LISA: Increasing Internal Connectivity in DRAM for Fast Data Movement and Low Latency
Kevin K. Chang, Prashant J. Nair, Saugata Ghose, Donghyuk Lee,, Moinuddin K. Qureshi, Onur Mutlu

TL;DR
LISA introduces low-cost interconnections between DRAM subarrays to enable fast, energy-efficient bulk data movement across large memory ranges, improving performance and reducing latency.
Contribution
This work proposes a novel low-cost inter-subarray linking technique in DRAM, enabling wide-bandwidth data transfer across multiple subarrays, which was not feasible before.
Findings
Significant performance improvements across various workloads.
Enhanced memory energy efficiency.
Effective fast data movement within DRAM.
Abstract
This paper summarizes the idea of Low-Cost Interlinked Subarrays (LISA), which was published in HPCA 2016, and examines the work's significance and future potential. Contemporary systems perform bulk data movement movement inefficiently, by transferring data from DRAM to the processor, and then back to DRAM, across a narrow off-chip channel. The use of this narrow channel results in high latency and energy consumption. Prior work proposes to avoid these high costs by exploiting the existing wide internal DRAM bandwidth for bulk data movement, but the limited connectivity of wires within DRAM allows fast data movement within only a single DRAM subarray. Each subarray is only a few megabytes in size, greatly restricting the range over which fast bulk data movement can happen within DRAM. Our HPCA 2016 paper proposes a new DRAM substrate, Low-Cost Inter-Linked Subarrays (LISA), whose…
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Taxonomy
TopicsParallel Computing and Optimization Techniques · Advanced Data Storage Technologies · Interconnection Networks and Systems
