An Efficient Algorithm for Group Testing with Runlength Constraints

Marco Dalai, Stefano Della Fiore, Adele A. Rescigno, Ugo Vaccaro
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引用次数: 0

Abstract

In this paper, we provide an efficient algorithm to construct almost optimal $(k,n,d)$-superimposed codes with runlength constraints. A $(k,n,d)$-superimposed code of length $t$ is a $t \times n$ binary matrix such that any two 1's in each column are separated by a run of at least $d$ 0's, and such that for any column $\mathbf{c}$ and any other $k-1$ columns, there exists a row where $\mathbf{c}$ has $1$ and all the remaining $k-1$ columns have $0$. These combinatorial structures were introduced by Agarwal et al. [1], in the context of Non-Adaptive Group Testing algorithms with runlength constraints. By using Moser and Tardos' constructive version of the Lov\'asz Local Lemma, we provide an efficient randomized Las Vegas algorithm of complexity $\Theta(t n^2)$ for the construction of $(k,n,d)$-superimposed codes of length $t=O(dk\log n +k^2\log n)$. We also show that the length of our codes is shorter, for $n$ sufficiently large, than that of the codes whose existence was proved in [1].
具有运行长度限制的分组测试高效算法
在本文中,我们提供了一种高效算法,用于构建几乎最优的具有运行长度限制的$(k,n,d)$叠加码。长度为 $t$ 的$(k,n,d)$叠加代码是一个 $t \times n$ 的二进制矩阵,使得每列中的任意两个 1 之间都至少有 $d$ 的 0 隔开,并且对于任意一列 $\mathbf{c}$ 和任意其他 $k-1$ 列,都存在一行 $\mathbf{c}$ 为 1$,其余所有 $k-1$ 列均为 0$。这些组合结构是 Agarwal 等人[1]在有运行长度限制的非自适应分组测试算法中引入的。通过使用 Moser 和 Tardos 的 Lov\'asz Local Lemma 的构造版本,我们提供了一种复杂度为 $\Theta(tn^2)$ 的高效随机拉斯维加斯算法,用于构建长度为 $t=O(dk\log n +k^2\log n)$ 的 $(k,n,d)$ 叠加码。我们还证明,在 $n$ 足够大的情况下,我们的编码长度比 [1] 中证明其存在的编码长度更短。
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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