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On chip novel video streaming system for bi-network multicasting protocols

机译:用于双网络多播协议的片上新型视频流系统

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摘要

In the past three decades, tremendous Ethernet-related research has been done, which has led to today's ubiquitous Ethernet technology. On the other hand, with the emergence of new network needs, a new protocol, the IEEE 1394 standard serial bus (or Firewire) was introduced. Firewire is suitable for high-quality audio/video applications which do not perform well in the best-effort-based Ethernet technology. However, since Firewire is a serial bus, it has harsh cable length limitations as compared to Ethernet capabilities.rnIn this paper, we present a novel on-chip system that receives Firewire video and transmits it in multicast mode using Ethernet protocol. A major advantage of this novel system is to utilize the existing Ethernet infrastructure to extend the range of Firewire video streaming to reach remote nodes and make it even accessible to nodes with a single Ethernet interface. This will have tremendous impact on Firewire applications such as deploying Firewire cameras in big-scale security-sensitive buildings or industrial facilities with image-based remote quality control.rnThis novel chip utilizes the concept of Ethernet multicasting transmission mode for video streaming. The proposed chip design converts the IEEE 1394 isochronous traffic to the Ethernet multicast frame format via two off-chip asynchronous write and read buffers.rnThe goal of this research is to design an On Chip Novel Video Streaming System that avoids performance bottlenecks in the software protocol conversion of these two important network protocols. The author decided to study these two networks because of their broad use and cable power provisioning capabilities. The novel system design is implemented using a customized field programmable gate array (FPGA), which enables the integration of various system components on one chip. The designed prototype is studied using both network monitoring tools and analytical techniques, to verify its function and compare it with the existing approaches.rnPerformance measures show that the On Chip Novel Video Streaming System consumes less than 21 mW of power for 100Mbps and 82 mW of power for 1 Gbps, and utilizes 57% of a Xilinx Spartan 2-100E-6FT256 FPGA resources. Hence, it is possible to incorporate further extensions. Experimental results show that 88% of the network utilization can be achieved, due to the use of the customized, FPGA-based design of bi-network traffic conversion.
机译:在过去的三十年中,与以太网相关的大量研究已经完成,从而导致了当今无处不在的以太网技术。另一方面,随着新网络需求的出现,引入了新协议IEEE 1394标准串行总线(或Firewire)。 Firewire适用于在基于尽力而为的以太网技术中表现不佳的高质量音频/视频应用。但是,由于Firewire是串行总线,因此与以太网功能相比,它具有严格的电缆长度限制。在本文中,我们提出了一种新颖的片上系统,该系统可以接收Firewire视频并使用以太网协议以多播模式传输它。这个新颖系统的主要优点是利用现有的以太网基础结构将Firewire视频流的范围扩展到远程节点,并使具有单个以太网接口的节点甚至可以访问它。这将对Firewire应用产生巨大影响,例如将Firewire摄像机部署在大型安全敏感建筑物或具有基于图像的远程质量控制的工业设施中。这种新型芯片利用以太网多播传输模式的概念进行视频流传输。拟议中的芯片设计通过两个片外异步写入和读取缓冲器将IEEE 1394同步流量转换为以太网多播帧格式。这项研究的目的是设计一种避免软件协议中出现性能瓶颈的新型片上视频流系统。这两个重要的网络协议的转换。作者决定研究这两个网络,因为它们具有广泛的用途和电缆电源供应功能。使用定制的现场可编程门阵列(FPGA)实现了新颖的系统设计,该阵列使各种系统组件可以集成在一个芯片上。使用网络监控工具和分析技术对设计的原型进行了研究,以验证其功能并将其与现有方法进行比较。rn性能测试表明,片上新型视频流系统在100Mbps的功耗下不到21 mW,而在82Mbps的功耗下不到82 mW。功耗高达1 Gbps,并利用了Xilinx Spartan 2-100E-6FT256 FPGA资源的57%。因此,可以合并其他扩展。实验结果表明,由于使用了定制的基于FPGA的双网络流量转换设计,因此可以实现88%的网络利用率。

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