hurricane-server

AMD Eng Sample 100-000000897-03 testing with a Supermicro Super Server H13SSL-N v2.00 (3.0 BIOS) and llvmpipe on Ubuntu 24.04 via the Phoronix Test Suite.

Compare your own system(s) to this result file with the Phoronix Test Suite by running the command: phoronix-test-suite benchmark 2412185-NE-HURRICANE76
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Result
Identifier
Performance Per
Dollar
Date
Run
  Test
  Duration
hurricane-server
December 14
  4 Days, 10 Minutes
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hurricane-serverOpenBenchmarking.orgPhoronix Test SuiteAMD Eng Sample 100-000000897-03 @ 2.55GHz (32 Cores / 64 Threads)Supermicro Super Server H13SSL-N v2.00 (3.0 BIOS)AMD Device 14a432 GB + 32 GB + 32 GB + 16 GB + 16 GB + 16 GB + 32 GB + 32 GB + 32 GB + 16 GB + 16 GB + 16 GB DDR5-4800MT/s512GB INTEL SSDPEKKF512G8Lllvmpipe (405/715MHz)2 x Broadcom NetXtreme BCM5720 PCIeUbuntu 24.046.8.0-50-generic (x86_64)GNOME Shell 46.0X Server 1.21.1.11NVIDIA 535.183.014.5 Mesa 24.0.9-0ubuntu0.3 (LLVM 17.0.6 256 bits)OpenCL 3.0 CUDA 12.2.148GCC 13.3.0ext41024x768ProcessorMotherboardChipsetMemoryDiskGraphicsNetworkOSKernelDesktopDisplay ServerDisplay DriverOpenGLOpenCLCompilerFile-SystemScreen ResolutionHurricane-server BenchmarksSystem Logs- Transparent Huge Pages: madvise- --build=x86_64-linux-gnu --disable-vtable-verify --disable-werror --enable-bootstrap --enable-cet --enable-checking=release --enable-clocale=gnu --enable-default-pie --enable-gnu-unique-object --enable-languages=c,ada,c++,go,d,fortran,objc,obj-c++,m2 --enable-libphobos-checking=release --enable-libstdcxx-backtrace --enable-libstdcxx-debug --enable-libstdcxx-time=yes --enable-link-serialization=2 --enable-multiarch --enable-multilib --enable-nls --enable-objc-gc=auto --enable-offload-defaulted --enable-offload-targets=nvptx-none=/build/gcc-13-fG75Ri/gcc-13-13.3.0/debian/tmp-nvptx/usr,amdgcn-amdhsa=/build/gcc-13-fG75Ri/gcc-13-13.3.0/debian/tmp-gcn/usr --enable-plugin --enable-shared --enable-threads=posix --host=x86_64-linux-gnu --program-prefix=x86_64-linux-gnu- --target=x86_64-linux-gnu --with-abi=m64 --with-arch-32=i686 --with-build-config=bootstrap-lto-lean --with-default-libstdcxx-abi=new --with-gcc-major-version-only --with-multilib-list=m32,m64,mx32 --with-target-system-zlib=auto --with-tune=generic --without-cuda-driver -v - Scaling Governor: acpi-cpufreq performance (Boost: Enabled) - CPU Microcode: 0xa101020- BAR1 / Visible vRAM Size: 16384 MiB - vBIOS Version: 86.00.4d.00.01- GPU Compute Cores: 3584- Python 3.12.3- gather_data_sampling: Not affected + itlb_multihit: Not affected + l1tf: Not affected + mds: Not affected + meltdown: Not affected + mmio_stale_data: Not affected + reg_file_data_sampling: Not affected + retbleed: Not affected + spec_rstack_overflow: Vulnerable: Safe RET no microcode + spec_store_bypass: Mitigation of SSB disabled via prctl + spectre_v1: Mitigation of usercopy/swapgs barriers and __user pointer sanitization + spectre_v2: Mitigation of Enhanced / Automatic IBRS; IBPB: conditional; STIBP: always-on; RSB filling; PBRSB-eIBRS: Not affected; BHI: Not affected + srbds: Not affected + tsx_async_abort: Not affected

hurricane-serveropenvino-genai: Phi-3-mini-128k-instruct-int4-ov - CPUopenvino-genai: Falcon-7b-instruct-int4-ov - CPUopenvino-genai: TinyLlama-1.1B-Chat-v1.0 - CPUopenvino-genai: Gemma-7b-int4-ov - CPUwhisperfile: Mediumwhisperfile: Smallwhisperfile: Tinywhisper-cpp: ggml-medium.en - 2016 State of the Unionwhisper-cpp: ggml-small.en - 2016 State of the Unionwhisper-cpp: ggml-base.en - 2016 State of the Unionscikit-learn: Sparse Rand Projections / 100 Iterationsscikit-learn: Kernel PCA Solvers / Time vs. N Componentsscikit-learn: Kernel PCA Solvers / Time vs. N Samplesscikit-learn: Hist Gradient Boosting Categorical Onlyscikit-learn: Plot Polynomial Kernel Approximationscikit-learn: 20 Newsgroups / Logistic Regressionscikit-learn: Hist Gradient Boosting Higgs Bosonscikit-learn: Hist Gradient Boosting Threadingscikit-learn: Isotonic / Perturbed Logarithmscikit-learn: Hist Gradient Boosting Adultscikit-learn: Covertype Dataset Benchmarkscikit-learn: Sample Without Replacementscikit-learn: Isotonic / Pathologicalscikit-learn: Plot Parallel Pairwisescikit-learn: Hist Gradient Boostingscikit-learn: Plot Incremental PCAscikit-learn: Isotonic / Logisticscikit-learn: TSNE MNIST Datasetscikit-learn: LocalOutlierFactorscikit-learn: Feature Expansionsscikit-learn: Plot OMP vs. LARSscikit-learn: Plot Hierarchicalscikit-learn: Text Vectorizersscikit-learn: Isolation Forestscikit-learn: SGDOneClassSVMscikit-learn: SGD Regressionscikit-learn: Plot Neighborsscikit-learn: MNIST Datasetscikit-learn: Plot Wardscikit-learn: Sparsifyscikit-learn: Lassoscikit-learn: Treescikit-learn: SAGAscikit-learn: GLMopenvino: Age Gender Recognition Retail 0013 FP16-INT8 - CPUopenvino: Age Gender Recognition Retail 0013 FP16-INT8 - CPUopenvino: Handwritten English Recognition FP16-INT8 - CPUopenvino: Handwritten English Recognition FP16-INT8 - CPUopenvino: Age Gender Recognition Retail 0013 FP16 - CPUopenvino: Age Gender Recognition Retail 0013 FP16 - CPUopenvino: Person Re-Identification Retail FP16 - CPUopenvino: Person Re-Identification Retail FP16 - CPUopenvino: Handwritten English Recognition FP16 - CPUopenvino: Handwritten English Recognition FP16 - CPUopenvino: Noise Suppression Poconet-Like FP16 - CPUopenvino: Noise Suppression Poconet-Like FP16 - CPUopenvino: Person Vehicle Bike Detection FP16 - CPUopenvino: Person Vehicle Bike Detection FP16 - CPUopenvino: Weld Porosity Detection FP16-INT8 - CPUopenvino: Weld Porosity Detection FP16-INT8 - CPUopenvino: Machine Translation EN To DE FP16 - CPUopenvino: Machine Translation EN To DE FP16 - CPUopenvino: Road Segmentation ADAS FP16-INT8 - CPUopenvino: Road Segmentation ADAS FP16-INT8 - CPUopenvino: Face Detection Retail FP16-INT8 - CPUopenvino: Face Detection Retail FP16-INT8 - CPUopenvino: Weld Porosity Detection FP16 - CPUopenvino: Weld Porosity Detection FP16 - CPUopenvino: Vehicle Detection FP16-INT8 - CPUopenvino: Vehicle Detection FP16-INT8 - CPUopenvino: Road Segmentation ADAS FP16 - CPUopenvino: Road Segmentation ADAS FP16 - CPUopenvino: Face Detection Retail FP16 - CPUopenvino: Face Detection Retail FP16 - CPUopenvino: Face Detection FP16-INT8 - CPUopenvino: Face Detection FP16-INT8 - CPUopenvino: Vehicle Detection FP16 - CPUopenvino: Vehicle Detection FP16 - CPUopenvino: Person Detection FP32 - CPUopenvino: Person Detection FP32 - CPUopenvino: Person Detection FP16 - CPUopenvino: Person Detection FP16 - CPUopenvino: Face Detection FP16 - CPUopenvino: Face Detection FP16 - CPUxnnpack: QS8MobileNetV2xnnpack: FP16MobileNetV3Smallxnnpack: FP16MobileNetV3Largexnnpack: FP16MobileNetV2xnnpack: FP16MobileNetV1xnnpack: FP32MobileNetV3Smallxnnpack: FP32MobileNetV3Largexnnpack: FP32MobileNetV2xnnpack: FP32MobileNetV1ncnn: Vulkan GPU - vision_transformerncnn: Vulkan GPU - regnety_400mncnn: Vulkan GPU - squeezenet_ssdncnn: Vulkan GPU - yolov4-tinyncnn: Vulkan GPUv2-yolov3v2-yolov3 - mobilenetv2-yolov3ncnn: Vulkan GPU - resnet50ncnn: Vulkan GPU - alexnetncnn: Vulkan GPU - resnet18ncnn: Vulkan GPU - vgg16ncnn: Vulkan GPU - googlenetncnn: Vulkan GPU - blazefacencnn: Vulkan GPU - efficientnet-b0ncnn: Vulkan GPU - mnasnetncnn: Vulkan GPU - shufflenet-v2ncnn: Vulkan GPU-v3-v3 - mobilenet-v3ncnn: Vulkan GPU-v2-v2 - mobilenet-v2ncnn: Vulkan GPU - mobilenetncnn: CPU - regnety_400mncnn: CPU - squeezenet_ssdncnn: CPU - yolov4-tinyncnn: CPUv2-yolov3v2-yolov3 - mobilenetv2-yolov3ncnn: CPU - resnet50ncnn: CPU - alexnetncnn: CPU - resnet18ncnn: CPU - vgg16ncnn: CPU - googlenetncnn: CPU - blazefacencnn: CPU - efficientnet-b0ncnn: CPU - mnasnetncnn: CPU - shufflenet-v2ncnn: CPU-v3-v3 - mobilenet-v3ncnn: CPU-v2-v2 - mobilenet-v2ncnn: CPU - mobilenettensorflow: GPU - 512 - ResNet-50tensorflow: GPU - 512 - GoogLeNettensorflow: GPU - 256 - ResNet-50tensorflow: GPU - 256 - GoogLeNettensorflow: CPU - 512 - ResNet-50tensorflow: CPU - 512 - GoogLeNettensorflow: CPU - 256 - ResNet-50tensorflow: CPU - 256 - GoogLeNettensorflow: GPU - 64 - ResNet-50tensorflow: GPU - 64 - GoogLeNettensorflow: GPU - 32 - ResNet-50tensorflow: GPU - 32 - GoogLeNettensorflow: GPU - 16 - ResNet-50tensorflow: GPU - 16 - GoogLeNettensorflow: CPU - 64 - ResNet-50tensorflow: CPU - 64 - GoogLeNettensorflow: CPU - 32 - ResNet-50tensorflow: CPU - 32 - GoogLeNettensorflow: CPU - 16 - ResNet-50tensorflow: CPU - 16 - GoogLeNettensorflow: GPU - 512 - AlexNettensorflow: GPU - 256 - AlexNettensorflow: GPU - 1 - ResNet-50tensorflow: GPU - 1 - GoogLeNettensorflow: CPU - 512 - AlexNettensorflow: CPU - 256 - AlexNettensorflow: CPU - 1 - ResNet-50tensorflow: CPU - 1 - GoogLeNettensorflow: GPU - 64 - AlexNettensorflow: GPU - 512 - VGG-16tensorflow: GPU - 32 - AlexNettensorflow: GPU - 256 - VGG-16tensorflow: GPU - 16 - AlexNettensorflow: CPU - 64 - AlexNettensorflow: CPU - 512 - VGG-16tensorflow: CPU - 32 - AlexNettensorflow: CPU - 256 - VGG-16tensorflow: CPU - 16 - AlexNettensorflow: GPU - 64 - VGG-16tensorflow: GPU - 32 - VGG-16tensorflow: GPU - 16 - VGG-16tensorflow: GPU - 1 - AlexNettensorflow: CPU - 64 - VGG-16tensorflow: CPU - 32 - VGG-16tensorflow: CPU - 16 - VGG-16tensorflow: CPU - 1 - AlexNettensorflow: GPU - 1 - VGG-16tensorflow: CPU - 1 - VGG-16pytorch: CPU - 512 - Efficientnet_v2_lpytorch: CPU - 256 - Efficientnet_v2_lpytorch: CPU - 64 - Efficientnet_v2_lpytorch: CPU - 32 - Efficientnet_v2_lpytorch: CPU - 16 - Efficientnet_v2_lpytorch: CPU - 1 - Efficientnet_v2_lpytorch: CPU - 512 - ResNet-152pytorch: CPU - 256 - ResNet-152pytorch: CPU - 64 - ResNet-152pytorch: CPU - 512 - ResNet-50pytorch: CPU - 32 - ResNet-152pytorch: CPU - 256 - ResNet-50pytorch: CPU - 16 - ResNet-152pytorch: CPU - 64 - ResNet-50pytorch: CPU - 32 - ResNet-50pytorch: CPU - 16 - ResNet-50pytorch: CPU - 1 - ResNet-152pytorch: CPU - 1 - ResNet-50tensorflow-lite: Inception ResNet V2tensorflow-lite: Mobilenet Quanttensorflow-lite: Mobilenet Floattensorflow-lite: NASNet Mobiletensorflow-lite: Inception V4tensorflow-lite: SqueezeNetlitert: Quantized COCO SSD MobileNet v1litert: Inception ResNet V2litert: Mobilenet Quantlitert: Mobilenet Floatlitert: NASNet Mobilelitert: Inception V4litert: SqueezeNetlitert: DeepLab V3rnnoise: 26 Minute Long Talking Samplerbenchmark: deepspeech: CPUnumpy: onednn: Recurrent Neural Network Inference - CPUonednn: Recurrent Neural Network Training - CPUonednn: Deconvolution Batch shapes_3d - CPUonednn: Deconvolution Batch shapes_1d - CPUonednn: Convolution Batch Shapes Auto - CPUonednn: IP Shapes 3D - CPUonednn: IP Shapes 1D - CPUlczero: BLASshoc: OpenCL - Texture Read Bandwidthshoc: OpenCL - Bus Speed Readbackshoc: OpenCL - Bus Speed Downloadshoc: OpenCL - Max SP Flopsshoc: OpenCL - GEMM SGEMM_Nshoc: OpenCL - Reductionshoc: OpenCL - MD5 Hashshoc: OpenCL - FFT SPshoc: OpenCL - Triadshoc: OpenCL - S3Dopenvino-genai: Phi-3-mini-128k-instruct-int4-ov - CPU - Time Per Output Tokenopenvino-genai: Phi-3-mini-128k-instruct-int4-ov - CPU - Time To First Tokenopenvino-genai: Falcon-7b-instruct-int4-ov - CPU - Time Per Output Tokenopenvino-genai: Falcon-7b-instruct-int4-ov - CPU - Time To First Tokenopenvino-genai: TinyLlama-1.1B-Chat-v1.0 - CPU - Time Per Output Tokenopenvino-genai: TinyLlama-1.1B-Chat-v1.0 - CPU - Time To First Tokenopenvino-genai: Gemma-7b-int4-ov - CPU - Time Per Output Tokenopenvino-genai: Gemma-7b-int4-ov - CPU - Time To First Tokenopencv: DNN - Deep Neural Networkncnn: Vulkan GPU - FastestDetncnn: CPU - FastestDetncnn: CPU - vision_transformerdeepsparse: NLP Document Classification, oBERT base uncased on IMDB - Asynchronous Multi-Streamhurricane-server47.1739.3765.7630.11312.21719137.6484348.31755605.21554243.05902116.86325659.72940.06268.49444.821129.01712.94177.70768.0222180.917245.146434.505135.8134978.992123.031247.45436.5021974.797268.06225.661126.77646.717197.94865.346236.890330.20587.926174.50078.40057.026156.750536.89368.7901027.768200.4210.4164559.5827.521160.600.5847505.845.822734.7529.251092.3911.902638.337.312176.468.293835.5568.60233.0419.12834.814.596872.5516.081984.686.722367.6820.28786.833.294791.90412.4038.6710.371536.1682.70193.1983.08192.30790.6220.1620012136301219851348216431362162130667.7124.0816.9227.0115.9814.465.528.9925.1717.413.819.716.899.497.957.4315.9824.0616.8526.5815.8114.465.519.0125.2317.393.809.736.919.517.937.4115.816.8321.106.8421.06101.60288.7998.53283.286.7820.836.7320.376.6020.1590.02262.3184.65241.1674.57214.2134.1333.974.7214.65679.63651.7217.3253.6233.241.7932.121.7930.06532.9533.71465.6633.52376.931.781.771.7615.9432.6531.7629.2858.021.6115.048.168.208.218.108.2112.4719.5019.4819.6952.0919.5152.1219.5552.1052.1251.3924.6967.9431730.62531.331306.8724134.516113.82015.742299.8119022.71404.291332.5131332.416671.72102.343250.3111.3550.170753.37464513.75450.858811.2531.815575.684711.147900.6804940.850385281588.11313.543313.21389437.515521.35257.88714.48891479.1712.8950268.84721.2041.4125.4059.0615.2118.2433.2172.723330311.5711.1867.87OpenBenchmarking.org

OpenVINO GenAI

OpenBenchmarking.orgtokens/s, More Is BetterOpenVINO GenAI 2024.5Model: Phi-3-mini-128k-instruct-int4-ov - Device: CPUhurricane-server1122334455SE +/- 0.29, N = 347.17

OpenBenchmarking.orgtokens/s, More Is BetterOpenVINO GenAI 2024.5Model: Falcon-7b-instruct-int4-ov - Device: CPUhurricane-server918273645SE +/- 0.16, N = 339.37

OpenBenchmarking.orgtokens/s, More Is BetterOpenVINO GenAI 2024.5Model: TinyLlama-1.1B-Chat-v1.0 - Device: CPUhurricane-server1530456075SE +/- 0.16, N = 365.76

OpenBenchmarking.orgtokens/s, More Is BetterOpenVINO GenAI 2024.5Model: Gemma-7b-int4-ov - Device: CPUhurricane-server714212835SE +/- 0.24, N = 330.11

Whisperfile

OpenBenchmarking.orgSeconds, Fewer Is BetterWhisperfile 20Aug24Model Size: Mediumhurricane-server70140210280350SE +/- 1.81, N = 3312.22

OpenBenchmarking.orgSeconds, Fewer Is BetterWhisperfile 20Aug24Model Size: Smallhurricane-server306090120150SE +/- 0.47, N = 3137.65

OpenBenchmarking.orgSeconds, Fewer Is BetterWhisperfile 20Aug24Model Size: Tinyhurricane-server1122334455SE +/- 0.20, N = 348.32

Whisper.cpp

OpenBenchmarking.orgSeconds, Fewer Is BetterWhisper.cpp 1.6.2Model: ggml-medium.en - Input: 2016 State of the Unionhurricane-server130260390520650SE +/- 5.80, N = 3605.221. (CXX) g++ options: -O3 -std=c++11 -fPIC -pthread -msse3 -mssse3 -mavx -mf16c -mfma -mavx2 -mavx512f -mavx512cd -mavx512vl -mavx512dq -mavx512bw -mavx512vbmi -mavx512vnni

OpenBenchmarking.orgSeconds, Fewer Is BetterWhisper.cpp 1.6.2Model: ggml-small.en - Input: 2016 State of the Unionhurricane-server50100150200250SE +/- 0.71, N = 3243.061. (CXX) g++ options: -O3 -std=c++11 -fPIC -pthread -msse3 -mssse3 -mavx -mf16c -mfma -mavx2 -mavx512f -mavx512cd -mavx512vl -mavx512dq -mavx512bw -mavx512vbmi -mavx512vnni

OpenBenchmarking.orgSeconds, Fewer Is BetterWhisper.cpp 1.6.2Model: ggml-base.en - Input: 2016 State of the Unionhurricane-server306090120150SE +/- 0.28, N = 3116.861. (CXX) g++ options: -O3 -std=c++11 -fPIC -pthread -msse3 -mssse3 -mavx -mf16c -mfma -mavx2 -mavx512f -mavx512cd -mavx512vl -mavx512dq -mavx512bw -mavx512vbmi -mavx512vnni

Scikit-Learn

Scikit-learn is a Python module for machine learning built on NumPy, SciPy, and is BSD-licensed. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Sparse Random Projections / 100 Iterationshurricane-server140280420560700SE +/- 1.78, N = 3659.731. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Kernel PCA Solvers / Time vs. N Componentshurricane-server918273645SE +/- 0.57, N = 340.061. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Kernel PCA Solvers / Time vs. N Sampleshurricane-server1530456075SE +/- 0.18, N = 368.491. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Hist Gradient Boosting Categorical Onlyhurricane-server1020304050SE +/- 0.31, N = 344.821. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Plot Polynomial Kernel Approximationhurricane-server306090120150SE +/- 0.10, N = 3129.021. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: 20 Newsgroups / Logistic Regressionhurricane-server3691215SE +/- 0.08, N = 312.941. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Hist Gradient Boosting Higgs Bosonhurricane-server20406080100SE +/- 0.88, N = 377.711. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Hist Gradient Boosting Threadinghurricane-server1530456075SE +/- 0.19, N = 368.021. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Isotonic / Perturbed Logarithmhurricane-server5001000150020002500SE +/- 1.48, N = 32180.921. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Hist Gradient Boosting Adulthurricane-server50100150200250SE +/- 0.15, N = 3245.151. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Covertype Dataset Benchmarkhurricane-server90180270360450SE +/- 0.10, N = 3434.511. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Sample Without Replacementhurricane-server306090120150SE +/- 0.09, N = 3135.811. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Isotonic / Pathologicalhurricane-server11002200330044005500SE +/- 1.30, N = 34978.991. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Plot Parallel Pairwisehurricane-server306090120150SE +/- 0.39, N = 3123.031. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Hist Gradient Boostinghurricane-server50100150200250SE +/- 0.79, N = 3247.451. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Plot Incremental PCAhurricane-server816243240SE +/- 0.08, N = 336.501. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Isotonic / Logistichurricane-server400800120016002000SE +/- 0.59, N = 31974.801. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: TSNE MNIST Datasethurricane-server60120180240300SE +/- 0.45, N = 3268.061. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: LocalOutlierFactorhurricane-server612182430SE +/- 0.02, N = 325.661. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Feature Expansionshurricane-server306090120150SE +/- 0.31, N = 3126.781. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Plot OMP vs. LARShurricane-server1122334455SE +/- 0.08, N = 346.721. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Plot Hierarchicalhurricane-server4080120160200SE +/- 0.23, N = 3197.951. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Text Vectorizershurricane-server1530456075SE +/- 0.08, N = 365.351. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Isolation Foresthurricane-server50100150200250SE +/- 0.22, N = 3236.891. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: SGDOneClassSVMhurricane-server70140210280350SE +/- 0.43, N = 3330.211. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: SGD Regressionhurricane-server20406080100SE +/- 0.12, N = 387.931. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Plot Neighborshurricane-server4080120160200SE +/- 0.73, N = 3174.501. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: MNIST Datasethurricane-server20406080100SE +/- 0.03, N = 378.401. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Plot Wardhurricane-server1326395265SE +/- 0.10, N = 357.031. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Sparsifyhurricane-server306090120150SE +/- 0.28, N = 3156.751. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Lassohurricane-server120240360480600SE +/- 2.40, N = 3536.891. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: Treehurricane-server1530456075SE +/- 0.69, N = 1568.791. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: SAGAhurricane-server2004006008001000SE +/- 0.84, N = 31027.771. (F9X) gfortran options: -O0

OpenBenchmarking.orgSeconds, Fewer Is BetterScikit-Learn 1.2.2Benchmark: GLMhurricane-server4080120160200SE +/- 0.25, N = 3200.421. (F9X) gfortran options: -O0

OpenVINO

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Age Gender Recognition Retail 0013 FP16-INT8 - Device: CPUhurricane-server0.09230.18460.27690.36920.4615SE +/- 0.00, N = 30.41MIN: 0.23 / MAX: 11.691. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Age Gender Recognition Retail 0013 FP16-INT8 - Device: CPUhurricane-server14K28K42K56K70KSE +/- 85.18, N = 364559.581. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Handwritten English Recognition FP16-INT8 - Device: CPUhurricane-server612182430SE +/- 0.06, N = 327.52MIN: 21.34 / MAX: 50.491. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Handwritten English Recognition FP16-INT8 - Device: CPUhurricane-server2004006008001000SE +/- 2.64, N = 31160.601. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Age Gender Recognition Retail 0013 FP16 - Device: CPUhurricane-server0.13050.2610.39150.5220.6525SE +/- 0.00, N = 30.58MIN: 0.3 / MAX: 12.741. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Age Gender Recognition Retail 0013 FP16 - Device: CPUhurricane-server10K20K30K40K50KSE +/- 19.37, N = 347505.841. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Person Re-Identification Retail FP16 - Device: CPUhurricane-server1.30952.6193.92855.2386.5475SE +/- 0.01, N = 35.82MIN: 3.76 / MAX: 20.841. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Person Re-Identification Retail FP16 - Device: CPUhurricane-server6001200180024003000SE +/- 2.65, N = 32734.751. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Handwritten English Recognition FP16 - Device: CPUhurricane-server714212835SE +/- 0.23, N = 329.25MIN: 20.04 / MAX: 50.131. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Handwritten English Recognition FP16 - Device: CPUhurricane-server2004006008001000SE +/- 8.53, N = 31092.391. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Noise Suppression Poconet-Like FP16 - Device: CPUhurricane-server3691215SE +/- 0.01, N = 311.90MIN: 7.82 / MAX: 26.251. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Noise Suppression Poconet-Like FP16 - Device: CPUhurricane-server6001200180024003000SE +/- 3.23, N = 32638.331. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Person Vehicle Bike Detection FP16 - Device: CPUhurricane-server246810SE +/- 0.01, N = 37.31MIN: 4.6 / MAX: 22.021. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Person Vehicle Bike Detection FP16 - Device: CPUhurricane-server5001000150020002500SE +/- 2.00, N = 32176.461. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Weld Porosity Detection FP16-INT8 - Device: CPUhurricane-server246810SE +/- 0.07, N = 38.29MIN: 4.39 / MAX: 59.431. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Weld Porosity Detection FP16-INT8 - Device: CPUhurricane-server8001600240032004000SE +/- 28.56, N = 33835.551. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Machine Translation EN To DE FP16 - Device: CPUhurricane-server1530456075SE +/- 0.05, N = 368.60MIN: 36.93 / MAX: 98.871. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Machine Translation EN To DE FP16 - Device: CPUhurricane-server50100150200250SE +/- 0.16, N = 3233.041. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Road Segmentation ADAS FP16-INT8 - Device: CPUhurricane-server510152025SE +/- 0.01, N = 319.12MIN: 11.33 / MAX: 35.261. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Road Segmentation ADAS FP16-INT8 - Device: CPUhurricane-server2004006008001000SE +/- 0.46, N = 3834.811. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Face Detection Retail FP16-INT8 - Device: CPUhurricane-server1.03282.06563.09844.13125.164SE +/- 0.00, N = 34.59MIN: 2.72 / MAX: 18.861. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Face Detection Retail FP16-INT8 - Device: CPUhurricane-server15003000450060007500SE +/- 3.13, N = 36872.551. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Weld Porosity Detection FP16 - Device: CPUhurricane-server48121620SE +/- 0.11, N = 316.08MIN: 8.51 / MAX: 99.911. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Weld Porosity Detection FP16 - Device: CPUhurricane-server400800120016002000SE +/- 12.59, N = 31984.681. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Vehicle Detection FP16-INT8 - Device: CPUhurricane-server246810SE +/- 0.01, N = 36.72MIN: 4.28 / MAX: 18.931. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Vehicle Detection FP16-INT8 - Device: CPUhurricane-server5001000150020002500SE +/- 3.74, N = 32367.681. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Road Segmentation ADAS FP16 - Device: CPUhurricane-server510152025SE +/- 0.01, N = 320.28MIN: 14.13 / MAX: 39.241. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Road Segmentation ADAS FP16 - Device: CPUhurricane-server2004006008001000SE +/- 0.23, N = 3786.831. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Face Detection Retail FP16 - Device: CPUhurricane-server0.74031.48062.22092.96123.7015SE +/- 0.01, N = 33.29MIN: 1.9 / MAX: 35.771. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Face Detection Retail FP16 - Device: CPUhurricane-server10002000300040005000SE +/- 12.23, N = 34791.901. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Face Detection FP16-INT8 - Device: CPUhurricane-server90180270360450SE +/- 0.40, N = 3412.40MIN: 344.16 / MAX: 498.391. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Face Detection FP16-INT8 - Device: CPUhurricane-server918273645SE +/- 0.04, N = 338.671. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Vehicle Detection FP16 - Device: CPUhurricane-server3691215SE +/- 0.00, N = 310.37MIN: 5.46 / MAX: 41.761. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Vehicle Detection FP16 - Device: CPUhurricane-server30060090012001500SE +/- 0.45, N = 31536.161. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Person Detection FP32 - Device: CPUhurricane-server20406080100SE +/- 0.26, N = 382.70MIN: 39.41 / MAX: 109.651. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Person Detection FP32 - Device: CPUhurricane-server4080120160200SE +/- 0.60, N = 3193.191. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Person Detection FP16 - Device: CPUhurricane-server20406080100SE +/- 0.07, N = 383.08MIN: 40.18 / MAX: 109.431. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Person Detection FP16 - Device: CPUhurricane-server4080120160200SE +/- 0.15, N = 3192.301. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgms, Fewer Is BetterOpenVINO 2024.5Model: Face Detection FP16 - Device: CPUhurricane-server2004006008001000SE +/- 0.52, N = 3790.62MIN: 405.74 / MAX: 865.841. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

OpenBenchmarking.orgFPS, More Is BetterOpenVINO 2024.5Model: Face Detection FP16 - Device: CPUhurricane-server510152025SE +/- 0.01, N = 320.161. (CXX) g++ options: -fPIC -fsigned-char -ffunction-sections -fdata-sections -O3 -fno-strict-overflow -fwrapv -shared -ldl -lstdc++fs

XNNPACK

OpenBenchmarking.orgus, Fewer Is BetterXNNPACK b7b048Model: QS8MobileNetV2hurricane-server400800120016002000SE +/- 5.33, N = 320011. (CXX) g++ options: -O3 -lrt -lm

OpenBenchmarking.orgus, Fewer Is BetterXNNPACK b7b048Model: FP16MobileNetV3Smallhurricane-server5001000150020002500SE +/- 4.84, N = 321361. (CXX) g++ options: -O3 -lrt -lm

OpenBenchmarking.orgus, Fewer Is BetterXNNPACK b7b048Model: FP16MobileNetV3Largehurricane-server6001200180024003000SE +/- 9.07, N = 330121. (CXX) g++ options: -O3 -lrt -lm

OpenBenchmarking.orgus, Fewer Is BetterXNNPACK b7b048Model: FP16MobileNetV2hurricane-server400800120016002000SE +/- 2.91, N = 319851. (CXX) g++ options: -O3 -lrt -lm

OpenBenchmarking.orgus, Fewer Is BetterXNNPACK b7b048Model: FP16MobileNetV1hurricane-server30060090012001500SE +/- 3.06, N = 313481. (CXX) g++ options: -O3 -lrt -lm

OpenBenchmarking.orgus, Fewer Is BetterXNNPACK b7b048Model: FP32MobileNetV3Smallhurricane-server5001000150020002500SE +/- 5.46, N = 321641. (CXX) g++ options: -O3 -lrt -lm

OpenBenchmarking.orgus, Fewer Is BetterXNNPACK b7b048Model: FP32MobileNetV3Largehurricane-server7001400210028003500SE +/- 11.68, N = 331361. (CXX) g++ options: -O3 -lrt -lm

OpenBenchmarking.orgus, Fewer Is BetterXNNPACK b7b048Model: FP32MobileNetV2hurricane-server5001000150020002500SE +/- 7.51, N = 321621. (CXX) g++ options: -O3 -lrt -lm

OpenBenchmarking.orgus, Fewer Is BetterXNNPACK b7b048Model: FP32MobileNetV1hurricane-server30060090012001500SE +/- 2.33, N = 313061. (CXX) g++ options: -O3 -lrt -lm

NCNN

NCNN is a high performance neural network inference framework optimized for mobile and other platforms developed by Tencent. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: vision_transformerhurricane-server1530456075SE +/- 1.75, N = 367.71MIN: 45.61 / MAX: 933.741. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: regnety_400mhurricane-server612182430SE +/- 0.02, N = 324.08MIN: 23.85 / MAX: 28.531. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: squeezenet_ssdhurricane-server48121620SE +/- 0.02, N = 316.92MIN: 16.68 / MAX: 29.481. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: yolov4-tinyhurricane-server612182430SE +/- 0.05, N = 327.01MIN: 25.85 / MAX: 31.621. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPUv2-yolov3v2-yolov3 - Model: mobilenetv2-yolov3hurricane-server48121620SE +/- 0.02, N = 315.98MIN: 15.78 / MAX: 20.11. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: resnet50hurricane-server48121620SE +/- 0.11, N = 314.46MIN: 14.13 / MAX: 18.671. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: alexnethurricane-server1.2422.4843.7264.9686.21SE +/- 0.00, N = 35.52MIN: 5.39 / MAX: 9.561. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: resnet18hurricane-server3691215SE +/- 0.04, N = 38.99MIN: 8.82 / MAX: 13.051. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: vgg16hurricane-server612182430SE +/- 0.25, N = 325.17MIN: 23.53 / MAX: 34.681. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: googlenethurricane-server48121620SE +/- 0.04, N = 317.41MIN: 17.2 / MAX: 22.81. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: blazefacehurricane-server0.85731.71462.57193.42924.2865SE +/- 0.00, N = 33.81MIN: 3.74 / MAX: 7.851. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: efficientnet-b0hurricane-server3691215SE +/- 0.02, N = 39.71MIN: 9.4 / MAX: 13.081. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: mnasnethurricane-server246810SE +/- 0.01, N = 36.89MIN: 6.67 / MAX: 7.751. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: shufflenet-v2hurricane-server3691215SE +/- 0.01, N = 39.49MIN: 9.27 / MAX: 14.871. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU-v3-v3 - Model: mobilenet-v3hurricane-server246810SE +/- 0.02, N = 37.95MIN: 7.73 / MAX: 15.081. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU-v2-v2 - Model: mobilenet-v2hurricane-server246810SE +/- 0.03, N = 37.43MIN: 7.08 / MAX: 11.161. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: mobilenethurricane-server48121620SE +/- 0.02, N = 315.98MIN: 15.78 / MAX: 20.11. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: regnety_400mhurricane-server612182430SE +/- 0.06, N = 324.06MIN: 23.72 / MAX: 36.761. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: squeezenet_ssdhurricane-server48121620SE +/- 0.01, N = 316.85MIN: 16.68 / MAX: 22.411. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: yolov4-tinyhurricane-server612182430SE +/- 0.41, N = 326.58MIN: 24.96 / MAX: 30.511. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPUv2-yolov3v2-yolov3 - Model: mobilenetv2-yolov3hurricane-server48121620SE +/- 0.13, N = 315.81MIN: 15.42 / MAX: 19.931. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: resnet50hurricane-server48121620SE +/- 0.10, N = 314.46MIN: 14.12 / MAX: 27.881. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: alexnethurricane-server1.23982.47963.71944.95926.199SE +/- 0.01, N = 35.51MIN: 5.39 / MAX: 7.731. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: resnet18hurricane-server3691215SE +/- 0.04, N = 39.01MIN: 8.81 / MAX: 20.831. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: vgg16hurricane-server612182430SE +/- 0.22, N = 325.23MIN: 24.68 / MAX: 29.421. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: googlenethurricane-server48121620SE +/- 0.03, N = 317.39MIN: 17.15 / MAX: 21.411. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: blazefacehurricane-server0.8551.712.5653.424.275SE +/- 0.02, N = 33.80MIN: 3.71 / MAX: 6.051. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: efficientnet-b0hurricane-server3691215SE +/- 0.02, N = 39.73MIN: 9.35 / MAX: 161. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: mnasnethurricane-server246810SE +/- 0.01, N = 36.91MIN: 6.66 / MAX: 10.951. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: shufflenet-v2hurricane-server3691215SE +/- 0.04, N = 39.51MIN: 9.3 / MAX: 13.611. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU-v3-v3 - Model: mobilenet-v3hurricane-server246810SE +/- 0.02, N = 37.93MIN: 7.73 / MAX: 12.061. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU-v2-v2 - Model: mobilenet-v2hurricane-server246810SE +/- 0.02, N = 37.41MIN: 7.07 / MAX: 11.251. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: mobilenethurricane-server48121620SE +/- 0.13, N = 315.81MIN: 15.42 / MAX: 19.931. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

TensorFlow

This is a benchmark of the TensorFlow deep learning framework using the TensorFlow reference benchmarks (tensorflow/benchmarks with tf_cnn_benchmarks.py). Note with the Phoronix Test Suite there is also pts/tensorflow-lite for benchmarking the TensorFlow Lite binaries if desired for complementary metrics. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 512 - Model: ResNet-50hurricane-server246810SE +/- 0.00, N = 36.83

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 512 - Model: GoogLeNethurricane-server510152025SE +/- 0.01, N = 321.10

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 256 - Model: ResNet-50hurricane-server246810SE +/- 0.00, N = 36.84

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 256 - Model: GoogLeNethurricane-server510152025SE +/- 0.02, N = 321.06

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 512 - Model: ResNet-50hurricane-server20406080100SE +/- 0.05, N = 3101.60

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 512 - Model: GoogLeNethurricane-server60120180240300SE +/- 0.32, N = 3288.79

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 256 - Model: ResNet-50hurricane-server20406080100SE +/- 0.05, N = 398.53

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 256 - Model: GoogLeNethurricane-server60120180240300SE +/- 0.12, N = 3283.28

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 64 - Model: ResNet-50hurricane-server246810SE +/- 0.01, N = 36.78

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 64 - Model: GoogLeNethurricane-server510152025SE +/- 0.00, N = 320.83

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 32 - Model: ResNet-50hurricane-server246810SE +/- 0.00, N = 36.73

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 32 - Model: GoogLeNethurricane-server510152025SE +/- 0.20, N = 320.37

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 16 - Model: ResNet-50hurricane-server246810SE +/- 0.01, N = 36.60

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 16 - Model: GoogLeNethurricane-server510152025SE +/- 0.02, N = 320.15

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 64 - Model: ResNet-50hurricane-server20406080100SE +/- 0.12, N = 390.02

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 64 - Model: GoogLeNethurricane-server60120180240300SE +/- 0.20, N = 3262.31

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 32 - Model: ResNet-50hurricane-server20406080100SE +/- 0.02, N = 384.65

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 32 - Model: GoogLeNethurricane-server50100150200250SE +/- 1.98, N = 3241.16

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 16 - Model: ResNet-50hurricane-server20406080100SE +/- 0.12, N = 374.57

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 16 - Model: GoogLeNethurricane-server50100150200250SE +/- 0.53, N = 3214.21

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 512 - Model: AlexNethurricane-server816243240SE +/- 0.00, N = 334.13

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 256 - Model: AlexNethurricane-server816243240SE +/- 0.00, N = 333.97

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 1 - Model: ResNet-50hurricane-server1.0622.1243.1864.2485.31SE +/- 0.02, N = 34.72

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 1 - Model: GoogLeNethurricane-server48121620SE +/- 0.04, N = 314.65

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 512 - Model: AlexNethurricane-server150300450600750SE +/- 0.16, N = 3679.63

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 256 - Model: AlexNethurricane-server140280420560700SE +/- 0.16, N = 3651.72

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 1 - Model: ResNet-50hurricane-server48121620SE +/- 0.05, N = 317.32

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 1 - Model: GoogLeNethurricane-server1224364860SE +/- 0.66, N = 353.62

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 64 - Model: AlexNethurricane-server816243240SE +/- 0.01, N = 333.24

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 512 - Model: VGG-16hurricane-server0.40280.80561.20841.61122.014SE +/- 0.00, N = 31.79

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 32 - Model: AlexNethurricane-server714212835SE +/- 0.00, N = 332.12

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 256 - Model: VGG-16hurricane-server0.40280.80561.20841.61122.014SE +/- 0.00, N = 31.79

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 16 - Model: AlexNethurricane-server714212835SE +/- 0.01, N = 330.06

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 64 - Model: AlexNethurricane-server120240360480600SE +/- 1.95, N = 3532.95

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 512 - Model: VGG-16hurricane-server816243240SE +/- 0.01, N = 333.71

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 32 - Model: AlexNethurricane-server100200300400500SE +/- 0.31, N = 3465.66

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 256 - Model: VGG-16hurricane-server816243240SE +/- 0.01, N = 333.52

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 16 - Model: AlexNethurricane-server80160240320400SE +/- 0.72, N = 3376.93

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 64 - Model: VGG-16hurricane-server0.40050.8011.20151.6022.0025SE +/- 0.00, N = 31.78

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 32 - Model: VGG-16hurricane-server0.39830.79661.19491.59321.9915SE +/- 0.00, N = 31.77

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 16 - Model: VGG-16hurricane-server0.3960.7921.1881.5841.98SE +/- 0.00, N = 31.76

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 1 - Model: AlexNethurricane-server48121620SE +/- 0.14, N = 315.94

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 64 - Model: VGG-16hurricane-server816243240SE +/- 0.01, N = 332.65

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 32 - Model: VGG-16hurricane-server714212835SE +/- 0.04, N = 331.76

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 16 - Model: VGG-16hurricane-server714212835SE +/- 0.29, N = 329.28

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 1 - Model: AlexNethurricane-server1326395265SE +/- 0.18, N = 358.02

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: GPU - Batch Size: 1 - Model: VGG-16hurricane-server0.36230.72461.08691.44921.8115SE +/- 0.00, N = 31.61

OpenBenchmarking.orgimages/sec, More Is BetterTensorFlow 2.16.1Device: CPU - Batch Size: 1 - Model: VGG-16hurricane-server48121620SE +/- 0.01, N = 315.04

PyTorch

This is a benchmark of PyTorch making use of pytorch-benchmark [https://github.com/LukasHedegaard/pytorch-benchmark]. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 512 - Model: Efficientnet_v2_lhurricane-server246810SE +/- 0.01, N = 38.16MIN: 3.8 / MAX: 8.81

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 256 - Model: Efficientnet_v2_lhurricane-server246810SE +/- 0.01, N = 38.20MIN: 7.01 / MAX: 8.8

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 64 - Model: Efficientnet_v2_lhurricane-server246810SE +/- 0.03, N = 38.21MIN: 5.85 / MAX: 8.81

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 32 - Model: Efficientnet_v2_lhurricane-server246810SE +/- 0.09, N = 48.10MIN: 2.17 / MAX: 8.79

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 16 - Model: Efficientnet_v2_lhurricane-server246810SE +/- 0.04, N = 38.21MIN: 7 / MAX: 8.84

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 1 - Model: Efficientnet_v2_lhurricane-server3691215SE +/- 0.09, N = 312.47MIN: 10.7 / MAX: 12.87

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 512 - Model: ResNet-152hurricane-server510152025SE +/- 0.11, N = 319.50MIN: 6 / MAX: 19.85

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 256 - Model: ResNet-152hurricane-server510152025SE +/- 0.16, N = 319.48MIN: 15.08 / MAX: 19.95

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 64 - Model: ResNet-152hurricane-server510152025SE +/- 0.01, N = 319.69MIN: 18.64 / MAX: 19.84

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 512 - Model: ResNet-50hurricane-server1224364860SE +/- 0.23, N = 352.09MIN: 45 / MAX: 53.04

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 32 - Model: ResNet-152hurricane-server510152025SE +/- 0.09, N = 319.51MIN: 16.27 / MAX: 19.75

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 256 - Model: ResNet-50hurricane-server1224364860SE +/- 0.18, N = 352.12MIN: 39.21 / MAX: 53.52

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 16 - Model: ResNet-152hurricane-server510152025SE +/- 0.21, N = 319.55MIN: 14.89 / MAX: 19.9

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 64 - Model: ResNet-50hurricane-server1224364860SE +/- 0.19, N = 352.10MIN: 45.33 / MAX: 52.97

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 32 - Model: ResNet-50hurricane-server1224364860SE +/- 0.13, N = 352.12MIN: 38.35 / MAX: 52.97

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 16 - Model: ResNet-50hurricane-server1224364860SE +/- 0.34, N = 351.39MIN: 38.88 / MAX: 52.76

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 1 - Model: ResNet-152hurricane-server612182430SE +/- 0.17, N = 324.69MIN: 19.29 / MAX: 25.17

OpenBenchmarking.orgbatches/sec, More Is BetterPyTorch 2.2.1Device: CPU - Batch Size: 1 - Model: ResNet-50hurricane-server1530456075SE +/- 0.51, N = 367.94MIN: 50.17 / MAX: 69.35

TensorFlow Lite

This is a benchmark of the TensorFlow Lite implementation focused on TensorFlow machine learning for mobile, IoT, edge, and other cases. The current Linux support is limited to running on CPUs. This test profile is measuring the average inference time. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgMicroseconds, Fewer Is BetterTensorFlow Lite 2022-05-18Model: Inception ResNet V2hurricane-server7K14K21K28K35KSE +/- 101.48, N = 331730.6

OpenBenchmarking.orgMicroseconds, Fewer Is BetterTensorFlow Lite 2022-05-18Model: Mobilenet Quanthurricane-server5001000150020002500SE +/- 26.36, N = 42531.33

OpenBenchmarking.orgMicroseconds, Fewer Is BetterTensorFlow Lite 2022-05-18Model: Mobilenet Floathurricane-server30060090012001500SE +/- 4.16, N = 31306.87

OpenBenchmarking.orgMicroseconds, Fewer Is BetterTensorFlow Lite 2022-05-18Model: NASNet Mobilehurricane-server5K10K15K20K25KSE +/- 13.44, N = 324134.5

OpenBenchmarking.orgMicroseconds, Fewer Is BetterTensorFlow Lite 2022-05-18Model: Inception V4hurricane-server3K6K9K12K15KSE +/- 14.50, N = 316113.8

OpenBenchmarking.orgMicroseconds, Fewer Is BetterTensorFlow Lite 2022-05-18Model: SqueezeNethurricane-server400800120016002000SE +/- 6.84, N = 32015.74

LiteRT

OpenBenchmarking.orgMicroseconds, Fewer Is BetterLiteRT 2024-10-15Model: Quantized COCO SSD MobileNet v1hurricane-server5001000150020002500SE +/- 11.18, N = 32299.81

OpenBenchmarking.orgMicroseconds, Fewer Is BetterLiteRT 2024-10-15Model: Inception ResNet V2hurricane-server4K8K12K16K20KSE +/- 63.82, N = 319022.7

OpenBenchmarking.orgMicroseconds, Fewer Is BetterLiteRT 2024-10-15Model: Mobilenet Quanthurricane-server30060090012001500SE +/- 16.18, N = 151404.29

OpenBenchmarking.orgMicroseconds, Fewer Is BetterLiteRT 2024-10-15Model: Mobilenet Floathurricane-server30060090012001500SE +/- 1.07, N = 31332.51

OpenBenchmarking.orgMicroseconds, Fewer Is BetterLiteRT 2024-10-15Model: NASNet Mobilehurricane-server7K14K21K28K35KSE +/- 132.52, N = 331332.4

OpenBenchmarking.orgMicroseconds, Fewer Is BetterLiteRT 2024-10-15Model: Inception V4hurricane-server4K8K12K16K20KSE +/- 15.14, N = 316671.7

OpenBenchmarking.orgMicroseconds, Fewer Is BetterLiteRT 2024-10-15Model: SqueezeNethurricane-server5001000150020002500SE +/- 8.16, N = 32102.34

OpenBenchmarking.orgMicroseconds, Fewer Is BetterLiteRT 2024-10-15Model: DeepLab V3hurricane-server7001400210028003500SE +/- 8.28, N = 33250.31

RNNoise

RNNoise is a recurrent neural network for audio noise reduction developed by Mozilla and Xiph.Org. This test profile is a single-threaded test measuring the time to denoise a sample 26 minute long 16-bit RAW audio file using this recurrent neural network noise suppression library. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgSeconds, Fewer Is BetterRNNoise 0.2Input: 26 Minute Long Talking Samplehurricane-server3691215SE +/- 0.05, N = 311.361. (CC) gcc options: -O2 -pedantic -fvisibility=hidden

R Benchmark

This test is a quick-running survey of general R performance Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgSeconds, Fewer Is BetterR Benchmarkhurricane-server0.03840.07680.11520.15360.192SE +/- 0.0004, N = 30.1707

DeepSpeech

Mozilla DeepSpeech is a speech-to-text engine powered by TensorFlow for machine learning and derived from Baidu's Deep Speech research paper. This test profile times the speech-to-text process for a roughly three minute audio recording. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgSeconds, Fewer Is BetterDeepSpeech 0.6Acceleration: CPUhurricane-server1224364860SE +/- 0.09, N = 353.37

Numpy Benchmark

This is a test to obtain the general Numpy performance. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgScore, More Is BetterNumpy Benchmarkhurricane-server110220330440550SE +/- 1.66, N = 3513.75

oneDNN

OpenBenchmarking.orgms, Fewer Is BetteroneDNN 3.6Harness: Recurrent Neural Network Inference - Engine: CPUhurricane-server100200300400500SE +/- 0.21, N = 3450.86MIN: 447.461. (CXX) g++ options: -O3 -march=native -fopenmp -msse4.1 -fPIC -fcf-protection=full -pie -ldl

OpenBenchmarking.orgms, Fewer Is BetteroneDNN 3.6Harness: Recurrent Neural Network Training - Engine: CPUhurricane-server2004006008001000SE +/- 0.33, N = 3811.25MIN: 807.441. (CXX) g++ options: -O3 -march=native -fopenmp -msse4.1 -fPIC -fcf-protection=full -pie -ldl

OpenBenchmarking.orgms, Fewer Is BetteroneDNN 3.6Harness: Deconvolution Batch shapes_3d - Engine: CPUhurricane-server0.40850.8171.22551.6342.0425SE +/- 0.00663, N = 31.81557MIN: 1.791. (CXX) g++ options: -O3 -march=native -fopenmp -msse4.1 -fPIC -fcf-protection=full -pie -ldl

OpenBenchmarking.orgms, Fewer Is BetteroneDNN 3.6Harness: Deconvolution Batch shapes_1d - Engine: CPUhurricane-server1.27912.55823.83735.11646.3955SE +/- 0.00716, N = 35.68471MIN: 3.771. (CXX) g++ options: -O3 -march=native -fopenmp -msse4.1 -fPIC -fcf-protection=full -pie -ldl

OpenBenchmarking.orgms, Fewer Is BetteroneDNN 3.6Harness: Convolution Batch Shapes Auto - Engine: CPUhurricane-server0.25830.51660.77491.03321.2915SE +/- 0.00120, N = 31.14790MIN: 1.111. (CXX) g++ options: -O3 -march=native -fopenmp -msse4.1 -fPIC -fcf-protection=full -pie -ldl

OpenBenchmarking.orgms, Fewer Is BetteroneDNN 3.6Harness: IP Shapes 3D - Engine: CPUhurricane-server0.15310.30620.45930.61240.7655SE +/- 0.000710, N = 30.680494MIN: 0.651. (CXX) g++ options: -O3 -march=native -fopenmp -msse4.1 -fPIC -fcf-protection=full -pie -ldl

OpenBenchmarking.orgms, Fewer Is BetteroneDNN 3.6Harness: IP Shapes 1D - Engine: CPUhurricane-server0.19130.38260.57390.76520.9565SE +/- 0.001043, N = 30.850385MIN: 0.821. (CXX) g++ options: -O3 -march=native -fopenmp -msse4.1 -fPIC -fcf-protection=full -pie -ldl

LeelaChessZero

OpenBenchmarking.orgNodes Per Second, More Is BetterLeelaChessZero 0.31.1Backend: BLAShurricane-server60120180240300SE +/- 2.91, N = 32811. (CXX) g++ options: -flto -pthread

SHOC Scalable HeterOgeneous Computing

The CUDA and OpenCL version of Vetter's Scalable HeterOgeneous Computing benchmark suite. SHOC provides a number of different benchmark programs for evaluating the performance and stability of compute devices. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgGB/s, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: Texture Read Bandwidthhurricane-server130260390520650SE +/- 0.03, N = 3588.111. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenBenchmarking.orgGB/s, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: Bus Speed Readbackhurricane-server3691215SE +/- 0.00, N = 313.541. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenBenchmarking.orgGB/s, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: Bus Speed Downloadhurricane-server3691215SE +/- 0.00, N = 313.211. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenBenchmarking.orgGFLOPS, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: Max SP Flopshurricane-server2K4K6K8K10KSE +/- 0.57, N = 39437.511. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenBenchmarking.orgGFLOPS, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: GEMM SGEMM_Nhurricane-server12002400360048006000SE +/- 0.39, N = 35521.351. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenBenchmarking.orgGB/s, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: Reductionhurricane-server60120180240300SE +/- 0.04, N = 3257.891. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenBenchmarking.orgGHash/s, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: MD5 Hashhurricane-server48121620SE +/- 0.00, N = 314.491. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenBenchmarking.orgGFLOPS, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: FFT SPhurricane-server30060090012001500SE +/- 10.08, N = 121479.171. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenBenchmarking.orgGB/s, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: Triadhurricane-server3691215SE +/- 0.00, N = 312.901. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenBenchmarking.orgGFLOPS, More Is BetterSHOC Scalable HeterOgeneous Computing 2020-04-17Target: OpenCL - Benchmark: S3Dhurricane-server60120180240300SE +/- 0.10, N = 3268.851. (CXX) g++ options: -O2 -lSHOCCommonMPI -lSHOCCommonOpenCL -lSHOCCommon -lOpenCL -lrt -lmpi_cxx -lmpi

OpenCV

This is a benchmark of the OpenCV (Computer Vision) library's built-in performance tests. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgms, Fewer Is BetterOpenCV 4.7Test: DNN - Deep Neural Networkhurricane-server7K14K21K28K35KSE +/- 601.47, N = 15333031. (CXX) g++ options: -fsigned-char -pthread -fomit-frame-pointer -ffunction-sections -fdata-sections -msse -msse2 -msse3 -fvisibility=hidden -O3 -ldl -lm -lpthread -lrt

Llamafile

Test: wizardcoder-python-34b-v1.0.Q6_K - Acceleration: CPU

hurricane-server: The test quit with a non-zero exit status.

Test: mistral-7b-instruct-v0.2.Q8_0 - Acceleration: CPU

hurricane-server: The test quit with a non-zero exit status.

Test: llava-v1.5-7b-q4 - Acceleration: CPU

hurricane-server: The test quit with a non-zero exit status.

Llama.cpp

Model: llama-2-70b-chat.Q5_0.gguf

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Model: llama-2-13b.Q4_0.gguf

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Model: llama-2-7b.Q4_0.gguf

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Scikit-Learn

Scikit-learn is a Python module for machine learning built on NumPy, SciPy, and is BSD-licensed. Learn more via the OpenBenchmarking.org test page.

Benchmark: Plot Non-Negative Matrix Factorization

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Benchmark: Plot Singular Value Decomposition

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Benchmark: RCV1 Logreg Convergencet

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Benchmark: Plot Fast KMeans

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Benchmark: Plot Lasso Path

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Benchmark: Glmnet

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Mlpack Benchmark

Mlpack benchmark scripts for machine learning libraries Learn more via the OpenBenchmarking.org test page.

Benchmark: scikit_linearridgeregression

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Benchmark: scikit_svm

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Benchmark: scikit_qda

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Benchmark: scikit_ica

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AI Benchmark Alpha

AI Benchmark Alpha is a Python library for evaluating artificial intelligence (AI) performance on diverse hardware platforms and relies upon the TensorFlow machine learning library. Learn more via the OpenBenchmarking.org test page.

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ONNX Runtime

Model: Faster R-CNN R-50-FPN-int8 - Device: CPU - Executor: Standard

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Model: Faster R-CNN R-50-FPN-int8 - Device: CPU - Executor: Parallel

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Model: ResNet101_DUC_HDC-12 - Device: CPU - Executor: Standard

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Model: ResNet101_DUC_HDC-12 - Device: CPU - Executor: Parallel

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Model: super-resolution-10 - Device: CPU - Executor: Standard

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Model: super-resolution-10 - Device: CPU - Executor: Parallel

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Model: ResNet50 v1-12-int8 - Device: CPU - Executor: Standard

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Model: ResNet50 v1-12-int8 - Device: CPU - Executor: Parallel

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Model: ArcFace ResNet-100 - Device: CPU - Executor: Standard

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Model: ArcFace ResNet-100 - Device: CPU - Executor: Parallel

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Model: fcn-resnet101-11 - Device: CPU - Executor: Standard

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Model: fcn-resnet101-11 - Device: CPU - Executor: Parallel

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Model: CaffeNet 12-int8 - Device: CPU - Executor: Standard

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Model: CaffeNet 12-int8 - Device: CPU - Executor: Parallel

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Model: bertsquad-12 - Device: CPU - Executor: Standard

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Model: bertsquad-12 - Device: CPU - Executor: Parallel

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Model: T5 Encoder - Device: CPU - Executor: Standard

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Model: T5 Encoder - Device: CPU - Executor: Parallel

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Model: ZFNet-512 - Device: CPU - Executor: Standard

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Model: ZFNet-512 - Device: CPU - Executor: Parallel

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Model: yolov4 - Device: CPU - Executor: Standard

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Model: yolov4 - Device: CPU - Executor: Parallel

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Model: GPT-2 - Device: CPU - Executor: Standard

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Model: GPT-2 - Device: CPU - Executor: Parallel

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Numenta Anomaly Benchmark

Numenta Anomaly Benchmark (NAB) is a benchmark for evaluating algorithms for anomaly detection in streaming, real-time applications. It is comprised of over 50 labeled real-world and artificial time-series data files plus a novel scoring mechanism designed for real-time applications. This test profile currently measures the time to run various detectors. Learn more via the OpenBenchmarking.org test page.

Detector: Contextual Anomaly Detector OSE

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Detector: Bayesian Changepoint

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Detector: Earthgecko Skyline

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Detector: Windowed Gaussian

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Detector: Relative Entropy

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Detector: KNN CAD

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PlaidML

This test profile uses PlaidML deep learning framework developed by Intel for offering up various benchmarks. Learn more via the OpenBenchmarking.org test page.

FP16: No - Mode: Inference - Network: ResNet 50 - Device: CPU

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FP16: No - Mode: Inference - Network: VGG16 - Device: CPU

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TNN

TNN is an open-source deep learning reasoning framework developed by Tencent. Learn more via the OpenBenchmarking.org test page.

Target: CPU - Model: SqueezeNet v1.1

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Target: CPU - Model: SqueezeNet v2

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Target: CPU - Model: MobileNet v2

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Target: CPU - Model: DenseNet

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NCNN

NCNN is a high performance neural network inference framework optimized for mobile and other platforms developed by Tencent. Learn more via the OpenBenchmarking.org test page.

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: Vulkan GPU - Model: FastestDethurricane-server3691215SE +/- 0.42, N = 311.57MIN: 10.54 / MAX: 16.031. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: FastestDethurricane-server3691215SE +/- 0.44, N = 311.18MIN: 10.06 / MAX: 21.071. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

OpenBenchmarking.orgms, Fewer Is BetterNCNN 20230517Target: CPU - Model: vision_transformerhurricane-server1530456075SE +/- 2.57, N = 367.87MIN: 44.97 / MAX: 7581. (CXX) g++ options: -O3 -rdynamic -lgomp -lpthread

Caffe

This is a benchmark of the Caffe deep learning framework and currently supports the AlexNet and Googlenet model and execution on both CPUs and NVIDIA GPUs. Learn more via the OpenBenchmarking.org test page.

Model: GoogleNet - Acceleration: CPU - Iterations: 1000

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Model: GoogleNet - Acceleration: CPU - Iterations: 200

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Model: GoogleNet - Acceleration: CPU - Iterations: 100

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Model: AlexNet - Acceleration: CPU - Iterations: 1000

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Model: AlexNet - Acceleration: CPU - Iterations: 200

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Model: AlexNet - Acceleration: CPU - Iterations: 100

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spaCy

The spaCy library is an open-source solution for advanced neural language processing (NLP). The spaCy library leverages Python and is a leading neural language processing solution. This test profile times the spaCy CPU performance with various models. Learn more via the OpenBenchmarking.org test page.

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Neural Magic DeepSparse

This is a benchmark of Neural Magic's DeepSparse using its built-in deepsparse.benchmark utility and various models from their SparseZoo (https://sparsezoo.neuralmagic.com/). Learn more via the OpenBenchmarking.org test page.

Model: NLP Token Classification, BERT base uncased conll2003 - Scenario: Synchronous Single-Stream

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Model: NLP Token Classification, BERT base uncased conll2003 - Scenario: Asynchronous Multi-Stream

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Model: BERT-Large, NLP Question Answering, Sparse INT8 - Scenario: Synchronous Single-Stream

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Model: BERT-Large, NLP Question Answering, Sparse INT8 - Scenario: Asynchronous Multi-Stream

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Model: CV Segmentation, 90% Pruned YOLACT Pruned - Scenario: Synchronous Single-Stream

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Model: CV Segmentation, 90% Pruned YOLACT Pruned - Scenario: Asynchronous Multi-Stream

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Model: NLP Text Classification, DistilBERT mnli - Scenario: Synchronous Single-Stream

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Model: NLP Text Classification, DistilBERT mnli - Scenario: Asynchronous Multi-Stream

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Model: CV Detection, YOLOv5s COCO, Sparse INT8 - Scenario: Synchronous Single-Stream

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Model: CV Detection, YOLOv5s COCO, Sparse INT8 - Scenario: Asynchronous Multi-Stream

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Model: CV Classification, ResNet-50 ImageNet - Scenario: Synchronous Single-Stream

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Model: CV Classification, ResNet-50 ImageNet - Scenario: Asynchronous Multi-Stream

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Model: Llama2 Chat 7b Quantized - Scenario: Synchronous Single-Stream

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Model: Llama2 Chat 7b Quantized - Scenario: Asynchronous Multi-Stream

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Model: ResNet-50, Sparse INT8 - Scenario: Synchronous Single-Stream

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Model: ResNet-50, Sparse INT8 - Scenario: Asynchronous Multi-Stream

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Model: ResNet-50, Baseline - Scenario: Synchronous Single-Stream

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Model: ResNet-50, Baseline - Scenario: Asynchronous Multi-Stream

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Model: NLP Text Classification, BERT base uncased SST2, Sparse INT8 - Scenario: Synchronous Single-Stream

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Model: NLP Text Classification, BERT base uncased SST2, Sparse INT8 - Scenario: Asynchronous Multi-Stream

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Model: NLP Document Classification, oBERT base uncased on IMDB - Scenario: Synchronous Single-Stream

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Model: NLP Document Classification, oBERT base uncased on IMDB - Scenario: Asynchronous Multi-Stream

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232 Results Shown

OpenVINO GenAI:
  Phi-3-mini-128k-instruct-int4-ov - CPU
  Falcon-7b-instruct-int4-ov - CPU
  TinyLlama-1.1B-Chat-v1.0 - CPU
  Gemma-7b-int4-ov - CPU
Whisperfile:
  Medium
  Small
  Tiny
Whisper.cpp:
  ggml-medium.en - 2016 State of the Union
  ggml-small.en - 2016 State of the Union
  ggml-base.en - 2016 State of the Union
Scikit-Learn:
  Sparse Rand Projections / 100 Iterations
  Kernel PCA Solvers / Time vs. N Components
  Kernel PCA Solvers / Time vs. N Samples
  Hist Gradient Boosting Categorical Only
  Plot Polynomial Kernel Approximation
  20 Newsgroups / Logistic Regression
  Hist Gradient Boosting Higgs Boson
  Hist Gradient Boosting Threading
  Isotonic / Perturbed Logarithm
  Hist Gradient Boosting Adult
  Covertype Dataset Benchmark
  Sample Without Replacement
  Isotonic / Pathological
  Plot Parallel Pairwise
  Hist Gradient Boosting
  Plot Incremental PCA
  Isotonic / Logistic
  TSNE MNIST Dataset
  LocalOutlierFactor
  Feature Expansions
  Plot OMP vs. LARS
  Plot Hierarchical
  Text Vectorizers
  Isolation Forest
  SGDOneClassSVM
  SGD Regression
  Plot Neighbors
  MNIST Dataset
  Plot Ward
  Sparsify
  Lasso
  Tree
  SAGA
  GLM
OpenVINO:
  Age Gender Recognition Retail 0013 FP16-INT8 - CPU:
    ms
    FPS
  Handwritten English Recognition FP16-INT8 - CPU:
    ms
    FPS
  Age Gender Recognition Retail 0013 FP16 - CPU:
    ms
    FPS
  Person Re-Identification Retail FP16 - CPU:
    ms
    FPS
  Handwritten English Recognition FP16 - CPU:
    ms
    FPS
  Noise Suppression Poconet-Like FP16 - CPU:
    ms
    FPS
  Person Vehicle Bike Detection FP16 - CPU:
    ms
    FPS
  Weld Porosity Detection FP16-INT8 - CPU:
    ms
    FPS
  Machine Translation EN To DE FP16 - CPU:
    ms
    FPS
  Road Segmentation ADAS FP16-INT8 - CPU:
    ms
    FPS
  Face Detection Retail FP16-INT8 - CPU:
    ms
    FPS
  Weld Porosity Detection FP16 - CPU:
    ms
    FPS
  Vehicle Detection FP16-INT8 - CPU:
    ms
    FPS
  Road Segmentation ADAS FP16 - CPU:
    ms
    FPS
  Face Detection Retail FP16 - CPU:
    ms
    FPS
  Face Detection FP16-INT8 - CPU:
    ms
    FPS
  Vehicle Detection FP16 - CPU:
    ms
    FPS
  Person Detection FP32 - CPU:
    ms
    FPS
  Person Detection FP16 - CPU:
    ms
    FPS
  Face Detection FP16 - CPU:
    ms
    FPS
XNNPACK:
  QS8MobileNetV2
  FP16MobileNetV3Small
  FP16MobileNetV3Large
  FP16MobileNetV2
  FP16MobileNetV1
  FP32MobileNetV3Small
  FP32MobileNetV3Large
  FP32MobileNetV2
  FP32MobileNetV1
NCNN:
  Vulkan GPU - vision_transformer
  Vulkan GPU - regnety_400m
  Vulkan GPU - squeezenet_ssd
  Vulkan GPU - yolov4-tiny
  Vulkan GPUv2-yolov3v2-yolov3 - mobilenetv2-yolov3
  Vulkan GPU - resnet50
  Vulkan GPU - alexnet
  Vulkan GPU - resnet18
  Vulkan GPU - vgg16
  Vulkan GPU - googlenet
  Vulkan GPU - blazeface
  Vulkan GPU - efficientnet-b0
  Vulkan GPU - mnasnet
  Vulkan GPU - shufflenet-v2
  Vulkan GPU-v3-v3 - mobilenet-v3
  Vulkan GPU-v2-v2 - mobilenet-v2
  Vulkan GPU - mobilenet
  CPU - regnety_400m
  CPU - squeezenet_ssd
  CPU - yolov4-tiny
  CPUv2-yolov3v2-yolov3 - mobilenetv2-yolov3
  CPU - resnet50
  CPU - alexnet
  CPU - resnet18
  CPU - vgg16
  CPU - googlenet
  CPU - blazeface
  CPU - efficientnet-b0
  CPU - mnasnet
  CPU - shufflenet-v2
  CPU-v3-v3 - mobilenet-v3
  CPU-v2-v2 - mobilenet-v2
  CPU - mobilenet
TensorFlow:
  GPU - 512 - ResNet-50
  GPU - 512 - GoogLeNet
  GPU - 256 - ResNet-50
  GPU - 256 - GoogLeNet
  CPU - 512 - ResNet-50
  CPU - 512 - GoogLeNet
  CPU - 256 - ResNet-50
  CPU - 256 - GoogLeNet
  GPU - 64 - ResNet-50
  GPU - 64 - GoogLeNet
  GPU - 32 - ResNet-50
  GPU - 32 - GoogLeNet
  GPU - 16 - ResNet-50
  GPU - 16 - GoogLeNet
  CPU - 64 - ResNet-50
  CPU - 64 - GoogLeNet
  CPU - 32 - ResNet-50
  CPU - 32 - GoogLeNet
  CPU - 16 - ResNet-50
  CPU - 16 - GoogLeNet
  GPU - 512 - AlexNet
  GPU - 256 - AlexNet
  GPU - 1 - ResNet-50
  GPU - 1 - GoogLeNet
  CPU - 512 - AlexNet
  CPU - 256 - AlexNet
  CPU - 1 - ResNet-50
  CPU - 1 - GoogLeNet
  GPU - 64 - AlexNet
  GPU - 512 - VGG-16
  GPU - 32 - AlexNet
  GPU - 256 - VGG-16
  GPU - 16 - AlexNet
  CPU - 64 - AlexNet
  CPU - 512 - VGG-16
  CPU - 32 - AlexNet
  CPU - 256 - VGG-16
  CPU - 16 - AlexNet
  GPU - 64 - VGG-16
  GPU - 32 - VGG-16
  GPU - 16 - VGG-16
  GPU - 1 - AlexNet
  CPU - 64 - VGG-16
  CPU - 32 - VGG-16
  CPU - 16 - VGG-16
  CPU - 1 - AlexNet
  GPU - 1 - VGG-16
  CPU - 1 - VGG-16
PyTorch:
  CPU - 512 - Efficientnet_v2_l
  CPU - 256 - Efficientnet_v2_l
  CPU - 64 - Efficientnet_v2_l
  CPU - 32 - Efficientnet_v2_l
  CPU - 16 - Efficientnet_v2_l
  CPU - 1 - Efficientnet_v2_l
  CPU - 512 - ResNet-152
  CPU - 256 - ResNet-152
  CPU - 64 - ResNet-152
  CPU - 512 - ResNet-50
  CPU - 32 - ResNet-152
  CPU - 256 - ResNet-50
  CPU - 16 - ResNet-152
  CPU - 64 - ResNet-50
  CPU - 32 - ResNet-50
  CPU - 16 - ResNet-50
  CPU - 1 - ResNet-152
  CPU - 1 - ResNet-50
TensorFlow Lite:
  Inception ResNet V2
  Mobilenet Quant
  Mobilenet Float
  NASNet Mobile
  Inception V4
  SqueezeNet
LiteRT:
  Quantized COCO SSD MobileNet v1
  Inception ResNet V2
  Mobilenet Quant
  Mobilenet Float
  NASNet Mobile
  Inception V4
  SqueezeNet
  DeepLab V3
RNNoise
R Benchmark
DeepSpeech
Numpy Benchmark
oneDNN:
  Recurrent Neural Network Inference - CPU
  Recurrent Neural Network Training - CPU
  Deconvolution Batch shapes_3d - CPU
  Deconvolution Batch shapes_1d - CPU
  Convolution Batch Shapes Auto - CPU
  IP Shapes 3D - CPU
  IP Shapes 1D - CPU
LeelaChessZero
SHOC Scalable HeterOgeneous Computing:
  OpenCL - Texture Read Bandwidth
  OpenCL - Bus Speed Readback
  OpenCL - Bus Speed Download
  OpenCL - Max SP Flops
  OpenCL - GEMM SGEMM_N
  OpenCL - Reduction
  OpenCL - MD5 Hash
  OpenCL - FFT SP
  OpenCL - Triad
  OpenCL - S3D
OpenCV
NCNN:
  Vulkan GPU - FastestDet
  CPU - FastestDet
  CPU - vision_transformer