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    • Big Data

    필터링 기준

    "big data"에 대한 684개의 결과

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      University of Virginia

      Cancer Prevention Web-Based Activity

      획득할 기술: Epidemiology, Probability & Statistics

      4.7

      (179개의 검토)

      Beginner · Course · 1-4 Weeks

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      EDHEC Business School

      Economics and Policies of Climate Change

      획득할 기술: Finance, General Statistics, Probability & Statistics, Accounting, Regulations and Compliance, Risk Management, Taxes

      4.5

      (32개의 검토)

      Beginner · Course · 1-3 Months

    • 무료

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      The University of Sydney

      Easing the burden of obesity, diabetes and cardiovascular disease

      획득할 기술: Epidemiology, Leadership and Management, Probability & Statistics

      4.7

      (140개의 검토)

      Beginner · Course · 1-3 Months

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      Duke University

      Blockchain Business Models

      획득할 기술: BlockChain, Finance, Cryptography, FinTech, Security Engineering, Theoretical Computer Science, Algorithms, Decision Making, Entrepreneurship, Leadership and Management, Regulations and Compliance, Cyberattacks, Innovation

      4.7

      (332개의 검토)

      Intermediate · Course · 1-3 Months

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      Google

      Membuat Wireframe dan Purwarupa Low-Fidelity

      Beginner · Course · 1-4 Weeks

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      Rice University

      Physics 102 - Magnetic Fields and Faraday's Law

      획득할 기술: Mathematics, Calculus, Entrepreneurship, Leadership and Management, Problem Solving, Research and Design

      4.9

      (7개의 검토)

      Intermediate · Course · 1-4 Weeks

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      무료

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      Tel Aviv University

      Economic Growth and Distributive Justice Part I - The Role of the State

      획득할 기술: Accounting, Taxes, Behavioral Economics, Entrepreneurship, Innovation, Research and Design

      4.7

      (359개의 검토)

      Mixed · Course · 1-4 Weeks

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      Autodesk

      Generative Design for Performance and Weight Reduction

      획득할 기술: Computer Graphics, Product Design

      4.8

      (86개의 검토)

      Intermediate · Course · 1-4 Weeks

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      Universidad de los Andes

      Doing Business in Latin America

      획득할 기술: Entrepreneurship, Leadership and Management, Marketing, Sales, Strategy, Strategy and Operations, Critical Thinking, Problem Solving

      4.8

      (9개의 검토)

      Beginner · Course · 1-4 Weeks

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      무료

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      Yale University

      Introduction to Negotiation: A Strategic Playbook for Becoming a Principled and Persuasive Negotiator

      획득할 기술: Communication, Marketing, Negotiation, Sales, Business Analysis, Critical Thinking, Entrepreneurship, Game Theory, Leadership and Management, Mathematics, Problem Solving, Research and Design, Strategy, Strategy and Operations

      4.9

      (4.5k개의 검토)

      Mixed · Course · 1-3 Months

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      무료

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      University of Geneva

      Particle Physics: an Introduction

      획득할 기술: Research and Design, Business Psychology, Culture, Entrepreneurship, General Statistics, Human Learning, Human Resources, Leadership and Management, Machine Learning, Markov Model, Probability & Statistics, Problem Solving, Training

      4.4

      (845개의 검토)

      Mixed · Course · 1-3 Months

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      무료

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      The University of Chicago

      Internet Giants: The Law and Economics of Media Platforms

      획득할 기술: Computer Graphics, Entrepreneurship, Leadership and Management, Marketing, Sales, Strategy, Strategy and Operations, Human Computer Interaction, Behavioral Economics, Business Psychology, Computer Networking, Finance, Regulations and Compliance, Virtual Reality

      4.8

      (1k개의 검토)

      Mixed · Course · 1-3 Months

    big data과(와) 관련된 검색

    big data analytics
    big data analysis with scala and spark (scala 2 version)
    big data integration and processing
    big data analysis with scala and spark
    big data modeling and management systems
    big data, genes, and medicine
    big data emerging technologies
    big data: visualización de datos
    1…54555657

    요약하자면, 여기에 가장 인기 있는 big data 강좌 10개가 있습니다.

    • Cancer Prevention Web-Based Activity: University of Virginia
    • Economics and Policies of Climate Change: EDHEC Business School
    • Easing the burden of obesity, diabetes and cardiovascular disease: The University of Sydney
    • Blockchain Business Models: Duke University
    • Membuat Wireframe dan Purwarupa Low-Fidelity: Google
    • Physics 102 - Magnetic Fields and Faraday's Law: Rice University
    • Economic Growth and Distributive Justice Part I - The Role of the State: Tel Aviv University
    • Generative Design for Performance and Weight Reduction: Autodesk
    • Doing Business in Latin America: Universidad de los Andes
    • Introduction to Negotiation: A Strategic Playbook for Becoming a Principled and Persuasive Negotiator: Yale University

    Machine Learning에서 학습할 수 있는 스킬

    Python 프로그래밍 (33)
    TensorFlow (32)
    심층 학습 (30)
    인공 신경 회로망 (24)
    빅 데이터 (18)
    통계 분류 (17)
    강화 학습 (13)
    대수학 (10)
    베이지안 (10)
    선형 대수 (10)
    선형 회귀 (9)
    Numpy (9)

    빅 데이터에 대한 자주 묻는 질문

    • “Big data” is a term widely used to describe our data-rich world, in which virtually every activity generates a digital data footprint that can be collected and analyzed. While data and data analysis are not necessarily new, the effective use of the extremely large - and rapidly-growing - datasets of today require new approaches to data management.

      In order to harness big data for important applications like machine learning and artificial intelligence, you need more than an Excel spreadsheet or a traditional relational database and SQL. Instead, an entire data infrastructure is necessary to collect and process this data at scale, including data pipelines, data lakes, and data warehouses.

      To make this possible, data engineers rely on new approaches to data processing such as MapReduce, developed by Google, the open-source Apache Hadoop ecosystem including Apache Spark and Apache Hive, and, increasingly, cloud computing and cloud database platforms like Cloudera.‎

    • With companies in practically every industry eager to discover ways to harness the power of big data in their operations, having a background in this area can open doors to a wide range of careers. Operations managers at manufacturing or logistics companies may harness data to improve their demand forecasting, inventory planning, and process efficiency; digital marketers use marketing analytics to better understand their customers and the effectiveness of their messaging; and “quants” at hedge funds rely on data-based financial engineering approaches to move millions of dollars in milliseconds.

      Understanding how big data applications are built and what they are capable of can thus be incredibly valuable even if you aren’t a data engineer or data scientist yourself. However, if you have the expertise and desire to work directly with big data yourself, data engineers are responsible for building the data infrastructure capable of reliably and efficiently delivering big data at scale, and data scientists are responsible for using a wide range of analytic and programming approaches to uncover insights from it.

      These two roles are in extremely high demand, and command salaries to match. According to Glassdoor, data engineers earn an average annual salary of $102,864, and data scientists earn an average annual salary of $113,309.‎

    • Yes - in fact, Coursera is one of the best places to learn about big data. You can take individual courses and Specializations spanning multiple courses on big data, data science, and related topics from top-ranked universities from all over the world, from the University California San Diego to Universitat Autònoma de Barcelona. Coursera also offers the opportunity to learn from industry leaders in the field like Google Cloud, Cloudera, and IBM, including options to get professional certificates.‎

    • The skills and experience that you might need to already have before starting to learn big data may include software programming knowledge as well as top skills in math, algebra, data science, and related areas. The types of programming languages that are common in big data environments include Python, SQL, Java, C, and overall data structure and algorithm insights. Working with structured and unstructured data may likely require knowledge and background in discrete mathematics, statistics, and linear algebra. Of course, learning about big data roles would also require you to bring good soft skills like listening, focus, communication, and flexibility to the table. Finally, what would also play a part before starting to learn big data might include a good education in data science or mathematics.‎

    • The kind of people best suited for work that involves big data are those who are keenly interested in data sciences, statistical modeling, data analysis, and the move to a big data future with the internet. People who love to work with data are best suited for roles in big data. This would likely include persons who may have quantitative experience in data technology, or a background and a skill set working with accounting, finance, ratios, and percentages. Big data enthusiasts may also be adventurous types, who take big risks and want to work at the forefront of technology and society.‎

    • Learning big data may be right for you if you have strong analytical insights, a data science background, a head for numbers, and a familiarity with internet tools, cloud platforms, and data analysis software. Working in big data is one of the most in-demand jobs now, and the opportunity to work in a relevant field is very alluring. If you're flexible in your work roles, are a creative thinker, and have the discipline and right background, then learning big data may be right for you to advance your career forward.‎

    이 FAQ 콘텐츠는 정보 전달 목적만으로 사용할 수 있습니다. 학습자는 과정 및 기타 학점 정보가 개인적, 직업적 및 재정적 목표에 부합하는지 확인하기 위해 추가 조사를 수행하는 것이 좋습니다.
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