The Science of Computing: Algorithms and Data Structures

Computing has become an integral part of modern society, shaping various industries, scientific research, and everyday life. At its core, computing involves the use of computers and algorithms to process data, solve problems, and automate tasks. This chapter provides an overview of computing and the fundamental principles of computational thinking, which form the foundation for problem-solving in the digital age.

Computing encompasses both hardware and software components. Hardware refers to the physical devices, such as processors, memory units, and input/output devices, that perform computational tasks. Software, on the other hand, consists of programs and algorithms that instruct hardware on how to process information. The evolution of computing has led to significant advancements, from early mechanical calculators to modern high-performance computing systems capable of handling vast amounts of data.

Computational thinking is a problem-solving approach that involves breaking down complex problems into manageable parts, recognizing patterns, and developing step-by-step solutions. It consists of several key principles, including decomposition, abstraction, pattern recognition, and algorithm design. Decomposition involves dividing a problem into smaller, more manageable sub-problems. Abstraction focuses on identifying relevant details while ignoring unnecessary complexity. Pattern recognition allows problem solvers to identify similarities between different problems, enabling efficient solutions. Algorithm design involves creating a set of well-defined steps to achieve a specific outcome.

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The Science of Computing: Algorithms and Data Structures

Computing has become an integral part of modern society, shaping various industries, scientific research, and everyday life. At its core, computing involves the use of computers and algorithms to process data, solve problems, and automate tasks. This chapter provides an overview of computing and the fundamental principles of computational thinking, which form the foundation for problem-solving in the digital age.

Computing encompasses both hardware and software components. Hardware refers to the physical devices, such as processors, memory units, and input/output devices, that perform computational tasks. Software, on the other hand, consists of programs and algorithms that instruct hardware on how to process information. The evolution of computing has led to significant advancements, from early mechanical calculators to modern high-performance computing systems capable of handling vast amounts of data.

Computational thinking is a problem-solving approach that involves breaking down complex problems into manageable parts, recognizing patterns, and developing step-by-step solutions. It consists of several key principles, including decomposition, abstraction, pattern recognition, and algorithm design. Decomposition involves dividing a problem into smaller, more manageable sub-problems. Abstraction focuses on identifying relevant details while ignoring unnecessary complexity. Pattern recognition allows problem solvers to identify similarities between different problems, enabling efficient solutions. Algorithm design involves creating a set of well-defined steps to achieve a specific outcome.

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The Science of Computing: Algorithms and Data Structures

The Science of Computing: Algorithms and Data Structures

by Craig Dames

Narrated by Marsha Eves

Unabridged — 1 hours, 43 minutes

The Science of Computing: Algorithms and Data Structures

The Science of Computing: Algorithms and Data Structures

by Craig Dames

Narrated by Marsha Eves

Unabridged — 1 hours, 43 minutes

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Overview

Computing has become an integral part of modern society, shaping various industries, scientific research, and everyday life. At its core, computing involves the use of computers and algorithms to process data, solve problems, and automate tasks. This chapter provides an overview of computing and the fundamental principles of computational thinking, which form the foundation for problem-solving in the digital age.

Computing encompasses both hardware and software components. Hardware refers to the physical devices, such as processors, memory units, and input/output devices, that perform computational tasks. Software, on the other hand, consists of programs and algorithms that instruct hardware on how to process information. The evolution of computing has led to significant advancements, from early mechanical calculators to modern high-performance computing systems capable of handling vast amounts of data.

Computational thinking is a problem-solving approach that involves breaking down complex problems into manageable parts, recognizing patterns, and developing step-by-step solutions. It consists of several key principles, including decomposition, abstraction, pattern recognition, and algorithm design. Decomposition involves dividing a problem into smaller, more manageable sub-problems. Abstraction focuses on identifying relevant details while ignoring unnecessary complexity. Pattern recognition allows problem solvers to identify similarities between different problems, enabling efficient solutions. Algorithm design involves creating a set of well-defined steps to achieve a specific outcome.


Product Details

BN ID: 2940194040186
Publisher: Cammy Fetchens LLC
Publication date: 03/27/2025
Edition description: Unabridged
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