Download JAR files tagged by reduce with all dependencies
multiverse-scala from group org.multiverse (version 0.5.2)
Scala classes to allow more elegant use of Multiverse from Scala. Atm the functionality
is quite limited since not a lot of effort was put in the Scala integration. For the 0.6 release
Multiverse should be able to work with in Scala written transactional objects configured with
the Multiverse annotations. So that would reduce the need for this library, although in Scala
they want to have special Scala 'interfaces' that provide some syntactic sugar to use java collections
in Scala. So this module would be the good location for that. If anyone would like to help
improving the Multiverse/Scala integration, please don't hesitate to join.
Artifact multiverse-scala
Group org.multiverse
Version 0.5.2
Last update 26. May 2010
Organization not specified
URL Not specified
License not specified
Dependencies amount 2
Dependencies multiverse-core, scala-library,
There are maybe transitive dependencies!
Group org.multiverse
Version 0.5.2
Last update 26. May 2010
Organization not specified
URL Not specified
License not specified
Dependencies amount 2
Dependencies multiverse-core, scala-library,
There are maybe transitive dependencies!
idaithalam from group io.virtualan (version 1.7.0)
Generate feature file and cucumber report and execute and generate for VIRTUALAN or POSTMAN collection
and used for API contract testing capability.
- Used for API testing.
- Used for Contract testing.
- Used for Production Checkout.
- Used for Agile sprint end regression testing.
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Artifact idaithalam
Group io.virtualan
Version 1.7.0
Last update 23. May 2022
Organization not specified
URL https://virtualan.io
License Apache License 2.0
Dependencies amount 3
Dependencies cucumblan-api, cucumber-reporting, compiler,
There are maybe transitive dependencies!
Group io.virtualan
Version 1.7.0
Last update 23. May 2022
Organization not specified
URL https://virtualan.io
License Apache License 2.0
Dependencies amount 3
Dependencies cucumblan-api, cucumber-reporting, compiler,
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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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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