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Quantum Chemistry
Advances and Challenges in the Integration of Quantum Computing in Artificial Intelligence: A Systematic Review
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Authors: Yesenia del Rosario Vásquez Valencia, Alvaro Nilmer Sumaran Flores, Jean Pieer Salcedo Huarez, Joaquín Alberto Carbajal Palomino, Francisco Manuel Hilario Falcon, Omar Perez Huaman, Liliana Bayona Castañeda
Year
2026
Paper ID
14042
Status
Peer-reviewed
Abstract Read
~2 min
Abstract Words
122
Citations
N/A
Abstract
The main objective of the research is to analyze the incorporation of quantum computing in artificial intelligence, focusing on applications, tools, and challenges. Through a systematic approach of literature review in academic databases, a growing interest in this integration was detected, particularly in fields such as physics, medicine, chemistry, and cybersecurity. It highlights the effectiveness of quantum algorithms in complex Artificial Intelligence issues such as factorization and unordered search. Challenges include the vulnerability of qubits and the demand for scalable quantum hardware. The research recognizes booming tools for quantum data modeling for Artificial Intelligence, examines innovative applications in materials design and agriculture, and suggests areas for future research. It highlights the importance of creating more efficient quantum algorithms and optimizing their integration.
Why This Paper Matters
- This paper contributes to the Quantum Machine Learning research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- The main objective of the research is to analyze the incorporation of quantum computing in artificial intelligence, focusing on applications, tools, and challenges.
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