NEW SEQUENCE ALIGNMENT ALGORITHM USING AI RULES AND DYNAMIC SEEDS

Suchindra, Preetam Nagaraj
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Abstract

DNA sequence alignment is important today as it is usually the first step in finding gene mutation, evolutionary similarities, protein structure, drug development and cancer treatment. Covid-19 is one recent example. There are many sequencing algorithms developed over the past decades but the sequence alignment using expert systems is quite new. To find DNA sequence alignment, dynamic programming was used initially. Later faster algorithms used small DNA sequence length of fixed size to find regions of similarity, and then build the final alignment using these regions. Such systems were not sensitive but were fast. To improve the sensitivity, we propose a new algorithm which is based on finding maximal matches between two sequences, find seeds between them, employ rules to find more seeds of varying length, and then employ a new stitching algorithm, and weighted seeds to solve the problem
基于人工智能规则和动态种子的序列比对新算法
DNA序列比对在今天非常重要,因为它通常是发现基因突变、进化相似性、蛋白质结构、药物开发和癌症治疗的第一步。Covid-19就是最近的一个例子。在过去的几十年里,有许多测序算法被开发出来,但利用专家系统进行序列比对是一种新的方法。为了寻找DNA序列比对,最初采用动态规划方法。后来,更快的算法使用固定长度的小DNA序列长度来找到相似的区域,然后使用这些区域构建最终的比对。这种系统不敏感,但速度很快。为了提高算法的灵敏度,本文提出了一种新的算法,该算法首先寻找两个序列之间的最大匹配,然后在序列之间寻找种子,利用规则找到更多的变长种子,然后采用新的拼接算法,并对种子进行加权求解
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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