DOE OSTI · 2439834
Optimizing Metadata Exchange: Leveraging DAOS for ADIOS Metadata I/O
Abstract
In HPC I/O middleware like the Adaptable I/O System (ADIOS) often mediates data transfers between applications. The metadata I/O generated by such systems often presents significant scaling and performance limitations. This work seeks improvement opportunities for metadata I/O by leveraging the DAOS storage systems, a recent storage system solution deployed on high-end systems such as the Aurora supercomputer. We investigate the tradeoffs and the design space for integrating I/O engines for the ADIOS middleware based on the different storage mechanisms supported by DAOS. We present a new DAOS-Array-ChunkSize-aligned engine which provides up to 2.3× improved performance than when using the existing DAOS-POSIX interface, without requiring any application modifications.
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Venkatesh, Ranjan Sarpangala, Eisenhauer, Greg, Podhorszki, Norbert, Ganyushin, Dmitry, Klasky, Scott, Gavrilovska, Ada. 2024-05-01. Optimizing Metadata Exchange: Leveraging DAOS for ADIOS Metadata I/O. https://doi.org/10.23919/isc.2024.10528927
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