CCNP  

  • Configuring VLANs

    The Catalyst 4908G-L3 switches do not support VTP. Therefore, in this example, the Catalyst 3512XL switches are configured in VTP transparent mode because a VTP domain cannot be extended across the Catalyst 4908G-L3.

    The configuration is the same on Catalyst 3512XL-01, 3512XL-02, and 3512XL-03:
     

      3512XL-01#vlan database
      3512XL-01(vlan)#vtp transparent
      Setting device to VTP TRANSPARENT mode.
      3512XL-01(vlan)#vlan 10 name Vlan10
      VLAN 10 added:
          Name: Vlan10
      3512XL-01(vlan)#vlan 20 name Vlan20
      VLAN 20 added:
          Name: Vlan20
      3512XL-01(vlan)#vlan 30 name Vlan30
      VLAN 30 added:
          Name: Vlan30
      3512XL-01(vlan)#vlan 40 name Vlan40
      VLAN 40 added:
          Name: Vlan40
      3512XL-01(vlan)#exit
      APPLY completed.
      Exiting....
      3512XL-01#

    You can verify the VLAN configuration using the show vtp status and the show vlan commands:

      3512XL-01#show vtp status
      VTP Version                     : 2
      Configuration Revision          : 0
      Maximum VLANs supported locally : 254
      Number of existing VLANs        : 9
      VTP Operating Mode              : Transparent
      VTP Domain Name                 :
      VTP Pruning Mode                : Disabled
      VTP V2 Mode                     : Disabled
      VTP Traps Generation            : Disabled
      MD5 digest                      : 0xF0 0xEA 0x28 0x34 0xA1 0xC6 0x2A 0xDE
      Configuration last modified by 10.10.1.10 at 9-18-00 18:04:06
      3512XL-01#show vlan
      VLAN Name                             Status    Ports
      ---- -------------------------------- --------- -------------------------------
      1    default                          active    Fa0/1, Fa0/2, Fa0/3, Fa0/4,
                                                      Fa0/5, Fa0/6, Fa0/7, Fa0/8,
                                                      Fa0/9, Fa0/10, Fa0/11, Fa0/12,
                                                      Gi0/1, Gi0/2
      10   Vlan10                           active
      20   Vlan20                           active
      30   Vlan30                           active
      40   Vlan40                           active
      1002 fddi-default                     active
      1003 token-ring-default               active
      1004 fddinet-default                  active
      1005 trnet-default                    active
      
      VLAN Type  SAID       MTU   Parent RingNo BridgeNo Stp  BrdgMode Trans1 Trans2
      ---- ----- ---------- ----- ------ ------ -------- ---- -------- ------ ------
      1    enet  100001     1500  -      -      -        -    -        1002   1003
      10   enet  100010     1500  -      -      -        -    -        0      0
      20   enet  100020     1500  -      -      -        -    -        0      0
      30   enet  100030     1500  -      -      -        -    -        0      0
      40   enet  100040     1500  -      -      -        -    -        0      0
      1002 fddi  101002     1500  -      -      -        -    -        1      1003
      1003 tr    101003     1500  1005   0      -        -    srb      1      1002
      1004 fdnet 101004     1500  -      -      1        ibm  -        0      0
      1005 trnet 101005     1500  -      -      1        IBM  -        0      0
      3512XL-01#
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Objects
It's an object's life
 

In a conversation that took place entirely in my head-yes, I am seeking professional help, thanks for asking-the tiny little object said to the great big object, "Don't you know that you don't conform to the CORBA IIOP specification?"

The great big object replied, "Why not?"

"Because you're a DCOM ActiveX control from Microsoft, that's why!" retorted the little guy. "You don't play by the rules."

"Rules? Whose rules?" wondered the great big object. "I make my own!"

Come again? If this conversation sounds silly and incomprehensible, you're not alone. Unfortunately, it's representative of the state of Internet objects today. Out in the so-called real world, the level of dialog among the companies involved in the future of the Internet is almost as jejune.

Would it surprise you to learn that this topic will be one of the most important in computing for the next decade or so? It's called distributed objects, and in some ways it's even bigger than the Internet, although very much a part of that phenomenon as well.

Because the industry thinks it's important, and because we will have to deal with both pleasant and unpleasant issues related to distributed objects in the near future, I thought it would be useful to attempt an introduction to the subject in this and the next column. This will be a little like explaining the Mona Lisa's smile using the vocabulary used for discussing n-dimensional Borel sets, but what the heck. It's a computer-magazine column. By now, most people who are in the know about computers recognize the terms "object" or "object oriented." Outside of the programming context, however-and sometimes even within it-these concepts remain murky. Let's start with a description of objects as we all know them.

A phone-y example

A phone-y example. A telephone, for example, is an object. You can pick it up, look at it, use it. How do you know it's a telephone? Without becoming submerged in technicalities, you know it by its shape-it has an earpiece, a mouthpiece, and some kind of base. While phones can vary from old-fashioned black rotary desk models to such fanciful designs as Mickey Mouse or a mallard duck, the basic properties remain the same: A phone has shape, color, size, weight, and so forth.

Phones also have a function: to aid in communication. To be more precise, they have several functions-dialing, answering, sending, and receiving. To use a phone, however, you don't need to know how it works. All you need to know is how to dial, either manually or through your computer.

Internally, a phone is fairly self-sufficient. Whatever information and functions it needs to operate are built in, with the exception, of course, of the actual numbers you want to dial. On the other hand, a single phone by itself is pointless. A phone needs an electrical current, telephone lines, and another telephone to connect to. In other words, it has to work with other objects in order to be useful.

Two phones-and a lot of other equipment in between- do quite a bit of communicating before your voice goes across the lines. Messages are sent back and forth to establish the protocol of connection and the rules of transmission. Each of the objects involved in the phone transmission-phones, lines, and switches-understands particular protocols. Once two phones have established a connection, they share properties like ringing, sending, and receiving.

Putting it together. Many of the terms I've just used to describe a telephone can be translated to the world of computers and object orientation. Moving from real-world objects like a phone to virtual-world objects like one representing a phone is not that big a step. The language is intuitive, because it resembles the language we use every day.

Representing a phone

In the real world, a "phone" has the properties mentioned above. In computer software, you can have a programmed object that represents a phone. This object has many of the same components (properties and methods) as a real phone. Perhaps you have seen communications programs that feature simulated phone interfaces with touch-tone buttons and even the simulated shape and color of a desk phone.

From a programmer's point of view, the cosmetic similarities between real-world and virtual objects are nice because they cut down on the training needed by users. But the real value of working with objects-and the reason object-oriented programming has become the norm-is that objects are self-sufficient units that can be designed, written, and debugged with much less complexity than other types of programs.

Objects also tend to be more reliable than traditional programs, so it's easy-and important-to design objects to be reused. In this way, developers are not having to constantly reinvent the wheel. They can simply plug in objects they've already created to a string of objects designed to perform a certain function. A phone object provides a good example of how this can work.

Object lesson. If you're writing a software program, you might have a half-dozen places where you need to provide the user with a way to dial a phone number. Rather than writing a new phone routine for each application, it's much easier to have one routine that can be used in all applications.

While this sort of "plug-and-play"-or modular- approach to software has been around for a while, object-oriented programming takes advantage of it in a big way by using concepts like encapsulation that reinforce the idea of objects as self-sufficient, reusable units. This gets to be really important when a large group of objects need to work together. Here's where object-oriented software gets confusing for a lot of people. A phone object, to continue our example, is usually constructed from many other objects. In programming terms, each button of the phone can be a separate object.

 


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