为数据密集型应用程序优化并行集

K. Eder, L. Böszörményi
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引用次数: 2

摘要

提出了一种通用程序设计语言(gpPL)的扩展。它支持基于集合的并行性、持久性和查询优化。作者证明,在gpls中,原语“集”可以一般化,以满足数据库和专家系统应用的需要。基于集合表达式的无副作用声明性查询可以并行优化和执行。个别优化和并行化是语言系统和编译器的组成部分。持久性或易失性、并行或顺序、优化或非优化实现的非常不同的组合都是可能的。在预定义接口的帮助下,实现的很大一部分位于编译器之外,这一事实减轻了这一点。可以考虑不同的代数、优化器或算法。同一个程序可以不经修改在不同的系统或平台上执行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimized parallel sets for data intensive applications
An extension of a general-purpose programming language (gpPL) is presented. It enables parallelism, persistence and query optimization based on sets. The authors demonstrate that in gpPLs the primitive "set" can be generalised for the needs of database and expert system applications. Side-effect free declarative queries, based on set expressions, can be optimized and executed in parallel. Individual optimization and parallelization are integral parts of the language system and compiler. Very different combinations of persistent or volatile, and parallel or sequential, and optimized or non-optimized implementations are possible. This is eased by the fact that a great part of the implementation is located outside the compiler with the help of predefined interfaces. Different algebras, optimizers or algorithms can be considered. The same program can be executed without modification in various systems or platforms.
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