Best Python Support Vector Machine Implementation For Bioinformatics (Classifying Short Reads)?
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11.4 years ago

There are so many machine learning libraries for Python.

Which are good for classifying short reads with SVMs? It should include support for string kernels if I understand correctly.

It is hard for me to choose as I am new to ML. Furthermore it is difficult to compare/find all relevant options and info due to obscurity and lack of documentation.

Please advise.

python • 5.2k views
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What is the biological question you are trying to answer?

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Biology? We don't need no stinking biology ... we're talking machine learning, baby! Wooo hoooo!

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but if the question is just about machine learning, so it's offtopic, isn't?

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It would be sad if one could not talk about string manipulation, alignment, classification, segmentation...etc in a bioinformatic forum. Don't you think? But you're right, whereas those are mandatory to analyse biological sequences, it's not a biology related question.

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I agree with you, actually I find interesting how he/she will use SVM for reads classification ...

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Yeah, after reading your research interests in your profile, I was actually very surprised ;-)

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It is a tool used by many bioinformaticians. Furthermore, I suspect I got a better answer here than I would have anywhere else. Whether it is ok or not is up to the mods.

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"Is this a pirna cluster or not?" is the question I'll attempt to answer.

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11.4 years ago

If it's string kernels you want, the shogun toolbox is for you.

Use the python_modular interface.

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"also comes with a number of recent string kernels as e.g. the Locality Improved, Fischer, TOP, Spectrum, Weighted Degree Kernel (with shifts)"

Yes!

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