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Mathematics in biological reality: The emergence of natural computation in living systems

机译:生物现实中的数学:生活系统中自然计算的出现

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摘要

Mathematics is a powerful tool to express the computable part of the reality of the physical world. For living systems, mathematical relations emerge internally as an abstracting capacity in the course of development and adaptation to the external world. All living systems possess internal coding structures which represent their embedded description. They are anticipatory in the sense that the embedded description generates deterministic model of their behavior. If the model does not provide a correct result, they can evolve through the acquisition of new statements inside the embedded description that overcome limitations of the existing model. The newly generated statements acquire meaning in and from the changing environment. The growth of complexity, being a consequence of the internal active adaptation to externality performed by the systems, increases the amount of external work and generates the observed patterns of spatiotemporal structures of evolving systems. In living systems, the symbolic memory constraints are dynamic processes in themselves, co-evolving with the other components of biological systems. Separation of the symbolic memory and the dynamic laws (defined as the epistemic cut), required for self-replication of biological systems, forms the basis for their onto-epistemic relation to reality. In this regard, living systems possess their own internal abstracting capacity and invent mathematics. The digital structure of the genetic code is a manifestation of this mathematics.
机译:数学是一种强大的工具,可以表达物理世界现实的可计算部分。对于生活系统来说,数学关系在内部出现在开发过程中的抽象能力和适应外部世界。所有生物系统都具有代表其嵌入式描述的内部编码结构。它们是预期的,因为嵌入式描述生成了它们行为的确定性模型。如果模型不提供正确的结果,则可以通过获取遍及现有模型的限制的嵌入式描述中的新语句来演变。新生成的陈述在不断变化的环境中获取了意义。复杂性的增长是由系统执行的外部性能的内部主动适应的结果增加了外部工作量,并产生了所观察到的不断发展系统的时空结构模式。在生活系统中,符号内存限制本身是动态过程,与生物系统的其他组件共同发展。将符号记忆和生物系统自我复制所需的符号内存和动态定律(定义为事实爆炸)的分离,形成了与现实的认识关系的基础。在这方面,生活系统拥有自己的内部抽象能力和发明数学。遗传密码的数字结构是该数学的表现。

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