网络复习第二章习题

计算机网络第二章习题解答1. 问题描述：解释什么是分组交换？分组交换是一种网络传输技术，其中数据被分成较小的块（或分组）进行传输，而不是以连续的比特流进行传输。

在分组交换中，每个分组都会独立地通过网络传输，并且可以根据网络条件选择最佳路径来传输分组。

2. 问题描述：什么是电路交换？请列出其优点和缺点。

电路交换是一种传输技术，其中通信路径在建立连接时被预先分配。

在电路交换中，通过建立一个持续的、专用的通信路径来实现端到端的数据传输。

优点：- 传输效率高，数据传输过程稳定；- 可保障数据传输的实时性，适用于需求严格的应用场景，如电话通信；缺点：- 通信链路建立时间较长；- 通信路径在建立时就被预留，即使在通信过程中没有数据传输也会占用资源；- 在链路建立的过程中，若链路中断，需要重新建立连接。

3. 问题描述：什么是存储转发交换？请列出其特点。

存储转发交换是一种分组交换的方式，其中每个分组在传输之前需要完全接收，并存储在交换机的缓冲区中，然后根据目的地址选择合适的端口进行转发。

存储转发交换的特点包括：- 可以处理不同大小的分组，适用于各种应用场景；- 由于分组在接收端进行存储和处理，因此可以对接收到的分组进行差错检测和纠正；- 可以在网络拥塞时进行流量控制，防止分组丢失。

4. 问题描述：简要解释虚电路交换和数据报交换的区别？虚电路交换和数据报交换都是分组交换的方式，但两者存在一些区别。

虚电路交换中，发送端和接收端在通信之前会建立一个虚电路，路由器会记录这个虚电路，将后续的分组沿着虚电路转发。

在传输过程中，每个分组都有一个虚电路号标识，使得分组能够按照特定的路径到达目的地。

虚电路交换类似于电路交换，在传输过程中，分组的到达顺序和给定路径的稳定性都得到了保证。

而数据报交换中，每个分组都是独立地通过网络传输，每个分组都包含了目的地址等信息，因此路由器根据分组的目的地址来选择最佳的传输路径。

数据报交换类似于存储转发交换，分组可以通过不同的路径进行传输，灵活性较高。

项目二复习(一)填空题(请将正确的答案填写在横线内)1.在计算机局域网中,将计算机连接到网络通信介质上的物理设备是2.在计算机局域网中,网络拓扑结构主要有星状、和三种3.和广域网比,局域网主要具有覆盖范围小、传输速率、误码率三个特点4.局域网主要由、、、和等组成。

5.双绞线分为和两种,同轴电缆按抗阻特性分为和两种，按直径知小分为和，光缆按传输点模数分为和6.局域网的数据链路层分为和。

7.双绞线568B排列的顺序是8.10Base-T组成的局域网只采用中继器进行连接，最大传输距离是m。

9.5类UTP的最高传输速率为Mbps,而6类的UTP最高传输速率为Mbps。

10.光纤通常分为两类,即和其中的传输速率较快,传输距离较长。

11.以太网的介质访向控制其余产品符合标准。

12.局域网的网络结构分为和两大类13.通常可把网络传输介质分为和两大类14.双纹线是一种最常用的传输介质，两根导线相互绞在一起,可使线对之间的减至最小，比较适合距离传输15．在IEEE802局域网标准中,只定义了层两层16.局域网中最重要的一项基本技术是也是局域网设计和组成的最根本问题17.要检查“125.64.223.231”这个P地址是否连通,且按下Ctrl+C组合键才结束检查，应在命令行输入（二)单项选择题1.下列( )网络不属于局域网范畴。

A.以太网B.令牌环网C.令牌总线网D.电话交换网2.在以下几种传输介质中,属于有线传输介质的是( )A.微波B.卫星C.光纤D.红外线3.网络传输介质就是通信线路,从传输速率、传输距离及安全可靠性的角度考虑,最好的是( )A.双绞线B.同轴电缆C.光纤D.三种介质等同4.E802.5协议,即令牌环网介质访问控制协议采用的是( )的协议。

A.无冲突、无优先级B.有冲突、但无优先级C.有冲突、但有优先级D.无冲突、有优先级。

5.在IEEE802局域网标准中,IEEE802.4协议也称为( )协议。

计算机网络原理第2章习题第一篇：计算机网络原理第2章习题1．通常通信信道的带宽越大，在数据传输中失真将会（）A.严重B.不变C.越大D.越小2．已知某信道的信号传输速率为64kbit/s，一个载波信号码元有4个有效离散值，则该信道的波特率为（）A．16kBaudB.32 kBaudC.64 kBaudD.128 kBaud3.某信道的波特率为1000Baud，若令其数据传输速率达到4kbit/s，则一个信号码元所取的有效离散值个数为（）A.2B.4C.8D.164．有一条无噪声的8kHz信道，每个信号包含8级，每秒采样24*103次，则可以获得的最大传输速率是（）A 24 kbit/sB.32 kbit/sC.48 kbit/sD.72 kbit/s5.假设一个信道的带宽是3000Hz，信噪比为20dB，那么这个信道可以获得的理论最大传输速率是（）A.1 kbit/sB.32 kbit/sC.20 kbit/sD.64 kbit/s6．测得一个以太网数据的波特率是40Mbaud，那么其数据率是（）A．10Mbit/sB.20 Mbit/sC.40 Mbit/sD.80 Mbit/s7．用PCM对语音进行数字量化，如果将声音分成128个量化级，采样频率为8000次/秒，那么一路话音需要的数据传输率为（）A.56 kbit/sB.64 kbit/sC.128 kbit/sD.1024 kbit/s8.[2009]在无噪声的情况下，若某通信链路的带宽为3KHz，采用4个相位，每个相位具有4种振幅的QAM调制技术，则该通信链路的最大数据传输速率是（）。

A.12kbit/sB.24kbit/sC.48kbit/sD.96kbit/s9.[2011]若某通信链路的数据传输速率为2400bit/s，采用4相位调制，则该链路的波特率是（）。

A.600波特B.1200波特C.4800波特D.9600波特第二篇：计算机网络原理习题第一章概述1.网络把__连接在一起，互联网把__连接在一起？2.因特网是由什么发展而来的？3.从因特网的工作方式上看，可以划分为哪两大块？4.简述主机和路由器的作用？5.两个主机上运行程序之间的通信方式可分为几种？分别是什么？6.简述分组交换的原理。

第二章1. (Q2)For a communication session between a pair of processes, which process is the client and which is the server?Answer:The process which initiates the communication is the client; the process that waits to be contacted is the server..2. (Q3) What is the difference between network architecture and application architecture?Answer:Network architecture refers to the organization of the communication processintolayers (e.g., the five-layer Internet architecture). Application architecture, on the other hand, is designed by an application developer and dictates the broadstructure of the application (e.g., client-server or P2P)3. (Q4) What information is used by a process running on one host to identify a process running on another host?Answer: The IP address of the destination host and the port number of the destinationsocket.4. (Q6) Referring to Figure 2.4, we see that none of the application listed in Figure 2.4 requires both no data loss and timing. Can you conceive of an application that requires no data loss and that is also highly time-sensitive?Answer: There are no good example of an application that requires no data loss and timing.If you know of one, send an e-mail to the authors5. (Q9) Why do HTTP, FTP, SMTP, and POP3 run on top of TCP rather than on UDP?Answer: The applications associated with those protocols require that all application databe received in the correct order and without gaps. TCP provides this servicewhereas UDP does not.6. (Q11) What is meant by a handshaking protocol?Answer: A protocol uses handshaking if the two communicating entities first exchangecontrol packets before sending data to each other. SMTP uses handshaking at theapplication layer whereas HTTP does not.7. (Q13) Telnet into a Web server and send a multiline request message. Include in the request message the If-modified-since: header line to force a response message with the 304 Not Modified status code.Answer: Issued the following command (in Windows command prompt) followed by theHTTP GET message to the “” web server:> telnet 80Since the index.html page in this web server was not modified since Fri, 18 May2007 09:23:34 GMT, the following output was displayed when the abovecommands were issued on Sat, 19 May 2007. Note that the first 4 lines are theGET message and header lines input by the user and the next 4 lines (startingfrom HTTP/1.1 304 Not Modified) is the response from the web server.8. (Q14) Consider an e-commerce site that wants to keep a purchase record for each of its customers. Describe how this can be done with cookies.Answer: When the user first visits the site, the site returns a cookie number. This cookie number is stored on the user’s host and is managed by the browser. During each subsequent visit (and purchase), the browser sends the cookie number back to the site. Thus the site knows when this user (more precisely, this browser) is visiting the site.9. (Q15) Suppose Alice, with a Web-based e-mail account (such as Hotmail or gmail), sends a message to Bob, who accesses his mail from his mail server using POP3. Discuss how the message gets from Alice’s host to Bob’s host. Be sure to list the series of application-layer protocols that are used to move the message between the two hosts.Answer: Message is sent from Alice’s host to her mail server over HTTP. Alice’s mail server then sends the message to Bob’s mail server over SMTP. Bob then transfers the message from his mail server to his host over POP3.10. (Q10) Recall that TCP can be enhanced with SSL to provide process-to-process securityservices, including encryption. Does SSL operate at the transport layer or the application layer? If the application developer wants TCP to be enhanced with SSL, what does the developer have to do?Answer: SSL operates at the application layer. The SSL socket takes unencrypted data fromthe application layer, encrypts it and then passes it to the TCP socket. If theapplication developer wants TCP to be enhanced with SSL, she has to include theSSL code in the application.11. (Q16) Print out the header of an e-mail message you have recently received. How manyReceived: header lines are there? Analyze each of the header lines in the message.Answer: from 65.54.246.203 (EHLO )Received：(65.54.246.203) by with SMTP; Sat, 19 May 2007 16:53:51 -0700from ([65.55.135.106]) by Received: with Microsoft SMTPSVC(6.0.3790.2668); Sat, 19 May 2007 16:52:42 -0700 Received: from mail pickup service by with Microsoft SMTPSVC; Sat,19 May 2007 16:52:41 -0700Message-ID: <*******************************************>Received: from 65.55.135.123 by with HTTP; Sat, 19 May 2007 23:52:36 GMTFrom: "prithuladhungel"<***************************>To: ******************Bcc:Subject: Test mailDate: Sat, 19 May 2007 23:52:36 +0000Mime-Version:1.0Content-Type: Text/html; format=flowedReturn-Path: ***************************Figure: A sample mail message headerReceived: This header field indicates the sequence in which the SMTP serverssend and receive the mail message including the respective timestamps.In this example there are 4 “Received:” header lines. This means the mailmessage passed through 5 different SMTP servers before being delivered to thereceiver’s mail box. The la st (forth) “Received:” header indicates the mailmessage flow from the SMTP server of the sender to the second SMTP server inthe chain of servers. The sender’s SMTP server is at address 65.55.135.123 andthe second SMTP server in the chain is .The third “Received:” header indicates the mail message flow from the secondSMTP server in the chain to the third server, and so on.Finally, the first “Received:” header indicates the flow of the mail message fromthe forth SMTP server to t he last SMTP server (i.e. the receiver’s mail server) inthe chain.Message-id: The message has been given this*************************************************(bybay0-omc3-s3.bay0.hotmail.com. Message-id is a unique string assigned by the mail systemwhen the message is first created.From: This indicates the email address of the sender of the mail. In the givenexample,**************************************To: This field indicates the email address of the receiver of the mail. In theexample, the ****************************Subject: This gives the subject of the mail (if any specified by the sender). In theexample, the subject specified by the sender is “Test mail”Date: The date and time when the mail was sent by the sender. In the example,the sender sent the mail on 19th May 2007, at time 23:52:36 GMT.Mime-version: MIME version used for the mail. In the example, it is 1.0.Content-type: The type of content in the body of the mail message. In theexample, it is “text/html”.Return-Path: This specifies the email address to which the mail will be sent if thereceiver of this mail wants t o reply to the sender. This is also used by the sender’smail server for bouncing back undeliverable mail messages of mailer-daemonerror messages. In the example, the return path is“***************************”.12. (Q18) Is it possible for an organizat ion’s Web server and mail server to have exactly thesame alias for a hostname (for example, )? What would be the type for the RR that contains the hostname of the mail server?Answer: Yes an organization’s mail server and Web server can have the sa me alias for ahost name. The MX record is used to map the mail server’s host name to its IPaddress.13. (Q19) Why is it said that FTP sends control information “out-of-band”?Answer:FTP uses two parallel TCP connections, one connection for sending controlinformation (such as a request to transfer a file) and another connection foractually transferring the file. Because the control information is not sent over thesame connection that the file is sent over, FTP sends control information out ofband.14. (P6) Consider an HTTP client that wants to retrieve a Web document at a given URL. The IPaddress of the HTTP server is initially unknown. What transport and application-layer protocols besides HTTP are needed in this scenario?Answer:Application layer protocols: DNS and HTTPTransport layer protocols: UDP for DNS; TCP for HTTP15. (P9) Consider Figure2.12, for which there is an institutional network connected to theInternet. Suppose that the average object size is 900,000 bits and that the average request rate from the institution’s browsers to the origin servers is 10 requests per second. Also suppose that the amount of time it takes from when the router on the Internet side of the access link forwards an HTTP request until it receives the response is two seconds on average (see Section 2.2.5).Model the total average response times as the sum of the average access delay (that is, the delay from Internet router to institution router) and the average Internet delay. For the average access delay, use △/(1-△β), where △is the average time required to send an object over the access link and βis the arrival rate of objects to the access link.a. Find the total average response time.b. Now suppose a cache is installed in the institutional LAN. Suppose the hit rate is 0.6. Findthe total response time.Answer:a.The time to transmit an object of size L over a link or rate R is L/R. The average timeisthe average size of the object divided by R:Δ= (900,000 bits)/(1,500,000 bits/sec) = 0.6 secThe traffic intensity on the link is (1.5 requests/sec)(0.6 sec/request) = 0.9. Thus, theaverage access delay is (0.6 sec)/(1 - 0.9) = 6 seconds. The total average response timeis therefore 6 sec + 2 sec = 8 sec.b.The traffic intensity on the access link is reduced by 40% since the 40% of therequestsare satisfied within the institutional network. Thus the average access delayis(0.6 sec)/[1–(0.6)(0.9)] = 1.2 seconds. The response time is approximately zero iftherequest is satisfied by the cache (which happens with probability 0.4); the averageresponse time is 1.2 sec + 2 sec = 3.2 sec for cache misses (which happens 60% of thetime). So the average response time is (0.4)(0 sec) + (0.6)(3.2 sec) = 1.92 seconds.Thusthe average response time is reduced from 8 sec to 1.92 sec.16. (P12) What is the difference between MAIL FROM: in SMTP and From: in the mail messageitself?Answer: The MAIL FROM: in SMTP is a message from the SMTP client that identifies the senderof the mail message to the SMTP server. TheFrom: on the mail message itself is NOTanSMTP message, but rather is just a line in the body of the mail message.17. (P16) Consider distributing a file of F = 5 Gbits to N peers. The server has an upload rate ofu s = 20 Mbps, and each peer has a download rate of d i =1 Mbps and an upload rate of u. For N = 10, 100, and 1,000 and u = 100 Kbps, 250 Kbps, and 500 Kbps, prepare a chart giving the minimum distribution time for each of the combinations of N and u for both client-server distribution and P2P distribution.Answer:For calculating the minimum distribution time for client-server distribution, we use thefollowing formula:D cs = max {NF/u s , F/d min }Similarly, for calculating the minimum distribution time for P2P distribution, we use thefollowing formula:D P 2P = max {F /u s ,F /d min ,NF /( u s + u i n i =1 )} Where,F = 5 Gbits = 5 * 1024 Mbits u s = 20 Mbps d min = d i = 1 MbpsClient Server:N 10 100 1000 200 Kbps10240 51200 512000 u 600 Kbps10240 51200 512000 1Mbps10240 51200 512000Peer to Peer:N 10 100 1000 200 Kbps10240 25904.3 47559.33 U 600 Kbps10240 13029.6 16899.64 1 Mbps10240 10240 10240。

标题：《计算机网络》复习练习题（每章一套,共9套）第1章概述习题一一、选择题1. 以下不属于协议组成要素的是（）。

A. 语法B. 语义C. 时序D. 字符2. 一座大楼的一个计算机网络系统，属于（）。

A. PANB. LANC. MAND.WAN3. 完成路径选择功能是在OSI模型的（）。

A. 物理层B. 数据链路层C. 网络层D. 传输层4. 完成服务点寻址功能是在OSI模型的（）。

A. 物理层B. 数据链路层C. 网络层D. 传输层5. 在同一个信道上的同一时刻，能够进行双向数据传输的通信方式是（）。

A.单工B.半双工C.全双工D.上述三种均不是6. TCP/IP体系结构中的TCP和IP所提供的服务分别为()。

A. 链路层服务和互连网层服务B. 互连网层层服务和传输层服务C. 传输层服务和应用层服务D. 传输层服务和互连网层层服务7. 用于网络互连的设备一般采用（）。

A. 中继器B. 交换机C. 路由器D. 网关8. IP协议提供的服务是()。

A. 可靠服务B.有确认的服务C. 不可靠无连接数据报服务D. 以上都不对9. ATM模式能最大限度地发挥()技术的优点。

A. 电路交换B. 报文交换C. 电路交换与报文交换D. 电路交换与分组交换10. 数据链路层的数据单位称为（）。

A.比特B.字节C.帧D.分组11. 在OSI参考模型中，实现端到端的应答、分组排序和流量控制功能的协议层是()。

A. 数据链路层B. 网络层C. 传输层D. 会话层12. 在ISO的OSI模型中，提供流量控制功能的层是(1)；提供建立、维护和拆除端到端连接的层是(2)。

为数据分组提供在网络中路由功能的是(3)；传输层提供(4)的数据传输；为网络层实体提供数据发送、接收功能和过程的是(5)。

(1) A.1、2、3层B.2、3、4层C. 3、4、5层D. 4、5、6层(2) A. 物理层B. 数据链路层C. 会话层D. 传输层(3) A. 物理层B. 数据链路层C. 网络层D. 传输层(4) A. 主机之间B. 网络之间C. 数据链路之间D. 物理链路之间(5) A. 物理层B. 数据链路层C. 网络层D. 传输层13. 在OSI参考模型中，物理层的功能是(1)。

一、选择题题目1（）是面向连接的协议，用三次握手和滑动窗口机制来保证传输的可靠性和进行流量控制。

选择一项：A. TCPB。

FTPC。

UDPD。

IPTCP协议(Transport Control Protocol），即传输控制协议，是面向连接的协议，用三次握手和滑动窗口机制来保证传输的可靠性和进行流量控制.相关知识 IP 协议 UDP协议 FTP协议IP协议（Internet Protocol），即互联网协议，是支持网间互连的数据报协议，它与TCP协议一起构成了TCP/IP协议族的核心。

IP协议规定网际层数据分组的格式，用来在内部网中交换数据，并负责路由选择。

UDP协议（User Datagram Protocol),即用户数据报协议，是面向无连接的、不可靠的传输层协议.UDP为应用层提供一种非常简单的服务。

它只是把数据报从一台主机发送到另一台主机，但并不保证该数据报能到达另一端。

FTP协议(File Transfer Protocol），即文件传输协议，属于应用层协议。

正确答案是：TCP题目2（）协议规定网际层数据分组的格式。

选择一项：A. TCPB. IPC. UDPD. FTPIP协议（解释同选择题1)相关知识 TCP协议 UDP协议 FTP协议TCP协议（解释同选择题1）UDP协议(User Datagram Protocol），即用户数据报协议，是面向无连接的、不可靠的传输层协议。

UDP为应用层提供一种非常简单的服务。

它只是把数据报从一台主机发送到另一台主机，但并不保证该数据报能到达另一端.FTP协议（File Transfer Protocol），即文件传输协议，属于应用层协议。

正确答案是：IP题目3一个功能完备的计算机网络需要指定一套复杂的协议集。

对于复杂的计算机网络协议来说,最好的组织方式是（）。

选择一项：A。

混合结构模型B. 层次结构模型C. 连续地址编码模型D。

分布式进程通信模型层次结构模型，为了降低系统的设计和实现的难度，把计算机网络要实现的功能进行结构化和模块化的设计，将整体功能分为几个相对独立的子功能层次,各个功能层次间进行有机的连接，下层为其上一层提供必要的功能服务。

2-04，2-06 ，2-13，2-15文字题略2-07每秒钟码元速率为20000码元/秒,因为码元有16个等级,那么可以4位用一个码元来表示,所以最高可达20000x4=80000(b/s)2-08本题只需将数据代入相应公式即可,但计算较繁根据香农公式最大速率C=Wlog2(1+S/N) 即64K=3Klog2(1+S/N)从上式解出S/N的值即可,但解出的是信噪比的功率值还要转为分贝值64K=3Klog2(1+S/N) ->21.33=log2(1+S/N) 据此公式表明2的21.33次方等于1+S/N 2的21.33次方为2636148 (小数点后省去) 即1+S/N=2636148 S/N=2636148化为分贝的公式为 db=10lg(S/N) 即 10lg(2636148)而10的6.42次方为2630267 所以答案为 10x6.42即64.2分贝。

2-09根据题意35k=3.1Klog2(1+S/N) 11.3=log2(1+S/N)2的11.3次方为2521 ， S/N=2520现在要增加速率60% 也就是3.1Klog2(1+S/N)的值要增加60%；设原来的S/N 为2520，速率增加60% 的S/N为X 即产生以下算式 1：1.6=3.1Klog2(1+2520):3.1Klog2(1+X) 即3.1Klog2(1+X)=1.6 x 3.1Klog2(1+2520) 即 log2(1+X)=1.6log2(1+2520） log2(1+X)=1.6 x 11.3Log2(1+X)=18.08 即2的18.08 次方为1+X 1+X=277090 X=277089277089约为2520的100倍速率从35Kb/s增加到 56Kb/s如果信噪比再增加10倍即2770890 代入公式最大速率为：3.1Klog2(1+2770890) 3.1K x 21.4=66.34K （b/s）66.34为56的1.185倍,所以信噪比再增加10倍，速率增加约18.5%2-11根据题意，传输中允许有20db衰减还可以正常通信，那么每公里衰减0.7db那么工作距离可达20/0.7=28.57公里，若要增加100公里，即100=20/x x=0.2db2-12光波的频带宽度计算是速率/波段低端-速率/波段高端（nm=1/1000um）（1）频带低端 2 x 1017 /1200 =1.666 x 1014频带高端 2 x 1017 /1400 =1.428 x 10141.666 x 1014 -1.428 x 1014 =.238 x 1014即 23.8 THZ（2）频带低端=2 x 1017 /1400 =1.4286 x 1014频带高端=2 x 1017 /1600 =1.25 x 10141.4286 x 1014 -1.25 x 1014 =.1786 x 1014即 17.86 THZ (T为10 的12次方)2-16共有4个站进行码分多址通信。