A scheduling framework for general-purpose parallel languages

Author:

Fluet Matthew1,Rainey Mike2,Reppy John2

Affiliation:

1. Toyota Technological Institute at Chicago, Chicago, IL, USA

2. University of Chicago, Chicago, IL, USA

Abstract

The trend in microprocessor design toward multicore and manycore processors means that future performance gains in software will largely come from harnessing parallelism. To realize such gains, we need languages and implementations that can enable parallelism at many different levels. For example, an application might use both explicit threads to implement course-grain parallelism for independent tasks and implicit threads for fine-grain data-parallel computation over a large array. An important aspect of this requirement is supporting a wide range of different scheduling mechanisms for parallel computation. In this paper, we describe the scheduling framework that we have designed and implemented for Manticore, a strict parallel functional language. We take a micro-kernel approach in our design: the compiler and runtime support a small collection of scheduling primitives upon which complex scheduling policies can be implemented. This framework is extremely flexible and can support a wide range of different scheduling policies. It also supports the nesting of schedulers, which is key to both supporting multiple scheduling policies in the same application and to hierarchies of speculative parallel computations. In addition to describing our framework, we also illustrate its expressiveness with several popular scheduling techniques. We present a (mostly) modular approach to extending our schedulers to support cancellation. This mechanism is essential for implementing eager and speculative parallelism. We finally evaluate our framework with a series of benchmarks and an analysis.

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Graphics and Computer-Aided Design,Software

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. From folklore to fact: comparing implementations of stacks and continuations;Proceedings of the 41st ACM SIGPLAN Conference on Programming Language Design and Implementation;2020-06-06

2. Compiling with Continuations and LLVM;Electronic Proceedings in Theoretical Computer Science;2018-12-31

3. Work efficient higher-order vectorisation;ACM SIGPLAN Notices;2012-10-15

4. Lazy tree splitting;Journal of Functional Programming;2012-08-15

5. Runtime support for multicore Haskell;ACM SIGPLAN Notices;2009-08-31

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