如何在ST231整数处理器上准确有效地平方浮点数

C. Jeannerod, Jingyan Jourdan-Lu, Christophe Monat, G. Revy
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引用次数: 3

摘要

考虑了用整数算法计算IEEE浮点数平方的问题。我们展示了如何利用平方的特定属性来设计和实现比一般乘法延迟低得多的算法,同时仍然保证正确的舍入。我们的算法由浮点格式参数化,目标是高指令级并行性(ILP)曝光,并涵盖所有舍入模式。我们进一步表明,他们对binary32格式的C实现为ST微电子的ST231 VLIW整数处理器等目标产生了有效的代码,其延迟至少比相同上下文中的一般乘法小1.75倍。
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How to Square Floats Accurately and Efficiently on the ST231 Integer Processor
We consider the problem of computing IEEE floating-point squares by means of integer arithmetic. We show how to exploit the specific properties of squaring in order to design and implement algorithms that have much lower latency than those for general multiplication, while still guaranteeing correct rounding. Our algorithms are parameterized by the floating-point format, aim at high instruction-level parallelism (ILP) exposure, and cover all rounding modes. We show further that their C implementation for the binary32 format yields efficient codes for targets like the ST231 VLIW integer processor from ST Microelectronics, with a latency at least 1.75x smaller than that of general multiplication in the same context.
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