Interval Neutrosophic Cubic Bézier Curve Approximation Model for Complex Data

IF 0.8 Q3 MULTIDISCIPLINARY SCIENCES Malaysian Journal of Fundamental and Applied Sciences Pub Date : 2024-04-24 DOI:10.11113/mjfas.v20n2.3240
Siti Nur Idara Rosli, M. I. E. Zulkifly
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Abstract

Complex data is defined as data that has the qualities of huge data, a lack of data information, and uncertainty. This paper discussed constructing the interval neutrosophic cubic Bézier curve (INCBC) approximation model for complex data. To construct the interval neutrosophic data point (INDP) based on the definition of interval neutrosophic set (INS), interval neutrosophic relation (INR) and interval neutrosophic point (INP). Next is the introduction of an interval neutrosophic control point (INCP) that blends with the theory of interval neutrosophic set and the Bernstein basis function. Later, the interval neutrosophic cubic Bézier curve (INCBC) model is visualizing with a four-by-four control points relation approximates the curves for truth, false, and indeterminacy membership. At the end of this paper will demonstrate the algorithm for the creation of the interval neutrosophic cubic Bézier curve (INCBC). The scientific value of this work is the acceptance of complex uncertainty data. As a result, due to the fact it combines fuzzy geometric modelling, this approach has the potential to make a significant contribution to complex uncertainty modelling by using this spline which is Bézier curve model.
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复杂数据的区间中性立方贝塞尔曲线逼近模型
复杂数据是指具有海量数据、数据信息匮乏和不确定性等特征的数据。本文讨论了构建复杂数据的区间中性立方贝塞尔曲线(INCBC)近似模型。根据区间中性集(INS)、区间中性关系(INR)和区间中性点(INP)的定义,构建区间中性数据点(INDP)。接着,介绍了与区间中性集理论和伯恩斯坦基函数相融合的区间中性控制点(INCP)。随后,利用四乘四控制点关系近似真、假和不确定成员关系曲线,将区间中性立方贝塞尔曲线(INCBC)模型可视化。本文最后将演示创建区间中性立方贝塞尔曲线(INCBC)的算法。这项工作的科学价值在于接受复杂的不确定性数据。因此,由于它结合了模糊几何建模,这种方法有可能通过使用这种贝塞尔曲线模型的样条线为复杂不确定性建模做出重大贡献。
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CiteScore
1.40
自引率
0.00%
发文量
45
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