Parallel image generation on HPC systems via iLauncher
This work builds on another effort described in Application of Jupyter Notebook interfaces and iLauncher to deep learning work ows on HPC systems.22 We describe a complex work ow application which generates millions of images in parallel on an HPC system via web interfaces using ipywidgets in Jupyte...
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Format | Conference Proceeding |
Language | English |
Published |
SPIE
12.04.2021
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Online Access | Get full text |
ISBN | 9781510642935 1510642935 |
ISSN | 0277-786X |
DOI | 10.1117/12.2585800 |
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Abstract | This work builds on another effort described in Application of Jupyter Notebook interfaces and iLauncher to deep learning work ows on HPC systems.22 We describe a complex work ow application which generates millions of images in parallel on an HPC system via web interfaces using ipywidgets in Jupyter Notebooks and the Interface Launcher (iLauncher). Some computations are so complicated, taking many millions of HPC hours, that only a few subject matter experts are able to generate information efficiently. We present our custom application that walks the user through a work flow to include: target selection, configuration of the target, radar phase history simulation, and finally SAR image generation. The interface requests the user to enter a minimal set of parameters while other variables essential to computations are generated on the y and provides status updates on work ow computations. Additionally, the ability to download any data component or view images interactively is provided. This application can be disconnected from the HPC system and reconnected at any time without slowing down the computations on the work ow submitted. Although typically a maximum run time must be specified when submitting a job to the queuing interface on an HPC system, this application uses the HPC-GPS tool to allow users to extend run times even after the initial request is submitted. Our new application helps to reduce the barrier to entry for both complicated physics-based simulations and using HPC systems. |
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AbstractList | This work builds on another effort described in Application of Jupyter Notebook interfaces and iLauncher to deep learning work ows on HPC systems.22 We describe a complex work ow application which generates millions of images in parallel on an HPC system via web interfaces using ipywidgets in Jupyter Notebooks and the Interface Launcher (iLauncher). Some computations are so complicated, taking many millions of HPC hours, that only a few subject matter experts are able to generate information efficiently. We present our custom application that walks the user through a work flow to include: target selection, configuration of the target, radar phase history simulation, and finally SAR image generation. The interface requests the user to enter a minimal set of parameters while other variables essential to computations are generated on the y and provides status updates on work ow computations. Additionally, the ability to download any data component or view images interactively is provided. This application can be disconnected from the HPC system and reconnected at any time without slowing down the computations on the work ow submitted. Although typically a maximum run time must be specified when submitting a job to the queuing interface on an HPC system, this application uses the HPC-GPS tool to allow users to extend run times even after the initial request is submitted. Our new application helps to reduce the barrier to entry for both complicated physics-based simulations and using HPC systems. |
Author | Vickery, Rhonda Mogilevsky, Daniel Harris, Jack Larson, Ryan Nehrbass, John |
Author_xml | – sequence: 1 givenname: John surname: Nehrbass fullname: Nehrbass, John organization: Wright State Univ. (United States) – sequence: 2 givenname: Rhonda surname: Vickery fullname: Vickery, Rhonda organization: Wright State Univ. (United States) – sequence: 3 givenname: Daniel surname: Mogilevsky fullname: Mogilevsky, Daniel organization: Wright State Univ. (United States) – sequence: 4 givenname: Jack surname: Harris fullname: Harris, Jack organization: Infinite Tactics (United States) – sequence: 5 givenname: Ryan surname: Larson fullname: Larson, Ryan organization: Infinite Tactics (United States) |
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Copyright | COPYRIGHT SPIE. Downloading of the abstract is permitted for personal use only. |
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DOI | 10.1117/12.2585800 |
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Editor | Garber, Frederick D Zelnio, Edmund |
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Notes | Conference Date: 2021-04-12|2021-04-17 Conference Location: Online Only, Florida, United States |
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Snippet | This work builds on another effort described in Application of Jupyter Notebook interfaces and iLauncher to deep learning work ows on HPC systems.22 We... |
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Title | Parallel image generation on HPC systems via iLauncher |
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