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May 27, 2026Advanced Intelligent Systems1 citationsOpen Access

Ising Solver Using Vertical NAND Flash Memory

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SPSung‐Ho ParkYYYeongheon YangJBJong-Won Back

Key Points

  • This study aims to showcase the use of vertical NAND flash memory for solving combinatorial optimization problems effectively and efficiently.
  • Developed a Hopfield Neural Network using vertical NAND flash memory to simulate simulated annealing.
  • Targeted the max-cut problem as a case for evaluation.
  • Compared energy consumption with conventional GPU and FPGA-based solutions.
  • Achieved high accuracy in solving the max-cut problem.
  • Demonstrated significantly lower energy consumption compared to conventional methods.
  • Utilized existing vertical NAND flash memory without needing structural changes.

Abstract

Combinatorial optimization problems are notoriously hard for conventional computers to solve efficiently. While quantum and analog hardware have been explored to tackle these problems, they often face challenges such as high power use, complexity, or limited scalability. This study introduces a novel approach using commercial vertical NAND (V‐NAND) flash memory, commonly found in everyday devices, as the basis for solving these problems. By creatively adjusting how the memory cells operate, we implement a Hopfield Neural Network that can mimic simulated annealing, a method for finding near‐optimal solutions. Our system achieves high accuracy in solving the max‐cut problem while consuming significantly less energy than conventional graphics processing unit‐ or field‐programmable gate array‐based solutions. Unlike emerging technologies, our design uses existing V‐NAND flash memory without any structural changes, making it highly practical for large‐scale and energy‐efficient applications. This work demonstrates that V‐NAND flash memory is not just for storage but can also serve as a powerful tool for solving complex optimization problems.

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Cite This Study

Park et al. (2026) studied this question.

synapsesocial.com/papers/6a168a4b0c924ddd1bd58eeahttps://doi.org/10.1002/aisy.70439
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