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Design of a Full Adder Circuit

Design of a Full Adder Circuit

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DEDICATION

This research material, titled “Design of a Full Adder Circuit” is dedicated to God for His boundless grace and guidance. It is also a tribute to all computer enthusiasts whose contributions made my research journey smoother and enriched my documentation process, making the experience truly fulfilling.




ACKNOWLEDGEMENT

I am profoundly grateful to everyone who contributed to the successful completion of this project. I am especially grateful to my Supervisor (Name), the Head of Department (Name), and the Lecturers in the Department of Electrical / Electronics Engineering (EE) for their invaluable guidance and support. I also acknowledge the contributions of authors and scholars whose works on Design of a Full Adder Circuit provided essential insights. Special thanks go to my study area (and any funding organizations, if applicable) for their financial assistance. I am equally thankful to stakeholders, including mentors, teachers, and colleagues, for their encouragement and support. Finally, I deeply appreciate my family and friends for their patience and unwavering support throughout this journey. Your contributions have been instrumental in making this research a reality.




Design of a Full Adder Circuit


1.0 Introduction

According to the novel by Mehdi Ghasemi, Mohammad Hussein Moaiyeri, Keivan Navi, published on Jan 10, 2012. Due to high power consumption and difficulties with minimizing the CMOS transistor size, molecular electronics has been introduced as an emerging technology. Further, there have been noticeable advances in fabrication of molecular wires and switches and also molecular diodes can be used for designing different logic circuits.

Considering their technology novel, they use molecules as the active components of the circuit, for transporting electric charge. They presented a full adder circuit based on molecular electronics. This full adder is consisted of resonant tunneling diodes and transistors which are implemented via molecular electronics. The area occupied by this kind of full adder would be much times smaller than the conventional designs and it can be used as the building block of more complex molecular arithmetic circuits.

Ramya Menon C. and Vinod Pangracious 16 Jan 2012 published a novel which declares that; in a multiprocessor system on chip (MPSOC) IC the processor is one of the highest heat dissipating devices. The temperature generated in an IC may vary with floor plan of the chip. The novel proposes an integration and thermal analysis methodology to extract the peak temperature and temperature distribution of 2-dimensional and 3-dimensional multiprocessor system-on-chip. As we know the peak temperature of chip increases in 3-dimensional structures compared to 2-dimensional ones due to the reduced space in intra-layer and inter-layer components.

In sub-nanometer scale technologies, it is inevitable to analyze the heat developed in individual chip to extract the temperature distribution of the entire chip. With the technology scaling in new generation ICs more and more components are integrated to a smaller area. Along with the other parameters threshold voltage is also scaled down which results in exponential increase in leakage current. This has resulted in rise in hotspot temperature value due to increase in leakage power. They analyzed the temperature developed in an IC with four identical processors at 2.4 GHz in different floor plans. The analysis has been done for both 2D and 3D arrangements. In the 3D arrangement, a three layered structure has been considered with two Silicon layers and a thermal interface material (TIM) in between them. Based on experimental results they propose a methodology to reduce the peak temperature developed in 2D and 3D integrated circuits.

1.1 Historical Background of Study

Until the late 1970's, most minicomputer did not have a multiple instruction, and so programmers used a “multiply routine” which repeatedly shifts and accumulates partial results, often written using loop unwinding. Mainframe computers had multiply instructions. The Motorola 6809, introduced in 1978, was one of the earliest microprocessors with a dedicated hardware multiplying instruction. It did the same sorts of shifts and adds as a “multiply routine”, but implemented in the microcode of the MUL instruction [citation needed].

As more transistors per chip became available due to Larger Scale Integration (LSI), it become possible to put enough adders on a single chip to sum all the partial products at once, rather than reuse a single adder to handle each partial product one at a time. Because common digital signal processing algorithms spend most of their time on multiplying, digital signal processor designers sacrifice a lot of chip area in order to make the multiply-accumulate unit often used up most of the chip area of early DSPs.


1.2 Research Methodology

Similar Works Based On Full Adder Circuits

Some designs of adder cells can be found in the figures 1 to 6. These six different adder cells are simulated in 0.18 µm CMOS technology and tested separately. All these cells are optimum in power dissipation and Power delay product (PDP).

The conventional adder shown in figure 1 is implemented with 28 Transistors in CMOS technology. Conventional adder circuits do not function well below one volt supply.

Figure 2 shows the Complementary Pass-transistor Logic (CPL) adder. Among the pass transistor logic styles, CPL has the best performance and the lowest power delay product.

The Transmission Function full Adder (TFA), which is shown in figure 3, uses 16 transistors. Pull-up and pull-down logic is used to drive the load the same as the complementary pass logic. Figure 4 shows the Transmission Gate full adder (TG).

TG adder includes 20 transistors, and generates a+b and its complement to produce the sum and carry signals. It uses complementary input signals (a, b, c) as the complementary CMOS full adder. This full adder uses only 14 transistors to make the adder function. The circuit occupies less area in comparison with other CMOS full adder cells. At end, another full adder with 26 transistors is presented in figure 6.


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 conceputal review, theoretical framework, the review of related literature …

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Defense Procedure for Electrical / Electronics Engineering Researchers


In preparation for defending a project or seminar on Design of a Full Adder Circuit, it is imperative that as a nursing student, you demonstrate comprehensive knowledge of your research. The defense process is structured to include presenting your work, answering questions, and illustrating its pertinence. Initially, provide a succinct yet thorough introduction to your research topic, emphasizing its importance and the objectives, ensuring that both the audience and the External Examiner can understand the scope of your study.


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