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首页> 外文期刊>Journal of combinatorial mathematics and combinatorial computing >Random Number Generators: Metrics and Tests for Uniformity and Randomness
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Random Number Generators: Metrics and Tests for Uniformity and Randomness

机译:随机数生成器:一致性和随机性的度量和测试

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摘要

Random number generators are a small part of any computer simulation project. Yet they are the heart and the engine that drives the project. Often times software houses fail to understand the complexity involved in building a random number generator that will satisfy the project requirements and will be able to produce realistic results. Building a random number generator with a desirable periodicity, that is uniform, that produces all the random permutations with equal probability, and at random, is not an easy task. In this paper we provide tests and metrics for testing random number generators for uniformity and randomness. These tests are in addition to the already existing tests for uniformity and randomness, which we modify by running each test a large number of times on sub-sequences of random numbers, each of length n. The test result obtained each time is used to determine the probability distribution function. This eliminates the random number generator misclassification error. We also provide new tests for uniformity and randomness, the new tests for uniformity test the skewness of each one of the subgroups as well as the kurtosis. The tests for randomness, which include the Fourier spectrum, the phase spectrum, the discrete cosine transform spectrum, and the orthogonal wavelet domain, test for patterns not detected in the row data space. Finally we provide visual and acoustic tests.
机译:随机数生成器是任何计算机仿真项目的一小部分。然而,它们是驱动项目的心脏和引擎。通常,软件公司无法理解构建满足项目要求并能够产生实际结果的随机数生成器所涉及的复杂性。构建具有期望的周期性(即均匀的)的随机数生成器,以均匀的概率随机产生所有随机排列,这并非易事。在本文中,我们提供了用于测试随机数生成器的均匀性和随机性的测试和度量。这些测试是对已经存在的均匀性和随机性测试的补充,我们通过对每个随机数的子序列(每个长度为n)进行多次测试来对其进行修改。每次获得的测试结果用于确定概率分布函数。这消除了随机数生成器的错误分类错误。我们还提供了新的均匀性和随机性测试,新的均匀性测试测试了每个亚组的偏度以及峰度。随机性测试(包括傅立叶频谱,相位频谱,离散余弦变换频谱和正交小波域)用于测试在行数据空间中未检测到的模式。最后,我们提供视觉和听觉测试。

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  • 作者

    E. A. Yfantis; J. B. Pedersen;

  • 作者单位

    Image Processing, Computer Vision and Machine Intelligence Lab School of Computer Science College of Engineering University of Nevada, Las Vegas 4505 Maryland Parkway Las Vegas, NV, 89154-4019;

    rnImage Processing, Computer Vision and Machine Intelligence Lab School of Computer Science College of Engineering University of Nevada, Las Vegas 4505 Maryland Parkway Las Vegas, NV, 89154-4019;

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