Exploring Quantum Computing: Principles and Applications

Main Article Content

Sidak Bawa

Abstract

The discipline of quantum computing, a cutting-edge area at the nexus of computer science and quantum physics, has the potential to revolutionize computation. Quantum computers employ quantum bits, also known as qubits, as opposed to classical computers, which use bits as the lowest unit of information. Utilizing the core concepts of quantum mechanics—superposition and entanglement—these qubits are able to conduct calculations that are not possible for conventional computers. To fully appreciate the possibilities and difficulties of quantum computing, one must comprehend these ideas.


Superposition is a fundamental idea in quantum computing. A bit in classical computing can be in one of two states: either 0 or 1. A qubit, on the other hand, is capable of being in both states simultaneously in superposition. The computing capacity of quantum systems is increased exponentially by this capability. For example, a quantum computer offers huge processing parallelism since it can process several possibilities at once, but a classical computer can only process one possible answer at a time. Quantum computing also relies on entanglement. When qubits entangle, their states are directly correlated with one another, independent of their distance from one another. Quantum computers can now do intricate computations at previously unheard-of rates because to this phenomena. Quantum computers can factor enormous numbers, optimize intricate systems, and simulate chemical structures for drug development thanks to entanglement and superposition, which are currently impossible for conventional computers.

Article Details

How to Cite
Bawa, S. (2024). Exploring Quantum Computing: Principles and Applications. Journal of Quantum Science and Technology, 1(3), 57–69. https://doi.org/10.36676/jqst.v1.i3.27
Section
Original Research Articles

References

Caleffi, M., Cacciapuoti, A.S. and Bianchi, G., 2018, September. Quantum internet: From communication to distributed computing!. In Proceedings of the 5th ACM international conference on nanoscale computing and communication (pp. 1-4).

Maheshwari, D., Garcia-Zapirain, B. and Sierra-Sosa, D., 2022. Quantum machine learning applications in the biomedical domain: A systematic review. Ieee Access, 10, pp.80463-80484.

Website: https://en.wikipedia.org/wiki/Quantum_decoherence

Website: https://medium.com/@sanchit.madane.2003/shors-algorithm-bf431cac2f24

Website: https://murshedsk135.medium.com/grovers-algorithm-quantum-leap-in-search-efficiency-996023862769

Website: https://quantumpoet.com/quantum-computing-introduction/

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