
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self,
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node: torch.fx.Node,
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xnn_graph: XNNGraph,
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vals_to_ids: Dict[torch.fx.Node, int],
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debug_handle: int,
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) -> None:
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self.define_nodes_tensor_inputs_outputs(node, xnn_graph, vals_to_ids)
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# input
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input_id = vals_to_ids[get_input_node(node, 0)]
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# output
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output_id = vals_to_ids[node]
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ser_node = XNode(
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xnode_union=XNNTanh(
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input_id=input_id,
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output_id=output_id,
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flags=0,
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),
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debug_handle=debug_handle,
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)
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xnn_graph.xnodes.append(ser_node)

backends/xnnpack/partition/config/__init__.py

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@@ -49,6 +49,7 @@
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SoftmaxConfig,
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SquareRootConfig,
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SubConfig,
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TanhConfig,
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UpsampleBilinear2dConfig,
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)
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from executorch.backends.xnnpack.partition.config.node_configs import (
@@ -99,6 +100,7 @@
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PreluConfig,
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ReciprocalSquareRootConfig,
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ReLUConfig,
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TanhConfig,
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# SDPAConfig, TODO: D60553559: preserving SDPA for fairseq fails
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SigmoidConfig,
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SliceCopyConfig,

backends/xnnpack/partition/config/generic_node_configs.py

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@@ -371,6 +371,13 @@ def supported_precision_types(self) -> List[ConfigPrecisionType]:
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return [ConfigPrecisionType.FP32]
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class TanhConfig(GenericNodePartitionerConfig):
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target_name = "tanh.default"
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def supported_precision_types(self) -> List[ConfigPrecisionType]:
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return [ConfigPrecisionType.FP32]
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class MeanDimConfig(GenericNodePartitionerConfig):
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target_name = "mean.dim"
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backends/xnnpack/partition/configs.py

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@@ -66,6 +66,7 @@
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exir_ops.edge.aten.rsqrt.default,
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exir_ops.edge.aten.log.default,
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exir_ops.edge.aten.gelu.default,
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exir_ops.edge.aten.tanh.default,
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]
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SUPPORTED_MODULES = [

backends/xnnpack/runtime/XNNCompiler.cpp

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@@ -1513,6 +1513,36 @@ Error defineGeluNode(
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return Error::Ok;
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}
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/*
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Define serialized tanh node into the subgraph, using the remapped ids
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to map the serialized ids, to the new ids generated when defining the
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tensor value
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*/
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Error defineTanhNode(
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xnn_subgraph_t subgraph_ptr,
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const std::unordered_map<uint32_t, uint32_t>& remapped_ids,
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const NodePtr node,
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const fb_xnnpack::XNNGraph* graph) noexcept {
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MAYBE_UNUSED(graph);
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auto graph_node = node->xnode_union_as_XNNTanh();
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xnn_status status = xnn_define_tanh(
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subgraph_ptr,
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remapped_ids.at(graph_node->input_id()),
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remapped_ids.at(graph_node->output_id()),
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graph_node->flags());
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ET_CHECK_OR_RETURN_ERROR(
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status == xnn_status_success,
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Internal,
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"Failed to create tanh node %i with code: %s",
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node->debug_handle(),
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xnn_status_to_string(status));
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return Error::Ok;
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}
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/*
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Define serialized ceiling node into the subgraph, using the remapped ids
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to map the serialized ids, to the new ids generated when defining the
@@ -2078,6 +2108,7 @@ DefineNodeFunc getDefineNodeFunc(fb_xnnpack::XNodeUnion nodeType) {
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_DEFINE(Hardswish)
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_DEFINE(LeakyReLU)
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_DEFINE(Log)
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_DEFINE(Tanh)
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_DEFINE(Maximum)
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_DEFINE(Negate)
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_DEFINE(Square)

backends/xnnpack/serialization/runtime_schema.fbs

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@@ -145,6 +145,7 @@ union XNodeUnion {
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XNNReciprocalSquareRoot: _XNNNode1x1,
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XNNLog: _XNNNode1x1,
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XNNGelu: _XNNNode1x1,
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XNNTanh: _XNNNode1x1,
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}
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union XValueUnion {

backends/xnnpack/serialization/schema.fbs

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@@ -141,6 +141,7 @@ union XNodeUnion {
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XNNReciprocalSquareRoot: _XNNNode1x1,
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XNNLog: _XNNNode1x1,
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XNNGelu: _XNNNode1x1,
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XNNTanh: _XNNNode1x1,
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}
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union XValueUnion {

backends/xnnpack/serialization/xnnpack_graph_schema.py

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@@ -319,6 +319,11 @@ class XNNLog(XNNNode1x1):
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pass
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@dataclass
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class XNNTanh(XNNNode1x1):
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pass
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@dataclass
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class XNNMaximum(XNNNode2x1):
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pass
@@ -391,6 +396,7 @@ class XNNScaledDotProductAttention:
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XNNReciprocalSquareRoot,
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XNNLog,
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XNNGelu,
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XNNTanh,
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]
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# Copyright (c) Meta Platforms, Inc. and affiliates.
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# All rights reserved.
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#
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# This source code is licensed under the BSD-style license found in the
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# LICENSE file in the root directory of this source tree.
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import unittest
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import torch
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from executorch.backends.xnnpack.test.tester import Tester
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class TestTanh(unittest.TestCase):
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def setUp(self):
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torch._dynamo.reset()
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class Tanh(torch.nn.Module):
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def __init__(self):
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super().__init__()
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def forward(self, x):
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return torch.tanh(x)
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def run_tanh_test(self, inputs):
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(
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Tester(self.Tanh(), inputs)
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.export()
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.check_count({"torch.ops.aten.tanh.default": 1})
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.to_edge_transform_and_lower()
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.check_count({"torch.ops.higher_order.executorch_call_delegate": 1})
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.check_not(["executorch_exir_dialects_edge__ops_aten_tanh_default"])
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.to_executorch()
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.serialize()
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.run_method_and_compare_outputs()
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)
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def test_fp16_tanh(self):
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inputs = (torch.randn(20).to(torch.float16),)
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self.run_tanh_test(inputs)
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def test_fp32_tanh(self):
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inputs = (torch.randn(20),)
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self.run_tanh_test(inputs)

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