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A Synthetic Genetic Edge Detection Program

机译:合成遗传边缘检测程序

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摘要

Edge detection is a signal processing algorithm common in artificial intelligence and image recognition programs. We have constructed a genetically encoded edge detection algorithm that programs an isogenic community of E. coli to sense an image of light, communicate to identify the light-dark edges, and visually present the result of the computation. The algorithm is implemented using multiple genetic circuits. An engineered light sensor enables cells to distinguish between light and dark regions. In the dark, cells produce a diffusible chemical signal that diffuses into light regions. Genetic logic gates are used so that only cells that sense light and the diffusible signal produce a positive output. A mathematical model constructed from first principles and parameterized with experimental measurements of the component circuits predicts the performance of the complete program. Quantitatively accurate models will facilitate the engineering of more complex biological behaviors and inform bottom-up studies of natural genetic regulatory networks.
机译:边缘检测是人工智能和图像识别程序中常见的信号处理算法。我们构建了一种遗传编码的边缘检测算法,该算法对大肠杆菌的同基因群落进行编程,以感测光的图像,进行交流以识别明暗边缘,并直观地显示计算结果。该算法使用多个遗传电路实现。工程光传感器使细胞能够区分亮区和暗区。在黑暗中,细胞会产生可扩散的化学信号,并扩散到明亮的区域。使用遗传逻辑门,以便仅感应光和可扩散信号的单元产生正输出。由第一原理构建并通过组成电路的实验测量进行参数化的数学模型可预测整个程序的性能。定量准确的模型将有助于更复杂的生物学行为的工程设计,并为自然遗传调控网络的自下而上的研究提供信息。

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