假设信号在媒体上的传播速率为2.3×108m/s。媒体长度l分别为:(1)10cm(网卡)(2)100m(局域网)(3)100km(城域网)(4)5000km(广域网)试计算当数据率为1Mb/s和10Gb/s时在以上媒体中正在传播的比特数。
正确答案:
传播时延=信道长度/电磁波在信道上的传播速率
时延带宽积=传播时延*带宽
(1)1Mb/s时:0.1m/2.3/108×1×106b/s=0.000435bit=4.35×10-4bit
10Gb/s时:0.1m/2.3/108×10×109b/s=0.000435bit=4.35bit
(2)1Mb/s时:100m/2.3/108×1×106b/s=0.435bit
10Gb/s时:100m/2.3/108×10×109b/s=4.35×10-3bit
(3)1Mb/s时:100000/2.3/108×1×106b/s=435bit
10Gb/s时:100000/2.3/108×10×109b/s=4.35×106bit
(4)1Mb/s时:5×106/2.3/108×1×106b/s=2.1739×10bit
10Gb/s时:5×106/2.3/108×10×109b/s=2.1739×108bit
时延带宽积=传播时延*带宽
(1)1Mb/s时:0.1m/2.3/108×1×106b/s=0.000435bit=4.35×10-4bit
10Gb/s时:0.1m/2.3/108×10×109b/s=0.000435bit=4.35bit
(2)1Mb/s时:100m/2.3/108×1×106b/s=0.435bit
10Gb/s时:100m/2.3/108×10×109b/s=4.35×10-3bit
(3)1Mb/s时:100000/2.3/108×1×106b/s=435bit
10Gb/s时:100000/2.3/108×10×109b/s=4.35×106bit
(4)1Mb/s时:5×106/2.3/108×1×106b/s=2.1739×10
10Gb/s时:5×106/2.3/108×10×109b/s=2.1739×108bit
答案解析:有
微信扫一扫手机做题