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Quantum Machine Learning for Ultra-Fast Data Validation and Processing
Author(s) | Raghavender Maddali |
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Country | India |
Abstract | Machine learning (ML) has revolutionized optical computing by enabling innovative solutions for data processing and signal analysis. Optical Machine Learning using Time-Lens Deep Neural Networks (TLDNNs) represents a significant advancement in leveraging photonic systems for high-speed computations. This approach integrates deep learning architectures with optical time-lens technology to achieve enhanced processing capabilities in real-time signal transformation, data encoding, and complex classification tasks. By leveraging the ultra-fast nature of optical computing, TLDNNs offer improved efficiency, reduced latency, and higher accuracy compared to traditional electronic computing methods. These advancements have broad implications for fields such as telecommunications, quantum computing, and biomedical imaging. The integration of deep learning into optical systems further enables adaptive learning mechanisms and self-optimized processing, making ML-driven optical computing a promising avenue for future research. This article explores the principles, applications, and performance advantages of Optical Machine Learning using TLDNNs, highlighting their potential in next-generation computational paradigms. |
Keywords | Machine learning, optical computing, time-lens, deep neural networks, signal processing, photonics, real-time processing, quantum computing, adaptive learning. |
Field | Computer > Artificial Intelligence / Simulation / Virtual Reality |
Published In | Volume 3, Issue 1, January 2022 |
Published On | 2022-01-05 |
Cite This | Quantum Machine Learning for Ultra-Fast Data Validation and Processing - Raghavender Maddali - IJLRP Volume 3, Issue 1, January 2022. DOI 10.5281/zenodo.15107545 |
DOI | https://doi.org/10.5281/zenodo.15107545 |
Short DOI | https://doi.org/g8986m |
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IJLRP DOI prefix is
10.70528/IJLRP
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