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The true slime mold \textit{Physarum polycephalum} has the remarkable capability to perform self-organized activities such as network formation among food sources. Despite well reproducing the emergence of slime networks, existing models…

种群与进化 · 定量生物学 2025-08-04 Damiano Reginato , Daniele Proverbio , Giulia Giordano

A fundamental question regarding biological transport networks is the interplay between the network development or reorganization and the flows it carries. We use Physarum polycephalum, a true slime mould with a transport network which…

生物物理 · 物理学 2022-12-27 Raphaël Saiseau , Valentin Busson , Laura Xénard , Marc Durand

Life evolved organisms to adapt dynamically to their environment and autonomously exhibit behaviours. While complex behaviours in organisms are typically associated with the capability of neurons to process information, the unicellular…

生物物理 · 物理学 2023-06-16 Mathieu Le Verge-Serandour , Karen Alim

Physarum polycephalum is an acellular slime mould that grows as a highly adaptive network of veins filled with protoplasm. As it forages, Physarum dynamically rearranges its network structure as a response to local stimuli information,…

流体动力学 · 物理学 2023-05-23 Rodrigo Almeida , Rui Dilão

In wet-lab experiments, the slime mold Physarum polycephalum has demonstrated its ability to solve shortest path problems and to design efficient networks. For the shortest path problem, a mathematical model for the evolution of the slime…

The slime mould Physarum polycephalum displays adaptive transport dynamics and network formation that have inspired its use as a model of biological computation. We develop a Lagrangian formulation of Physarum's adaptive dynamics on…

神经元与认知 · 定量生物学 2025-11-12 Ricard Solé , Jordi Pla-Mauri

Physarum polycephalum is a single-celled, multi-nucleated slime mold whose body constitutes a network of veins. As it explores its environment, it adapts and optimizes its network to external stimuli. It has been shown to exhibit complex…

流体动力学 · 物理学 2023-09-20 Ana Filipa Valente

True slime mould Physarum polycephalum approximates a range of complex computations via growth and adaptation of its proto- plasmic transport network, stimulating a large body of recent research into how such a simple organism can perform…

新兴技术 · 计算机科学 2015-03-12 Jeff Jones , Andrew Adamatzky

Active fluid transport is a hallmark of many biological transport networks. While animal circulatory systems generally rely on a single heart to drive flows, other organisms employ decentralized local pumps to distribute fluids and…

生物物理 · 物理学 2024-01-04 Adam B. Dionne , Katharine E. Jensen , Henrik Ronellenfitsch

Physarum Polycephalum is a slime mold that is apparently able to solve shortest path problems. A mathematical model has been proposed by biologists to describe the feedback mechanism used by the slime mold to adapt its tubular channels…

数据结构与算法 · 计算机科学 2019-07-01 Vincenzo Bonifaci , Kurt Mehlhorn , Girish Varma

In the realm of biological flow networks, the ability to dynamically adjust to varying demands is paramount. Drawing inspiration from the remarkable adaptability of Physarum polycephalum, we present a novel physical mechanism tailored to…

软凝聚态物质 · 物理学 2023-10-05 Vidyesh Rao Anisetti , Ananth Kandala , J. M. Schwarz

The slime mould Physarum polycephalum has emerged as a model for self-organisation and coordination of contractile activity at large spatial scales. This self-organisation largely results from cytoplasmic flows generated by propagating…

软凝聚态物质 · 物理学 2025-09-23 Raphael Saiseau , Valentin Busson , Marc Durand

Plasmodium of true slime mold, Physarum polycephalum, is an amoeboid organism, which spreads with developing tubular network structure and crawls on two-dimensional plane with oscillating the cell thickness. The plasmodium transforms its…

适应与自组织系统 · 物理学 2009-04-10 Yuki Kagawa , Atsuko Takamatsu

Very simple organisms, such as the single-celled amoeboid slime mould Physarum polycephalum possess no neural tissue yet, despite this, are known to exhibit complex biological and computational behaviour. Given such limited resources, can…

新兴技术 · 计算机科学 2015-11-25 Jeff Jones

Optimization of fluid transport in the slime mold Physarum polycephalum has been the subject of several modeling efforts in recent literature. Existing models assume that the tube adaptation mechanism in P. polycephalum's tubular network is…

组织与器官 · 定量生物学 2019-07-01 Vincenzo Bonifaci

The slime mould Physarum polycephalum is known to construct proto- plasmic transport networks which approximate proximity graphs by forag- ing for nutrients during its plasmodial life cycle stage. In these networks, nodes are represented by…

新兴技术 · 计算机科学 2015-11-19 Jeff Jones , Richard Mayne , Andrew Adamatzky

Plasmodium of Physarum polycephalum is a single cell visible by unaided eye. During its foraging behaviour the cell spans spatially distributed sources of nutrients with a protoplasmic network. Geometrical structure of the protoplasmic…

斑图形成与孤子 · 物理学 2015-05-14 Andrew Adamatzky , Jeff Jones

Physarum Polycephalum is a unicellular slime mold that has been intensely studied due to its ability to solve mazes, find shortest paths, generate Steiner trees, share knowledge, remember past events, and its applications to unconventional…

生物物理 · 物理学 2022-10-18 Sheryl Hsu , Laura P. Schaposnik

Plasmodium stage of Physarum polycephalum behaves as a distributed dynamical pattern formation mechanism who's foraging and migration is influenced by local stimuli from a wide range of attractants and repellents. Complex protoplasmic tube…

生物物理 · 物理学 2012-04-10 Soichiro Tsuda , Jeff Jones , Andrew Adamatzky , Jonathan Mills

The slime mould Physarum polycephalum is a suitable candidate organism for soft-matter robotics because it exhibits controllable transport, movement and guidance behaviour. Physarum may be considered as a smart computing and actuating…

适应与自组织系统 · 物理学 2012-12-05 Soichiro Tsuda , Jeff Jones , Andrew Adamatzky
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