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Re: [tor-dev] Comparing Stem, metrics-lib, and zoossh



Yikes, thanks for getting these Karsten! I don't think we should omit
the earlier results since the python community is still very much
split between 2.7 and 3.x. I'll include both so users know they can
upgrade their interpreter to get a nice little speed boost.

Thanks!


On Fri, Jan 15, 2016 at 5:43 AM, Karsten Loesing <karsten@xxxxxxxxxxxxxx> wrote:
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> On 14/01/16 17:22, Damian Johnson wrote:
>> Oh, forgot to talk about compression. You can run the stem script
>> against compressed tarballs but python didn't add lzma support
>> until python 3.3...
>>
>> https://stem.torproject.org/faq.html#how-do-i-read-tar-xz-descriptor-archives
>>
>>  I suppose we could run over bz2 or gz tarballs, or upgrade python.
>> But can't say the compressed benchmark is overly important.
>
> I just ran all the Stem measurements using Python 3, which now
> includes xz tarballs.  The table below contains all results:
>
> server-descriptors-2015-11.tar.xz:
>  - metrics-lib: 0.334261 ms
>  - Stem[**]: 0.63 ms (188%)
>
> server-descriptors-2015-11.tar:
>  - metrics-lib: 0.28543 ms
>  - Stem: 1.02 ms (357%)
>  - Stem[**]: 0.63 ms (221%)
>
> server-descriptors-2015-11/:
>  - metrics-lib: 0.682293 ms
>  - Stem: 1.11 ms (163%)
>  - Stem[**]: 1.03 ms (151%)
>  - Zoossh: 0.458566 ms (67%)
>
> extra-infos-2015-11.tar.xz:
>  - metrics-lib: 0.274610 ms
>  - Stem[**]: 0.46 ms (168%)
>
> extra-infos-2015-11.tar:
>  - metrics-lib: 0.2155 ms
>  - Stem: 0.68 ms (316%)
>  - Stem[**]: 0.42 ms (195%)
>
> consensuses-2015-11.tar.xz:
>  - metrics-lib: 255.760446 ms
>  - Stem[**]: 913.12 ms (357%)
>
> consensuses-2015-11.tar:
>  - metrics-lib: 246.713092 ms
>  - Stem: 1393.10 ms (565%)
>  - Stem[**]: 876.09 ms (355%)
>
> consensuses-2015-11/:
>  - metrics-lib: 283.910864 ms
>  - Stem: 1303.53 ms (459%)
>  - Stem[**]: 873.45 ms (308%)
>  - Zoossh: 83 ms (29%)
>
> microdescs-2015-11.tar.xz[*]:
>  - metrics-lib: 0.099397 ms
>  - Stem[**]: 0.33 ms (332%)
>
> microdescs-2015-11.tar[*]:
>  - metrics-lib: 0.066566 ms
>  - Stem: 0.66 ms (991%)
>  - Stem[**]: 0.34 ms (511%)
>
> [*] The microdescs* tarballs contain microdesc consensuses and
> microdescriptors, but I only cared about the latter; what I did is
> extract tarballs, delete microdesc consensuses, and re-create and
> re-compress tarballs
>
> [**] Run with Python 3.5.1
>
> Is Python 3 really that much faster than Python 2?  Should we just
> omit Python 2 results from this comparison?
>
> All the best,
> Karsten
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