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Titlebook: Quantum Computing: A Shift from Bits to Qubits; Rajiv Pandey,Nidhi Srivastava,Kanishka Tyagi Book 2023 The Editor(s) (if applicable) and T

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发表于 2025-3-21 18:39:03 | 显示全部楼层 |阅读模式
书目名称Quantum Computing: A Shift from Bits to Qubits
编辑Rajiv Pandey,Nidhi Srivastava,Kanishka Tyagi
视频video
概述Covers quantum computing from basic science and mathematics to advanced concepts and applications.Discusses both theoretical and practical viewpoints of quantum technologies.Serves as a reference for
丛书名称Studies in Computational Intelligence
图书封面Titlebook: Quantum Computing: A Shift from Bits to Qubits;  Rajiv Pandey,Nidhi Srivastava,Kanishka Tyagi Book 2023 The Editor(s) (if applicable) and T
描述The edited book is a consolidated handbook on quantum computing that covers quantum basic science and mathematics to advanced concepts and applications of quantum computing and quantum machine learning applied to diverse domains. The book includes dedicated chapters on introduction to quantum computing, its practical applications, the working behind quantum systems, quantum algorithms, quantum communications, and quantum cryptography. Each challenge that can be addressed with quantum technologies is further discussed from theoretical and practical perspectives. The book is divided into five parts: Part I: Scientific Theory for Quantum, Part II: Quantum Computing: Building Concepts, Part III: Quantum Algorithms- Theory & Applications, Part IV: Quantum Simulation Tools & Demonstrations, and Part V: Future Direction and Applications.
出版日期Book 2023
关键词Quantum Computing; Quantum Communications & Cryptography; Quantum Algorithms; Quantum Error Correction;
版次1
doihttps://doi.org/10.1007/978-981-19-9530-9
isbn_softcover978-981-19-9532-3
isbn_ebook978-981-19-9530-9Series ISSN 1860-949X Series E-ISSN 1860-9503
issn_series 1860-949X
copyrightThe Editor(s) (if applicable) and The Author(s), under exclusive license to Springer Nature Singapor
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Efficient Quantum Circuit for Karatsuba Multipliere been proved to have an improvement in qubits, garbage outputs, and ancilla inputs when it comes to comparison with recent research that have been done concerning this field. Bennett’s garbage removal strategy with the SWAP gate is used to remove garbage output from existing works in order to estab
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Quantum Conceptstum gates. Output of these gates when applied to various states such as . are discussed. The last part of this chapter will discuss the code to generate Bell states also called as quantum entanglement, the output of quantum entanglement using various visualizations supported by Qiskit such as qspher
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Quantum Neural Network for Image Classification Using TensorFlow Quantumork on digit classification. Also, the chapter discussed the advantages and limitations of quantum neural networks in image classification. The first section of the chapter introduced the quantum neural network models and the TensorFlow quantum library. Afterward, the data preparation steps such as
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Quantum Computing-Enabled Machine Learning for an Enhanced Model Training Approachantum machine learning takes these aspirations further by looking at the subatomic level to aid learning. Machine learning-based algorithms minimize a constrained multivariate function. Different algorithms have different hyper-parameters that need to be tuned for the trained model to generalize wel
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Numerical Modeling of the Major Temporal Arcade Using a Quantum Genetic Algorithm of the Mean distance to the closest point and Hausdorff distance obtaining the average values of 9.91 and 53.32, respectively, using a test set of images. Finally, in terms of computational time, the proposed method achieved an average of 7.51 s per image, which makes it suitable for computer-aided
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Entangled Quantum Neural Networkg the output layer of MLP with a quantum measurement operation (ECA); or by reconstructing the neurons in NN using regularizer to constrain state vectors to entangled states (QNN). With extensive experiments on the three most frequently used machine learning datasets from UCI, Abalone, Wine Quality
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