Algorithmic Trading and AI: A Review of Strategies and Market Impact

Wilhelmina Afua Addy, Adeola Olusola Ajayi-Nifise, Binaebi Gloria Bello, Sunday Tubokirifuruar Tula, Olubusola Odeyemi, Titilola Falaiye
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Abstract

This review explores the dynamic intersection of algorithmic trading and artificial intelligence (AI) within financial markets. It delves into the evolution, strategies, and broader market impact of algorithmic trading fueled by AI technologies. Examining the symbiotic relationship between advanced algorithms and AI, the review navigates through the various strategies employed, shedding light on their implications for market efficiency, liquidity, and overall stability. From high-frequency trading to machine learning-driven predictive analytics, this review unveils the multifaceted landscape of algorithmic trading in the era of AI, presenting both opportunities and challenges for financial markets. The review begins by tracing the historical development of algorithmic trading, emphasizing the paradigm shift with the integration of AI. From traditional programmatic trading to the emergence of sophisticated algorithms driven by machine learning and deep learning, the evolution sets the stage for a comprehensive understanding of the subject. An in-depth analysis of diverse algorithmic trading strategies unfolds, covering areas such as trend following, statistical arbitrage, market making, and sentiment analysis. The incorporation of AI introduces adaptive learning capabilities, enabling algorithms to evolve and optimize strategies based on real-time market conditions. Exploring the impact of algorithmic trading on financial markets, the review examines how AI-driven strategies contribute to market efficiency, liquidity provision, and price discovery. It dissects the implications for traditional market structures, regulatory considerations, and the potential risks associated with algorithmic dominance. Acknowledging the transformative power of algorithmic trading with AI, the review critically assesses the challenges and ethical considerations. From algorithmic bias to systemic risks, the review delves into the darker corners of this technological advancement, prompting a reflection on the need for responsible and transparent practices. The review concludes by peering into the future trajectory of algorithmic trading fueled by AI. Anticipated innovations, regulatory responses, and the evolving landscape of financial markets are discussed, offering insights into the ongoing transformation and potential disruptions in the realm of algorithmic trading. In essence, this review provides a nuanced perspective on the intricate relationship between algorithmic trading and AI, offering a comprehensive understanding of their strategies and the transformative impact on financial markets.
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算法交易与人工智能:策略与市场影响综述
本综述探讨了金融市场中算法交易与人工智能(AI)的动态交叉。它深入探讨了由人工智能技术推动的算法交易的演变、策略和更广泛的市场影响。通过研究先进算法与人工智能之间的共生关系,该报告介绍了所采用的各种策略,揭示了它们对市场效率、流动性和整体稳定性的影响。从高频交易到机器学习驱动的预测分析,这篇综述揭示了人工智能时代算法交易的多面性,为金融市场带来了机遇和挑战。综述首先追溯了算法交易的历史发展,强调了与人工智能融合后的模式转变。从传统的程序化交易到机器学习和深度学习驱动的复杂算法的出现,这一演变为全面了解这一主题奠定了基础。本书对各种算法交易策略进行了深入分析,涵盖了趋势跟踪、统计套利、做市和情绪分析等领域。人工智能的融入引入了自适应学习功能,使算法能够根据实时市场条件不断发展和优化策略。本综述探讨了算法交易对金融市场的影响,研究了人工智能驱动的策略如何促进市场效率、流动性提供和价格发现。报告还剖析了算法主导地位对传统市场结构、监管因素和潜在风险的影响。在认识到人工智能算法交易的变革力量的同时,本综述对所面临的挑战和道德考量进行了批判性评估。从算法偏见到系统性风险,评论深入探讨了这一技术进步的阴暗角落,促使人们反思负责任和透明做法的必要性。最后,评述对人工智能推动的算法交易的未来轨迹进行了展望。报告讨论了预期的创新、监管对策以及金融市场不断演变的格局,为算法交易领域正在进行的变革和潜在的破坏提供了见解。从本质上讲,这篇综述从细微处透视了算法交易与人工智能之间错综复杂的关系,提供了对它们的策略和对金融市场的变革性影响的全面理解。
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