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A Dynamic Hyperbolic Surface Model for Responsive Data Mining

机译:一种响应数据挖掘动态双曲面模型

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Data management systems impose structure on data via a static representation schema or data structure. Information from the data is extracted by executing queries based on predefined operators. This paradigm restricts the searchability of the data to concepts and relationships that are known or assumed to exist among the objects. While this is an effective and efficient means of retrieving simple information, we propose that such a structure severely limits the ability to derive breakthrough knowledge that exists in data under the guise of “unknown unknowns.” A dynamic system will alleviate this dependence, allowing theoretically infinite projections of the data to reveal discoverable relationships that are hidden by traditional use case-driven, static query systems. In this paper, we propose a framework for a data-responsive query algebra based on a dynamic hyperbolic surface model. Such a model could provide more intuitive access to analytics and insights from massive, aggregated datasets than existing methods. This model will significantly alter the means of addressing the underlying data by representing it as an arrangement on a dynamic, hyperbolic plane. Consequently, querying the data can be viewed as a process similar to quantum annealing, in terms of characterizing data representation as an energy minimization problem with numerous minima.
机译:数据管理系统通过静态表示模式或数据结构施加数据。通过基于预定义的运算符执行查询来提取数据的信息。此范例将数据的可搜索性限制为对象中已知或假设存在的概念和关系。虽然这是检索简单信息的有效和有效的方法,但我们建议这样的结构严重限制了在“未知未知数”的幌子下存在突破性知识的能力。动态系统将减轻这种依赖性,允许数据的无限投影来揭示传统使用案例驱动的静态查询系统隐藏的可发现关系。在本文中,我们提出了一种基于动态双曲面模型的数据响应查询代数的框架。这样的模型可以提供比现有方法更直观地访问来自大规模,聚合数据集的分析和洞察。该模型通过将其表示为动态,双曲线平面上的布置来显着改变解决底层数据的方法。因此,就把数据表示作为许多最小值的能量最小化问题而言,可以将数据视为类似于Quantum退火的过程。

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