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programme Is the Job related to staff position within a Research Infrastructure? No Offer Description This position concerns a 2 years contract for the development of experiments on complex biomolecular
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of neuronal networks and how this translates into specific behaviors in healthy and pathological conditions. To achieve these objectives, SPPIN adopts a multidisciplinary approach combining optical microscopy
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shown that VRM is associated with changes in the dynamical state of layer (L) 4, but how these changes occur remains unknown. New data suggest that the essential modifications are complex and require
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that are transforming many sectors today through language models, recommendation systems and advanced technologies. However, modern machine learning models, such as neural networks and ensemble models, remain largely
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on the modeling of tumor growth. Tumor growth is a complex phenomenon, influenced by numerous biological, metabolic and environmental factors. Morphological magnetic resonance imaging (MRI) is widely used to detect
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their structure. Small-angle X-ray scattering analysis (SAXS), already used others systems, has proven effective in this regard, providing quantitative information on the key parameters of a structured network in
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these active modules in complex networks have been proposed [1] and are being studied by the SPARKS team at I3S [2-3]. The mission of the recruited researcher will be to develop a method for identifying active
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network contracts upon local stimuli to orient fluid transport where it is needed. This enables autonomous functionalities without the need for a complex nervous system. These organisms use fluid transfer
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experimental approaches to characterize the Dorsal Diencephalic Conduction system (DDC), a neuronal network mediating the development of aversive internal emotional states in response to negatively-valued
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levels, offering strong networking opportunities to the student. Over the past decade, the field of attoscience has revolutionized our ability to observe the fundamental building blocks of matter, such as