How to Install and Uninstall python310-cluster Package on openSuSE Tumbleweed
Last updated: December 29,2024
1. Install "python310-cluster" package
Please follow the guidance below to install python310-cluster on openSuSE Tumbleweed
$
sudo zypper refresh
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$
sudo zypper install
python310-cluster
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2. Uninstall "python310-cluster" package
This is a short guide on how to uninstall python310-cluster on openSuSE Tumbleweed:
$
sudo zypper remove
python310-cluster
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3. Information about the python310-cluster package on openSuSE Tumbleweed
Information for package python310-cluster:
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Repository : openSUSE-Tumbleweed-Oss
Name : python310-cluster
Version : 1.4.1.post2-3.2
Arch : noarch
Vendor : openSUSE
Installed Size : 104.0 KiB
Installed : No
Status : not installed
Source package : python-cluster-1.4.1.post2-3.2.src
Upstream URL : https://github.com/exhuma/python-cluster
Summary : Clustering library for python
Description :
The python-cluster package allows you to create several groups
(clusters) of objects from a list. It’s meant to be flexible and able
to cluster any object. To ensure this kind of flexibility, you need
not only to supply the list of objects, but also a function that
calculates the similarity between two of those objects. For simple
datatypes, like integers, this can be as simple as a subtraction, but
more complex calculations are possible. Right now, it is possible to
generate the clusters using a hierarchical clustering and the popular
K-Means algorithm. For the hierarchical algorithm there are different
“linkage” (single, complete, average and uclus) methods available.
------------------------------------------
Repository : openSUSE-Tumbleweed-Oss
Name : python310-cluster
Version : 1.4.1.post2-3.2
Arch : noarch
Vendor : openSUSE
Installed Size : 104.0 KiB
Installed : No
Status : not installed
Source package : python-cluster-1.4.1.post2-3.2.src
Upstream URL : https://github.com/exhuma/python-cluster
Summary : Clustering library for python
Description :
The python-cluster package allows you to create several groups
(clusters) of objects from a list. It’s meant to be flexible and able
to cluster any object. To ensure this kind of flexibility, you need
not only to supply the list of objects, but also a function that
calculates the similarity between two of those objects. For simple
datatypes, like integers, this can be as simple as a subtraction, but
more complex calculations are possible. Right now, it is possible to
generate the clusters using a hierarchical clustering and the popular
K-Means algorithm. For the hierarchical algorithm there are different
“linkage” (single, complete, average and uclus) methods available.