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Micropipelined asynchronous discrete cosine transform (DCT/IDCT) processor

机译:微管线异步离散余弦变换(DCT / IDCT)处理器

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We describe the design and implementation of an asynchronous discrete cosine transform/inverse discrete cosine transform (DCT/IDCT) processor core compliant with the CCITT recommendation H.261. First, a micropipelined implementation with level-sensitive latches is shown. This is improved by replacing the level-sensitive latches with dual-edge triggered flip-flops to save power and using completion-detection adders in the critical stage of the pipeline to exploit the data-dependent processing delay. Gate-level simulation of extracted layouts indicates that the performance of asynchronous implementations is comparable with that of a synchronous implementation based on an identical architecture. This is because part of the penalty introduced by handshaking circuitry in an asynchronous pipeline can be recovered by exploiting data-dependent processing delays with completion-detection circuitry. In pipelines with significant arithmetic processing such as the DCT/IDCT processor, this is easily accomplished. Our results are encouraging because asynchronous designs do not employ global clocking. In the near future when clock generation, clock distribution, and the power consumed in the clock circuitry become limiting factors in the design of large synchronous application specific integrated circuits (ASICs), asynchronous implementation methodology could be pursued as a real alternative.
机译:我们描述了符合CCITT建议H.261的异步离散余弦变换/逆离散余弦变换(DCT / IDCT)处理器内核的设计和实现。首先,显示了具有电平敏感锁存器的微管线实现。通过用双沿触发触发器代替电平敏感锁存器以节省功率,并在流水线的关键阶段使用完成检测加法器来利用与数据有关的处理延迟,可以改善这一点。对提取的布局进行门级仿真表明,异步实现的性能与基于相同体系结构的同步实现的性能可比。这是因为可以通过利用完成检测电路利用数据相关的处理延迟来恢复异步管道中的握手电路所引入的部分损失。在具有重要算术处理的管道(例如DCT / IDCT处理器)中,这很容易实现。我们的结果令人鼓舞,因为异步设计未使用全局时钟。在不久的将来,当时钟生成,时钟分配以及时钟电路中的功耗成为大型同步专用集成电路(ASIC)设计中的限制因素时,可以将异步实现方法作为一种真正的选择。

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