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Tackling the Bus Turnaround Overhead in Real-Time SDRAM Controllers

机译:解决实时SDRAM控制器中的总线周转开销

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Synchronous dynamic random access memories (SDRAMs) are widely employed in multi- and many-core platforms due to their high-density and low-cost. Nevertheless, their benefits come at the price of a complex two-stage access protocol, which reflects their bank-based structure and an internal level of explicitly managed caching. In scenarios in which requestors demand real-time guarantees, these features pose a predictability challenge and, in order to tackle it, several SDRAM controllers have been proposed. In this context, recent research shows that a combination of bank privatization and open-row policy (exploiting the caching over the boundary of a single request) represents an effective way to tackle the problem. However, such approach uncovered a new challenge: the data bus turnaround overhead. In SDRAMs, a single data bus is shared by read and write operations. Alternating read and write operations is, consequently, highly undesirable, as the data bus must remain idle during a turnaround. Therefore, in this article, we propose a SDRAM controller that reorders read and write commands, which minimizes data bus turnarounds. Moreover, we compare our approach analytically and experimentally with existing real-time SDRAM controllers both from the worst-case latency and power consumption perspectives.
机译:同步动态随机存取存储器(SDRAM)由于其高密度和低成本而广泛用于多核和多核平台。但是,它们的好处是以复杂的两阶段访问协议为代价的,该协议反映了它们基于银行的结构以及显式管理的缓存的内部级别。在请求者需要实时保证的情况下,这些功能带来了可预测性挑战,并且为了解决这一问题,已经提出了几种SDRAM控制器。在这种情况下,最近的研究表明,将银行私有化与开放行政策(利用单个请求的边界上的缓存)相结合,是解决该问题的有效方法。但是,这种方法发现了新的挑战:数据总线周转开销。在SDRAM中,读取和写入操作共享一条数据总线。因此,交替的读写操作是非常不希望的,因为数据总线在周转期间必须保持空闲状态。因此,在本文中,我们提出了一种SDRAM控制器,该控制器对读和写命令进行重新排序,从而最大程度地减少了数据总线的周转时间。此外,从最坏情况的延迟和功耗角度来看,我们在分析和实验上都将我们的方法与现有的实时SDRAM控制器进行了比较。

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