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    <title>topic Re: How to make sure that the GPU is used during training? in eIQ Machine Learning Software</title>
    <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350979#M503</link>
    <description>&lt;P&gt;&lt;SPAN&gt;Hi &lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/191324"&gt;@khoefle&lt;/a&gt;&amp;nbsp;, when running in command line, These are the output .Do you find any issues in this? Please let me know&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&amp;nbsp;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;C:\nxp\eIQ_Toolkit_v1.0.5&amp;gt;"eIQ Portal.exe" C:\nxp\eIQ_Toolkit_v1.0.5&amp;gt; NXP eIQ Portal version 2.1.30 Launch -&amp;gt; &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;C:\nxp\eIQ_Toolkit_v1.0.5 12:56:24.705 &amp;gt; Launching Application Display size is 2048x1152 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:30.810 &amp;gt; [CONVERTER] 2021-10-06 12:56:30.810279: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudart64_101.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:31.176 &amp;gt; [TRAINER] 2021-10-06 12:56:31.176046: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudart64_101.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:45.324 &amp;gt; [CONVERTER] 2021-10-06 12:56:45.324089: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library nvcuda.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:45.422 &amp;gt; [CONVERTER] 2021-10-06 12:56:45.422699: E tensorflow/stream_executor/cuda/cuda_driver.cc:314] failed call to cuInit: CUDA_ERROR_NO_DEVICE: no CUDA-capable device is detected &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:45.425 &amp;gt; [CONVERTER] 2021-10-06 12:56:45.425487: I tensorflow/stream_executor/cuda/cuda_diagnostics.cc:169] retrieving CUDA diagnostic information for host: Surya-PC 2021-10-06 12:56:45.425564: I tensorflow/stream_executor/cuda/cuda_diagnostics.cc:176] hostname: Surya-PC &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:50.625 &amp;gt; [TRAINER] 2021-10-06 12:56:50.625269: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library nvcuda.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:50.723 &amp;gt; [TRAINER] 2021-10-06 12:56:50.723698: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1716] Found device 0 with properties: pciBusID: 0000:01:00.0 name: GeForce RTX 2060 computeCapability: 7.5 coreClock: 1.83GHz coreCount: 30 deviceMemorySize: 6.00GiB deviceMemoryBandwidth: 312.97GiB/s 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:50.723719: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudart64_101.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:51.347 &amp;gt; [TRAINER] 2021-10-06 12:56:51.347532: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cublas64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:51.518 &amp;gt; [TRAINER] 2021-10-06 12:56:51.518268: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cufft64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:51.632 &amp;gt; [TRAINER] 2021-10-06 12:56:51.632815: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library curand64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:52.157 &amp;gt; [TRAINER] 2021-10-06 12:56:52.156900: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cusolver64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:52.523 &amp;gt; [TRAINER] 2021-10-06 12:56:52.522859: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cusparse64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.614 &amp;gt; [CONVERTER] * Serving Flask app "deepview.modelserver.modelserver" (lazy loading) * Environment: production WARNING: This is a development server. Do not use it in a production deployment. Use a production WSGI server instead. * Debug mode: off &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.615 &amp;gt; [CONVERTER] * Running on&amp;nbsp;&lt;/SPAN&gt;&lt;A title="http://127.0.0.1:10816/" href="http://127.0.0.1:10816/" target="_blank" rel="noopener noreferrer"&gt;http://127.0.0.1:10816/&lt;/A&gt;&lt;SPAN&gt;&amp;nbsp;(Press CTRL+C to quit)&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.648 &amp;gt; [TRAINER] 2021-10-06 12:56:53.648551: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudnn64_7.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.674 &amp;gt; [TRAINER] 2021-10-06 12:56:53.674163: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1858] Adding visible gpu devices: 0 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.678 &amp;gt; [TRAINER] 2021-10-06 12:56:53.678657: I tensorflow/core/platform/cpu_feature_guard.cc:142] This TensorFlow binary is optimized with oneAPI Deep Neural Network Library (oneDNN)to use the following CPU instructions in performance-critical operations: AVX2 To enable them in other operations, rebuild TensorFlow with the appropriate compiler flags. &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.013 &amp;gt; [TRAINER] 2021-10-06 12:56:54.013205: I tensorflow/compiler/xla/service/service.cc:168] XLA service 0x29e7b24c130 initialized for platform Host (this does not guarantee that XLA will be used). Devices: 2021-10-06 12:56:54.013221: I tensorflow/compiler/xla/service/service.cc:176] StreamExecutor device (0): Host, Default Version&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030 &amp;gt; [TRAINER] 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030133: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1716] Found device 0 with properties: pciBusID: 0000:01:00.0 name: GeForce RTX 2060 computeCapability: 7.5 coreClock: 1.83GHz coreCount: 30 deviceMemorySize: 6.00GiB deviceMemoryBandwidth: 312.97GiB/s 2021-10-06 12:56:54.030153: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudart64_101.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030159: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cublas64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030163: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cufft64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030168: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library curand64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030172: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cusolver64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;1&lt;/SPAN&gt;&lt;SPAN&gt;2:56:54.030176: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cusparse64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030181: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudnn64_7.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030236: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1858] Adding visible gpu devices: 0 12:56:57.031 &amp;gt; [TRAINER] 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.031582: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1257] Device interconnect StreamExecutor with strength 1 edge matrix: 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.031604: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1263] 0 2021-10-06 12:56:57.031609: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1276] 0: N 12:56:57.076 &amp;gt; [TRAINER] 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.076635: W tensorflow/core/common_runtime/gpu/gpu_bfc_allocator.cc:39] Overriding allow_growth setting because the TF_FORCE_GPU_ALLOW_GROWTH environment variable is set. Original config value was 0. &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.081 &amp;gt; [TRAINER] 2021-10-06 12:56:57.081194: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1402] Created TensorFlow device (/job:localhost/replica:0/task:0/device:GPU:0 with 4722 MB memory) -&amp;gt; physical GPU (device: 0, name: GeForce RTX 2060, pci bus id: 0000:01:00.0, compute capability: 7.5) 12:56:57.116 &amp;gt; [TRAINER] 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.116205: I tensorflow/compiler/xla/service/service.cc:168] XLA service 0x29e446551c0 initialized for platform CUDA (this does not guarantee that XLA will be used). Devices: 2021-10-06 12:56:57.116221: I tensorflow/compiler/xla/service/service.cc:176] StreamExecutor device (0): GeForce RTX 2060, Compute Capability 7.5&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&amp;nbsp;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;Thanks and regards&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;Ramson jehu&amp;nbsp;&lt;/SPAN&gt;&lt;/P&gt;</description>
    <pubDate>Wed, 06 Oct 2021 08:02:21 GMT</pubDate>
    <dc:creator>Ramson</dc:creator>
    <dc:date>2021-10-06T08:02:21Z</dc:date>
    <item>
      <title>How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1339726#M462</link>
      <description>&lt;P&gt;Hi,&lt;BR /&gt;&lt;BR /&gt;I am new to eIQ Portal and wondering what kind of cudnn/Tensorflow version etc. must be pre installed or if they are delivered with the program itself.&lt;BR /&gt;&lt;BR /&gt;When launching the eIQ Portal.exe I am getting the following hints:&lt;BR /&gt;&lt;BR /&gt;&lt;/P&gt;&lt;P&gt;[CONVERTER] 2021-09-14 11:26:19.915128: W tensorflow/stream_executor/platform/default/dso_loader.cc:59] Could not load dynamic library 'cudart64_101.dll'; dlerror: cudart64_101.dll not found&lt;BR /&gt;2021-09-14 11:26:19.915436: I tensorflow/stream_executor/cuda/cudart_stub.cc:29] Ignore above cudart dlerror if you do not have a GPU set up on your machine.&lt;/P&gt;&lt;P&gt;11:26:20.378 &amp;gt; [TRAINER] 2021-09-14 11:26:20.378297: W tensorflow/stream_executor/platform/default/dso_loader.cc:59] Could not load dynamic library 'cudart64_101.dll'; dlerror: cudart64_101.&lt;BR /&gt;11:26:20.379 &amp;gt; [TRAINER] dll not found&lt;BR /&gt;2021-09-14 11:26:20.378535: I tensorflow/stream_executor/cuda/cudart_stub.cc:29] Ignore above cudart dlerror if you do not have a GPU set up on your machine.&lt;/P&gt;&lt;P&gt;11:26:21.592 &amp;gt; [CONVERTER] 2021-09-14 11:26:21.592557: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library nvcuda.dll&lt;/P&gt;&lt;P&gt;11:26:21.624 &amp;gt; [CONVERTER] 2021-09-14 11:26:21.624599: E tensorflow/stream_executor/cuda/cuda_driver.cc:314] failed call to cuInit: CUDA_ERROR_NO_DEVICE: no CUDA-capable device is detected&lt;/P&gt;&lt;P&gt;11:26:21.627 &amp;gt; [CONVERTER] 2021-09-14 11:26:21.627850: I tensorflow/stream_executor/cuda/cuda_diagnostics.cc:169] r&lt;BR /&gt;11:26:21.628 &amp;gt; [CONVERTER] etrieving CUDA diagnostic information for host: ***-***-*****&lt;BR /&gt;2021-09-14 11:26:21.628134: I tensorflow/stream_executor/cuda/cuda_diagnostics.cc:176] hostname: ***-***-*****&lt;/P&gt;&lt;P&gt;11:26:22.178 &amp;gt; [TRAINER] 2021-09-14 11:26:22.178820: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dyna&lt;BR /&gt;11:26:22.179 &amp;gt; [TRAINER] mic library nvcuda.dll&lt;/P&gt;&lt;P&gt;11:26:22.208 &amp;gt; [TRAINER] 2021-09-14 11:26:22.208431: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1716] Found devi&lt;BR /&gt;11:26:22.209 &amp;gt; [TRAINER] ce 0 with properties:&lt;BR /&gt;pciBusID: 0000:b3:00.0 name: GeForce RTX 2080 Ti computeCapability: 7.5&lt;BR /&gt;coreClock: 1.545GHz coreCount: 68 deviceMemorySize: 11.00GiB deviceMemoryBandwidth: 573.69GiB/s&lt;BR /&gt;2021-09-14 11:26:22.209377: W tensorflow/stream_executor/platform/default/&lt;BR /&gt;11:26:22.210 &amp;gt; [TRAINER] dso_loader.cc:59] Could not load dynamic library 'cudart64_101.dll'; dlerror: cudart64_101.dll not found&lt;BR /&gt;2021-09-14 11:26:22.210229: W tensorflow/stream_executor/platform/default/dso_loader.cc:59] Could not load dynamic library 'cublas64_10.dll'; dlerror: cublas64_10.d&lt;BR /&gt;11:26:22.211 &amp;gt; [TRAINER] ll not found&lt;BR /&gt;2021-09-14 11:26:22.211134: W tensorflow/stream_executor/platform/default/dso_loader.cc:59] Could not load dynamic library '&lt;BR /&gt;11:26:22.211 &amp;gt; [TRAINER] cufft64_10.dll'; dlerror: cufft64_10.dll not found&lt;/P&gt;&lt;P&gt;11:26:22.212 &amp;gt; [TRAINER] 2021-09-14 11:26:22.212279: W tensorflow/stream_executor/platform/default/dso_loader.cc:59] Could not load dynamic library 'curand64_10.dll'; dlerror: curand64_10.dll not foun&lt;BR /&gt;11:26:22.212 &amp;gt; [TRAINER] d&lt;BR /&gt;2021-09-14 11:26:22.213105: W tensorflow/stream_executor/platform/default/dso_loader.cc:59] C&lt;BR /&gt;11:26:22.213 &amp;gt; [TRAINER] ould not load dynamic library 'cusolver64_10.dll'; dlerror: cusolver64_10.dll not found&lt;/P&gt;&lt;P&gt;11:26:22.214 &amp;gt; [TRAINER] 2021-09-14 11:26:22.213866: W tensorflow/stream_executor/platform/default/dso_loader.cc:59] Could not load dynamic library 'cusparse64_10.dll'; dlerror: cusparse64_10.dll not found&lt;/P&gt;&lt;P&gt;11:26:22.214 &amp;gt; [TRAINER] 2021-09-14 11:26:22.214517: W tensorflow/stream_executor/platform/default/dso_loader.cc:59] Could not load dynamic library 'cudnn64_7.dll'; dlerror: cudnn64_7.dll not found&lt;BR /&gt;2021-09-14 11:26:22.214696: W tensorflow/core/common_runtime/gpu/gpu_device.cc:1753] Cannot dlopen some GPU libraries. Please make sure the missing libra&lt;BR /&gt;11:26:22.215 &amp;gt; [TRAINER] ries mentioned above are installed properly if you would like to use GPU. Follow the guide at &lt;A href="https://www.tensorflow.org/install/gpu" target="_blank" rel="noopener"&gt;https://www.tensorflow.org/install/gpu&lt;/A&gt; for how to download and setup the required libraries for your platform.&lt;BR /&gt;Skipping registering GPU devices...&lt;/P&gt;&lt;P&gt;&lt;BR /&gt;&lt;BR /&gt;Which obviously detects the GPU [Geforce RTX 2080 Ti] - however it fails to register the cudnn files. Do I need to install them, and if so which one?&lt;BR /&gt;&lt;BR /&gt;Regards,&lt;BR /&gt;&lt;BR /&gt;K&lt;/P&gt;</description>
      <pubDate>Tue, 14 Sep 2021 10:05:26 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1339726#M462</guid>
      <dc:creator>khoefle</dc:creator>
      <dc:date>2021-09-14T10:05:26Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1340876#M466</link>
      <description>&lt;P&gt;&lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/191324"&gt;@khoefle&lt;/a&gt;You will need to install v7.x of the cuDNN that corresponds to your Cuda Driver.&amp;nbsp; You can download them from the &lt;A href="https://developer.nvidia.com/rdp/cudnn-archive" target="_self"&gt;cuDNN archive page&lt;/A&gt; (Nvidia Developer login is required I believe).&amp;nbsp; Here are the &lt;A href="https://developer.nvidia.com/rdp/cudnn-archive" target="_self"&gt;instructions&lt;/A&gt; on how to install cuDNN. I wasn't able to run cuDNN v8.x, it looks like eIQ portal requires v7.x (cudnn64_7.dll file).&amp;nbsp; On the achieve page v7.x goes up to Cuda v10.2.&amp;nbsp; So if you have a later driver, you may need to uninstall and install an older one.&amp;nbsp;&lt;/P&gt;&lt;P&gt;It would be nice if NXP had some instructions on this (I didn't find any).&amp;nbsp;&lt;/P&gt;</description>
      <pubDate>Wed, 15 Sep 2021 20:50:50 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1340876#M466</guid>
      <dc:creator>mgandhi</dc:creator>
      <dc:date>2021-09-15T20:50:50Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1341622#M473</link>
      <description>&lt;P&gt;Hello &lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/191324"&gt;@khoefle&lt;/a&gt;&amp;nbsp;,&lt;/P&gt;
&lt;P&gt;the Cuda driver version depends on the TensorFlow version supported by eIQ Portal. In the currently released eIQ Portal, the TensorFlow version is 2.3.2.&lt;/P&gt;
&lt;P&gt;Please try installing the v7.6 cuDNN and CUDA 10.2, as &lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/177446"&gt;@mgandhi&lt;/a&gt; mentioned.&lt;/P&gt;
&lt;P&gt;&lt;span class="lia-inline-image-display-wrapper lia-image-align-inline" image-alt="david_piskula_0-1631799368542.png" style="width: 400px;"&gt;&lt;img src="https://community.nxp.com/t5/image/serverpage/image-id/156309iD3F0C3917DE03DE8/image-size/medium?v=v2&amp;amp;px=400" role="button" title="david_piskula_0-1631799368542.png" alt="david_piskula_0-1631799368542.png" /&gt;&lt;/span&gt;&lt;/P&gt;
&lt;P&gt;&lt;A href="https://www.tensorflow.org/install/source#gpu" target="_blank"&gt;https://www.tensorflow.org/install/source#gpu&lt;/A&gt;&lt;/P&gt;
&lt;P&gt;Best Regards,&lt;/P&gt;
&lt;P&gt;David&lt;/P&gt;</description>
      <pubDate>Thu, 16 Sep 2021 13:37:17 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1341622#M473</guid>
      <dc:creator>david_piskula</dc:creator>
      <dc:date>2021-09-16T13:37:17Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350929#M499</link>
      <description>&lt;P&gt;Hi&amp;nbsp;&lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/177446"&gt;@mgandhi&lt;/a&gt;&amp;nbsp;&lt;BR /&gt;Do We have to build tensorflow 2.3.2 from source, because we are facing an issue in building (&lt;A href="https://github.com/tensorflow/tensorflow/issues/52092" target="_self"&gt;https://github.com/tensorflow/tensorflow/issues/52092&lt;/A&gt;&amp;nbsp;)? we have installed CUDA 10.1 with cuDNN 7.6. But still the application is running on CPU and not on GPU.&amp;nbsp; we are still struggling to run the application in GPU for days.&amp;nbsp;Can you please help me out.&lt;/P&gt;&lt;P&gt;Thanks and regards,&lt;/P&gt;&lt;P&gt;Ramson Jehu K&lt;/P&gt;</description>
      <pubDate>Wed, 06 Oct 2021 06:34:49 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350929#M499</guid>
      <dc:creator>Ramson</dc:creator>
      <dc:date>2021-10-06T06:34:49Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350943#M500</link>
      <description>&lt;P&gt;Hey&amp;nbsp;&lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/189393"&gt;@Ramson&lt;/a&gt;&amp;nbsp;&lt;BR /&gt;You do not need to build it from source, it is perfectly fine to do the "official" way as documented by NVIDIA.&amp;nbsp;&lt;BR /&gt;&lt;BR /&gt;To locate the the problem a good way is to start eiQPortal.exe from the command line&amp;nbsp; - it will output a lot of information on whats missing and which dlls etc. cannot be loaded&lt;BR /&gt;&lt;BR /&gt;Regards,&lt;BR /&gt;&lt;BR /&gt;Kevin&lt;/P&gt;</description>
      <pubDate>Wed, 06 Oct 2021 07:13:25 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350943#M500</guid>
      <dc:creator>khoefle</dc:creator>
      <dc:date>2021-10-06T07:13:25Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350946#M502</link>
      <description>&lt;P&gt;Hi&amp;nbsp;&lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/191324"&gt;@khoefle&lt;/a&gt;&amp;nbsp;,&lt;/P&gt;&lt;P&gt;Im not asking about building CUDA from source. Im asking regarding building tensorflow from source.&amp;nbsp;&lt;/P&gt;&lt;P&gt;But running from command line as you said is great idea. Thank you so much Kevin.&amp;nbsp;&lt;/P&gt;</description>
      <pubDate>Wed, 06 Oct 2021 07:18:21 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350946#M502</guid>
      <dc:creator>Ramson</dc:creator>
      <dc:date>2021-10-06T07:18:21Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350979#M503</link>
      <description>&lt;P&gt;&lt;SPAN&gt;Hi &lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/191324"&gt;@khoefle&lt;/a&gt;&amp;nbsp;, when running in command line, These are the output .Do you find any issues in this? Please let me know&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&amp;nbsp;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;C:\nxp\eIQ_Toolkit_v1.0.5&amp;gt;"eIQ Portal.exe" C:\nxp\eIQ_Toolkit_v1.0.5&amp;gt; NXP eIQ Portal version 2.1.30 Launch -&amp;gt; &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;C:\nxp\eIQ_Toolkit_v1.0.5 12:56:24.705 &amp;gt; Launching Application Display size is 2048x1152 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:30.810 &amp;gt; [CONVERTER] 2021-10-06 12:56:30.810279: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudart64_101.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:31.176 &amp;gt; [TRAINER] 2021-10-06 12:56:31.176046: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudart64_101.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:45.324 &amp;gt; [CONVERTER] 2021-10-06 12:56:45.324089: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library nvcuda.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:45.422 &amp;gt; [CONVERTER] 2021-10-06 12:56:45.422699: E tensorflow/stream_executor/cuda/cuda_driver.cc:314] failed call to cuInit: CUDA_ERROR_NO_DEVICE: no CUDA-capable device is detected &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:45.425 &amp;gt; [CONVERTER] 2021-10-06 12:56:45.425487: I tensorflow/stream_executor/cuda/cuda_diagnostics.cc:169] retrieving CUDA diagnostic information for host: Surya-PC 2021-10-06 12:56:45.425564: I tensorflow/stream_executor/cuda/cuda_diagnostics.cc:176] hostname: Surya-PC &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:50.625 &amp;gt; [TRAINER] 2021-10-06 12:56:50.625269: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library nvcuda.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:50.723 &amp;gt; [TRAINER] 2021-10-06 12:56:50.723698: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1716] Found device 0 with properties: pciBusID: 0000:01:00.0 name: GeForce RTX 2060 computeCapability: 7.5 coreClock: 1.83GHz coreCount: 30 deviceMemorySize: 6.00GiB deviceMemoryBandwidth: 312.97GiB/s 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:50.723719: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudart64_101.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:51.347 &amp;gt; [TRAINER] 2021-10-06 12:56:51.347532: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cublas64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:51.518 &amp;gt; [TRAINER] 2021-10-06 12:56:51.518268: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cufft64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:51.632 &amp;gt; [TRAINER] 2021-10-06 12:56:51.632815: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library curand64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:52.157 &amp;gt; [TRAINER] 2021-10-06 12:56:52.156900: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cusolver64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:52.523 &amp;gt; [TRAINER] 2021-10-06 12:56:52.522859: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cusparse64_10.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.614 &amp;gt; [CONVERTER] * Serving Flask app "deepview.modelserver.modelserver" (lazy loading) * Environment: production WARNING: This is a development server. Do not use it in a production deployment. Use a production WSGI server instead. * Debug mode: off &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.615 &amp;gt; [CONVERTER] * Running on&amp;nbsp;&lt;/SPAN&gt;&lt;A title="http://127.0.0.1:10816/" href="http://127.0.0.1:10816/" target="_blank" rel="noopener noreferrer"&gt;http://127.0.0.1:10816/&lt;/A&gt;&lt;SPAN&gt;&amp;nbsp;(Press CTRL+C to quit)&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.648 &amp;gt; [TRAINER] 2021-10-06 12:56:53.648551: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudnn64_7.dll &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.674 &amp;gt; [TRAINER] 2021-10-06 12:56:53.674163: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1858] Adding visible gpu devices: 0 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:53.678 &amp;gt; [TRAINER] 2021-10-06 12:56:53.678657: I tensorflow/core/platform/cpu_feature_guard.cc:142] This TensorFlow binary is optimized with oneAPI Deep Neural Network Library (oneDNN)to use the following CPU instructions in performance-critical operations: AVX2 To enable them in other operations, rebuild TensorFlow with the appropriate compiler flags. &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.013 &amp;gt; [TRAINER] 2021-10-06 12:56:54.013205: I tensorflow/compiler/xla/service/service.cc:168] XLA service 0x29e7b24c130 initialized for platform Host (this does not guarantee that XLA will be used). Devices: 2021-10-06 12:56:54.013221: I tensorflow/compiler/xla/service/service.cc:176] StreamExecutor device (0): Host, Default Version&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030 &amp;gt; [TRAINER] 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030133: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1716] Found device 0 with properties: pciBusID: 0000:01:00.0 name: GeForce RTX 2060 computeCapability: 7.5 coreClock: 1.83GHz coreCount: 30 deviceMemorySize: 6.00GiB deviceMemoryBandwidth: 312.97GiB/s 2021-10-06 12:56:54.030153: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudart64_101.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030159: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cublas64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030163: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cufft64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030168: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library curand64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030172: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cusolver64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;1&lt;/SPAN&gt;&lt;SPAN&gt;2:56:54.030176: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cusparse64_10.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030181: I tensorflow/stream_executor/platform/default/dso_loader.cc:48] Successfully opened dynamic library cudnn64_7.dll 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:54.030236: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1858] Adding visible gpu devices: 0 12:56:57.031 &amp;gt; [TRAINER] 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.031582: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1257] Device interconnect StreamExecutor with strength 1 edge matrix: 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.031604: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1263] 0 2021-10-06 12:56:57.031609: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1276] 0: N 12:56:57.076 &amp;gt; [TRAINER] 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.076635: W tensorflow/core/common_runtime/gpu/gpu_bfc_allocator.cc:39] Overriding allow_growth setting because the TF_FORCE_GPU_ALLOW_GROWTH environment variable is set. Original config value was 0. &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.081 &amp;gt; [TRAINER] 2021-10-06 12:56:57.081194: I tensorflow/core/common_runtime/gpu/gpu_device.cc:1402] Created TensorFlow device (/job:localhost/replica:0/task:0/device:GPU:0 with 4722 MB memory) -&amp;gt; physical GPU (device: 0, name: GeForce RTX 2060, pci bus id: 0000:01:00.0, compute capability: 7.5) 12:56:57.116 &amp;gt; [TRAINER] 2021-10-06 &lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;12:56:57.116205: I tensorflow/compiler/xla/service/service.cc:168] XLA service 0x29e446551c0 initialized for platform CUDA (this does not guarantee that XLA will be used). Devices: 2021-10-06 12:56:57.116221: I tensorflow/compiler/xla/service/service.cc:176] StreamExecutor device (0): GeForce RTX 2060, Compute Capability 7.5&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&amp;nbsp;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;Thanks and regards&lt;/SPAN&gt;&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;Ramson jehu&amp;nbsp;&lt;/SPAN&gt;&lt;/P&gt;</description>
      <pubDate>Wed, 06 Oct 2021 08:02:21 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350979#M503</guid>
      <dc:creator>Ramson</dc:creator>
      <dc:date>2021-10-06T08:02:21Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350985#M504</link>
      <description>&lt;P&gt;Hi,&lt;BR /&gt;&lt;BR /&gt;I do not see any issues here, it looks roughly the same as mine. I can only tell you that the line:&lt;BR /&gt;&lt;BR /&gt;&lt;SPAN&gt;&amp;nbsp;[CONVERTER] 2021-10-06 12:56:45.422699: E tensorflow/stream_executor/cuda/cuda_driver.cc:314] failed call to cuInit: CUDA_ERROR_NO_DEVICE: no CUDA-capable device is detected&lt;/SPAN&gt;&lt;BR /&gt;&lt;BR /&gt;IS NOT A PROBLEM.&amp;nbsp;&lt;BR /&gt;&lt;BR /&gt;I have the same GPU and it utlizes the GPU, you can use nvidia-smi to check if the GPU is utlized.&lt;/P&gt;</description>
      <pubDate>Wed, 06 Oct 2021 08:10:20 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1350985#M504</guid>
      <dc:creator>khoefle</dc:creator>
      <dc:date>2021-10-06T08:10:20Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1351112#M506</link>
      <description>&lt;P&gt;Hi&amp;nbsp;&lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/191324"&gt;@khoefle&lt;/a&gt;&amp;nbsp;,&lt;/P&gt;&lt;P&gt;Thanks for the help. when given nvidia-smi command I get the following output. Two things worries me is that. First is, the cuda version is showing as 11.2, but i have uninstalled it and installed 10.2 already. Second, the GPU memory usage shows N/A.&amp;nbsp;&lt;/P&gt;&lt;P&gt;&lt;span class="lia-inline-image-display-wrapper lia-image-align-inline" image-alt="MicrosoftTeams-image (4).png" style="width: 749px;"&gt;&lt;img src="https://community.nxp.com/t5/image/serverpage/image-id/158356i55E9431730171265/image-size/large?v=v2&amp;amp;px=999" role="button" title="MicrosoftTeams-image (4).png" alt="MicrosoftTeams-image (4).png" /&gt;&lt;/span&gt;&lt;/P&gt;&lt;P&gt;I get the following output when i gave help for nvidia-smi :&lt;/P&gt;&lt;P&gt;&lt;SPAN&gt;"used_gpu_memory" or "used_memory"&lt;/SPAN&gt;&lt;BR /&gt;&lt;SPAN&gt;Amount memory used on the device by the context. Not available on Windows when running in WDDM mode because Windows KMD manages all the memory not NVIDIA driver.&lt;/SPAN&gt;&lt;/P&gt;</description>
      <pubDate>Wed, 06 Oct 2021 12:04:47 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1351112#M506</guid>
      <dc:creator>Ramson</dc:creator>
      <dc:date>2021-10-06T12:04:47Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1351114#M507</link>
      <description>&lt;P&gt;From this point on I can only guess, but maybe check if your CUDA_PATH etc. is set correctly, sorry for not being able to help you further&lt;/P&gt;</description>
      <pubDate>Wed, 06 Oct 2021 12:07:09 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1351114#M507</guid>
      <dc:creator>khoefle</dc:creator>
      <dc:date>2021-10-06T12:07:09Z</dc:date>
    </item>
    <item>
      <title>Re: How to make sure that the GPU is used during training?</title>
      <link>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1351115#M508</link>
      <description>&lt;P&gt;Thank you so much for the help so far&amp;nbsp;&lt;a href="https://community.nxp.com/t5/user/viewprofilepage/user-id/191324"&gt;@khoefle&lt;/a&gt;&amp;nbsp;. You have been really helpful.&lt;/P&gt;</description>
      <pubDate>Wed, 06 Oct 2021 12:09:24 GMT</pubDate>
      <guid>https://community.nxp.com/t5/eIQ-Machine-Learning-Software/How-to-make-sure-that-the-GPU-is-used-during-training/m-p/1351115#M508</guid>
      <dc:creator>Ramson</dc:creator>
      <dc:date>2021-10-06T12:09:24Z</dc:date>
    </item>
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