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Ismail Emir Yüksel

Publications and source records attributed to Ismail Emir Yüksel.

2 recordsLinked to original sources

PipeDRAM: A Data-Transposition-Free Processing-Using-DRAM Architecture with Hardware/Software Pipelining

Processing-using-DRAM (PUD) architectures exploit the analog operational properties of DRAM to perform bulk bitwise Boolean and arithmetic operations inside memory arrays by organizing data in a vertical layout, where operand bits are stacked along DRAM columns. However, modern computing systems natively employ a horizontal data layout that preserves the cache line abstraction, leverages spatial locality in row buffers, and enables high memory throughput. This fundamental mismatch forces existing PUD architectures to frequently perform data layout transformations between horizontal and vertical formats, incurring significant performance, energy, and system integration overheads. Our goal is to eliminate data transposition overheads in PUD systems at low cost. To this end, we propose PipeDRAM, a PUD architecture that eliminates the need for runtime data layout transformation, enabling PUD operations directly over horizontally laid-out data. PipeDRAM's key ideas are to (i) deterministically reorganize bits inside each memory request to enable a PUD-friendly data placement within a DRAM array in a horizontal data layout, and (ii) employ a pipeline-based execution model that overlaps bit-dependent and bit-independent in-DRAM operations to exploit bit-level parallelism across the memory array. We compare PipeDRAM to different computing platforms. PipeDRAM provides (i) 11.8x, 11.8x, and 80.4x higher performance and (ii) 25.4x, 3.0x, and 38.0x lower energy consumption than three state-of-the-art PUD systems. PipeDRAM incurs low area cost on top of a DRAM chip (1.86%) and CPU die (0.05%). To enable further research on PUD systems, we open-source PipeDRAM at https://github.com/CMU-SAFARI/PipeDRAM.

cs.AR↗

An Experimental Characterization of Combined RowHammer and RowPress Read Disturbance in Modern DRAM Chips

DRAM read disturbance can break memory isolation, a fundamental property to ensure system robustness (i.e., reliability, security, safety). RowHammer and RowPress are two different DRAM read disturbance phenomena. RowHammer induces bitflips in physically adjacent victim DRAM rows by repeatedly opening and closing an aggressor DRAM row, while RowPress induces bitflips by keeping an aggressor DRAM row open for a long period of time. In this study, we characterize a DRAM access pattern that combines RowHammer and RowPress in 84 real DDR4 DRAM chips from all three major DRAM manufacturers. Our key results show that 1) this combined RowHammer and RowPress pattern takes significantly smaller amount of time (up to 46.1% faster) to induce the first bitflip compared to the state-of-the-art RowPress pattern, and 2) at the minimum aggressor row activation count to induce at least one bitflip, the bits that flip are different across RowHammer, RowPress, and the combined patterns. Based on our results, we provide a key hypothesis that the read disturbance effect caused by RowPress from one of the two aggressor rows in a double-sided pattern is much more significant than the other.

cs.AR↗