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A numerical solution to the generalized mapmaker's problem: flattening nonconvex polyhedral surfaces

机译:广义地图制作者问题的数字解决方案:平坦化非凸多面体曲面

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Methods are described to unfold and flatten the curved, convoluted surfaces of the brain in order to study the functional architectures and neural maps embedded in them. In order to do this, it is necessary to solve the general mapmaker's problem for representing curved surfaces by planar models. This algorithm has applications in areas other than computer-aided neuroanatomy, such as robotics motion planning and geophysics. The algorithm maximizes the goodness of fit distances in these surfaces to distances in a planar configuration of points. It is illustrated with a flattening of monkey visual cortex, which is an extremely complex folded surface. Distance errors in the range of several percent are found, with isolated regions of larger error, for the class of cortical surfaces studied so far.
机译:描述了展开和展平大脑弯曲,弯曲的表面的方法,以研究嵌入其中的功能体系结构和神经图。为此,有必要解决一般的制图者通过平面模型表示曲面的问题。该算法在计算机辅助神经解剖学之外的其他领域也有应用,例如机器人运动计划和地球物理学。该算法最大程度地提高了这些曲面与点平面配置中的距离的拟合距离的优度。猴子的视觉皮层变平,这是一个非常复杂的折叠表面。对于迄今为止研究的皮质表面类型,发现距离误差在百分之几的范围内,并且具有较大误差的孤立区域。

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