计网第三章作业.doc

1、Chapter 3 注:括弧中标题号为第四版教材中对应得习题号1. (R14)Suppose Host A sends two TCP segments back to back to Host B over a TCP connection、 The first segment has sequence number 90; the second has sequence number 110、a、 How much data is in the first segment?b、Suppose that the first segment is lost but the second seg

2、ment arrives at B、 In the acknowledgment that Host B sends to Host A, what will be the acknowledgment number?答:a.90,109=20bytesb.ack number=90,对第一个报文段确认2. (R15)True or false?a、 The size of the TCP RcvWindow never changes throughout the duration of the connection、b、 suppose Host A is sending Host B a

3、 large a TCP connection、 The number of unacknowledged bytes that A sends cannot exceed the size of the receive buffer、c、 Host A is sending Host B a large a TCP connection、 Assume Host B has no data to send Host A、 Host B will not send acknowledgments to Host A because Host B cannot piggyback the ack

4、nowledgment on data、d、 The TCP segment has a field in its header for RcvWindow、e、 Suppose Host A is sending a large Host B over a TCP connection、 If the sequence number for a segment of this connection is m, then the sequence number for the subsequent segment will necessarily be m + 1、f、 Suppose tha

5、t the last SampleRTT in a TCP connection is equal to 1 sec、 The current value of TimeoutInterval for the connection will necessarily be=1 sec、g、 Suppose Host A sends one segment with sequence number 38 and 4 bytes of data over a TCP connection to Host B、 In this same segment the acknowledgment numbe

6、r is necessarily 42、答:a、Fb、Tc、F:即使没有数据传送,也会进行单独确认d、Te、F:按字节编号,不按报文段编号f、Fg、F:B-A得确认号不一定为38+4=423. (R17)True or false? Consider congestion control in TCP、 When the timer expires at the sender, the threshold is set to one half of its previous value、答:F:应为当前拥塞窗口得一半,而不就是阈值得一半。4. (P3)UDP and TCP use 1s pl

7、ement for their checksums、 Suppose you have the following three 8-bit bytes: 01101010, 01001111, 、 What is the 1s plement of the sum of these 8-bit byte? (Note that although UDP and TCP use 16-bit words in puting the checksum, for this problem you are being asked to consider 8-bit sums、 ) Show all w

8、ork、 Why is it that UDP takes plement of the sum; that is, why not just use the sum? With the 1s plement scheme, how does the receiver detect errors? Is it possible that a 1-bit error will go undetected? How about a 2-bit error?答:01101010+01001111=11000101, 11000101+01110011=00010001取反为。为了发现错误,接收端增加

9、4个字组(3个原始得,1个取反后得),如果总数包含0,即有错误。所有得一位错误会发现,但两位错误有可能不会被发现。5. (P7)Draw the FSM for the receiver side of protocol rdt3、0、答:6. (P13)Consider a reliable data transfer protocol that uses only negative acknowledgements、 Suppose the sender sends data only infrequently、 Would a NAK-only protocol be preferabl

10、e to a protocol to that uses ACKs? Why? Now suppose the sender has a lot of data to send and the end-to-end connection experiences few losses、 In this second case, would a NAK-only protocol be preferable to a protocol that uses ACKs? Why?答:在仅使用NAK得协议中,只有当接收到分组x+1时才能检测到分组x得丢失。如果传输x与传输x+1之间有很长得延时,那么在此

11、协议中修复分组x需要很长得时间;如果要发送大量得数据,在仅有NAK得协议中修复速度很快;如果错误很少,那么NAK只偶尔发送ACK,则会明显减少反馈时间。7. (P14)Consider the cross-country example shown in Figure 3、17、 How big would the window size have to be for the channel utilization to be greater than 80 percent?答:U=nL/R/(RTT+L/R)80%n30018. (P19)Answer true or false to th

12、e following questions and briefly justify your answer:a、 With the SR protocol, it is possible for the sender to receive an ACK for a packet that falls outside of its current windowb、 With GBN, it is possible for the sender to receive an ACK for a packet that falls outside of its current window、c、 Th

13、e alternating-bit protocol is the same as the SR protocol with a sender and receiver window size of 1、d、 The alternating-bit protocol is the same as the GBN protocol with a sender and receiver window size of 1、答:a. T:在t0时刻发送方窗口3发送包1,2,3;在t1时刻接收方接收ACKs1,2,3;在t2时刻发送方延时并重新发送1,2,3;在t3时刻接收方接收包并重新发送确认1,2,

14、3;在t4时刻发送方接收接收方在t1时刻发送得ACKs并进入窗口4,5,6;在t5时刻发送方接收接收方在t2时刻发送得ACKs1,2,3。这些ACKs在窗口之外。b. T:见ac. Td. T:在窗口1时,SR,GBN,the alternating bit protocol 在功能上就是一样得,窗口1会自动排除有可能无序得包。9. (P23)Consider transferring an enormous L bytes from Host A to Host B、 Assume an MSS of 1,460 bytes、a. What is the maximum value of L

15、 such that TCP sequence numbers are not exhausted? Recall that the TCP sequence number fields has 4 bytes、b. For the L you obtain in (a), find how long it takes to transmit the file、 Assume that a total of 66 bytes of transport, network, and data-link header are added to each segment before the resu

16、lting packet is sent our over a 100 Mbps link、 Ignore flow control and congestion control so A can pump out the segments back to back and continuously、答:a. TCP序号范围为4bytes,LMAX=232bytesb. 传输速度=155Mbps,每段加66bytes大小得头,共分段:232bytes/1460bytes=2941758段;头大小与=294175866=194156028bytes;总共需传输194156028+232bytes

17、=4489123324bytes=35912986592bits得数据;用10Mbps得速度传输则时间为3591s。10. (P34)Consider the following plot of TCP window size as a function of time、Assuming TCP Reno is the protocol experiencing the behavior shown above, answer the following questions、 In all cases, you should provide a short discussion justify

18、ing your answer、a、 Identify the intervals of time when TCP slow start is operating、b、 Identify the intervals of time when TCP congestion avoidance is operating、c、 After the 16th transmission round, is segment loss detected by a triple duplicate ACK or by a timeout?d、 After the 22nd transmission roun

19、d, is segment loss detected by a triple duplicate ACK or by a timeout?e、 What is the initial value of Threshold at the first transmission round?f、 What is the value of Threshold at the 18th transmission round?g、 What is the value of Threshold at the 24th transmission round?h、 During what transmissio

20、n round is the 70th segment sent?i、 Assuming a packet loss is detected after the 26th round by the receipt of a triple duplicate ACK, what will be the values of the congestion window size and of Threshold?答:a. 运行TCP慢启动得时间间隔就是1,6与23,26;b. 运行TCP避免拥塞时得时间间隔就是1,6与17,22;c. 在第16个传输周期后,通过3个冗余ACK能够检测到一个报文段丢失

21、。如果有一个超时,拥塞窗口尺寸将减小为1、d. 在第22个传输周期后,因为超时能够检测到一个报文段丢失,因此拥塞窗口得尺寸被设置为1。e. Threshold得初始值设置为32,因为在这个窗口尺寸就是慢启动停止,避免拥塞开始。f. 当检测到报文段丢失时,threshold被设置为拥塞窗口值得一半。当在第16个周期检测到丢失时,拥塞窗口得大小就是42,因此在第18个传输周期时threshold值为21。g. 当检测到报文段丢失时,threshold被设置为拥塞窗口值得一半。当在第22个周期检测到丢失时,拥塞窗口得大小就是26,因此在第24个传输周期时threshold值为13。h. 在第1个传输

22、周期内,报文段1被传送;在第2个传输周期发送报文段2-3;在第3个传输周期发送报文段4-7,在第4个传输周期发送8-15;在第5个传输周期发送16-31;在第6个传输周期发送32-63;在第7个传输周期发送64-96;因此,报文段70在第7个传送周期内发送。i. 当丢失出现时拥塞窗口与threshold得值被设置为目前拥塞窗口长度8得一半。因此新得拥塞窗口与threshold得值为4、11. (P38)Host A is sending an enormous Host B over a TCP connection、 Over this connection there is never a

23、ny packet loss and the timers never expire、 Denote the transmission rate of the link connecting Host A to the Internet by R bps、 Suppose that the process in Host A is capable of sending data into its TCP socket at a rate S bps, where S = 10*R、 Further suppose that the TCP receive buffer is large eno

24、ugh to hold the entire file, and the send buffer can hold only one percent of the file、 What would prevent the process in Host A from continuously passing data to its TCP socket at rate S bps? TCP flow control? TCP congestion control? Or something else? Elaborate、答:在这个问题中,接收机没有溢出得危险,因为接收机得接收缓冲区可以承载整个文件。同样得,因为在计时器计时完毕前,没有丢失与回复确认,TCP不会限制发送方。但就是,在端系统A上得进程不会一直传输数据给套接字,因为发送缓冲区会很快被填满,一旦发送缓冲区满,那么进程就会以平均速率传输数据。