<div dir="ltr"><div>Indeed, thank you, Gael!<br><br>My 2c, not thought through very thoroughly, is that although a "related tutorials" would be great, it would be considerably more of a maintenance burden than scikit-learn-contrib, because docs go staler faster than code. We *could* force all code in the doc to be runnable and unit-tested, but that is probably not sufficient, because checking the text cannot really be done automatically. It would be great if we could figure out a system to enable community maintenance of related docs & tutorial without letting them go out of date, I think that's something we can think about.<br><br></div><div>Yours,<br></div><div>Vlad<br></div></div><div class="gmail_extra"><br><div class="gmail_quote">On Wed, Jun 14, 2017 at 6:04 PM, Jacob Schreiber <span dir="ltr"><<a href="mailto:jmschreiber91@gmail.com" target="_blank">jmschreiber91@gmail.com</a>></span> wrote:<br><blockquote class="gmail_quote" style="margin:0 0 0 .8ex;border-left:1px #ccc solid;padding-left:1ex"><div dir="ltr">Hi Gael<div><br></div><div>Thanks for the work! We are grateful for the work that other people do in providing these types of tutorials and introductions as they lower the barrier of entry for new people to get into machine learning. We generally don't include these in the official sklearn documentation, in no small part because it would be a time sink to decide from which among a large group of tutorials should be included. That being said, perhaps we should consider having a 'related tutorials' page similar to the 'related work' page, serving as an aggregation of links? </div><div><br></div><div>Jacob</div></div><div class="gmail_extra"><br><div class="gmail_quote"><div><div class="h5">On Mon, Jun 12, 2017 at 12:17 PM, Gaël Pegliasco via scikit-learn <span dir="ltr"><<a href="mailto:scikit-learn@python.org" target="_blank">scikit-learn@python.org</a>></span> wrote:<br></div></div><blockquote class="gmail_quote" style="margin:0 0 0 .8ex;border-left:1px #ccc solid;padding-left:1ex"><div><div class="h5">
<div text="#000000" bgcolor="#FFFFFF">
<p>Hi,</p>
<p>First of all, thanks to all contributors for developping a such
rich, simple, well documented and easy to use machine learning
library for Python ; which, clearly, plays a big role in Python
world domination in AI !</p>
<p>As I'm using it more and more these past month, I've written a
french tutorial on machine learning introduction: <br>
</p>
<ul>
<li>The Theory (no code here, only describing AI with Python and
machine learning concepts with real examples):<br>
<a class="m_8867072780432063741m_-1003972708457317367moz-txt-link-freetext" href="https://makina-corpus.com/blog/metier/2017/initiation-au-machine-learning-avec-python-theorie" target="_blank">https://makina-corpus.com/blog<wbr>/metier/2017/initiation-au-<wbr>machine-learning-avec-python-<wbr>theorie</a></li>
<li>The Practice (using Scikit-Learn)<br>
<a class="m_8867072780432063741m_-1003972708457317367moz-txt-link-freetext" href="https://makina-corpus.com/blog/metier/2017/initiation-au-machine-learning-avec-python-pratique" target="_blank">https://makina-corpus.com/blog<wbr>/metier/2017/initiation-au-<wbr>machine-learning-avec-python-<wbr>pratique</a><br>
Another iris tutorial, but with much more details than most I've
read using this database and using both supervised and
unsupervised learning<br>
</li>
</ul>
<p>I've received a few positive returns regarding these 2 articles
and others requests to translate it into english.</p>
<p>I think that as to translate it into english, you may find it
useful to include it into Scikit-Learn official
documentation/examples ?</p>
<p>So, if you think it can be useful I could work on it as soon as
next week.</p>
<p>Anyway, any feedback is welcome, especially because I'm not an
expert and that it may not be error safe!<br>
</p>
<p>Thanks again for your great work and keep going on !</p><span class="m_8867072780432063741HOEnZb"><font color="#888888">
<p>Gaël,<br>
</p>
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