论文标题
通过体内平衡的目标扩展:进化模拟,实验和分析
The scaling of goals via homeostasis: an evolutionary simulation, experiment and analysis
论文作者
论文摘要
所有认知剂都是复合生物。具体而言,复杂的生活剂由细胞组成,这些细胞本身就是驾驶生理和代谢空间的胜任子代理。行为科学,进化发展生物学和机器智能领域都寻求对生物认知缩放的答案:哪种进化动力使单个细胞能够整合其活动,从而导致出现具有属于其属于其部分并且不属于其部分的新颖,更高层次的智力,而不是?在这里,我们报告了基于驯服框架的模拟结果,该框架提出,通过在体内平衡过程的中心扩大目标状态,将身体形态发生过程中细胞的集体智能枢纽枢纽。我们检验了以下假设:一个最小的进化框架足以足以使细胞中代谢稳态的小型,低水平的设定值扩展到整个集体(组织)中,这解决了形态上的问题:组织范围内整个位置信息轴的组织(经典法国国旗问题)。我们发现,这些新兴的形态发生剂表现出许多预测的特征,包括使用应力传播动力学来实现其靶向形态以及从扰动(鲁棒性)和长期稳定性中恢复的能力(即使这两个都没有直接选择)。此外,我们观察到系统稳定后很长时间突然重塑的意外行为。我们在生物系统中测试了这种预测 - 再生平面 - 观察到了非常相似的现象。我们建议该系统是朝着对演化如何将最小目标指导行为(体内稳态环)缩放到形态发生和其他空间中更高级别的解决问题的药物中的第一步。
All cognitive agents are composite beings. Specifically, complex living agents consist of cells, which are themselves competent sub-agents navigating physiological and metabolic spaces. Behavior science, evolutionary developmental biology, and the field of machine intelligence all seek an answer to the scaling of biological cognition: what evolutionary dynamics enable individual cells to integrate their activities to result in the emergence of a novel, higher-level intelligence that has goals and competencies that belong to it and not to its parts? Here, we report the results of simulations based on the TAME framework, which proposes that evolution pivoted the collective intelligence of cells during morphogenesis of the body into traditional behavioral intelligence by scaling up the goal states at the center of homeostatic processes. We tested the hypothesis that a minimal evolutionary framework is sufficient for small, low-level setpoints of metabolic homeostasis in cells to scale up into collectives (tissues) which solve a problem in morphospace: the organization of a body-wide positional information axis (the classic French Flag problem). We found that these emergent morphogenetic agents exhibit a number of predicted features, including the use of stress propagation dynamics to achieve its target morphology as well as the ability to recover from perturbation (robustness) and long-term stability (even though neither of these was directly selected for). Moreover we observed unexpected behavior of sudden remodeling long after the system stabilizes. We tested this prediction in a biological system - regenerating planaria - and observed a very similar phenomenon. We propose that this system is a first step toward a quantitative understanding of how evolution scales minimal goal-directed behavior (homeostatic loops) into higher-level problem-solving agents in morphogenetic and other spaces.