DESIGN AND IMPLEMENTATION OF ORTHOGONAL LATIN SQUARES ENCODERS FOR CONCURRENT ERROR DETECTION

Also Available Domains Xilinx Vivado|Xilinx ISE

Project Code :TVMAFE230

Abstract

Error correction codes (ECCs) are commonly used to look after memories next to errors. The proposed technique we are detect the one or more errors and to correct on its own bit error. Among ECCs, Orthogonal Latin Squares (OLS) codes have gain renewed interest for memory defense due to their modularity and the simplicity of the decoding algorithm that enable low down delay implementations. The general idea for achieving error detection and correction is to add some redundancy which means to add some extra data to a message, which receiver can use to check uniformity of the delivered message, and to pick up data determined to be corrupt. A significant issue is that when ECCs is used, the encoder and decoder circuits can also suffer errors. In this brief, a concurrent error detection technique designed for OLS codes encoders be proposed and evaluated. The proposed method uses the properties of OLS codes in the direction of efficiently implement a parity prediction scheme that protects the encoder.

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Specifications

Hardware requirement

             Processor               -    Pentium –III

 

Speed                                -    1.1 GHz

RAM                                 -    1 GB (min)

Hard Disk                          -   40 GB

Floppy Drive                     -    1.44 MB

Key Board                         -    Standard Windows Keyboard

Mouse                                -    Two or Three Button Mouse

Monitor                              -    SVGA

 

Software requirements

Operating System            :Windows95/98/2000/XP/Windows7

 

Front End                          :   Modelsim 6.3 for Debugging and Xilinx 14.3 for                     Synthesis and Hard Ware Implementation

 

This software’s where Verilog source code can be used for design implementation.

Learning Outcomes

Learning Outcomes:

  • Introduction to Digital Electronics
  • Analysis of digital circuits
  • Importance of Multipliers
  • Disadvantages of existing multipliers
  • Knowledge on bypass technique
  • Xilinx ISE/VIVADO software tool for code and simulation
  • Solution providing for real time problems
  • Project Development Skills:
      •  Problem Analysis Skills
      • Problem Solving Skills
      • Logical Skills
      • Designing Skills
      • Testing Skills
      • Debugging Skills
      • Presentation skills
      • Thesis Writing Skills

 

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