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[NetMiner 4] Analyzing the Structural Characteristics of a Network

The most basic approach in network data analysis is to analyze network characteristics. Starting with the frequencies of nodes and links, this course explores in detail the principles and meanings of various indices that describe structural features of networks, including the distribution of the number of connections, density, shortest distance, clustering coefficient, and more. If the structure of a network can be measured numerically, it becomes possible to compare it with other networks. Through this course, define the characteristics of your network data from various perspectives.

2 learners are taking this course

Level Basic

Course period 1 months

Big Data
Big Data
data-analysis
data-analysis
network-analysis
network-analysis
social-network
social-network
statistical-analysis
statistical-analysis
Big Data
Big Data
data-analysis
data-analysis
network-analysis
network-analysis
social-network
social-network
statistical-analysis
statistical-analysis

What you will gain after the course

  • Characteristic index describing the structure of a network

  • Characteristics resulting from direct connections in the network

  • Characteristics Caused by Indirect Connections in the Network

  • Characteristics Due to Network Cohesion

☆ Please check before enrolling ☆

[Course Duration]

- 1 month

[Course Information]

<Practice Program (NetMiner)>

  • To follow along with the exercises, you need a laptop or desktop PC running a Windows operating system.

  • For instructions on installing the educational version of NetMiner 4, please refer to 'Community >> Frequently Asked Questions >> [必読] Educational NetMiner (NetMiner for Training Guide).


<Course Materials and Practice Data>

  • Please check the “Class Materials” section of the first lecture video for the course materials.

  • The practice data is provided along with the installation of the practice program (NetMiner).



Key course content

• In network data analysis, the most basic approach is to analyze network characteristics. Starting with the frequency of nodes and links, this course covers in detail the principles and meanings of various indices that explain the structural features of networks, including the distribution of the number of connections, density, shortest paths, and clustering coefficients. If you can measure the structure of a network numerically, you can compare it with other networks. Through this course, define the characteristics of your network data from various perspectives.

#Big Data #data-analysis #network-analysis #social-network #statistical-analysis

• Total course duration: 3 hours 28 minutes


Prerequisite course


Instructor Information

  • Kangmin Kim - Director at Cyram Co., Ltd.

  • Taeryeong Kim - Analysis Consultant at Sairam Co., Ltd.

Recommended for
these people

Who is this course right for?

  • Those who want to identify the structural characteristics that emerge through connections after entering network data.

  • For those who want to learn more about NetMiner’s various structural property analysis features

Need to know before starting?

  • Introduction to NetMiner 4 and Basic Usage (Free) Training Link: https://inf.run/ViiiU

Hello
This is CYRAM NetMiner

サイラムは2000年に設立されたグラフデータサイエンス(Graph Data Science)専門企業で、国内初の商用ソーシャルネットワーク分析(SNA)ソフトウェアNetMinerを開発してきました。 20年以上にわたり、社会ネットワーク分析(SNA)、グラフ分析(Graph Analytics)、テキスト分析(Text Analytics)、グラフ機械学習(Graph Machine Learning)の分野で技術とノウハウを蓄積し、研究機関、大学、公共機関、企業のさまざまなデータ分析を支援してきました。 本講義では、NetMiner開発会社としての専門性をもとに、社会ネットワーク分析の基本概念から実際のデータ分析、結果の解釈まで、実務を重視して学ぶことができます。単なるソフトウェアの使用方法にとどまらず、データに潜む隠れた関係性や構造を発見する分析的思考も身につけてみましょう。
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Co-instructor

Curriculum

All

8 lectures ∙ (3hr 28min)

Course Materials:

Lecture resources
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