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Chapter 7 — Ethernet Connectors and Termination

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Chapter 7 — Ethernet Connectors and Termination

Ethernet is one of the most important technologies in wired networking. In this chapter, you will learn what Ethernet is, how MAC addresses work, how Ethernet frames move, what collision and broadcast domains are, and the differences between half duplex, full duplex, and Ethernet speeds.

7.1 What Is Ethernet?

Ethernet is the most common technology used for wired local area networks.

Think:

Ethernet = wired LAN communication standard

A simple Ethernet network might look like this:

PC1 ----\
PC2 ----- Switch ---- Router
PC3 ----/

The PCs connect to the switch using Ethernet cables.

Ethernet defines things such as:

  • Frame format
  • MAC addressing
  • Cable types
  • Signaling
  • Speeds
  • Duplex operation

7.2 IEEE 802.3

Ethernet standards are defined mainly by:

IEEE 802.3

IEEE stands for:

Institute of Electrical and Electronics Engineers

You do not need to memorize every IEEE standard number, but remember:

802.3  = Ethernet

802.11 = Wi-Fi

That distinction appears often in networking exams.

7.3 Ethernet Frames

Ethernet sends data using frames.

A simplified Ethernet frame looks like:

+----------------------+
| Destination MAC      |
+----------------------+
| Source MAC           |
+----------------------+
| Type/Length          |
+----------------------+
| Data                 |
+----------------------+
| FCS / Error Check    |
+----------------------+

The important beginner fields are:

  • Destination MAC address
  • Source MAC address
  • Payload/data
  • Error-checking information

Example

Suppose Computer A wants to send data to Computer B.

Computer A
MAC: AA-AA-AA-AA-AA-AA

Computer B
MAC: BB-BB-BB-BB-BB-BB

The Ethernet frame may contain:

Source MAC:
AA-AA-AA-AA-AA-AA

Destination MAC:
BB-BB-BB-BB-BB-BB

The switch reads the destination MAC and forwards the frame.

7.4 MAC Addresses

A MAC address is a Layer 2 address associated with a network interface.

MAC stands for:

Media Access Control

A MAC address is usually 48 bits long.

Example

00:1A:2B:3C:4D:5E

It may also be written:

00-1A-2B-3C-4D-5E
Important

MAC addresses are primarily used for communication inside a local Layer 2 network.

Remember:

MAC address
= Layer 2

IP address
= Layer 3

7.5 Organizationally Unique Identifier — OUI

The first portion of a traditional MAC address identifies the manufacturer.

This part is called the:

OUI — Organizationally Unique Identifier

Example

00:1A:2B:3C:4D:5E

00:1A:2B
   ↓
Manufacturer identifier

The remaining portion identifies the individual interface.

Why is OUI useful?

It can help identify which company manufactured a network interface.

For example, network tools may recognize a MAC address as belonging to:

  • Cisco
  • Intel
  • Apple
  • Dell
  • HP

7.6 Unicast

Unicast means communication from one sender to one specific receiver.

Think:

One-to-one

Example

Computer A --------> Computer B

Computer A sends a frame specifically to Computer B's MAC address.

Most normal network communication is unicast.

Example

Your laptop connects to a web server.

Laptop → Server

That is primarily unicast communication.

7.7 Broadcast

A broadcast is sent from one device to all devices in the local broadcast domain.

Think:

One-to-everyone locally

An Ethernet broadcast destination MAC is:

FF:FF:FF:FF:FF:FF

Example

             PC1
              ↑
              |
PC2 <----- Switch -----> PC3
              |
              ↓
             PC4

If a broadcast enters the switch, the switch forwards it out appropriate ports within that broadcast domain.

Example use

ARP commonly uses broadcasts in IPv4 LANs.

A device may effectively ask:

"Who has IP address 192.168.1.20?"

All local devices receive the broadcast, but only the device with that IP should answer.

7.8 Multicast

Multicast means communication from one sender to a selected group of receivers.

Think:

One-to-many, but not everyone

Example

              PC1 ✓
                ↑
                |
Server ---- Network ---- PC2 ✓
                |
                ↓
              PC3 ✗

PC1 and PC2 are members of the multicast group.

PC3 is not.

Multicast can be useful for:

  • Streaming
  • Routing protocols
  • Video distribution
  • Group communication

7.9 Collision Domains

A collision domain is a network area where Ethernet transmissions could collide.

This was much more important in older shared Ethernet networks.

Imagine two devices trying to transmit at exactly the same time on the same shared medium.

PC A ----\
          Shared medium
PC B ----/

The signals could interfere.

That event is called a:

Collision

Modern switches

A switch separates collision domains.

Each switch port is effectively its own collision domain.

Example

PC1 ---- Port 1

PC2 ---- Port 2

PC3 ---- Port 3

Each switch port provides a separate collision domain.

Exam memory

Switches break up collision domains.

7.10 Broadcast Domains

A broadcast domain is the group of devices that receive a Layer 2 broadcast.

A basic Layer 2 switch does not normally stop broadcasts.

Example

PC1
 |
Switch
 |
PC2
 |
PC3

If PC1 sends a broadcast, PC2 and PC3 may receive it.

A router separates broadcast domains.

Example

LAN A
  |
Router
  |
LAN B

Broadcast traffic from LAN A normally does not cross the router into LAN B.

Important exam distinction
Switch
separates collision domains

Router
separates broadcast domains

VLANs also create separate broadcast domains.

You will study VLANs later.

7.11 CSMA/CD

CSMA/CD stands for:

Carrier Sense Multiple Access with Collision Detection

It was used in older shared, half-duplex Ethernet.

Carrier Sense

A device listens before transmitting.

It asks:

"Is anyone else transmitting?"

Multiple Access

Multiple devices share the same medium.

Collision Detection

If a collision happens, the device detects it.

Then devices wait and retry.

Simplified

Listen
  ↓
Medium free?
  ↓
Transmit
  ↓
Collision?
  ↓
Wait
  ↓
Retry

Modern Ethernet

Modern switched full-duplex Ethernet does not normally experience collisions, so CSMA/CD is mostly a historical concept now.

But it remains important for Networking understanding.

7.12 Half Duplex

Half duplex means communication can travel in both directions, but not at the same time.

Think of a walkie-talkie.

Person A:

"Hello"

Then stops.

Person B:

"Hello back"

Only one person talks at a time.

Ethernet example

A -------- B

At one moment:

A → B

Later:

A ← B

but not both simultaneously.

Half-duplex disadvantages

  • Collisions can occur
  • Lower effective performance
  • More waiting

Modern switched Ethernet usually uses full duplex.

7.13 Full Duplex

Full duplex allows communication in both directions at the same time.

Think of a telephone conversation.

A ↔ B

Both sides can send and receive simultaneously.

Ethernet example

PC ↔ Switch

The PC can transmit while receiving.

Benefits

  • No collisions on the point-to-point switched link
  • Better performance
  • More efficient communication
Exam memory
Half duplex
= one direction at a time

Full duplex
= both directions simultaneously

7.14 Auto-Negotiation

Auto-negotiation allows Ethernet devices to automatically agree on connection settings.

These may include:

  • Speed
  • Duplex

Example

PC supports:

  • 100 Mbps
  • 1 Gbps

Switch supports:

  • 100 Mbps
  • 1 Gbps

Result:

1 Gbps full duplex

The devices usually choose the best mutually supported settings.

Why is this helpful?

Without auto-negotiation, technicians would need to manually configure speed and duplex more often.

7.15 Duplex Mismatch

A duplex mismatch happens when two sides of an Ethernet link use different duplex settings.

Example

PC:
Full duplex

Switch:
Half duplex

This can cause:

  • Slow performance
  • Errors
  • Retransmissions
  • Collisions on the half-duplex side
  • Strange intermittent connectivity
Exam scenario

If a link is technically "up" but performance is very poor and errors are increasing, check for:

Duplex mismatch

7.16 Ethernet Standards

Ethernet exists in many speed and media standards.

Older and modern examples include:

  • 10 Mbps Ethernet
  • 100 Mbps Fast Ethernet
  • 1 Gbps Gigabit Ethernet
  • 10 Gbps Ethernet
  • 40 Gbps Ethernet
  • 100 Gbps Ethernet
  • Higher-speed data-center Ethernet

You will study cabling requirements in later chapters.

7.17 Fast Ethernet

Fast Ethernet generally refers to:

100 Mbps Ethernet

One common standard is:

100BASE-TX

Breaking the name down:

100
= 100 Mbps

BASE
= baseband

TX
= twisted-pair implementation

Fast Ethernet was much faster than older 10 Mbps Ethernet, but 1 Gbps Ethernet is now very common.

7.18 Gigabit Ethernet

Gigabit Ethernet usually means:

1 Gbps Ethernet

1 Gbps equals:

1000 Mbps

A common copper Ethernet standard is:

1000BASE-T

It commonly runs over twisted-pair Ethernet cabling.

Example

PC ===== 1 Gbps ===== Switch

Gigabit Ethernet is extremely common in:

  • Homes
  • Offices
  • Schools
  • Small businesses

7.19 10 Gigabit Ethernet

10 Gigabit Ethernet provides:

10 Gbps

That is:

10,000 Mbps

10 Gigabit Ethernet is often used for:

  • Server connections
  • Switch uplinks
  • Data centers
  • High-performance workstations
  • Network backbones

Examples include:

  • 10GBASE-T
  • Various fiber-based standards

7.20 Higher-Speed Ethernet

Large data centers and enterprise networks may use:

  • 25 Gbps
  • 40 Gbps
  • 50 Gbps
  • 100 Gbps
  • 200 Gbps
  • 400 Gbps and beyond

You do not need to memorize every implementation for basic Networking understanding.

The important idea is:

Ethernet scales from relatively low speeds to extremely high speeds.

How a Switch Learns MAC Addresses

This is an important Ethernet concept.

Suppose we have:

PC A ----\
          Switch
PC B ----/

PC A sends a frame.

The switch looks at:

Source MAC address

Suppose:

PC A MAC:

AA:AA:AA:AA:AA:AA

The switch learns:

MAC AA:AA:AA:AA:AA:AA

is reachable through Port 1

Its MAC table might look like:

MAC Address Port
AA:AA:AA:AA:AA:AA Port 1
BB:BB:BB:BB:BB:BB Port 2

Chapter 7 Final Memory Sheet

ETHERNET

Most common wired LAN technology


IEEE

802.3 = Ethernet

802.11 = Wi-Fi


--------------------------------


ETHERNET FRAME

Destination MAC
Source MAC
Type / Length
Data
FCS


--------------------------------


MAC ADDRESS

Layer 2 address

Example:

00:1A:2B:3C:4D:5E


--------------------------------


OUI

Organizationally Unique Identifier

First portion of traditional MAC address

Identifies manufacturer


--------------------------------


UNICAST

One sender
to
one receiver


--------------------------------


BROADCAST

One sender
to
everyone locally

Broadcast MAC:

FF:FF:FF:FF:FF:FF


--------------------------------


MULTICAST

One sender
to
selected group


--------------------------------


COLLISION DOMAIN

Area where Ethernet collisions
could occur

Switch port
=
separate collision domain


--------------------------------


BROADCAST DOMAIN

Devices that receive
Layer 2 broadcasts

Router
=
separates broadcast domains

VLAN
=
separate broadcast domain


--------------------------------


CSMA/CD

Carrier Sense
Multiple Access
Collision Detection

Used with older shared
half-duplex Ethernet


--------------------------------


HALF DUPLEX

Send or receive

Not both simultaneously

Collisions possible


--------------------------------


FULL DUPLEX

Send and receive
at the same time

No normal Ethernet collisions
on switched point-to-point link


--------------------------------


AUTO-NEGOTIATION

Automatically agrees on:

Speed
Duplex


--------------------------------


DUPLEX MISMATCH

One side full duplex
Other side half duplex

Possible symptoms:

Slow performance
Errors
Retransmissions
Collisions
Intermittent problems


--------------------------------


FAST ETHERNET

100 Mbps

Example:

100BASE-TX


--------------------------------


GIGABIT ETHERNET

1 Gbps

1000 Mbps

Example:

1000BASE-T


--------------------------------


10 GIGABIT ETHERNET

10 Gbps

10,000 Mbps


--------------------------------


HIGH-SPEED ETHERNET

25 Gbps
40 Gbps
50 Gbps
100 Gbps
200 Gbps
400 Gbps+


--------------------------------


SWITCH MAC LEARNING

Switch examines:

SOURCE MAC ADDRESS

Then learns:

MAC address → switch port


Example:

AA:AA:AA:AA:AA:AA
→ Port 1

BB:BB:BB:BB:BB:BB
→ Port 2


--------------------------------


IMPORTANT EXAM MEMORY

MAC address
= Layer 2

IP address
= Layer 3


Switch
= separates collision domains

Router
= separates broadcast domains


Half duplex
= one direction at a time

Full duplex
= both directions simultaneously

Chapter 7 complete.

Chapter 7 Practice Questions

Question 1

What is Ethernet primarily used for?

A. Wireless WAN communication

B. Wired LAN communication

C. Satellite communication

D. Cellular communication only

Correct answer: B — Wired LAN communication

Ethernet is the most common technology used for wired local area networks.

Question 2

Which IEEE standard is associated with Ethernet?

A. 802.11

B. 802.15

C. 802.3

D. 802.1X

Correct answer: C — 802.3

IEEE 802.3 defines Ethernet standards. IEEE 802.11 is associated with Wi-Fi.

Question 3

Which OSI layer is most closely associated with Ethernet frames?

A. Layer 1

B. Layer 2

C. Layer 3

D. Layer 7

Correct answer: B — Layer 2

Ethernet frames and MAC addressing operate at the Data Link layer, which is OSI Layer 2.

Question 4

Which field tells a switch where an Ethernet frame should go?

A. Destination MAC address

B. Source IP address

C. TCP port

D. DNS name

Correct answer: A — Destination MAC address

A switch examines the destination MAC address when deciding where to forward an Ethernet frame.

Question 5

What does MAC stand for?

A. Media Access Control

B. Main Access Channel

C. Managed Address Control

D. Media Application Connection

Correct answer: A — Media Access Control

A MAC address is a Layer 2 address associated with a network interface.

Question 6

How long is a traditional MAC address?

A. 16 bits

B. 32 bits

C. 48 bits

D. 128 bits

Correct answer: C — 48 bits

Traditional Ethernet MAC addresses are 48 bits long.

Question 7

What is the OUI portion of a MAC address used for?

A. Identifying the subnet

B. Identifying the manufacturer

C. Identifying the TCP port

D. Identifying the DNS server

Correct answer: B — Identifying the manufacturer

OUI stands for Organizationally Unique Identifier and identifies the manufacturer associated with the MAC address prefix.

Question 8

What type of communication is one sender to one receiver?

A. Broadcast

B. Multicast

C. Unicast

D. Anycast only

Correct answer: C — Unicast

Unicast means one sender communicates with one specific receiver.

Question 9

What is the Ethernet broadcast MAC address?

A. 00:00:00:00:00:00

B. FF:FF:FF:FF:FF:FF

C. 11:11:11:11:11:11

D. AA:BB:CC:DD:EE:FF

Correct answer: B — FF:FF:FF:FF:FF:FF

Ethernet broadcasts use the all-F destination MAC address.

Question 10

Which traffic type is sent to a selected group of receivers?

A. Unicast

B. Broadcast

C. Multicast

D. Collision

Correct answer: C — Multicast

Multicast sends traffic from one sender to a selected group, rather than to everyone.

Question 11

Which device separates Ethernet collision domains?

A. Hub

B. Switch

C. Repeater

D. Patch panel

Correct answer: B — Switch

Each switch port effectively creates a separate collision domain.

Question 12

Which device separates broadcast domains?

A. Hub

B. Layer 2 switch only

C. Router

D. Repeater

Correct answer: C — Router

Routers normally do not forward Layer 2 broadcasts between networks.

Question 13

What does CSMA/CD stand for?

A. Carrier Sense Multiple Access with Collision Detection

B. Central Switching Media Access and Collision Detection

C. Carrier Switching Management and Collision Domain

D. Common Signal Media Access with Connection Detection

Correct answer: A — Carrier Sense Multiple Access with Collision Detection

CSMA/CD was used with older shared half-duplex Ethernet.

Question 14

In which Ethernet environment was CSMA/CD mainly required?

A. Full-duplex switched Ethernet

B. Shared half-duplex Ethernet

C. Fiber-only Ethernet

D. Wi-Fi only

Correct answer: B — Shared half-duplex Ethernet

Collisions were possible when multiple devices shared the same medium.

Question 15

What does half duplex mean?

A. Communication in one direction only

B. Both directions simultaneously

C. Both directions, but not at the same time

D. No communication

Correct answer: C — Both directions, but not at the same time

Half duplex is similar to a walkie-talkie: one side transmits, then the other side transmits.

Question 16

What does full duplex allow?

A. Communication in only one direction

B. Simultaneous sending and receiving

C. Only broadcast communication

D. Only 10 Mbps communication

Correct answer: B — Simultaneous sending and receiving

Full duplex lets both endpoints transmit and receive at the same time.

Question 17

Which Ethernet mode normally avoids collisions on a switched point-to-point link?

A. Half duplex

B. Full duplex

C. Bus mode

D. Broadcast mode

Correct answer: B — Full duplex

Modern full-duplex switched Ethernet does not normally experience collisions.

Question 18

What is auto-negotiation used for?

A. Automatically choosing speed and duplex

B. Assigning IP addresses

C. Resolving DNS names

D. Encrypting Ethernet frames

Correct answer: A — Automatically choosing speed and duplex

Auto-negotiation allows Ethernet devices to agree on mutually supported speed and duplex settings.

Question 19

One side of an Ethernet link is full duplex and the other side is half duplex. What problem exists?

A. Routing loop

B. Duplex mismatch

C. Broadcast storm

D. DNS failure

Correct answer: B — Duplex mismatch

A duplex mismatch can cause slow performance, errors, retransmissions, and intermittent problems.

Question 20

Which symptom may indicate a duplex mismatch?

A. Excellent performance

B. No MAC address

C. Poor performance and increasing errors

D. Faster DNS resolution

Correct answer: C — Poor performance and increasing errors

Duplex mismatch often leaves a link up while causing very poor performance and Ethernet errors.

Question 21

Fast Ethernet normally refers to what speed?

A. 10 Mbps

B. 100 Mbps

C. 1 Gbps

D. 10 Gbps

Correct answer: B — 100 Mbps

Fast Ethernet generally refers to 100 Mbps Ethernet.

Question 22

Which is a common Fast Ethernet standard?

A. 100BASE-TX

B. 1000BASE-T

C. 10GBASE-T

D. 802.11ax

Correct answer: A — 100BASE-TX

100BASE-TX is a common 100 Mbps Fast Ethernet standard.

Question 23

Gigabit Ethernet normally means what speed?

A. 100 Mbps

B. 500 Mbps

C. 1 Gbps

D. 10 Gbps

Correct answer: C — 1 Gbps

Gigabit Ethernet operates at 1 Gbps, which equals 1000 Mbps.

Question 24

Which standard commonly represents Gigabit Ethernet over copper twisted pair?

A. 10BASE-T

B. 100BASE-TX

C. 1000BASE-T

D. 10GBASE-SR only

Correct answer: C — 1000BASE-T

1000BASE-T is a common Gigabit Ethernet standard using twisted-pair copper cabling.

Question 25

10 Gigabit Ethernet operates at how many Mbps?

A. 1,000 Mbps

B. 5,000 Mbps

C. 10,000 Mbps

D. 100,000 Mbps

Correct answer: C — 10,000 Mbps

10 Gbps equals 10,000 Mbps.

Question 26

Where is 10 Gigabit Ethernet commonly used?

A. Only keyboards

B. Server links and network backbones

C. Analog telephone lines only

D. Printer USB cables only

Correct answer: B — Server links and network backbones

10 Gigabit Ethernet is commonly used for servers, uplinks, data centers, workstations, and network backbones.

Question 27

Which Ethernet speed may be found in modern data centers?

A. 25 Gbps

B. 100 Gbps

C. 400 Gbps

D. All of the above

Correct answer: D — All of the above

Modern high-performance data centers may use 25, 40, 50, 100, 200, 400 Gbps and faster Ethernet technologies.

Question 28

When a switch receives an Ethernet frame, which address does it examine to learn which device is connected to a port?

A. Destination IP address

B. Source MAC address

C. Destination TCP port

D. DNS server address

Correct answer: B — Source MAC address

A switch learns MAC-address-to-port mappings by examining the source MAC address of incoming frames.

Question 29

A switch receives a frame from MAC address AA:AA:AA:AA:AA:AA on Port 1. What does the switch learn?

A. The MAC address is reachable through Port 1

B. The IP address must be 192.168.1.1

C. Port 1 must be a router

D. The frame is always a broadcast

Correct answer: A — The MAC address is reachable through Port 1

The switch records the source MAC address and the port on which that frame arrived in its MAC address table.

Question 30

Which statement correctly compares a switch and a router?

A. A switch separates broadcast domains and a router separates collision domains.

B. A switch separates collision domains and a router separates broadcast domains.

C. Both devices always operate only at Layer 1.

D. Neither device affects network domains.

Correct answer: B — A switch separates collision domains and a router separates broadcast domains.

This is an important Networking distinction. Each switch port forms a separate collision domain, while routers separate Layer 2 broadcast domains.

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