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A simplified model of biosonar echoes from foliage and the properties of natural foliages

机译:树叶生物声波回波和天然树叶特性的简化模型

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摘要

Foliage echoes could play an important role in the sensory ecology of echolocating bats, but many aspects of their sensory information content remain to be explored. A realistic numerical model for these echoes could support the development of hypotheses for the relationship between foliage properties and echo parameters. In prior work by the authors, a simple foliage model based on circular disks distributed uniformly in space has been developed. In the current work, three key simplifications used in this model have been examined: (i) representing leaves as circular disks, (ii) neglecting shading effects between leaves, and (iii) the uniform spatial distribution of the leaves. The target strengths of individual leaves and shading between them have been examined in physical experiments, whereas the impact of the spatial leaf distribution has been studied by modifying the numerical model to include leaf distributions according to a biomimetic model for natural branching patterns (L-systems). Leaf samples from a single species (leatherleaf arrowwood) were found to match the relationship between size and target strength of the disk model fairly well, albeit with a large variability part of which could be due to unaccounted geometrical features of the leaves. Shading between leaf-sized disks did occur for distances below 50 cm and could hence impact the echoes. Echoes generated with L-system models in two distinct tree species (ginkgo and pine) showed consistently more temporal inhomogeneity in the envelope amplitudes than a reference with uniform distribution. However, these differences were small compared to effects found in response to changes in the relative orientation of simulated sonar beam and foliage. These findings support the utility of the uniform leaf distribution model and suggest that bats could use temporal inhomogeneities in the echoes to make inferences regarding the relative positioning of their sonar and a foliage.
机译:叶子回声在回声蝙蝠的感官生态中可能起重要作用,但其感官信息内容的许多方面仍有待探索。这些回波的一个现实的数值模型可以支持关于树叶特性和回波参数之间关系的假设的发展。在作者的先前工作中,已经开发了一种基于在空间上均匀分布的圆盘的简单树叶模型。在当前工作中,已经研究了此模型中使用的三个关键简化:(i)将叶子表示为圆盘;(ii)忽略了叶子之间的阴影效果;(iii)叶子的均匀空间分布。在物理实验中已经检查了单个叶子的目标强度和它们之间的阴影,而根据自然分支模式(L系统),通过根据仿生模型修改数值模型以包括叶子分布,研究了空间叶子分布的影响。 )。发现来自单个物种(皮革叶箭木)的叶片样品可以很好地匹配圆盘模型的大小与目标强度之间的关系,尽管其中较大的可变性部分可能是由于叶片的几何特征无法说明。在小于50 cm的距离上,确实会出现叶片大小的圆盘之间的阴影,因此可能会影响回波。用L系统模型在两种不同的树种(银杏和松树)中产生的回声比具有均匀分布的参照物在包络幅度上始终显示出更多的时间不均匀性。但是,与响应模拟声呐束和树叶的相对方向变化发现的效果相比,这些差异很小。这些发现支持了均匀叶分布模型的实用性,并表明蝙蝠可以利用回声中的时间不均匀性来推断其声纳和树叶的相对位置。

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