emll | some code for linlog model simulation
kandi X-RAY | emll Summary
kandi X-RAY | emll Summary
emll is a Jupyter Notebook library. emll has no bugs, it has no vulnerabilities, it has a Strong Copyleft License and it has low support. You can download it from GitHub.
This repository hosts code for the in-progress manuscript Bayesian inference of metabolic kinetics from genome-scale multiomics data by Peter C. St. John, Jonathan Strutz, Linda J. Broadbelt, Keith E.J. Tyo, and Yannick J. Bomble, General code for solving for the steady-state metabolite and flux values as a function of elasticity parameters, enzyme expression, and external metabolite concentrations is found in emll/linlog_model.py. Theano code to perform the regularized linear regression (and integrate this operation into pymc3 models) is found in emll/theano_utils.py. The notebooks directory contains the main code used to generate figures in the manuscript. wu2004.ipynb contains a simple model of an in vitro pathway, used to compare NUTS and ADVI inference methods. contador.ipynb compares the given methodology to an earlier application of metabolic ensemble modeling. hackett.ipynb demonstrates how the method can scale to near genome-scale models and omics datasets. A duplicate of the python enviroment I used to perform the calculations should be creatable using anaconda. It uses the intelpython distribution for some faster blas routines, at least on the processors I developed this method on.
This repository hosts code for the in-progress manuscript Bayesian inference of metabolic kinetics from genome-scale multiomics data by Peter C. St. John, Jonathan Strutz, Linda J. Broadbelt, Keith E.J. Tyo, and Yannick J. Bomble, General code for solving for the steady-state metabolite and flux values as a function of elasticity parameters, enzyme expression, and external metabolite concentrations is found in emll/linlog_model.py. Theano code to perform the regularized linear regression (and integrate this operation into pymc3 models) is found in emll/theano_utils.py. The notebooks directory contains the main code used to generate figures in the manuscript. wu2004.ipynb contains a simple model of an in vitro pathway, used to compare NUTS and ADVI inference methods. contador.ipynb compares the given methodology to an earlier application of metabolic ensemble modeling. hackett.ipynb demonstrates how the method can scale to near genome-scale models and omics datasets. A duplicate of the python enviroment I used to perform the calculations should be creatable using anaconda. It uses the intelpython distribution for some faster blas routines, at least on the processors I developed this method on.
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emll has a low active ecosystem.
It has 6 star(s) with 1 fork(s). There are 2 watchers for this library.
It had no major release in the last 6 months.
There are 3 open issues and 0 have been closed. There are no pull requests.
It has a neutral sentiment in the developer community.
The latest version of emll is current.
Quality
emll has no bugs reported.
Security
emll has no vulnerabilities reported, and its dependent libraries have no vulnerabilities reported.
License
emll is licensed under the GPL-2.0 License. This license is Strong Copyleft.
Strong Copyleft licenses enforce sharing, and you can use them when creating open source projects.
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emll releases are not available. You will need to build from source code and install.
Installation instructions are not available. Examples and code snippets are available.
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