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May 11, 2026ACS Omega0 citationsOpen Access

Programmable Speech Recognition Based on Cu/CuBiSe 2 /SrNbO 3 /W Memristors

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SJShan JinMWMeiyan WangZWZhewei Wang

Key Points

  • This research aims to improve speech recognition accuracy by leveraging high-performance memristors incorporated into a semi-hardware system.
  • Designed a Cu/CuBiSe2/SrNbO3/W memristor with a 106 ON/OFF ratio and 47.5 pW switching power.
  • Developed a semi-hardware speech recognition system using a cross-bar array of the memristors.
  • Evaluated the system's ability to identify four common directional sounds.
  • The memristor achieved a switching time of below 200 ns and 105 cycles duration.
  • The system accurately distinguished four common sounds, demonstrating practical applicability in speech recognition.
  • The research implies potential uses in brain-like computing and other advanced technologies.

Abstract

Traditional speech recognition systems heavily rely on manually designed acoustic features and are limited by the inherent constraints of models that overlook continuity and dynamic characteristics. This leads to reduced recognition accuracy and high energy consumption. Recurrent neural networks (RNNs) have shown significant potential in temporal-data processing owing to their strong autonomous learning capabilities and numerous adjustable parameters. Here, we present the design of a high-performance Cu/CuBiSe2/SrNbO3/W memristor, which exhibits responses to temporal signals and achieves a 106 ON/OFF ratio, 47.5 pW switching power, 105 cycles duration, and switching time below 200 ns. The memristor simulates several key synaptic behaviors well, such as dual-pulse facilitation and long-term potentiation/inhibition. An efficient semi-hardware speech recognition system was developed based on the buildup of cross-bar array of the memristor. As a demonstration, the array is capable of accurately identifying and distinguishing four common directional sounds. The current works show that the high-performance memristor is promising in applications in brain-like computing, image recognition, and storage technologies.

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Cite This Study

Jin et al. (2026) studied this question.

synapsesocial.com/papers/6a0171ce3a9f334c28271d21https://doi.org/10.1021/acsomega.5c13576
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