How to represent uncertainty via qudits: Probability distributions, regular, intuitionistic and picture fuzzy sets, F-transforms, etc.

O. Kosheleva, V. Kreinovich
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Abstract

While modern computers are fast, there are still many important practical situations in which we need even faster computations. It turns out that, due to the fact that the speed of all communications is limited by the speed of light, the only way to make computers drastically faster is to drastically decrease the size of computer’s components. When we decrease their size to sizes comparable with micro-sizes of individual molecules, it becomes necessary to take into account specific physics of the micro-world – known as quantum physics. Traditional approach to designing quantum computers – i.e., computers that take effect of quantum physics into account – was based on using quantum analogies of bits (2-state systems). However, it has recently been shown that the use of multi-state quantum systems – called qudits – can make quantum computers even more efficient. When processing data, it is important to take into account that in practice, data always comes with uncertainty. In this paper, we analyze how to represent different types of uncertainty by qudits.
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如何用量词表示不确定性:概率分布、正则、直觉和图像模糊集、f变换等。
虽然现代计算机速度很快,但在许多重要的实际情况下,我们仍然需要更快的计算。事实证明,由于所有通信的速度都受到光速的限制,使计算机速度大幅提高的唯一方法就是大幅减小计算机组件的尺寸。当我们将它们的大小缩小到与单个分子的微观大小相当时,就有必要考虑微观世界的特定物理学——即量子物理学。设计量子计算机的传统方法——即考虑到量子物理效应的计算机——是基于使用比特的量子类比(二态系统)。然而,最近有研究表明,使用多态量子系统(称为qudits)可以使量子计算机更加高效。在处理数据时,重要的是要考虑到在实践中,数据总是带有不确定性。本文分析了如何用量词来表示不同类型的不确定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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