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Interactive Sonification Exploring Emergent Behavior Applying Models for Biological Information and Listening

机译:交互式声处理探索新的生物信息和听力行为的应用模型

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摘要

Sonification is an open-ended design task to construct sound informing a listener of data. Understanding application context is critical for shaping design requirements for data translation into sound. Sonification requires methodology to maintain reproducibility when data sources exhibit non-linear properties of self-organization and emergent behavior. This research formalizes interactive sonification in an extensible model to support reproducibility when data exhibits emergent behavior. In the absence of sonification theory, extensibility demonstrates relevant methods across case studies. The interactive sonification framework foregrounds three factors: reproducible system implementation for generating sonification; interactive mechanisms enhancing a listener's multisensory observations; and reproducible data from models that characterize emergent behavior. Supramodal attention research suggests interactive exploration with auditory feedback can generate context for recognizing irregular patterns and transient dynamics. The sonification framework provides circular causality as a signal pathway for modeling a listener interacting with emergent behavior. The extensible sonification model adopts a data acquisition pathway to formalize functional symmetry across three subsystems: Experimental Data Source, Sound Generation, and Guided Exploration. To differentiate time criticality and dimensionality of emerging dynamics, tuning functions are applied between subsystems to maintain scale and symmetry of concurrent processes and temporal dynamics. Tuning functions accommodate sonification design strategies that yield order parameter values to render emerging patterns discoverable as well as rehearsable, to reproduce desired instances for clinical listeners. Case studies are implemented with two computational models, Chua's circuit and Swarm Chemistry social agent simulation, generating data in real-time that exhibits emergent behavior. Heuristic Listening is introduced as an informal model of a listener's clinical attention to data sonification through multisensory interaction in a context of structured inquiry. Three methods are introduced to assess the proposed sonification framework: Listening Scenario classification, data flow Attunement, and Sonification Design Patterns to classify sound control. Case study implementations are assessed against these methods comparing levels of abstraction between experimental data and sound generation. Outcomes demonstrate the framework performance as a reference model for representing experimental implementations, also for identifying common sonification structures having different experimental implementations, identifying common functions implemented in different subsystems, and comparing impact of affordances across multiple implementations of listening scenarios.
机译:Sonification是一种开放式设计任务,用于构造声音,通知听众数据。了解应用程序上下文对于确定将数据转换为声音的设计要求至关重要。当数据源表现出自组织的非线性特性和紧急行为时,声化需要方法来保持可重复性。这项研究将可扩展模型中的交互声波形式化,以在数据表现出紧急行为时支持可再现性。在没有超音速理论的情况下,可扩展性证明了案例研究中的相关方法。交互式声波处理框架着眼于三个因素:用于生成声波处理的可重现系统实现;以及增强听者多感官观察的互动机制;以及来自表征紧急行为的模型的可复制数据。超模态注意力研究表明,具有听觉反馈的互动探索可以产生识别不规则模式和瞬态动力学的环境。超声化框架提供循环因果关系作为建模与突发行为交互的侦听器的信号路径。可扩展的超声处理模型采用数据获取途径来规范三个子系统之间的功能对称:实验数据源,声音生成和引导勘探。为了区分新兴动力学的时间临界度和维数,在子系统之间应用了调整功能,以保持并发过程和时间动力学的规模和对称性。调优功能可提供产生顺序参数值的声音化设计策略,以使出现的模式可发现和可演练,从而为临床听众再现所需的实例。案例研究是通过两个计算模型(蔡氏电路和Swarm Chemistry社会代理模拟)实现的,实时生成表现出紧急行为的数据。启发式听力是在结构化查询的情况下,通过多感官互动将听众临床关注数据超音波的非正式模型引入的。引入了三种方法来评估建议的声音化框架:侦听场景分类,数据流调整和声音化设计模式以对声音控制进行分类。针对这些方法评估了案例研究的实现,比较了实验数据和声音生成之间的抽象水平。结果证明框架性能可作为代表实验实现的参考模型,也可用于识别具有不同实验实现的通用声波结构,识别在不同子系统中实现的通用功能,以及在听音方案的多个实现之间比较费用的影响。

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