SlideShare a Scribd company logo
TCP/IP Protocol Suite Chapter  2 Upon completion you will be able to: The OSI Model and the TCP/IP Protocol Suite Understand the architecture of the OSI model Understand the layers of the OSI model and their functions Understand the architecture of the TCP/IP Protocol Suite Differentiate between the OSI model and the TCP/IP Suite Differentiate between the three types of Internet addresses Objectives
TCP/IP Protocol Suite 2.1  The OSI Model Established in 1947, the  International Standards Organization (ISO)  is a multinational body dedicated to worldwide agreement on international standards. An ISO standard that covers all aspects of network communications is the  Open Systems Interconnection (OSI)  model. It was first introduced in the late 1970s. The topics discussed in this section include: Layered Architecture Peer-to-Peer Processes Encapsulation
TCP/IP Protocol Suite ISO is the organization. OSI is the model Note:
TCP/IP Protocol Suite Figure 2.1   The OSI model
TCP/IP Protocol Suite Figure 2.2   OSI layers
TCP/IP Protocol Suite Figure 2.3   An exchange using the OSI model
TCP/IP Protocol Suite 2.2  Layers in the OSI Model The functions of each layer in the OSI model is briefly described. The topics discussed in this section include: Physical Layer Data Link Layer Network Layer Transport Layer Session Layer Presentation Layer Application Layer Summary of Layers
TCP/IP Protocol Suite Figure 2.4   Physical layer
TCP/IP Protocol Suite The physical layer is responsible for the movement of individual bits from one hop (node) to the next.  Note:
TCP/IP Protocol Suite Figure 2.5   Data link layer
TCP/IP Protocol Suite The data link layer is responsible for moving  frames  from one hop (node) to the next.  Note:
TCP/IP Protocol Suite Figure 2.6   Hop-to-hop delivery
TCP/IP Protocol Suite Figure 2.7   Network layer
TCP/IP Protocol Suite The network layer is responsible for the delivery of individual  packets  from the source host to the destination host.  Note:
TCP/IP Protocol Suite Figure 2.8   Source-to-destination delivery
TCP/IP Protocol Suite Figure 2.9   Transport layer
TCP/IP Protocol Suite The transport layer is responsible for the delivery of a  message  from one process to another.  Note:
TCP/IP Protocol Suite Figure 2.10   Reliable process-to-process delivery of a message
TCP/IP Protocol Suite Figure 2.11   Session layer
TCP/IP Protocol Suite Figure 2.12   Presentation layer
TCP/IP Protocol Suite Figure 2.13   Application layer
TCP/IP Protocol Suite Figure 2.14   Summary of layers
TCP/IP Protocol Suite 2.3  TCP/IP Protocol Suite The  TCP/IP protocol suite  is made of five layers: physical, data link, network, transport, and application. The first four layers provide physical standards, network interface, internetworking, and transport functions that correspond to the first four layers of the OSI model. The three topmost layers in the OSI model, however, are represented in TCP/IP by a single layer called the application layer. The topics discussed in this section include: Physical and Data Link Layers Network Layer Transport Layer Application Layer
TCP/IP Protocol Suite Figure 2.15   TCP/IP and OSI model
TCP/IP Protocol Suite 2.4  Addressing Three different levels of addresses are used in an internet using the TCP/IP protocols:  physical (link) address ,  logical (IP) address , and  port address .  The topics discussed in this section include: Physical Address Logical Address Port Address
TCP/IP Protocol Suite Figure 2.16   Addresses in TCP/IP
TCP/IP Protocol Suite Figure 2.17   Relationship of layers and addresses in TCP/IP
TCP/IP Protocol Suite In Figure 2.18 a node with physical address 10 sends a frame to a node with physical address 87. The two nodes are connected by a link. At the data link level this frame contains physical (link) addresses in the header. These are the only addresses needed. The rest of the header contains other information needed at this level. The trailer usually contains extra bits needed for error detection. Example  1 See Next Slide
TCP/IP Protocol Suite Figure 2.18   Physical addresses
TCP/IP Protocol Suite As we will see in Chapter 3, most local area networks use a 48-bit (6 bytes) physical address written as 12 hexadecimal digits, with every 2 bytes separated by a colon as shown below: Example  2 07:01:02:01:2C:4B A 6-byte (12 hexadecimal digits) physical address.
TCP/IP Protocol Suite In Figure 2.19 we want to send data from a node with network address A and physical address 10, located on one LAN, to a node with a network address P and physical address 95, located on another LAN. Because the two devices are located on different networks, we cannot use link addresses only; the link addresses have only local jurisdiction. What we need here are universal addresses that can pass through the LAN boundaries. The network (logical) addresses have this characteristic.  Example  3 See Next Slide
TCP/IP Protocol Suite The packet at the network layer contains the logical addresses, which remain the same from the original source to the final destination ( A  and  P , respectively, in the figure). They will not change when we go from network to network. However, the physical addresses will change as the packet moves from one network to another. The boxes labeled routers are internetworking devices, which we will discuss in Chapter 3. Example  3  (Continued) See Next Slide
TCP/IP Protocol Suite Figure 2.19   IP addresses
TCP/IP Protocol Suite Example  4 As we will see in Chapter 4, an Internet address (in IPv4) is 32 bits in length, normally written as four decimal numbers, with each number representing 1 byte. The numbers are separated by a dot. Below is an example of such an address. 132.24.75.9 An internet address in IPv4 in decimal numbers
TCP/IP Protocol Suite Figure 2.20 shows an example of transport layer communication. Data coming from the upperlayers have port addresses  j  and  k  ( j is the address of the sending process, and k is the address of the receiving process). Since the data size is larger than the network layer can handle, the data are split into two packets, each packet retaining the service-point addresses ( j and k). Then in the network layer, network addresses (A and P) are added to each packet.  Example  5 See Next Slide
TCP/IP Protocol Suite The packets can travel on different paths and arrive at the destination either in order or out of order. The two packets are delivered to the destination transport layer, which is responsible for removing the network layer headers and combining the two pieces of data for delivery to the upper layers. Example  5  (Continued) See Next Slide
TCP/IP Protocol Suite Figure 2.20   Port addresses
TCP/IP Protocol Suite As we will see in Chapters 11, 12, and 13, a port address is a 16-bit address represented by one decimal number as shown below. Example  6 753 A 16-bit port address represented as one single number.
TCP/IP Protocol Suite 2.5  IP Versions IP became the official protocol for the Internet in 1983. As the Internet has evolved, so has IP. There have been six versions since its inception. We look at the latter three versions here. The topics discussed in this section include: Version 4 Version 5 Version 6

More Related Content

What's hot (20)

PPT
CCNA Network Devices
Dsunte Wilson
 
PPSX
Ethernet technology
Taif Alawsi
 
PDF
UDP - User Datagram Protocol
Peter R. Egli
 
PDF
Spanning tree protocol (stp)
RaghulR21
 
PPTX
TCP/IP model
sarangaprabod
 
PPT
INTRODUCTION TO INTERNET PROTOCOL BY SAIKIRAN PANJALA
Saikiran Panjala
 
PPTX
Border Gateway Protocol
Kashif Latif
 
PPTX
TCP & UDP ( Transmission Control Protocol and User Datagram Protocol)
Kruti Niranjan
 
PPTX
Carrier-sense multiple access with collision detection (CSMA/CD)
university of Malakand Dir Lower
 
PPTX
Circuit Switching
Miles Kevin Galario
 
PPTX
Data link layer
Abdul MaTéèñ
 
PPT
Icmp V4 And Icmp V6
Ram Dutt Shukla
 
PPTX
Hub,Switch.Router
KRASHCHAUHAN2
 
PPTX
Protocols
priya_trehan
 
PPT
Tcp Udp Icmp And The Transport Layer
tmavroidis
 
PPTX
TCP/IP Introduction
Naveen Kumar R.B.
 
PPTX
TCP/IP Model
farhan516
 
PPT
Spannig tree
1 2d
 
PPTX
Multicast routing
Gunasekara Reddy
 
CCNA Network Devices
Dsunte Wilson
 
Ethernet technology
Taif Alawsi
 
UDP - User Datagram Protocol
Peter R. Egli
 
Spanning tree protocol (stp)
RaghulR21
 
TCP/IP model
sarangaprabod
 
INTRODUCTION TO INTERNET PROTOCOL BY SAIKIRAN PANJALA
Saikiran Panjala
 
Border Gateway Protocol
Kashif Latif
 
TCP & UDP ( Transmission Control Protocol and User Datagram Protocol)
Kruti Niranjan
 
Carrier-sense multiple access with collision detection (CSMA/CD)
university of Malakand Dir Lower
 
Circuit Switching
Miles Kevin Galario
 
Data link layer
Abdul MaTéèñ
 
Icmp V4 And Icmp V6
Ram Dutt Shukla
 
Hub,Switch.Router
KRASHCHAUHAN2
 
Protocols
priya_trehan
 
Tcp Udp Icmp And The Transport Layer
tmavroidis
 
TCP/IP Introduction
Naveen Kumar R.B.
 
TCP/IP Model
farhan516
 
Spannig tree
1 2d
 
Multicast routing
Gunasekara Reddy
 

Similar to Protocol Ppt[1] (20)

PPT
Chap-02 data link layer comp net (1).ppt
israelv1772
 
PPT
TCP/IP Protocol-Suite/ TCP IP Powerpoint
tiaguentiechevianel
 
PPT
Chap 02
IGNOU
 
PPT
Chap-02 (1).ppt Chap-01.ppt Data Communication 2 Kabul Afghanistan
arifjoya119
 
PPT
Ch02.ppt
ssuser872709
 
PDF
OSI open system interconnection LAYERS.pdf
gadisaAdamu
 
PPT
2.(3)OSI and TCP layer.ppt
prashant554034
 
PPT
OSI MODEL
DURYODHAN MAHAPATRA
 
PDF
chương 2 (Mô hình OSI & Bộ giao thức TCP-IP) (1).pdf
mrkendy2004
 
PPT
Chap 02 osi model
Noctorous Jamal
 
PDF
TCP/IP Training Basic Concepts.
Amir Panahi
 
PPT
Ch02
tejindershami
 
PPTX
tcp ip protocols
AKSHIT KOHLI
 
PPT
Chapter 2
Faisal Mehmood
 
PPT
Chapter 2 - Network Models
Wayne Jones Jnr
 
PPT
Data Communications AND NetworkingData Communications AND Networking
shjaff
 
PPTX
Unit 1 network models & typical examples(part a)
Vishal kakade
 
PDF
NETWORKING DEVICES AND CABLING NOTES FOR FIRST DEGREE STUDENTS
elizabeth ngatunga
 
PDF
Networking models tcp
Bhaskar Karimuri
 
Chap-02 data link layer comp net (1).ppt
israelv1772
 
TCP/IP Protocol-Suite/ TCP IP Powerpoint
tiaguentiechevianel
 
Chap 02
IGNOU
 
Chap-02 (1).ppt Chap-01.ppt Data Communication 2 Kabul Afghanistan
arifjoya119
 
Ch02.ppt
ssuser872709
 
OSI open system interconnection LAYERS.pdf
gadisaAdamu
 
2.(3)OSI and TCP layer.ppt
prashant554034
 
chương 2 (Mô hình OSI & Bộ giao thức TCP-IP) (1).pdf
mrkendy2004
 
Chap 02 osi model
Noctorous Jamal
 
TCP/IP Training Basic Concepts.
Amir Panahi
 
tcp ip protocols
AKSHIT KOHLI
 
Chapter 2
Faisal Mehmood
 
Chapter 2 - Network Models
Wayne Jones Jnr
 
Data Communications AND NetworkingData Communications AND Networking
shjaff
 
Unit 1 network models & typical examples(part a)
Vishal kakade
 
NETWORKING DEVICES AND CABLING NOTES FOR FIRST DEGREE STUDENTS
elizabeth ngatunga
 
Networking models tcp
Bhaskar Karimuri
 
Ad

Recently uploaded (20)

PPTX
Dev Dives: Automate, test, and deploy in one place—with Unified Developer Exp...
AndreeaTom
 
PPTX
Agentic AI in Healthcare Driving the Next Wave of Digital Transformation
danielle hunter
 
PPTX
OA presentation.pptx OA presentation.pptx
pateldhruv002338
 
PDF
Tea4chat - another LLM Project by Kerem Atam
a0m0rajab1
 
PDF
A Strategic Analysis of the MVNO Wave in Emerging Markets.pdf
IPLOOK Networks
 
PDF
MASTERDECK GRAPHSUMMIT SYDNEY (Public).pdf
Neo4j
 
PDF
The Future of Artificial Intelligence (AI)
Mukul
 
PDF
CIFDAQ's Market Wrap : Bears Back in Control?
CIFDAQ
 
PDF
Generative AI vs Predictive AI-The Ultimate Comparison Guide
Lily Clark
 
PDF
Structs to JSON: How Go Powers REST APIs
Emily Achieng
 
PPTX
What-is-the-World-Wide-Web -- Introduction
tonifi9488
 
PDF
Per Axbom: The spectacular lies of maps
Nexer Digital
 
PPTX
Farrell_Programming Logic and Design slides_10e_ch02_PowerPoint.pptx
bashnahara11
 
PDF
introduction to computer hardware and sofeware
chauhanshraddha2007
 
PDF
Responsible AI and AI Ethics - By Sylvester Ebhonu
Sylvester Ebhonu
 
PDF
NewMind AI Weekly Chronicles – July’25, Week III
NewMind AI
 
PDF
Market Insight : ETH Dominance Returns
CIFDAQ
 
PPTX
AVL ( audio, visuals or led ), technology.
Rajeshwri Panchal
 
PDF
Google I/O Extended 2025 Baku - all ppts
HusseinMalikMammadli
 
PDF
Data_Analytics_vs_Data_Science_vs_BI_by_CA_Suvidha_Chaplot.pdf
CA Suvidha Chaplot
 
Dev Dives: Automate, test, and deploy in one place—with Unified Developer Exp...
AndreeaTom
 
Agentic AI in Healthcare Driving the Next Wave of Digital Transformation
danielle hunter
 
OA presentation.pptx OA presentation.pptx
pateldhruv002338
 
Tea4chat - another LLM Project by Kerem Atam
a0m0rajab1
 
A Strategic Analysis of the MVNO Wave in Emerging Markets.pdf
IPLOOK Networks
 
MASTERDECK GRAPHSUMMIT SYDNEY (Public).pdf
Neo4j
 
The Future of Artificial Intelligence (AI)
Mukul
 
CIFDAQ's Market Wrap : Bears Back in Control?
CIFDAQ
 
Generative AI vs Predictive AI-The Ultimate Comparison Guide
Lily Clark
 
Structs to JSON: How Go Powers REST APIs
Emily Achieng
 
What-is-the-World-Wide-Web -- Introduction
tonifi9488
 
Per Axbom: The spectacular lies of maps
Nexer Digital
 
Farrell_Programming Logic and Design slides_10e_ch02_PowerPoint.pptx
bashnahara11
 
introduction to computer hardware and sofeware
chauhanshraddha2007
 
Responsible AI and AI Ethics - By Sylvester Ebhonu
Sylvester Ebhonu
 
NewMind AI Weekly Chronicles – July’25, Week III
NewMind AI
 
Market Insight : ETH Dominance Returns
CIFDAQ
 
AVL ( audio, visuals or led ), technology.
Rajeshwri Panchal
 
Google I/O Extended 2025 Baku - all ppts
HusseinMalikMammadli
 
Data_Analytics_vs_Data_Science_vs_BI_by_CA_Suvidha_Chaplot.pdf
CA Suvidha Chaplot
 
Ad

Protocol Ppt[1]

  • 1. TCP/IP Protocol Suite Chapter 2 Upon completion you will be able to: The OSI Model and the TCP/IP Protocol Suite Understand the architecture of the OSI model Understand the layers of the OSI model and their functions Understand the architecture of the TCP/IP Protocol Suite Differentiate between the OSI model and the TCP/IP Suite Differentiate between the three types of Internet addresses Objectives
  • 2. TCP/IP Protocol Suite 2.1 The OSI Model Established in 1947, the International Standards Organization (ISO) is a multinational body dedicated to worldwide agreement on international standards. An ISO standard that covers all aspects of network communications is the Open Systems Interconnection (OSI) model. It was first introduced in the late 1970s. The topics discussed in this section include: Layered Architecture Peer-to-Peer Processes Encapsulation
  • 3. TCP/IP Protocol Suite ISO is the organization. OSI is the model Note:
  • 4. TCP/IP Protocol Suite Figure 2.1 The OSI model
  • 5. TCP/IP Protocol Suite Figure 2.2 OSI layers
  • 6. TCP/IP Protocol Suite Figure 2.3 An exchange using the OSI model
  • 7. TCP/IP Protocol Suite 2.2 Layers in the OSI Model The functions of each layer in the OSI model is briefly described. The topics discussed in this section include: Physical Layer Data Link Layer Network Layer Transport Layer Session Layer Presentation Layer Application Layer Summary of Layers
  • 8. TCP/IP Protocol Suite Figure 2.4 Physical layer
  • 9. TCP/IP Protocol Suite The physical layer is responsible for the movement of individual bits from one hop (node) to the next. Note:
  • 10. TCP/IP Protocol Suite Figure 2.5 Data link layer
  • 11. TCP/IP Protocol Suite The data link layer is responsible for moving frames from one hop (node) to the next. Note:
  • 12. TCP/IP Protocol Suite Figure 2.6 Hop-to-hop delivery
  • 13. TCP/IP Protocol Suite Figure 2.7 Network layer
  • 14. TCP/IP Protocol Suite The network layer is responsible for the delivery of individual packets from the source host to the destination host. Note:
  • 15. TCP/IP Protocol Suite Figure 2.8 Source-to-destination delivery
  • 16. TCP/IP Protocol Suite Figure 2.9 Transport layer
  • 17. TCP/IP Protocol Suite The transport layer is responsible for the delivery of a message from one process to another. Note:
  • 18. TCP/IP Protocol Suite Figure 2.10 Reliable process-to-process delivery of a message
  • 19. TCP/IP Protocol Suite Figure 2.11 Session layer
  • 20. TCP/IP Protocol Suite Figure 2.12 Presentation layer
  • 21. TCP/IP Protocol Suite Figure 2.13 Application layer
  • 22. TCP/IP Protocol Suite Figure 2.14 Summary of layers
  • 23. TCP/IP Protocol Suite 2.3 TCP/IP Protocol Suite The TCP/IP protocol suite is made of five layers: physical, data link, network, transport, and application. The first four layers provide physical standards, network interface, internetworking, and transport functions that correspond to the first four layers of the OSI model. The three topmost layers in the OSI model, however, are represented in TCP/IP by a single layer called the application layer. The topics discussed in this section include: Physical and Data Link Layers Network Layer Transport Layer Application Layer
  • 24. TCP/IP Protocol Suite Figure 2.15 TCP/IP and OSI model
  • 25. TCP/IP Protocol Suite 2.4 Addressing Three different levels of addresses are used in an internet using the TCP/IP protocols: physical (link) address , logical (IP) address , and port address . The topics discussed in this section include: Physical Address Logical Address Port Address
  • 26. TCP/IP Protocol Suite Figure 2.16 Addresses in TCP/IP
  • 27. TCP/IP Protocol Suite Figure 2.17 Relationship of layers and addresses in TCP/IP
  • 28. TCP/IP Protocol Suite In Figure 2.18 a node with physical address 10 sends a frame to a node with physical address 87. The two nodes are connected by a link. At the data link level this frame contains physical (link) addresses in the header. These are the only addresses needed. The rest of the header contains other information needed at this level. The trailer usually contains extra bits needed for error detection. Example 1 See Next Slide
  • 29. TCP/IP Protocol Suite Figure 2.18 Physical addresses
  • 30. TCP/IP Protocol Suite As we will see in Chapter 3, most local area networks use a 48-bit (6 bytes) physical address written as 12 hexadecimal digits, with every 2 bytes separated by a colon as shown below: Example 2 07:01:02:01:2C:4B A 6-byte (12 hexadecimal digits) physical address.
  • 31. TCP/IP Protocol Suite In Figure 2.19 we want to send data from a node with network address A and physical address 10, located on one LAN, to a node with a network address P and physical address 95, located on another LAN. Because the two devices are located on different networks, we cannot use link addresses only; the link addresses have only local jurisdiction. What we need here are universal addresses that can pass through the LAN boundaries. The network (logical) addresses have this characteristic. Example 3 See Next Slide
  • 32. TCP/IP Protocol Suite The packet at the network layer contains the logical addresses, which remain the same from the original source to the final destination ( A and P , respectively, in the figure). They will not change when we go from network to network. However, the physical addresses will change as the packet moves from one network to another. The boxes labeled routers are internetworking devices, which we will discuss in Chapter 3. Example 3 (Continued) See Next Slide
  • 33. TCP/IP Protocol Suite Figure 2.19 IP addresses
  • 34. TCP/IP Protocol Suite Example 4 As we will see in Chapter 4, an Internet address (in IPv4) is 32 bits in length, normally written as four decimal numbers, with each number representing 1 byte. The numbers are separated by a dot. Below is an example of such an address. 132.24.75.9 An internet address in IPv4 in decimal numbers
  • 35. TCP/IP Protocol Suite Figure 2.20 shows an example of transport layer communication. Data coming from the upperlayers have port addresses j and k ( j is the address of the sending process, and k is the address of the receiving process). Since the data size is larger than the network layer can handle, the data are split into two packets, each packet retaining the service-point addresses ( j and k). Then in the network layer, network addresses (A and P) are added to each packet. Example 5 See Next Slide
  • 36. TCP/IP Protocol Suite The packets can travel on different paths and arrive at the destination either in order or out of order. The two packets are delivered to the destination transport layer, which is responsible for removing the network layer headers and combining the two pieces of data for delivery to the upper layers. Example 5 (Continued) See Next Slide
  • 37. TCP/IP Protocol Suite Figure 2.20 Port addresses
  • 38. TCP/IP Protocol Suite As we will see in Chapters 11, 12, and 13, a port address is a 16-bit address represented by one decimal number as shown below. Example 6 753 A 16-bit port address represented as one single number.
  • 39. TCP/IP Protocol Suite 2.5 IP Versions IP became the official protocol for the Internet in 1983. As the Internet has evolved, so has IP. There have been six versions since its inception. We look at the latter three versions here. The topics discussed in this section include: Version 4 Version 5 Version 6