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Hilal Ameer

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Open access Jul 2026

Artificial Intelligence in Modern Physics: Opportunities, Challenges, And Future Directions

Artificial Intelligence (AI) is reshaping the field of physics by offering researchers more efficient ways to analyze data, simulate occurrences, and make scientific discoveries. Through machine learning and deep learning, physicists can now handle enormous datasets, both from labs and observations, much faster and with fewer errors than with conventional techniques. AI has touched various areas of physics like particle physics astrophysics quantum physics, and material sciences. Besides helping with particle recognition, it is also used for analyzing gravitational waves, looking for dark matter, and even designing new materials that exhibit extraordinary physical properties. This work firstly focuses on how AI can be leveraged in modern physics and at the same time identifies the key challenges and the possible directions that the AI-physics tandem could take in the future. It details how AI methods dramatically increase research productivity, make it possible to perform intricate simulations at a much faster pace, and help uncover even the subtle patterns and correlations in complex physical systems. The paper enlightened us about new tools being developed like Physics-Informed Neural Networks (PINNs) and generative AI models - these are hybrid approaches that integrate the fundamentals of physics and state-of-the-art computation techniques. As advantageous as AI is, it is not without shortcomings like the dependence on very good quality data, the difficulty in understanding how models make their decisions, the huge computational power they require, and the need to always comply with the laws of physics. Continuing to merge AI and physics could very well lead to a complete transformation of the way we do science, resulting in quicker discovery and deeper understanding of the universe at its core.

Sangi Bhanu Prasad, Kandela Ruchitha, Umme Habeeba et al. · 0 citations