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Re-constructing memory using quantized electronic music and a'Toridion byte' quantum algorithm: Creating images using zero logic quantum probabilistic neural networks (ZLQNN)

机译:使用量化的电子音乐和“ Toridion字节”量子算法重建内存:使用零逻辑量子概率神经网络(ZLQNN)创建图像

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Quantum theory applied to data analytics using a quantum computer has become the leading research endeavour to find a way to store and retrieve data using the nano-sized world of molecular structures. Much of the theorization that is applied to quantum computer development relies on a conceptual framework largely based on metaphors to understand the behaviour of sub-atomic elements within a quantum field. One aspect of the quantum field is the entanglement of elements, whereby behaviours of two distinct elements respond to change independent of their location. The Toridion quantum algorithm was used to scatter pre-recorded sound into frequency amplitudes within a simulated quantum computer environment. The sounds, were composed by using quantum cognitive meta models for the creation of electronic music compositions. The Toridion Encoder creates highly compressed 'glyphs' of the sounds whilst simultaneously creating a probabilistic quantum neural network within the cyclic mental workspace of the computer. This article will explain how using a quantum compositional framework in composing electronic music orchestrations can aid in retrieving lost memories of either images or verbal expressions. The implications for exploring a quantum language (exo-language) formed by self-organizing principles in the quantum field and interpreted using the Toridion quantum algorithm's search function will also be discussed.
机译:使用量子计算机应用于数据分析的量子理论已成为寻找使用纳米级分子结构世界存储和检索数据的方法的主要研究工作。应用于量子计算机开发的许多理论化很大程度上依赖于一个基于隐喻的概念框架,以理解量子场内亚原子元素的行为。量子场的一个方面是元素的纠缠,由此两个不同元素的行为独立于其位置响应变化。 Toridion量子算法用于在模拟量子计算机环境中将预先录制的声音散射为频率幅度。声音是通过使用量子认知元模型来创建电子音乐作品而组成的。 Toridion编码器创建声音的高度压缩“字形”,同时在计算机的循环思维工作空间内创建概率量子神经网络。本文将说明如何使用量子成分框架来构成电子音乐编排,以帮助检索图像或言语表达的遗失记忆。还将探讨探索由量子域中的自组织原理形成并使用Toridion量子算法的搜索功能进行解释的量子语言(外语言)的含义。

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