Functionally-Complete Boolean Logic in Real DRAM Chips: Experimental Characterization and Analysis
Ismail Emir Yüksel, Yahya Can Tugrul, Ataberk Olgun, F. Nisa Bostanci, Abdullah Giray Yaglikçi, Geraldo F. Oliveira, Haocong Luo, Juan Gómez-Luna, Mohammad Sadrosadati, Onur Mutlu
摘要
Processing-using-DRAM (PuD) is an emerging paradigm that leverages the analog operational properties of DRAM circuitry to enable massively parallel in-DRAM computation. PuD has the potential to significantly reduce or eliminate costly data movement between processing elements and main memory. A common approach for PuD architectures is to make use of bulk bitwise computation (e.g., AND, OR, NOT). Prior works experimentally demonstrate three-input MAJ (i.e., MAJ3) and two-input AND and OR operations in commercial off-the-shelf (COTS) DRAM chips. Yet, demonstrations on COTS DRAM chips do not provide a functionally complete set of operations (e.g., NAND or AND and NOT).
We experimentally demonstrate that COTS DRAM chips are capable of performing 1) functionally-complete Boolean operations: NOT, NAND, and NOR and 2) many-input (i.e., more than two-input) AND and OR operations. We present an extensive characterization of new bulk bitwise operations in 256 off-theshelf modern DDR4 DRAM chips. We evaluate the reliability of these operations using a metric called success rate: the fraction of correctly performed bitwise operations. Among our 19 new observations, we highlight four major results. First, we can perform the NOT operation on COTS DRAM chips with a 98.37% success rate on average. Second, we can perform up to 16-input NAND, NOR, AND, and OR operations on COTS DRAM chips with high reliability (e.g., 16-input NAND, NOR, AND, and OR with an average success rate of 94.94%, 95.87%, 94.94%, and 95.85%, respectively). Third, data pattern only slightly affects NAND, NOR, AND, and OR operations. Our results show that executing NAND, NOR, AND, and OR operations with random data patterns decreases the success rate compared to all logic-1/logic-0 patterns by 1.39%, 1.97%, 1.43%, and 1.98%, respectively. Fourth, NOT, NAND, NOR, AND, and OR operations are highly resilient to temperature changes, with small success rate fluctuations of at most 1.66% among all the tested operations when the temperature is increased from 50 • C to 95 • C. We believe these empirical results demonstrate the promising potential of using DRAM as a computation substrate.
To aid future research and development, we open-source our infrastructure at https://github.com/CMU-SAFARI/FCDRAM
问问这篇 Paper
智能体会读完全文。
Lune 把这篇 Paper 索引到了每一个公式,引用它的顶会 Paper 也一样。你提问,回答直接引用原文。
引用它的顶会 Paper13
- Chronus: Understanding and Securing the Cutting-Edge Industry Solutions to DRAM Read DisturbanceOguzhan Canpolat, A. Giray Yaglikçi, Geraldo F. Oliveira, Ataberk Olgun 等HPCA 2025 · 被引用 23 次
- Spatial Variation-Aware Read Disturbance Defenses: Experimental Analysis of Real DRAM Chips and Implications on Future SolutionsAbdullah Giray Yaglikçi, Yahya Can Tugrul, Geraldo F. Oliveira, Ismail Emir Yüksel 等HPCA 2024 · 被引用 22 次
- ColumnDisturb: Understanding Column-based Read Disturbance in Real DRAM Chips and Implications for Future SystemsIsmail Emir Yuksel, Ataberk Olgun, Nisa Bostanci, Haocong Luo 等MICRO 2025 · 被引用 15 次
- Understanding RowHammer Under Reduced Refresh Latency: Experimental Analysis of Real DRAM Chips and Implications on Future SolutionsYahya Can Tugrul, A. Giray Yaglikçi, Ismail Emir Yüksel, Ataberk Olgun 等HPCA 2025 · 被引用 10 次
- PuDHammer: Experimental Analysis of Read Disturbance Effects of Processing-using-DRAM in Real DRAM ChipsIsmail Emir Yuksel, Akash Sood, Ataberk Olgun, Oguzhan Canpolat 等ISCA 2025 · 被引用 6 次
它引用的顶会 Paper14
- SIMDRAM: a framework for bit-serial SIMD processing using DRAMNastaran Hajinazar, Geraldo F. Oliveira, Sven Gregorio, João Dinis Ferreira 等ASPLOS 2021 · 被引用 182 次
- ELP2IM: Efficient and Low Power Bitwise Operation Processing in DRAMXin Xin, Youtao Zhang, Jun YangHPCA 2020 · 被引用 84 次
- SISA: Set-Centric Instruction Set Architecture for Graph Mining on Processing-in-Memory SystemsMaciej Besta, Raghavendra Kanakagiri, Grzegorz Kwasniewski, Rachata Ausavarungnirun 等MICRO 2021 · 被引用 78 次
- A Deeper Look into RowHammer's Sensitivities: Experimental Analysis of Real DRAM Chipsand Implications on Future Attacks and DefensesLois Orosa, Abdullah Giray Yaglikçi, Haocong Luo, Ataberk Olgun 等MICRO 2021 · 被引用 74 次
- FIGARO: Improving System Performance via Fine-Grained In-DRAM Data Relocation and CachingYaohua Wang, Lois Orosa, Xiangjun Peng, Yang Guo 等MICRO 2020 · 被引用 72 次
相关 Paper
- FracDRAM: Fractional Values in Off-the-Shelf DRAMFei Gao, Georgios Tziantzioulis, David WentzlaffMICRO 2022 · 被引用 22 次
- MIMDRAM: An End-to-End Processing-Using-DRAM System for High-Throughput, Energy-Efficient and Programmer-Transparent Multiple-Instruction Multiple-Data ComputingGeraldo F. Oliveira, Ataberk Olgun, Abdullah Giray Yaglikçi, F. Nisa Bostanci 等HPCA 2024 · 被引用 44 次
- PuDghost: Experimental Analysis of Computation Result Corruption in Processing-Using-Dram Operations on Real Dram Chips and Implications for Future SystemsDaichi Tokuda, Ismail Emir Yüksel, Tatsuya Kubo, Ataberk Olgun 等ISCA 2026 · 被引用 4 次
- CODIC: A Low-Cost Substrate for Enabling Custom In-DRAM Functionalities and OptimizationsLois Orosa, Yaohua Wang, Mohammad Sadrosadati, Jeremie S. Kim 等ISCA 2021 · 被引用 26 次
- WISEDRAM: A Reliable Bitwise In-DRAM AcceleratorMohammad Arman Soleimani, Nezam Rohbani, Adrián Cristal Kestelman, Osman S. Unsal 等DAC 2025 · 被引用 1 次
