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Influence of social network on method musical composition

机译:社交网络对方法音乐创作的影响

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摘要

The method of musical composition (MMC) is a metaheuristic based on sociocultural creativity systems. Within the MMC, models of social influence and social learning are used and integrated in a social network, which is composed of a set of individuals with links between them and involves a set of interaction rules. In this paper, a comparative study on the performance of the MMC with different network structures is proposed. Sixteen benchmark nonlinear optimization problems are solved, taking into account nine social topologies, which are: (a) linear, (b) tree, (c) star, (d) ring, (e) platoons, (f) von Neumann, (g) full connection, (h) random and (i) small world. In addition, the update of each topology structure was tested according to four different strategies: one static, two dynamic and one self-adaptive states. An exhaustive statistical analysis of the obtained numerical results indicates that the social dynamics has no significant impact on the MMC's behavior. However, the topology structures can be classified into groups that consistently influence the performance level of the MMC. More precisely, a structure characterized by a low value of its mean number of neighbors and a rather fast information transfer process (star topology) performs in a radically opposite way as structures where each agent has many neighbors (random and complete topologies). These observations allow to provide some guidelines for the selection of a network topology used within a social algorithm.
机译:音乐创作方法(MMC)是一种基于社会文化创造力系统的元启发法。在MMC内,使用社会影响力和社会学习模型并将其集成到一个社交网络中,该社交网络由一组具有相互联系的个人组成,并涉及一组交互规则。本文对不同网络结构的MMC的性能进行了比较研究。考虑到九种社会拓扑,解决了十六种基准非线性优化问题,它们是:(a)线性,(b)树,(c)星形,(d)环,(e)排,(f)冯·诺伊曼() g)完全连接,(h)随机,(i)小世界。此外,还根据四种不同的策略对每种拓扑结构的更新进行了测试:一种静态,两种动态和一种自适应状态。对获得的数值结果进行详尽的统计分析表明,社会动态对MMC的行为没有重大影响。但是,拓扑结构可以分为几组,这些组会持续影响MMC的性能水平。更准确地说,以每个邻居具有许多邻居(随机和完整拓扑)的结构为特征,其特点是邻居的平均价值低且信息传递过程非常快(星形拓扑)。这些观察结果为选择社交算法中使用的网络拓扑提供了一些指导。

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