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2010 IEEE Workshop on High Performance Computational Finance最新文献

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Acceleration of financial Monte-Carlo simulations using FPGAs 利用fpga加速金融蒙特卡罗模拟
Pub Date : 2010-12-20 DOI: 10.1109/WHPCF.2010.5671823
David B. Thomas
There is a need for improved performance in financial computing, both to improve the quality of the results produced by existing methods, such as incorporating more realistic models of risk, and to increase the scope of applications, such as modelling corporation-wide exposure to risk without applying simplifying abstractions. However, increased performance comes at significant cost, both in terms of the capital costs, and also in terms of power consumption. Field-Programmable Gate Arrays (FPGAs) offer one way of providing greater performance than CPUs while also reducing power consumption, and are particularly well-suited for computationally intensive tasks such as Monte-Carlo simulation. However, existing programming models for FPGAs require too much specialist knowledge and programmer effort, making it infeasible to use them in most financial applications. This paper gives an overview of Contessa, a high-level language for describing Monte-Carlo simulations, with an automated compilation route to pipelined high-performance hardware. By providing a push-button high-level route to FPGA-accelerated performance, languages such as Contessa provide one way in which the benefits of FPGAs can be exploited in computational finance.
有必要改进金融计算的性能,既要提高现有方法产生的结果的质量,例如纳入更现实的风险模型,又要扩大应用范围,例如在不应用简化抽象的情况下对全公司的风险敞口进行建模。然而,提高性能需要付出巨大的代价,包括资本成本和功耗。现场可编程门阵列(fpga)提供了一种比cpu提供更高性能的方法,同时也降低了功耗,特别适合于计算密集型任务,如蒙特卡罗模拟。然而,现有的fpga编程模型需要太多的专业知识和程序员的努力,使得在大多数金融应用中使用它们是不可行的。Contessa是一种用于描述蒙特卡罗模拟的高级语言,具有自动编译到流水线高性能硬件的途径。通过提供fpga加速性能的高级通道,Contessa等语言提供了一种方法,可以在计算金融中利用fpga的优势。
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引用次数: 16
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2010 IEEE Workshop on High Performance Computational Finance
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