セマンティックセグメンテーションの評価
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URLのコードをもとに解析を行ったところ学習と画像の出力は出来たのですがネットワークの評価の際GPUのメモリ不足のエラーが出ました
%学習済みネットワークの評価
pxdsResults = semanticseg(imdsTest,net,'WriteLocation',tempdir,'Verbose',false);
metrics = evaluateSemanticSegmentation(pxdsResults,pxdsTest,'Verbose',false);
metrics.DataSetMetrics
metrics.ClassMetrics
metrics.ConfusionMatrix
normConfMatData = metrics.NormalizedConfusionMatrix.Variables;
figure
h = heatmap(classes,classes,100*normConfMatData);
h.XLabel = 'Predicted Class';
h.YLabel = 'True Class';
h.Title = 'Normalized Confusion Matrix (%)';
%学習オプションの選択
options = trainingOptions('sgdm', ...
'Momentum',0.9, ...
'InitialLearnRate',1e-3, ...
'L2Regularization',0.0005, ...
'MaxEpochs',100, ...
'MiniBatchSize',1, ...
'Shuffle','every-epoch', ...
'VerboseFrequency',2);
CUDADevice のプロパティ:
Name: 'GeForce GTX 950'
Index: 1
ComputeCapability: '5.2'
SupportsDouble: 1
DriverVersion: 10.1000
ToolkitVersion: 10.1000
MaxThreadsPerBlock: 1024
MaxShmemPerBlock: 49152
MaxThreadBlockSize: [1024 1024 64]
MaxGridSize: [2.1475e+09 65535 65535]
SIMDWidth: 32
TotalMemory: 2.1475e+09
AvailableMemory: 1.6633e+09
MultiprocessorCount: 6
ClockRateKHz: 1190000
ComputeMode: 'Default'
GPUOverlapsTransfers: 1
KernelExecutionTimeout: 1
CanMapHostMemory: 1
DeviceSupported: 1
DeviceSelected: 1
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