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I have a book called "Scientific Programming with Python (2009)", in which example code makes heavy use of SciTools. I use Python 3.2 64 (thinking about having a parallel install / development environment of 2.7; more on this later), to which SciTools has not yet been ported.

Has Scitools been superceded for many purposes by NumPy/SciPy? Or what? EazyViz? I'm totally okay reading through this book and translating the code into whatever API / module is current with 3.2. I'd kind of rather do that than setup a Python 2.7 system.

What is your recommended setup?

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2 Answers 2

up vote 12 down vote accepted

Scipy/Numpy is the defacto standard for scientific/numerical computing with python. The vast majority of packages are built on top of them (including Scitools). In many ways it looks like Scitools is just a connivence wrapper around Numpy/Scipy/Matplotlib.

As far as Python 3 support, Numpy and Scipy are there, but Matplotlib is not yet (although I think it may be supported in the development repo on github):


Personally I've never used Scitools, since I prefer the lower level control of using the other libraries directly. I also stick with Python 2.7 since the complete scientific programming stack hasn't finished its migration to Python 3 yet.

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cool thx very much! –  Joshua Cullick May 24 '12 at 13:59
I forgot to mention that I have Matplotlib installed for my Python 3.2 install. I'm pretty sure I picked it up here: lfd.uci.edu/~gohlke/pythonlibs –  Joshua Cullick May 24 '12 at 15:27
It works too. Just tested it. Now have working Python scientific computing and plotting in both the 2.7 and 3.2 setups. –  Joshua Cullick May 24 '12 at 15:35
+1, an overview of most of the packages can be found at numfocus. perhaps you can add this link. –  bmu Jul 28 '12 at 7:33
i thought i'd marked that as answered long ago. –  Joshua Cullick Aug 23 '13 at 7:30
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Also take a look at Pandas for your numerical work. It is built on top of NumPy.

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