Submitted:
01 December 2025
Posted:
02 December 2025
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Abstract
Keywords:
1. Introduction
1.1. Methodology
1.2. Expected Outcomes
2. Technological Drivers of Quantum Computing
2.1. General History of Quantum Computing
2.1.1. Theoretical Foundations
2.1.2. Conceptualization
2.1.3. Development of Quantum Algorithms
2.1.4. Experimental Advances
2.1.5. Scaling and Commercialization
2.2. Key Technological Drivers
2.2.1. Hardware
2.2.2. Software
2.2.3. Networking
2.2.4. Data Management
2.3. Impact Review
2.3.1. Current Impact
2.3.2. Future Outlook
3. Quantum Computing Basics
3.1. Quantum
3.2. Quantum Mechanics
3.3. Quantum Computer
3.4. Qubit

3.4.1. Type of Qubit - Spin
3.4.2. Type of Qubit - Trapped Atoms and Ions
3.4.3. Type of Qubit-Photons
3.4.4. Type of Qubit - Superconducting Circuits

3.5. Superposition
3.6. Entanglement
3.7. No-Cloning Theorem
= αU(∣alive⟩ ⊗ ∣0⟩ ) + βU(∣dead⟩ ⊗ ∣0⟩ )
∴ α(∣alive⟩ ⊗ ∣alive⟩ ) + β(∣dead⟩ ⊗ ∣dead⟩ )
=
α2∣alive⟩ ⊗ ∣alive⟩ + αβ∣alive⟩ ⊗ ∣dead⟩ + βα∣dead⟩ ⊗ ∣alive⟩ + β2∣dead⟩ ⊗ ∣dead⟩
3.8. Quantum Algorithms
3.9. Quantum Circuits and Gates
4. Analysis
4.1. Analysis-Programming Model
| Feature | Quantum Computing | Cloud Computing | Classical Computing |
|---|---|---|---|
| Execution Model | Operations are inherently probabilistic and non- deterministic. Relies on the principles of quantum mechanics. |
Execution is scalable and resources are allocated on- demand. | Execution is deterministic, following a sequential or parallel processing approach. |
| Programming Languages | Specific quantum programming languages. Q#, Qiskit, etc. |
Wide range of languages Python, Java, and Go. | Conventional programming languages. C, C++, Java, Python, etc. |
4.1.1. Execution Model
- Task Execution
- Resource Management
- Error Handling
- Quantum Error Correction (QEC)
- Measurement Error Mitigation (MEM)
- Zero-Noise Richardson Extrapolation
4.1.2. Programming Languages
4.2. Analysis - Performance
| Performance Measure | Quantum Computing | Classical Computing | Cloud Computing |
|---|---|---|---|
| Speed | Very Fast | Fast | Fast |
| Power Consumption | 600 kWh | 504 MWh | 460 TWh |
| Scale | 127 qubits | 64-bits | N/A |
| Efficiency | Exponential speedup for factoring large numbers and searching databases. | Able to solve problems using classical algorithms in less time. | Ensured through resource optimization, automation of routine tasks, and robust disaster recovery solutions. |
4.2.1. Speed
4.2.2. Power Consumption
4.2.3. Scale
4.2.4. Efficiency
4.3. Analysis - Control Flow
| Aspects | Quantum Computing | Cloud Computing | Classical Computing |
| Entry Point | Initialization of qubits in a defined quantum state. | Client request initiates a service on cloud infrastructure. | Start of the main function or program entry point. |
| Execution Path | Sequential application of quantum gates. | Managed by the cloud provider, can involve distributed systems. | Sequential or parallel execution of instructions. |
| Function Calls | Invoking quantum subroutines (subcircuits). | Invocation of remote services or microservices. | Standard function or method calls within the program. |
| Exit Points | Measurement of qubits to obtain classical bits. | Completion of service request, returning response to client. | End of the main function or program, or a return statement. |
| Control Flow Graphs | Nodes represent quantum gates. Edges represent qubit paths. |
Nodes represent services. Edges represent data/service flow. |
Nodes represent instructions. Edges represent execution flow. |
4.4. Analysis - Scalability
4.4.1. Definition of Scaling in Quantum Computing
4.4.2. Leading Figures in Quantum Computing
4.4.3. Technical Challenges
4.4.4. Breakthrough in Achieving Scalability
4.5. Analysis - Potential Applications
| Application Area | Quantum Computing | Cloud Computing | Classical Computing |
|---|---|---|---|
| Data Security | Advantages: Highly encrypted data/information. Disadvantages: | Advantages: Encryption/decryption services. Disadvantages: Vulnerable to Quantum |
Advantages: Traditional cryptography. Disadvantages: |
| Limited technology. | Attacks & Cloud Operators. | Prone to cyber-attacks & inability to solve. | |
| Drug Discovery | Advantages: Accelerating molecular processes. Disadvantages: Accuracy problems. |
Advantages: Bioinformatic tools. Disadvantages: Privacy safety. | Advantages: Traditional methods. Disadvantages: High throughput screening. |
| Machine Learning/AI | Advantages: Accelerating AI algorithms. Disadvantages: Qubit stability. |
Advantages: Training models across multiple devices. Disadvantages: Latency issues. |
Advantages: Sequential processing/algorithms. Disadvantages: Slower processing/training. |
| Optimization | Advantages: Solving complex problems. Disadvantages: Limited resources. |
Advantages: Distributed optimization algorithms. Disadvantages: Scalability challenges. |
Advantages: Iterative methods. Disadvantages: Computational complexity. |
| Simulation | Advantages: Precise control & can be tackled in any size. Disadvantages: Scalability of many qubits. |
Advantages: Environment simulations. Disadvantages: Dependency on sources. | Advantages: Mathematical simulation systems. Disadvantages: Expensive systems are needed. |
- Drug Discovery
- A. Density Functional Theory (DFT)

- B. Computer-Aided Drug Design

- Machine Learning/AI
- Optimization


- Data Security
- A. Quantum Key Distribution
- B. Quantum Random Number Generation
5. Lesson Learnt
6. Conclusions
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| Programming Language | Product of | Used for |
|---|---|---|
| Qiskit | International Business Machines Corporation (IBM) | Create, simulate, and execute quantum circuits on IBM Quantum devices |
| Cirq | Create, simulate, and execute quantum circuits on Google Quantum processors | |
| Q# | Microsoft | Write quantum algorithms using Microsoft Quantum Development Kit, integrating with Azure Quantum |
| Quipper | University of Oxford, etc. | Algorithms development based on Haskell |
| pyQuil | Rigetti Computing | Create, simulate, and execute quantum circuits on Rigetti’s Quantum Virtual Machine and hardware. |
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