commit | a845cab4663ae66134a769e87863606142ef8bdf | [log] [tgz] |
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author | baunsgaard <baunsgaard@tugraz.at> | Sat Jul 31 21:51:39 2021 +0200 |
committer | baunsgaard <baunsgaard@tugraz.at> | Wed Aug 04 14:52:08 2021 +0200 |
tree | 163fe57be4128f501ff02804878a242a48a14ccd | |
parent | a177ae919c4e0d9b025fba7574d415baa6b7f562 [diff] |
[SYSTEMDS-3083] Modify Bin file to enable Java Arguments This commit change /bin/systemds to allow different java arguments, to the spark-submit. Previously all arguments would be overwritten with log4j instructions. To allow this change the CMD executed is now executed using eval and changed into an string to make the printed the same string as is executed. Furthermore some restructuring of the bin file was necessary to change the location of log4j passing to before the SYSTEMDS_DISTRIBUTED_OPTS construction.
Overview: SystemDS is a versatile system for the end-to-end data science lifecycle from data integration, cleaning, and feature engineering, over efficient, local and distributed ML model training, to deployment and serving. To this end, we aim to provide a stack of declarative languages with R-like syntax for (1) the different tasks of the data-science lifecycle, and (2) users with different expertise. These high-level scripts are compiled into hybrid execution plans of local, in-memory CPU and GPU operations, as well as distributed operations on Apache Spark. In contrast to existing systems - that either provide homogeneous tensors or 2D Datasets - and in order to serve the entire data science lifecycle, the underlying data model are DataTensors, i.e., tensors (multi-dimensional arrays) whose first dimension may have a heterogeneous and nested schema.
Quick Start Install, Quick Start and Hello World
Documentation: SystemDS Documentation
Python Documentation Python SystemDS Documentation
Issue Tracker Jira Dashboard
Status and Build: SystemDS is renamed from SystemML which is an Apache Top Level Project. To build from source visit SystemDS Install from source