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author | Narumol Prangnawarat <narumol.prangnawarat@arm.com> | 2020-04-01 16:51:23 +0100 |
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committer | Narumol Prangnawarat <narumol.prangnawarat@arm.com> | 2020-04-06 09:06:01 +0100 |
commit | ac2770a4bb6461bfbddec928bb6208f26f898f02 (patch) | |
tree | c72f67f648b7aca2f4bccf69b05d185bf5f9ccad /src/armnn/layers/Convolution2dLayer.cpp | |
parent | 7ee5d2c3b3cee5a924ed6347fef613ee07b5aca7 (diff) | |
download | armnn-ac2770a4bb6461bfbddec928bb6208f26f898f02.tar.gz |
IVGCVSW-4485 Remove Boost assert
* Change boost assert to armnn assert
* Change include file to armnn assert
* Fix ARMNN_ASSERT_MSG issue with multiple conditions
* Change BOOST_ASSERT to BOOST_TEST where appropriate
* Remove unused include statements
Signed-off-by: Narumol Prangnawarat <narumol.prangnawarat@arm.com>
Change-Id: I5d0fa3a37b7c1c921216de68f0073aa34702c9ff
Diffstat (limited to 'src/armnn/layers/Convolution2dLayer.cpp')
-rw-r--r-- | src/armnn/layers/Convolution2dLayer.cpp | 12 |
1 files changed, 6 insertions, 6 deletions
diff --git a/src/armnn/layers/Convolution2dLayer.cpp b/src/armnn/layers/Convolution2dLayer.cpp index 55a243aa0b..d82908a128 100644 --- a/src/armnn/layers/Convolution2dLayer.cpp +++ b/src/armnn/layers/Convolution2dLayer.cpp @@ -49,7 +49,7 @@ void Convolution2dLayer::SerializeLayerParameters(ParameterStringifyFunction& fn std::unique_ptr<IWorkload> Convolution2dLayer::CreateWorkload(const IWorkloadFactory& factory) const { // on this level constant data should not be released.. - BOOST_ASSERT_MSG(m_Weight != nullptr, "Convolution2dLayer: Weights data should not be null."); + ARMNN_ASSERT_MSG(m_Weight != nullptr, "Convolution2dLayer: Weights data should not be null."); Convolution2dQueueDescriptor descriptor; @@ -57,7 +57,7 @@ std::unique_ptr<IWorkload> Convolution2dLayer::CreateWorkload(const IWorkloadFac if (m_Param.m_BiasEnabled) { - BOOST_ASSERT_MSG(m_Bias != nullptr, "Convolution2dLayer: Bias data should not be null."); + ARMNN_ASSERT_MSG(m_Bias != nullptr, "Convolution2dLayer: Bias data should not be null."); descriptor.m_Bias = m_Bias.get(); } return factory.CreateConvolution2d(descriptor, PrepInfoAndDesc(descriptor)); @@ -79,12 +79,12 @@ Convolution2dLayer* Convolution2dLayer::Clone(Graph& graph) const std::vector<TensorShape> Convolution2dLayer::InferOutputShapes(const std::vector<TensorShape>& inputShapes) const { - BOOST_ASSERT(inputShapes.size() == 2); + ARMNN_ASSERT(inputShapes.size() == 2); const TensorShape& inputShape = inputShapes[0]; const TensorShape filterShape = inputShapes[1]; // If we support multiple batch dimensions in the future, then this assert will need to change. - BOOST_ASSERT_MSG(inputShape.GetNumDimensions() == 4, "Convolutions will always have 4D input."); + ARMNN_ASSERT_MSG(inputShape.GetNumDimensions() == 4, "Convolutions will always have 4D input."); DataLayoutIndexed dataLayoutIndex(m_Param.m_DataLayout); @@ -117,13 +117,13 @@ void Convolution2dLayer::ValidateTensorShapesFromInputs() VerifyLayerConnections(1, CHECK_LOCATION()); // check if we m_Weight data is not nullptr - BOOST_ASSERT_MSG(m_Weight != nullptr, "Convolution2dLayer: Weights data should not be null."); + ARMNN_ASSERT_MSG(m_Weight != nullptr, "Convolution2dLayer: Weights data should not be null."); auto inferredShapes = InferOutputShapes({ GetInputSlot(0).GetConnection()->GetTensorInfo().GetShape(), m_Weight->GetTensorInfo().GetShape() }); - BOOST_ASSERT(inferredShapes.size() == 1); + ARMNN_ASSERT(inferredShapes.size() == 1); ConditionalThrowIfNotEqual<LayerValidationException>( "Convolution2dLayer: TensorShape set on OutputSlot[0] does not match the inferred shape.", |