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Network Analyzer and Network Monitoring Tool Using SNMP

Network Analyzer and Network Monitoring Tool Using SNMP

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Reference ID: PS-5507-TM

DEDICATION

This research work titled "Network Analyzer and Network Monitoring Tool Using SNMP" is dedicated to God for his enabling grace and to all computer enthusiasts who help to make life a pleasant experience.

ACKNOWLEDGEMENT

I owe my indebtedness to my Supervisor (Name of your Supervisor), the Head of Department (Name of your HOD), the Lecturers in the department of Computer Science (CS), Book Authors and Profound Scholars of existing/related research material for your moral support that facilitated the successful completion of my (Tertiary Institution level). I am grateful to God Almighty and my parent for their financial support in my career. I really appreciate you all for everything, Thank you very much.


Network Analyzer and Network Monitoring Tool Using SNMP

TABLE OF CONTENTS

PRELIMINARY PAGES


CHAPTER ONE

INTRODUCTION

  • 1.1 Introduction
  • 1.2 Background of Study
  • 1.1.1 Basic Concepts
  • 1.3 Statement of the Problem
  • 1.4 Aim and Objectives of the Study
  • 1.5 Significance of the Study
  • 1.6 Scope of the study
  • 1.7 Limitation of the Study
  • 1.8 Definition of Terms

CHAPTER TWO

LITERATURE REVIEW

  • 2.1 Introduction
  • 2.2 Conceptual Review
  • 2.3 Client-Server and Other Models
  • 2.4 Client-Server Communication
  • 2.5 Hosts Identification and Service Ports
  • 2.6 Sockets and Socket-Based Communication
  • 2.7 TCP/IP Socket programming
  • 2.8 Overview of Secure Socket Layer (SSL)
  • 2.8.1 Security Features of Network Analyzer & Monitoring
  • 2.8.2 Types of Cryptographic Algorithms
  • 2.8.2.1 Hash Functions
  • 2.9 Empirical Review

CHAPTER THREE

SYSTEM ANALYSIS AND DESIGN

  • 3.1 Methodology Adopted
  • 3.2 Analysis of the Existing System
  • 3.2.1 Dataflow of the Existing System
  • 3.2.2 Disadvantages Of The Existing System
  • 3.2.3 Weakness of the existing System
  • 3.3 Analysis of the Proposed System
  • 3.4 System Design
  • 3.4.1 Advantages of the Proposed System
  • 3.4.2 Justification of the Proposed System
  • 3.5 Functional Requirements
  • 3.5 Data Requirements
  • 3.6 High Level Model of the Proposed System

CHAPTER FOUR

SYSTEM DESIGN AND IMPLEMENTATION

  • 4.1 Objectives of the Design
  • 4.2 Cohesion and Decomposition High level Model
  • 4.3 Control Center / Overall Dataflow Diagram
  • 4.3.1 Proposed System Operation Flowchart
  • 4.4 System Specification and Design
  • 4.4.1 Input and Output Specification
  • 4.4.2 Database Specification and Design
  • 4.5 Choice and Justification of Programming Language
  • 4.6 Program Documentation
  • 4.7 Implementation Techniques
  • 4.8 Programming Module Specification
  • 4.8.1 Installation
  • 4.9 Computer Hardware Minimum Requirement
  • 4.10 Software Requirement
  • 4.11 Personnel / User Training

CHAPTER FIVE

SUMMARY, CONCLUSION, AND RECOMMENDATION

  • 5.1 Introduction
  • 5.2 Summary
  • 5.3 Conclusion
  • 5.4 Recommendation

REFERENCES

APPENDIX A - “SOURCE CODE”

APPENDIX B - "OBJECT PROGRAM"

ABSTRACT

The increasing complexity and importance of communication networks have given rise to a steadily high demand for advanced network management tools. Network Management in general consists of two activities: monitoring and controlling. The monitoring part concerns observing and analyzing the status and behavior of the managed networks, and is therefore fundamental for network management. Unfortunately, the existing network monitoring paradigms have some drawbacks that prevent it from satisfactory performance. One related problem is that these approaches are characterized by high centralization which puts almost all the computational burden on the management station. As a result, a huge amount of raw data has to be transferred from network elements to the central management station for further processing, causing heavy traffic, manager overload and long operations delay. Another issue that becomes increasingly noticeable is the absence of a mechanism for dynamic extensions to agent functionality. There have been many studies performed on wireless networks. Of those that have captured data from the wireless side, most have used a form of wireless network monitoring known as Vicinity Sniffing (wireless sniffing from a location that is physically close to an access point to be in the broadcast range) as the primary means of capturing data. We believe that with recent advancements, Simple Network Management Protocol (SNMP) is now capable of producing reliable results that were previously unattainable. We were presented with several obstacles in our studies, most of which are beliefs that SNMP is inadequate for monitoring IEEE 802.11 wireless networks. In this work we take advantage of some unique features of the Java technology and present a framework for distributed and dynamic network monitoring. Specialized Java objects known as Intelligent Monitoring Objects, are delegated to a Java-based Extensible Management Server (JEMS), where they carry out encapsulated monitoring functionality upon management information collected locally from the underlying network device. We have built a proof-of-concept prototype system using the JEMS architecture and validated its effectiveness and flexibility compared with the traditional centralized network management systems. The claim is that SNMP provides either aggregated statistics or instantaneous values, and that it cannot report data on a per-device level, which is often desired so that individual details of a network's performance may be analyzed. A prototype system has been developed allowing fans attending home football games to interact with a set of web applications using 802.11 enabled smartphones. A driving requirement behind the work presented in this thesis was to develop a framework for monitoring and analyzing the underlying IEEE 802.11 network used by the iTiger system.


Network Analyzer and Network Monitoring Tool Using SNMP

CHAPTER ONE

1.1 Introduction

Several network systems are built to communicate with one another and are made available through service-oriented architectures. In this project, we use the client server architecture to develop a secured Client-Server chat application. A chat application is created based on Transmission Control Protocol (TCP) where TCP is connection oriented protocol and in the end, multithreading is used to develop the application.

As a prelude to other parts of this study, this chapter will discuss the background upon which this study was initiated, the statement of problems that led to this study, the Aim and Objectives of the study. Others are Significance of the study, Scope of work, Limitations of the Study and Definition of technical terms.


1.2 Background of Study

Network monitoring and measurement have become more and more important in a modern complicated network. In the past, administrators might only monitor a few network devices or less than a hundred computers. The network bandwidth may be just 10 or 100Mbps (Megabit per second) ; however, now administrators have to deal with not only higher speed wired network ( more than 10Gps( Gigabit per second) and Asynchronous Transfer Mode(ATM) network) but also wireless network .They need more sophisticated network traffic monitoring and analysis tools in order to maintain the network system stability and availability such as to fix network problems on time or to avoid network failure, to ensure the network security strength, and to make good decisions for network planning, when a network failure occurs, monitoring agents have to detect, isolate, and correct malfunctions in the network and possibly recover the failure. Commonly, the agents should warm the administrators to fix the problems within a minute. With the stable network, the administrator's jobs remain to monitor constantly if there is a threat from either inside or outside network. Moreover, they have to regularly check the network performance if the network devices are over loaded to avoid a failure occurring due to the overloaded, information about network usage can be used to make a network plan for short-term and long-term future improvement.

There are various kinds of tools use for dealing with the network monitoring and analysis; such as tools by simple network management protocol (SNMP), windows management instrumentation (WMI), sniffing and network flow monitoring and analysis. Given the data packet and network traffic flow information, administrators can understand network behavior, suchas application and network usage, utilization of network resources, and network anomalies and security vulnerabilities.


1.1.1 Basic Concepts

SNMP (Simple Network Management Protocol) was introduced in 1988 and was initially designed as a short-term solution to manage Transmission Control Protocol /Access Point(TCP/AP) based networks. With SNMP's Get, Set and Trap operations, monitoring and controlling can be realized in TCPAP networks. Since Transmission Control Protocol/Internet Protocol (TCP/IP) is dominant, implementation and deployment of SNMP management systems are important.Because of the limitations and deficiencies in the original SNMP suite, SNMP v2 was introduced and published in 1993.To address the security and remote configuration capabilities issues, a recent set of Request for Comments (RFCs), known collectively as SNMP v3, has also been recently introduced[Snmpv3].

A network management or monitoring system must have a management station or manager.The management station serves as the interface for the human network manager into the network management system so that the network manager can monitor and control the network management processes. Another key element in network management is the management agent. Any node in the network to be managed, such as PCs, workstations, servers, bridges and routers,should be equipped with an agent so that they can be managed from a management station. The agent gathers and records management information for one or more network elements and communicates that information to the manager. The communication is implemented according to a common network management protocol which is shared by al1 the management stations and agents.

Since the agent has a function of collecting and maintaining information for its local environment, the management information base (MIB) was introduced. The MIB contains current and historical information about its local configuration and traffic. The management station will maintain a global MIB with summary information from al1the agents.There are two techniques used for making the management information collected and stored by agents available to manager systems. One is polling, a process by which the manager queries the information from the agent and the agent responds by looking at its MIB. The other process is event reporting, which indicates that the manager listens for the event reports generated by the agents.

The heart of the network management system is a set of applications that meet the needs for network management. At a minimum, a system will include basic applications for performance monitoring, configuration control, and accounting. This study focuses on monitoring the system specified by the user in the local network and presenting the information via text or red the graph in the client's Web browser.Common Object Request Broker Architecture (CORBA) is defined by the Object Management Group (OMG) m provide middle ware for object-oriented applications. With a membership of over 800 companies, OMG represents the main spectrum of the computer industry except for Microsoft. For the majority of the industry, the next generation of middle ware is CORBA.


1.3 Statement of the Problem

As wireless networks become more popular, they are being deployed in more and more varying conditions. At the same time, the monitoring of these networks has also advanced and continues to reveal key implementation deficiencies that need to be corrected in order to improve operation and end-to-end performance. An increase in network load can give rise to several problems such as intermittent connectivity, low throughput, and high loss, resulting in an unreliable network, and in the worst-case, complete network failure. The objective in this study was to analyze the impact of congestion and AP hand offs in an IEEE 802.11 wireless network.

The problem addressed by this study is described by the following points:

  1. The majority of previous research has discounted the use of SNMP on wireless
  2. SNMP is not typically viewed as an accurate and reliable tool since it
  3. Presents either aggregate or instantaneous information at the time it is
  4. Vicinity Sniffing is still seen as the best method of observing a network
  5. Performance because of the level of granularity that is available.
  6. When using Vicinity Sniffing in ideal conditions, it is possible to view the
  7. Entire contents of packets that pass across the wireless network.

Although Vicinity Sniffing provides for packet-level detail, some limitations exist that reduce the level of accuracy such as the physical characteristics of the wireless medium itself.

SNMP does not provide the same level of detail as Vicinity Sniffing, but the data that is returned from a SNMP query covers 100% of the packets that have passed through a particular segment of the network, whereas the data obtained from Vicinity Sniffing is dependent upon the physical placement of the sniffers.

This study is designed to show that the latest wireless equipment is capable of producing results that are on a per-device level, and that the data retrieved from SNMP is valid, even for wireless networks. Further, we correlate data obtained through Vicinity Sniffing to data obtained from SNMP. This serves to partially validate that the results from both methods are accurate and to develop additional performance analysis dimensions that can be achieved when using an analysis methodology that includes both techniques.


1.4 Aim and Objectives of the Study

The aim of the study is to design and implement an effective wireless monitoring system using SNMP and demonstrating its effectiveness in traffic characterization and network diagnosis. In achieving this aim, the following specific objectives were laid out as follows to develop an application software that will:

  1. Determine the network performance matrices
  2. Determine the relationship between management information base (MIB) Simple Network Management Protocol (SNMP).
  3. Determine the types of network traffic flow monitoring and analysis tools
  4. Determine the role of SNMP in network performance monitoring.

1.5 Significance of the Study

The study on network analyzer and monitoring tools using SNMP will be of immense benefit to the communication industry in Nigeria, the government (local state and federal) and other researcher that desire to carry out similar research on the above topic as the findings of the study will educate the above population on network performance monitoring, common performance metrics, role of SNMP in network perform monitoring, management information base (MIB), and examples of network traffic flow monitoring and analysis tools. Finally, the study will contribute to the body of existing literature and knowledge in this field of study and provide a basis for further research.


1.6 Scope of the study

The scope of this study is based on developing an intelligent network monitor to dynamically distribute monitoring functionality, using SNMP at the devices where the managed resources are located. Specifically speaking, the intelligent monitoring goes in two ways:

First, manager applications can distribute monitoring intelligence to the managed network element. Instead of bringing data from the devices to the central station.The manager host and the network as a whole can then be relieved from the bottleneck and themicro-management problems.

Secondly, the network element's agent functionality can be dynamically modified or extended. Through SNMP, Manager Applications can choose to distribute/delete whatever information to/from the device, at whatever time they like.


1.7 Limitation of the Study

Using SNMP for monitoring has proved that as congestion in the network intensifies, smaller frames are more likely to be successfully transmitted and received; and that in a congested network, the use of high data rates and the transmission of fewer frames reduces per-frame channel occupancy and decreases medium contention respectively.


1.8 Definition of Terms

Agent: The software that runs on a managed network device and implements the information and / or management functionality of a management system.

Managed Device: Any network device that is capable of participating in a network management system

Management Information Base (MIB): A hierarchical specification of the managment data on a managed network device.

CHAPTER TWO

2.0 Literature Review

2.1 Introduction

This chapter focuses on the review of related literature. A literature review includes the current knowledge as well as theoretical and methodological contributions to a particular topic. It documents the state of the art with respect to the topic you are writing. It surveys the literature in the topic selected. In this research work the literature review includes the …

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