From qubits to general-purpose computing: quantum advantage and its limits
1 Department of Electrical Engineering and Computer Science, Howard University, Washington, DC, United States.
2 Department of Electrical and Computer Engineering, Hampton University, Hampton, Virginia, United States.
Research Article
Open Access Research Journal of Engineering and Technology, 2026, 11(01), 023–033.
Article DOI: 10.53022/oarjet.2026.11.1.0054
Publication history:
Received on 13 June 2026; revised on 20 July 2026; accepted on 22 July 2026
Abstract:
Quantum computing has been championed as a ground-breaking technology due to its significant computational advantage over classical computing systems. At present, fault-tolerant, large-scale universal quantum computing remains elusive, and these issues remain central challenges in engineering, physics, and computer science. In theory, quantum advantage offers the potential to make many currently intractable computational problems practically solvable, with profound implications across science, industry, and computing. This paper examines the contemporary case for general-purpose quantum computing and the prevailing challenges that presently prevent its widespread adoption. It surveys the theoretical foundations of computation and quantum mechanics that underpin quantum computers, describes the quantum computational model and a working implementation on IBM's Qiskit platform, and evaluates the persistent barriers of noise, decoherence, and scalability that constrain quantum systems today. We conclude that quantum computing is best positioned, in the near term, as a specialized co-processor rather than a general-purpose replacement for classical computing.
Keywords:
Quantum Computing; Qubit; Computer Architecture; Quantum Logic Gates; Qiskit.
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Copyright information:
Copyright © 2026 Author(s) retain the copyright of this article. This article is published under the terms of the Creative Commons Attribution Liscense 4.0
