Quantum computing is an emerging paradigm with the potential to offer significant computational advantage over conventional classical computing by exploiting quantum-mechanical principles such as entanglement and superposition. It is anticipated that this computational advantage of quantum computing will help to solve many complex and computationally intractable problems in several areas such as drug design, data science, clean energy, finance, industrial chemical development, secure communications, and quantum chemistry. In recent years, tremendous progress in both quantum hardware development and quantum software/algorithm have brought quantum computing much closer to reality. Indeed, the demonstration of quantum supremacy marks a significant milestone in the Noisy Intermediate Scale Quantum (NISQ) era - the next logical step being the quantum advantage whereby quantum computers solve a real-world problem much more efficiently than classical computing. As the quantum devices are expected to steadily scale up in the next few years, quantum decoherence and qubit interconnectivity are two of the major challenges to achieve quantum advantage in the NISQ era. Quantum computing is a highly topical and fast-moving field of research with significant ongoing progress in all facets. This article presents a comprehensive review of quantum computing literature, and taxonomy of quantum computing. Further, the proposed taxonomy is used to map various related studies to identify the research gaps. A detailed overview of quantum software tools and technologies, post-quantum cryptography and quantum computer hardware development to document the current state-of-the-art in the respective areas. We finish the article by highlighting various open challenges and promising future directions for research.
翻译:量子计算是一个新兴的范例,它有可能通过利用诸如缠绕和叠加等量子机械原则,为传统古典计算提供巨大的计算优势。预计量子计算这一计算优势将有助于解决药物设计、数据科学、清洁能源、金融、工业化学发展、安全通信和量子化学等若干领域许多复杂和计算棘手的问题。近年来,量子硬件开发和量子软件/水平软件的巨大进步使得量子计算更接近于现实。事实上,量子优势的展示标志着Noisy中级量子规模(NISQ)时代的一个重要里程碑。下一个逻辑步骤是量子优势,即量子计算机解决现实世界问题比经典计算效率高得多。由于量子装置预计在未来几年内会稳步扩大,量子脱色度和交错是国家新QISQ时代实现量子优势的两大挑战。 量子优势的计算是未来、快速移动的研究领域,在各个方面都具有重大持续进展。 这份文章是用于计算当前量质子研究的量子研究领域, 与各种量子研究相关的量子研究领域,我们用各种量子研究的量子研究, 进一步确定了各种量子研究。