VLDB 2026 Research / reviewers in the wild / expert
Jeff Parker
dblp:37/5434 · also Jeffrey J. Parker
· DBLP profile ↗
6ranked-venue papers
0as first author
0since 2021 · last 2012
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Systems, architecture and hardware · 6
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Computer architecture, parallel and distributed computing, and storage systems
4 papers |
High-performance computing · 53% Interconnection networks and networks-on-chip · 33% Performance modeling and evaluation · 5% | |
| Software engineering, system software, and programming languages
1 paper |
Operating systems · 100% |
Topics — the 9 heaviest of 12, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Interconnection networks and networks-on-chip › network topology
torus network |
0.1 | 1 | 2012 | Looking under the hood of the IBM blue gene/Q network · SC 2012 |
Interconnection networks and networks-on-chip
network interface |
0.1 | 1 | 2011 | The IBM Blue Gene/Q interconnection network and message unit · SC 2011 |
High-performance computing
supercomputer architecture |
0.1 | 1 | 2011 | The IBM Blue Gene/Q interconnection network and message unit · SC 2011 |
Operating systems › kernel
lightweight kernel |
0.1 | 1 | 2006 | Blue Gene system software - Designing a highly-scalable operating system: the Blue Gene/L story · SC 2006 |
High-performance computing
parallel i/o |
0.1 | 1 | 2006 | High performance file I/O for the Blue Gene/L supercomputer · HPCA 2006 |
Performance modeling and evaluation
benchmarking |
0.0 | 1 | 2012 | Looking under the hood of the IBM blue gene/Q network · SC 2012 |
High-performance computing › supercomputing
bluegene/l |
0.0 | 1 | 2006 | High performance file I/O for the Blue Gene/L supercomputer · HPCA 2006 |
Storage systems › file systems › distributed file system
parallel file system |
0.0 | 1 | 2006 | High performance file I/O for the Blue Gene/L supercomputer · HPCA 2006 |
High-performance computing
supercomputing |
0.0 | 1 | 2006 | High performance file I/O for the Blue Gene/L supercomputer · HPCA 2006 |
Methods — techniques the papers use, named apart from their topics
offloading · 0.1dynamic routing · 0.1communication threads · 0.1routing algorithm · 0.1packet injection parallelization · 0.1linux port · 0.1compute node kernel · 0.1hierarchical partitioning · 0.1MPI-IO · 0.1
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2012 | PAMI: A Parallel Active Message Interface for the Blue Gene/Q SupercomputerabstractThe Blue Gene/Q machine is the next generation in the line of IBM massively parallel supercomputers, designed to scale to 262144 nodes and sixteen million threads. With each BG/Q node having 68 hardware threads, hybrid programming paradigms, which use message passing among nodes and multi-threading within nodes, are ideal and will enable applications to achieve high throughput on BG/Q. With such unprecedented massive parallelism and scale, this paper is a groundbreaking effort to explore the design challenges for designing a communication library that can match and exploit such massive parallelism In particular, we present the Parallel Active Messaging Interface (PAMI) library as our BG/Q library solution to the many challenges that come with a machine at such scale. PAMI provides (1) novel techniques to partition the application communication overhead into many contexts that can be accelerated by communication threads, (2) client and context objects to support multiple and different programming paradigms, (3) lockless algorithms to speed up MPI message rate, and (4) novel techniques leveraging the new BG/Q architectural features such as the scalable atomic primitives implemented in the L2 cache, the highly parallel hardware messaging unit that supports both point-to-point and collective operations, and the collective hardware acceleration for operations such as broadcast, reduce, and all reduce. We experimented with PAMI on 2048 BG/Q nodes and the results show high messaging rates as well as low latencies and high throughputs for collective communication operations. Sameer Kumar 0001, Amith R. Mamidala, Daniel Faraj, Brian E. Smith, Michael Blocksome, Bob Cernohous, Douglas Miller, Jeff Parker, Joe Ratterman, Philip Heidelberger, Dong Chen 0005, Burkhard D. Steinmacher-Burow |
IPDPS | 8 |
| 2012 | Looking under the hood of the IBM blue gene/Q networkabstractThis paper explores the performance and optimization of the IBM Blue Gene/Q (BG/Q) five dimensional torus network on up to 16K nodes. The BG/Q hardware supports multiple dynamic routing algorithms and different traffic patterns may require different algorithms to achieve best performance. Between 85% to 95% of peak network performance is achieved for all-to-all traffic, while over 85% of peak is obtained for challenging bisection pairings. A new software-controlled algorithm is developed for bisection traffic that selects which hardware algorithm to employ and achieves better performance than any individual hardware algorithm. The benefit of dynamic routing is shown for a highly non-uniform "transpose" traffic pattern. To evaluate memory and network performance, the HPCC Random Access benchmark was tuned for BG/Q and achieved 858 Giga Updates per Second (GUPS) on 16K nodes. To further accelerate message processing, the message libraries on BG/Q enable the offloading of messaging overhead onto dedicated communication threads. Several applications, including Algebraic Multigrid (AMG), exhibit from 3 to 20% gain using communication threads. Dong Chen 0005, Noel Eisley, Philip Heidelberger, Sameer Kumar 0001, Amith R. Mamidala, Fabrizio Petrini, Robert M. Senger, Yutaka Sugawara, Robert Walkup, Burkhard D. Steinmacher-Burow, Anamitra R. Choudhury, Yogish Sabharwal, Swati Singhal, Jeff Parker |
SC | 14 |
| 2011 | The IBM Blue Gene/Q interconnection network and message unitabstractThis is the first paper describing the IBM Blue Gene/Q interconnection network and message unit. The Blue Gene/Q system is the third generation in the IBM Blue Gene line of massively parallel supercomputers. The Blue Gene/Q architecture can be scaled to 20 PF/s and beyond. The network and the highly parallel message unit, which provides the functionality of a network interface, are integrated onto the same chip as the processors and cache memory, and consume 8% of the chip's area. For better application scalability and performance, we describe new routing algorithms and new techniques to parallelize the injection and reception of packets in the network interface. Measured hardware performance results are also presented. Dong Chen 0005, Noel Eisley, Philip Heidelberger, Robert M. Senger, Yutaka Sugawara, Sameer Kumar 0001, Valentina Salapura, David L. Satterfield, Burkhard D. Steinmacher-Burow, Jeff Parker |
SC | 10 |
| 2008 | The deep computing messaging framework: generalized scalable message passing on the blue gene/P supercomputerabstractWe present the architecture of the Deep Computing Messaging Framework (DCMF), a message passing runtime designed for the Blue Gene/P machine and other HPC architectures. DCMF has been designed to easily support several programming paradigms such as the Message Passing Interface (MPI), Aggregate Remote Memory Copy Interface (ARMCI), Charm++, and others. This support is made possible as DCMF provides an application programming interface (API) with active messages and non-blocking collectives. DCMF is being open sourced and has a layered component based architecture with multiple levels of abstraction, allowing the members of the community to contribute new components to its design at the various layers. The DCMF runtime can be extended to other architectures through the development of architecture specific implementations of interface classes. The production DCMF runtime on Blue Gene/P takes advantage of the direct memory access (DMA) hardware to offload message passing work and achieve good overlap of computation and communication. We take advantage of the fact that the Blue Gene/P node is a symmetric multi-processor with four cache-coherent cores and use multi-threading to optimize the performance on the collective network. We also present a performance evaluation of the DCMF runtime on Blue Gene/P and show that it delivers performance close to hardware limits. Sameer Kumar 0001, Gábor Dózsa, Gheorghe Almási 0001, Philip Heidelberger, Dong Chen 0005, Mark Giampapa, Michael Blocksome, Ahmad Faraj, Jeff Parker, Joe Ratterman, Brian E. Smith, Charles Archer |
ICS | 9 |
| 2006 | High performance file I/O for the Blue Gene/L supercomputerabstractParallel I/O plays a crucial role for most data-intensive applications running on massively parallel systems like Blue Gene/L that provides the promise of delivering enormous computational capability. We designed and implemented a highly scalable parallel file I/O architecture for Blue Gene/L, which leverages the benefit of the hierarchical and functional partitioning design of the system software with separate computational and I/O cores. The architecture exploits the scalability aspect of GPFS (General Parallel File System) at the backend, while using MPI I/O as an interface between the application I/O and the file system. We demonstrate the impact of our high performance I/O solution for Blue Gene/L with a comprehensive evaluation that consists of a number of widely used parallel I/O benchmarks and I/O intensive applications. Our design and implementation is not only able to deliver at least one order of magnitude speed up in terms of I/O bandwidth for a real-scale application HOMME (achieving aggregate bandwidth of 1.8 GB/Sec and 2.3 GB/Sec for write and read accesses, respectively), but also supports high-level parallel I/O data interfaces such as parallel HDF5 and parallel NetCDF scaling up to a large number of processors. Hao Yu 0008, Ramendra K. Sahoo, C. Howson, Gheorghe Almási 0001, José G. Castaños, Manish Gupta 0002, José E. Moreira, Jeff Parker, Thomas Engelsiepen, Robert B. Ross, Rajeev Thakur, Robert Latham, William Gropp |
HPCA | 8 |
| 2006 | Blue Gene system software - Designing a highly-scalable operating system: the Blue Gene/L storyabstractBlue Gene/L is currently the world's fastest and most scalable supercomputer. It has demonstrated essentially linear scaling all the way to 131,072 processors in several benchmarks and real applications. The operating systems for the compute and I/O nodes of Blue Gene/L, are among the components responsible for that scalability. Compute nodes are dedicated to running application processes, whereas I/O nodes are dedicated to performing system functions. The operating systems adopted for each of these nodes reflect this separation of function. Compute nodes run a lightweight operating system called the compute node kernel. I/O nodes run a port of the Linux operating system. This paper discusses the architecture and design of this solution for Blue Gene/L in the context of the hardware characteristics that led to the design decisions. It also explains and demonstrates how those decisions are instrumental in achieving the performance and scalability for which Blue Gene/L is famous. José E. Moreira, Michael Brutman, José G. Castaños, Thomas Engelsiepen, Mark Giampapa, Thomas Gooding, Roger L. Haskin, Todd Inglett, Derek Lieber, Patrick McCarthy, Michael B. Mundy, Jeff Parker, Brian P. Wallenfelt |
SC | 12 |