从一张微生物扩散图像识别非传递性博弈,揭示隐藏的演化规律。
Radial Interaction Tomography: Recognizing Non-Transitive Evolutionary Games from One Range-Expansion Image

- 通过图像边界曲线构建径向交互逆问题,恢复多类型扩展的边界流场。
- 在四类型机制中检测到循环残差,验证非传递性演化模式存在。
- 适用于微生物演化研究、反应-扩散系统控制与群体状态预测场景。
微生物范围扩张图像中的彩色扇区蕴含的不仅是谱系存活数量。我们提出一个计算机视觉逆问题:从单一累积型多类型扩张的终点图像中,重构半径索引的成对边界流场,并检验该视觉模式是否符合传递性标量适应度层级。可观测信号为对数极坐标下扇区边界曲线提取的几何信号。我们证明了终点可观测性与稳定性,提出了加权传递/循环分解、接触完备圆设计、物理时钟与机制不可辨识性、精确高斯循环性检验及邦弗朗尼有效区间扫描方法。基准测试包含解析终点图像、模糊/噪声像素往返、标量零应力测试、公开图像追踪、多分辨率机制终点以及无需学习的冻结前缘模拟器。实现可从终点图像恢复成对边缘流历史,在机制性四类型扩张中检测循环残差,并将其作为驱动信号用于无量纲主动设计控制层,涵盖反应-扩散控制、表型前沿优化、协议合成、蒙特卡洛鲁棒性及下游种群状态桥接。
原文摘要 · Abstract (English)
Colored sectors in a microbial range expansion encode more than lineage survival counts. We formulate a computer-vision inverse problem: from one endpoint image of an accretive multi-type expansion, recover the radius-indexed pairwise boundary-flow field and test whether the visual pattern is compatible with a transitive scalar fitness hierarchy. The observable is a geometric signal extracted from sector-boundary curves in log-polar coordinates. We prove endpoint observability and stability for frozen fronts, weighted transitive/cyclic decomposition, contact-complete circular design, physical-clock and mechanism non-identifiability, exact Gaussian cyclicity testing, and Bonferroni-valid interval scanning. The benchmark is deterministic: analytic endpoint images, blurred/noisy pixel round trips, scalar-null stress tests, public-image tracing, multi-resolution mechanistic endpoints, and a non-learning frozen-front simulator. The implementation recovers pairwise edge-flow histories from endpoint images, detects cyclic residuals in a mechanistic four-type expansion, and uses those residuals as forcing signals for a dimensionless active design-control layer covering reaction-diffusion control, phenotype-frontier optimization, protocol synthesis, Monte Carlo robustness, and a downstream population-state bridge.
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