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Reducing power dissipation of register alias tables in high-performance processors

机译:降低高性能处理器中寄存器别名表的功耗

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Modern microprocessor designs implement register renaming using register alias tables (RATs) which maintain the mapping between architectural and physical registers. Because of the non-trivial power that is dissipated in a disproportionately small area, the power density in the RAT is significantly higher than in some other datapath components. Mechanisms are proposed to reduce the RAT power and the power density by exploiting the fundamental observation that most of the generated register values are used by the instructions in close proximity to the instruction producing a value. The first technique disables the RAT lookup for a source register if that register is a destination of an earlier instruction dispatched in the same cycle. The second technique eliminates some of the remaining RAT read accesses, even if the source register value is produced by an instruction dispatched in an earlier cycle. This is done by buffering a small number of recent register address translations in a set of external latches and satisfying some RAT lookup requests from these latches. The net result of applying both techniques is a 30percent reduction in the RAT energy with no performance penalty, little additional complexity and no cycle time degradation.
机译:现代微处理器设计使用寄存器别名表(RAT)实现寄存器重命名,该别名表维护架构寄存器与物理寄存器之间的映射。由于在不成比例的较小区域中耗散了非平凡的功率,因此RAT中的功率密度明显高于某些其他数据路径组件中的功率密度。提出了通过利用以下基本观察来降低RAT功率和功率密度的机制:大多数生成的寄存器值都由与产生值的指令非常接近的指令所使用。如果源寄存器是在同一周期内分派的较早指令的目的地,则第一种技术禁用对源寄存器的RAT查找。第二种技术消除了一些剩余的RAT读取访问,即使源寄存器值是由较早周期中分派的指令产生的。这是通过在一组外部锁存器中缓冲少量最近的寄存器地址转换并满足来自这些锁存器的一些RAT查找请求来完成的。应用这两种技术的最终结果是将RAT能量减少了30%,而没有性能损失,几乎没有其他复杂性并且没有循环时间下降。

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