On the pathwise approximation of stochastic differential equations

被引:0
|
作者
Tony Shardlow
Phillip Taylor
机构
[1] University of Bath,Department of Mathematical Sciences
[2] The University of Manchester,School of Mathematics
来源
BIT Numerical Mathematics | 2016年 / 56卷
关键词
Stochastic differential equations; Numerical methods ; Rough path theory; 65C30;
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摘要
We consider one-step methods for integrating stochastic differential equations and prove pathwise convergence using ideas from rough path theory. In contrast to alternative theories of pathwise convergence, no knowledge is required of convergence in pth mean and the analysis starts from a pathwise bound on the sum of the truncation errors. We show how the theory is applied to the Euler–Maruyama method with fixed and adaptive time-stepping strategies. The assumption on the truncation errors suggests an error-control strategy and we implement this as an adaptive time-stepping Euler–Maruyama method using bounded diffusions. We prove the adaptive method converges and show some computational experiments.
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页码:1101 / 1129
页数:28
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