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church.i18n.error from group church.i18n (version 2019.0)
Unification of error handling (not only) for RESTful servers
Project name: church.i18n.error
Rest Exception Handling library provides basic model and support methods for handling exceptions in
localized projects. It tries to abstract this problem from the implementation and provides more
universal mechanism of dealing with exceptions.
Artifact church.i18n.error
Group church.i18n
Version 2019.0
Last update 05. August 2019
Organization not specified
URL https://bitbucket.org/i18n_church/church.i18n.error
License The MIT License
Dependencies amount 4
Dependencies slf4j-api, church.i18n.resources.bundles, church.i18n.rest.response.model, church.i18n.rest.exception,
There are maybe transitive dependencies!
Group church.i18n
Version 2019.0
Last update 05. August 2019
Organization not specified
URL https://bitbucket.org/i18n_church/church.i18n.error
License The MIT License
Dependencies amount 4
Dependencies slf4j-api, church.i18n.resources.bundles, church.i18n.rest.response.model, church.i18n.rest.exception,
There are maybe transitive dependencies!
jcobyla from group de.xypron.jcobyla (version 1.4)
COBYLA2 is an implementation of Powell's nonlinear derivative free
constrained optimization that uses a linear approximation approach.
The algorithm is a sequential trust region algorithm that employs
linear approximations to the objective and constraint functions, where
the approximations are formed by linear interpolation at n + 1 points
in the space of the variables and tries to maintain a regular shaped
simplex over iterations.
It solves nonsmooth NLP with a moderate number of variables (about 100).
Inequality constraints only.
The initial point X is taken as one vertex of the initial simplex with
zero being another, so, X should not be entered as the zero vector.
3 downloads
Artifact jcobyla
Group de.xypron.jcobyla
Version 1.4
Last update 31. May 2022
Organization not specified
URL https://github.com/xypron/jcobyla
License The MIT License
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
Group de.xypron.jcobyla
Version 1.4
Last update 31. May 2022
Organization not specified
URL https://github.com/xypron/jcobyla
License The MIT License
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
quality-check from group net.sf.qualitycheck (version 1.3)
The goal of quality-check is to provide a small Java library for
basic runtime code quality checks. It provides similar features to
org.springframework.util.Assert or com.google.common.base.Preconditions
without the need to include big libraries or frameworks such as
Spring or Guava. The package quality-check tries to replace these
libraries and provide all the basic code quality checks you need.
The checks provided here are typically used to validate method
parameters and detect errors during runtime. To detect errors before
runtime we use JSR-305 Annotations. With these annotations you are
able to detect possible bugs earlier. For more informations look
at FindBugs™ JSR-305 support.
3 downloads
Artifact quality-check
Group net.sf.qualitycheck
Version 1.3
Last update 01. August 2013
Organization not specified
URL http://qualitycheck.sourceforge.net/modules/quality-check/
License The Apache Software License, Version 2.0
Dependencies amount 5
Dependencies jsr305, commons-logging, junit, slf4j-api, slf4j-simple,
There are maybe transitive dependencies!
Group net.sf.qualitycheck
Version 1.3
Last update 01. August 2013
Organization not specified
URL http://qualitycheck.sourceforge.net/modules/quality-check/
License The Apache Software License, Version 2.0
Dependencies amount 5
Dependencies jsr305, commons-logging, junit, slf4j-api, slf4j-simple,
There are maybe transitive dependencies!
quality-parent from group net.sf.qualitycheck (version 1.3)
The goal of quality-check is to provide a small Java library for
basic runtime code quality checks. It provides similar features to
org.springframework.util.Assert or com.google.common.base.Preconditions
without the need to include big libraries or frameworks such as
Spring or Guava. The package quality-check tries to replace these
libraries and provide all the basic code quality checks you need.
The checks provided here are typically used to validate method
parameters and detect errors during runtime. To detect errors before
runtime we use JSR-305 Annotations. With these annotations you are
able to detect possible bugs earlier. For more informations look
at FindBugs™ JSR-305 support.
Group: net.sf.qualitycheck Artifact: quality-parent
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0 downloads
Artifact quality-parent
Group net.sf.qualitycheck
Version 1.3
Last update 01. August 2013
Organization not specified
URL http://qualitycheck.sourceforge.net/
License The Apache Software License, Version 2.0
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
Group net.sf.qualitycheck
Version 1.3
Last update 01. August 2013
Organization not specified
URL http://qualitycheck.sourceforge.net/
License The Apache Software License, Version 2.0
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
toniclf from group net.sf.squirrel-sql.thirdparty-non-maven (version 1.0.5)
This is the tonic look-and-feel packaged to be distributed with the SQuirreLSQL client.
This pluggable look and feel is a free substitute for the default native look and feel of Swing,
'Metal', distributed under the GNU Lesser General Public License. Metal lacks both in usability and
aesthetics. It contains considerable graphical noise, distracting the user from the key elements of
the GUI.
Tonic, on the other hand, tries to provide a clean, balanced look and an improved feel. Tonic is
available free of charge both for commercial and non-commercial applications. It lends a
professional touch and a very tidy and clean interface to your Swing based applications.
Artifact toniclf
Group net.sf.squirrel-sql.thirdparty-non-maven
Version 1.0.5
Last update 03. October 2009
Organization not specified
URL http://www.digitprop.com/tonic/tonic.php
License GNU Lesser General Public License
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
Group net.sf.squirrel-sql.thirdparty-non-maven
Version 1.0.5
Last update 03. October 2009
Organization not specified
URL http://www.digitprop.com/tonic/tonic.php
License GNU Lesser General Public License
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
mahout from group org.apache.mahout (version 14.1)
Mahout's goal is to build scalable machine learning libraries. With scalable we mean: Scalable to
reasonably large data sets. Our core algorithms for clustering, classification and batch based collaborative
filtering are implemented on top of Apache Hadoop using the map/reduce paradigm. However we do not restrict
contributions to Hadoop based implementations: Contributions that run on a single node or on a non-Hadoop
cluster are welcome as well. The core libraries are highly optimized to allow for good performance also for
non-distributed algorithms. Scalable to support your business case. Mahout is distributed under a commercially
friendly Apache Software license. Scalable community. The goal of Mahout is to build a vibrant, responsive,
diverse community to facilitate discussions not only on the project itself but also on potential use cases. Come
to the mailing lists to find out more. Currently Mahout supports mainly four use cases: Recommendation mining
takes users' behavior and from that tries to find items users might like. Clustering takes e.g. text documents
and groups them into groups of topically related documents. Classification learns from existing categorized
documents what documents of a specific category look like and is able to assign unlabelled documents to the
(hopefully) correct category. Frequent itemset mining takes a set of item groups (terms in a query session,
shopping cart content) and identifies, which individual items usually appear together.
Group: org.apache.mahout Artifact: mahout
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Artifact mahout
Group org.apache.mahout
Version 14.1
Last update 16. July 2020
Organization The Apache Software Foundation
URL http://mahout.apache.org
License Apache License, Version 2.0
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
Group org.apache.mahout
Version 14.1
Last update 16. July 2020
Organization The Apache Software Foundation
URL http://mahout.apache.org
License Apache License, Version 2.0
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
mahout-eclipse-support from group org.apache.mahout (version 0.5)
Artifact mahout-eclipse-support
Group org.apache.mahout
Version 0.5
Last update 28. May 2011
Organization not specified
URL Not specified
License not specified
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
Group org.apache.mahout
Version 0.5
Last update 28. May 2011
Organization not specified
URL Not specified
License not specified
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
mahout-parent from group org.apache.mahout (version 0.3)
Mahout's goal is to build scalable machine learning libraries. With scalable we mean: Scalable to reasonably large data sets. Our core algorithms for clustering, classfication and batch based collaborative filtering are implemented on top of Apache Hadoop using the map/reduce paradigm. However we do not restrict contributions to Hadoop based implementations: Contributions that run on a single node or on a non-Hadoop cluster are welcome as well. The core libraries are highly optimized to allow for good performance also for non-distributed algorithms. Scalable to support your business case. Mahout is distributed under a commercially friendly Apache Software license. Scalable community. The goal of Mahout is to build a vibrant, responsive, diverse community to facilitate discussions not only on the project itself but also on potential use cases. Come to the mailing lists to find out more. Currently Mahout supports mainly four use cases: Recommendation mining takes users' behavior and from that tries to find items users might like. Clustering takes e.g. text documents and groups them into groups of topically related documents. Classification learns from exisiting categorized documents what documents of a specific category look like and is able to assign unlabelled documents to the (hopefully) correct category. Frequent itemset mining takes a set of item groups (terms in a query session, shopping cart content) and identifies, which individual items usually appear together.
Group: org.apache.mahout Artifact: mahout-parent
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0 downloads
Artifact mahout-parent
Group org.apache.mahout
Version 0.3
Last update 12. March 2010
Organization The Apache Software Foundation
URL http://lucene.apache.org/mahout
License The Apache Software License, Version 2.0
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
Group org.apache.mahout
Version 0.3
Last update 12. March 2010
Organization The Apache Software Foundation
URL http://lucene.apache.org/mahout
License The Apache Software License, Version 2.0
Dependencies amount 0
Dependencies No dependencies
There are maybe transitive dependencies!
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