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Öğe The Impact of Irrationals on the Range of Arctan Activation Function for Deep Learning Models(İstanbul Gelişim Üniversitesi Yayınları / Istanbul Gelisim University Press, 2024) Tümer Sivri, Talya; Pervan Akman, Nergis; Berkol, AliDeep learning has been applied in numerous areas, significantly impacting applications that address real-life challenges. Its success across a wide range of domains is partly attributed to activation functions, which introduce non-linearity into neural networks, enabling them to effectively model complex relationships in data. Activation functions remain a key area of focus for artificial intelligence researchers aiming to enhance neural network performance. This paper comprehensively explains and compares various activation functions, particularly emphasizing the arc tangent and its specific variations. The primary focus is on evaluating the impact of these activation functions in two different contexts: a multiclass classification problem applied to the Reuters Newswire dataset and a time-series prediction problem involving the energy trade value of Türkiye. Experimental results demonstrate that variations of the arc tangent function, leveraging irrational numbers such as π (pi), the golden ratio (ϕ), Euler number (e), and a self-arctan formulation, yield promising outcomes. The findings suggest that different variations perform optimally for specific tasks: arctan ϕ achieves superior results in multiclass classification problems, while arctan e is more effective in time-series prediction challenges.