ArmNN
 23.08
Types.hpp File Reference
#include <array>
#include <functional>
#include <stdint.h>
#include <chrono>
#include "BackendId.hpp"
#include "Exceptions.hpp"
#include "Deprecated.hpp"
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Classes

class  IBackend
 Each backend should implement an IBackend. More...
 
class  IDeviceSpec
 Device specific knowledge to be passed to the optimizer. More...
 
class  PermutationVector
 

Namespaces

 arm
 
 arm::pipe
 
 armnn
 Copyright (c) 2021 ARM Limited and Contributors.
 

Macros

#define LIST_OF_LAYER_TYPE
 This list uses X macro technique. More...
 
#define X(name)   name,
 

Typedefs

using LayerGuid = arm::pipe::ProfilingGuid
 Define LayerGuid type. More...
 
using IBackendSharedPtr = std::shared_ptr< IBackend >
 
using IBackendUniquePtr = std::unique_ptr< IBackend, void(*)(IBackend *backend)>
 
using LayerBindingId = int
 Type of identifiers for bindable layers (inputs, outputs). More...
 
using ImportedInputId = unsigned int
 
using ImportedOutputId = unsigned int
 
using DebugCallbackFunction = std::function< void(LayerGuid guid, unsigned int slotIndex, ITensorHandle *tensorHandle)>
 Define the type of callback for the Debug layer to call. More...
 
using HighResolutionClock = std::chrono::high_resolution_clock::time_point
 Define a timer and associated inference ID for recording execution times. More...
 
using InferenceTimingPair = std::pair< HighResolutionClock, HighResolutionClock >
 

Enumerations

enum  Status { Success = 0, Failure = 1 }
 
enum  DataType {
  Float16 = 0, Float32 = 1, QAsymmU8 = 2, Signed32 = 3,
  Boolean = 4, QSymmS16 = 5, QSymmS8 = 6, QAsymmS8 = 7,
  BFloat16 = 8, Signed64 = 9
}
 
enum  DataLayout { NCHW = 1, NHWC = 2, NDHWC = 3, NCDHW = 4 }
 
enum  ProfilingDetailsMethod { Undefined = 0, DetailsWithEvents = 1, DetailsOnly = 2 }
 Define the behaviour of the internal profiler when outputting network details. More...
 
enum  QosExecPriority { Low = 0, Medium = 1, High = 2 }
 
enum  ActivationFunction {
  Sigmoid = 0, TanH = 1, Linear = 2, ReLu = 3,
  BoundedReLu = 4, SoftReLu = 5, LeakyReLu = 6, Abs = 7,
  Sqrt = 8, Square = 9, Elu = 10, HardSwish = 11
}
 
enum  ArgMinMaxFunction { Min = 0, Max = 1 }
 
enum  ComparisonOperation {
  Equal = 0, Greater = 1, GreaterOrEqual = 2, Less = 3,
  LessOrEqual = 4, NotEqual = 5
}
 
enum  LogicalBinaryOperation { LogicalAnd = 0, LogicalOr = 1 }
 
enum  UnaryOperation {
  Abs = 0, Exp = 1, Sqrt = 2, Rsqrt = 3,
  Neg = 4, LogicalNot = 5, Log = 6, Sin = 7,
  Ceil = 8
}
 
enum  BinaryOperation {
  Add = 0, Div = 1, Maximum = 2, Minimum = 3,
  Mul = 4, Sub = 5, SqDiff = 6, Power = 7
}
 
enum  PoolingAlgorithm { Max = 0, Average = 1, L2 = 2 }
 
enum  ReduceOperation {
  Sum = 0, Max = 1, Mean = 2, Min = 3,
  Prod = 4
}
 
enum  ResizeMethod { Bilinear = 0, NearestNeighbor = 1 }
 
enum  Dimensionality { NotSpecified = 0, Specified = 1, Scalar = 2 }
 
enum  PaddingMethod { IgnoreValue = 0, Exclude = 1 }
 The padding method modifies the output of pooling layers. More...
 
enum  PaddingMode { Constant = 0, Reflect = 1, Symmetric = 2 }
 The padding mode controls whether the padding should be filled with constant values (Constant), or reflect the input, either including the border values (Symmetric) or not (Reflect). More...
 
enum  NormalizationAlgorithmChannel { Across = 0, Within = 1 }
 
enum  NormalizationAlgorithmMethod { LocalBrightness = 0, LocalContrast = 1 }
 
enum  OutputShapeRounding { Floor = 0, Ceiling = 1 }
 
enum  ShapeInferenceMethod { ValidateOnly = 0, InferAndValidate = 1 }
 The ShapeInferenceMethod modify how the output shapes are treated. More...
 
enum  MemorySource : uint32_t {
  Undefined = 0, Malloc = 1, DmaBuf = 2, DmaBufProtected = 4,
  Gralloc = 8
}
 Define the Memory Source to reduce copies. More...
 
enum  MemBlockStrategyType { SingleAxisPacking = 0, MultiAxisPacking = 1 }
 
enum  BackendCapability : uint32_t { NonConstWeights, AsyncExecution }
 BackendCapability class. More...
 
enum  LayerType {
  X, Activation, Addition, ArgMinMax,
  BatchNormalization, BatchToSpaceNd, Comparison, Concat,
  Constant, ConvertFp16ToFp32, ConvertFp32ToFp16, Convolution2d,
  Debug, DepthToSpace, DepthwiseConvolution2d, Dequantize,
  DetectionPostProcess, Division, ElementwiseUnary, FakeQuantization,
  Fill, Floor, FullyConnected, Gather,
  Input, InstanceNormalization, L2Normalization, LogicalBinary,
  LogSoftmax, Lstm, QLstm, Map,
  Maximum, Mean, MemCopy, MemImport,
  Merge, Minimum, Multiplication, Normalization,
  Output, Pad, Permute, Pooling2d,
  PreCompiled, Prelu, Quantize, QuantizedLstm,
  Reshape, Rank, Resize, Reduce,
  Slice, Softmax, SpaceToBatchNd, SpaceToDepth,
  Splitter, Stack, StandIn, StridedSlice,
  Subtraction, Switch, Transpose, TransposeConvolution2d,
  Unmap, Cast, Shape, UnidirectionalSequenceLstm,
  ChannelShuffle, Convolution3d, Pooling3d, GatherNd,
  BatchMatMul, ElementwiseBinary, ReverseV2, Tile,
  FirstLayer = Activation, LastLayer = Tile
}
 When adding a new layer, adapt also the LastLayer enum value in the enum class LayerType below. More...
 

Functions

const char * GetLayerTypeAsCString (LayerType type)
 

Variables

constexpr unsigned int MaxNumOfTensorDimensions = 5U
 
constexpr unsigned int LOWEST_CAPTURE_PERIOD = 10000u
 The lowest performance data capture interval we support is 10 miliseconds. More...
 
constexpr unsigned int EXPIRE_RATE = 3U
 Variable to control expire rate of priority queue. More...
 

Macro Definition Documentation

◆ LIST_OF_LAYER_TYPE

#define LIST_OF_LAYER_TYPE

This list uses X macro technique.

See https://en.wikipedia.org/wiki/X_Macro for more info

Definition at line 402 of file Types.hpp.

◆ X

#define X (   name)    name,

Definition at line 485 of file Types.hpp.

Typedef Documentation

◆ LayerGuid

using LayerGuid = arm::pipe::ProfilingGuid

Define LayerGuid type.

Definition at line 26 of file Types.hpp.