pymc 2.0rc2
Markov Chain Monte Carlo sampling toolkit.
Latest Version: 2.0
Bayesian estimation, particularly using Markov chain Monte Carlo (MCMC), is an increasingly relevant approach to statistical estimation. However, few statistical software packages implement MCMC samplers, and they are non-trivial to code by hand. pymc is a python package that implements the Metropolis-Hastings algorithm as a python class, and is extremely flexible and applicable to a large suite of problems. pymc includes methods for summarizing output, plotting, goodness-of-fit and convergence diagnostics.
pymc only requires NumPy. All other dependencies such as matplotlib, SciPy, pytables, sqlite or mysql are optional.
| File | Type | Py Version | Uploaded on | Size | # downloads |
|---|---|---|---|---|---|
| pymc-2.0rc2.win32-py2.5.exe (md5) | MS Windows installer | 2.5 | 2008-12-12 16:05:20 | 915KB | 85 |
| pymc-2.0rc2.tar.gz (md5) | Source | 2008-12-12 16:00:37 | 1MB | 104 | |
| pymc-2.0rc2-py2.5-macosx-10.3-i386.egg (md5) | Python Egg | 2.5 | 2008-12-24 22:04:44 | 615KB | 145 |
- Author: Christopher Fonnesbeck, Anand Patil and David Huard <fonnesbeck at gmail com>
- Home Page: pymc.googlecode.com
- License: Academic Free License
- Requires NumPy (>=1.2)
- Categories
- Package Index Owner: davidhuard, fonnesbeck, anandpatil
- Package Index Maintainer: davidhuard
- DOAP record: pymc-2.0rc2.xml
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