Polyphase Sequences with Good Correlation Properties and Merit Factor Based on Cyclic Algorithm Approach

Rajasekhar Manda, P. R. Kumar
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Abstract

Polyphase Sequences with good autocorrelation properties, such as Pn {n=1,2,3,4,x}, Frank, Golomb, and the Chu, find many applications in RADAR, SONAR, and communication. Merit Factor (MF), ISL (Integrated Sidelobe Level) are performance measures used to evaluate the goodness of any sequence. This work uses a cyclic algorithm approach to generate Polyphase sequences with lengths ranging from 10^2 to 10^3 . The merit factor and correlation features of these cyclic algorithm techniques outperform the standard scenario. The average merit factor for lengths of 100 and 1000 was found to be 40.39 and 92.02, respectively. The correlation graphs of polyphase sequences using the cyclic technique are compared to the normal case.P2 sequences with a higher merit factor for odd integer square length were made achievable using this method. The merit factor values and correlation plots of four successive even and odd integer squared length sequences were compared.For these Polyphase sequences, a cyclic algorithmic approach for collecting design metrics has been implemented in MATLAB.
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基于循环算法的具有良好相关特性和优点因子的多相序列
具有良好自相关特性的多相序列,如Pn {n=1,2,3,4,x}, Frank, Golomb和Chu,在雷达,声纳和通信中有许多应用。优点因子(MF), ISL(综合旁瓣电平)是用来评估任何序列的优良性的性能指标。这项工作使用循环算法方法来生成长度范围为10^2到10^3的多相序列。这些循环算法技术的优点因子和相关特性优于标准场景。长度为100和1000的平均价值因子分别为40.39和92.02。用循环技术得到了多相序列的相关图,并与正常情况进行了比较。利用该方法可以实现对奇数平方长度具有较高优点因子的P2序列。比较了4个连续的偶数和奇数平方长度序列的优点因子值和相关图。对于这些多相序列,在MATLAB中实现了收集设计度量的循环算法方法。
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