Multichannel Immediate Multiple Access for Dedicated Short-Range Communications: IEEE 802.11p-Compatible Physical Layer

Mingming Cai, J. N. Laneman
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引用次数: 2

Abstract

This paper describes two concepts for Multichannel Immediate Multiple Access (MIMA) radio architectures for Dedicated Short-Range Communications (DSRC). Based upon an orthogonal frequency-division multiplexing (OFDM) physical layer, MIMA allows receivers to listen to all seven channels allotted for DSRC in the 5.9 GHz band and allows transmitters to send messages in any subset of the seven DSRC channels. The multichannel accessibility of MIMA further provides higher data rate for various applications, such as In-Vehicle Infotainment. The MIMA architectures are also compatible with the IEEE 802.11p standard, that is, they can coexist with 802.11p transceivers. One MIMA concept can increase spectrum utilization by up to 21.4% beyond carrier aggregation alone by utilizing guard bands in between aggregated DSRC channels. Another MIMA concept is to separate synchronization from demodulation and decoding, allowing a receiver to operate synchronizers for multiple channels in parallel but demodulating and decoding only those channels that are active, and thereby significantly reduce the FPGA or digital chip resources in the receiver. A prototype of the MIMA architecture has been implemented using an advanced software defined radio (SDR) platform. Preliminary results from the prototypes demonstrate the multichannel accessibility of the physical layer.
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专用短距离通信的多通道即时多址:IEEE 802.11p兼容物理层
本文介绍了用于专用短距离通信(DSRC)的多通道即时多址(MIMA)无线电架构的两个概念。基于正交频分复用(OFDM)物理层,MIMA允许接收器收听5.9 GHz频带中分配给DSRC的所有七个频道,并允许发射器在七个DSRC频道的任何子集中发送消息。MIMA的多通道可访问性进一步为各种应用提供更高的数据速率,例如车载信息娱乐。MIMA架构还兼容IEEE 802.11p标准,即可以与802.11p收发器共存。通过利用聚合DSRC信道之间的保护带,一个MIMA概念可以将频谱利用率提高21.4%,而不仅仅是载波聚合。另一个MIMA概念是将同步与解调和解码分离,允许接收器并行操作多个通道的同步器,但只对活动通道进行解调和解码,从而显着减少接收器中的FPGA或数字芯片资源。MIMA架构的原型已经使用先进的软件定义无线电(SDR)平台实现。原型的初步结果证明了物理层的多通道可达性。
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