首页> 外文会议>2016 Future Technologies Conference >Practical tera-scale Walsh-Hadamard Transform
【24h】

Practical tera-scale Walsh-Hadamard Transform

机译:实用兆级Walsh-Hadamard变换

获取原文
获取原文并翻译 | 示例

摘要

In the mid-second decade of new millennium, the development of IT has reached unprecedented new heights. As one derivative of Moore's law, the operating system evolves from the initial 16 bits, 32 bits, to the ultimate 64 bits. Most modern computing platforms are in transition to the 64-bit versions. For upcoming decades, IT industry will inevitably favor software and systems, which can efficiently utilize the new 64-bit hardware resources. In particular, with the advent of massive data outputs regularly, memory-efficient software and systems would be leading the future. In this paper, we aim at studying practical Walsh-Hadamard Transform (WHT). WHT is popular in a variety of applications in image and video coding, speech processing, data compression, digital logic design, communications, just to name a few. The power and simplicity of WHT has stimulated research efforts and interests in (noisy) sparse WHT within interdisciplinary areas including (but is not limited to) signal processing, cryptography. Loosely speaking, sparse WHT refers to the case that the number of nonzero Walsh coefficients is much smaller than the dimension; the noisy version of sparse WHT refers to the case that the number of large Walsh coefficients is much smaller than the dimension while there exists a large number of small nonzero Walsh coefficients. Clearly, general Walsh-Hadamard Transform is a first solution to the noisy sparse WHT, which can obtain all Walsh coefficients larger than a given threshold and the index positions. In this work, we study efficient implementations of very large dimensional general WHT. Our work is believed to shed light on noisy sparse WHT, which remains to be a big open challenge. Meanwhile, the main idea behind will help to study parallel data-intensive computing, which has a broad range of applications.
机译:在新千年的第二个十年中期,IT的发展达到了前所未有的新高度。作为摩尔定律的一种推导,操作系统从最初的16位,32位发展到了最终的64位。大多数现代计算平台都在过渡到64位版本。在接下来的几十年中,IT行业将不可避免地青睐能够有效利用新的64位硬件资源的软件和系统。特别是,随着定期海量数据输出的到来,具有内存效率的软件和系统将引领未来。在本文中,我们旨在研究实用的沃尔什·哈达玛变换(WHT)。 WHT在图像和视频编码,语音处理,数据压缩,数字逻辑设计,通信等各种应用中很受欢迎。 WHT的强大功能和简便性激发了研究工作,并引起了人们对跨学科领域(嘈杂的)稀疏WHT的研究兴趣,这些领域包括(但不限于)信号处理,密码学。松散地说,稀疏WHT是指非零沃尔什系数的数量远小于维数的情况。稀疏WHT的嘈杂版本是指大Walsh系数的数量远小于维数而存在大量小非零Walsh系数的情况。显然,通用的Walsh-Hadamard变换是针对嘈杂的稀疏WHT的第一个解决方案,该解决方案可以获得大于给定阈值和索引位置的所有Walsh系数。在这项工作中,我们研究了超大型通用WHT的有效实现。据信,我们的工作揭示了嘈杂的稀疏WHT,这仍然是一个巨大的公开挑战。同时,背后的主要思想将有助于研究并行数据密集型计算,该应用具有广泛的应用范围。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号