تدريب Shadowing: Database vs Data Warehouse vs Data Lake | Explaining the Differences - تعلم التحدث بالإنجليزية عبر الفيديو
جارٍ إنشاء الدرس...
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We live in a world that runs on data.
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It's how Amazon and Netflix know which movies and products to recommend, how Starbucks manages a global supply chain,
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and how Uber connects drivers with passengers in real time.
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But the thing is, data skills aren't just for tech companies or professional analysts anymore.
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Everyone works with data to some degree, and everyone can benefit from data literacy skills.
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In this video, we're covering an important topic that will help you take your data literacy to the next level.
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Alright, so accessing data is one thing, but organizing and storing it is a completely different beast.
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So at a high level, some of the most common storage modes that you're likely to encounter include flat files, databases, data warehouses, and data lakes.
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Now, there are other, less common storage methods and hybrid variations of these as well, but our goal here is really just to paint some broad strokes
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and help you understand the key similarities and differences between them.
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Now, the simplest method of data storage is a flat file,
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which is typically a static tabular data extract saved either to a local drive or cloud storage like Google Drive or OneDrive.
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And this is very common for one off projects or quick ad hoc analyses that don't require multiple data sources, ongoing maintenance or complex data models.
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The most common types of flat files you'll see are CSVs and Excel workbooks.
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Now, a database is a collection of related tables stored in a database management system, or DBMS.
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Databases are typically used for recording and collecting data tied to a single application or business process,
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like capturing transactional records or real-time website activity.
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And they're usually optimized for online transactional processing,
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known as OLTP, meaning that they're built to receive and store data as efficiently as possible, but aren't really ideal for querying or analysis.
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Common database options include MySQL, Amazon RDS, Microsoft Access or SQL Server, and many, many more.
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A data warehouse, on the other hand, is a database
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or a collection of data sourced from multiple databases that's typically structured to support specific analytics needs
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and is optimized for online analytical processing, or OLAP.
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That basically just means it's built in a way
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that makes it very easy and very fast for users to access the data they need for analytical purposes.
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examples of data warehouse tools include Amazon Redshift, Google BigQuery, Snowflake, Teradata, and others.
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And finally we have data lakes which are essentially a repository of both structured
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and unstructured data sources often stored in their raw unprocessed state.
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So we're talking about everything from CSV files to MP4s, PDFs, text documents, and so on.
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Instead of getting Being cleaned and prepped on the way in, data is typically extracted from the lake and transformed for specific purposes,
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often relating to machine learning or AI.
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Some examples of data lakes include Amazon S3, Azure Data Lake, Google Cloud, and more.
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Now, if you're feeling a little overwhelmed about what this all means, no need to worry.
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I've worked in data analytics and business intelligence for over 15 years, and I still get confused by this stuff.
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The good news is that unless you plan to become a data engineer, it's extremely unlikely that you would be the one building or configuring databases or warehouses.
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In fact, in most cases, data engineers or architects are the ones primarily responsible for standing up these systems
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and building the pipelines and automations that help the data flow from one place to another.
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If you enjoyed this content and want to see more, we've got a brand new Data Literacy Foundations course, and it's entirely free.
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You can check it out at mavenanalytics.io.
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So whether you're an individual looking to build confidence, a leader seeking to empower and upskill your team, or a data professional just trying to to stay ahead of the curve,
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this is the course for you.
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We've got a lot to cover, so let's dive in.
📺 نفس القناة
✨ فيديو موصى به
المفردات وملاحظات التحدث لهذا الدرس
يحتوي هذا الفيديو على 42 جملة و674 كلمة للتدرب على الترديد. مدة الكلام 4:14. يتكلم المتحدث بسرعة طبيعية، نحو 159 كلمة في الدقيقة، قريبة من المحادثة اليومية. 78% فقط من الكلمات ضمن أكثر 3,000 كلمة شيوعًا في الإنجليزية، فالمفردات صعبة نسبيًا.
أهم المفردات في هذا الفيديو
15 كلمة أقل شيوعًا من الفيديو، مع النطق والمعنى:
- database /ˈdeɪtəˌbeɪs/ (اسم) — قَاعِدَة بَيَانَات. A collection of (usually) organized information in a regular structure, usually but not necessarily in a machine-readable format accessible by a computer.
- warehouse /ˈwɛə(ɹ)haʊs/ (اسم) — مَخْزَن, مُسْتَوْدَع. A facility for storing large amounts of merchandise or products.
- literacy /ˈlɪtəɹəsi/ (اسم) — مَحْو الْأُمِّيَّة. The ability to read and write.
- cloud /ˈklaʊ̯d/ (اسم) — سَحَاب, غَيْم. A visible mass of water droplets suspended in the air.
- skill /skɪl/ (اسم) — مَهَارَة. A capacity to do something well; a technique, an ability, usually acquired or learned, as opposed to abilities that are regarded as innate.
- extract /ˈɛkstɹækt/ (اسم) — مُقْتَطَف. Something that is extracted or drawn out.
- analytics /ˌæn.əˈlɪt.ɪks/ (اسم) — تَحْلِيلَات. The principles governing any of various forms of analysis.
- topic /ˈtɑpɪk/ (اسم) — مَوْضُوع, مَوَاضِيع. A subject; a theme; a category or general area of interest.
- confused /kənˈfjuːzd/ (صفة) — اِحْتَارَ. unable to think clearly or understand
- ideal /aɪˈdi(ə)l/ (صفة) — مِثَالِيّ. Pertaining to ideas, or to a given idea.
- capture /ˈkæp.(t)ʃɚ/ (فعل) — أَسَرَ. To take control of; to seize by force or stratagem.
- connect /kəˈnɛkt/ (فعل) — رَبَطَ. To join (to another object): to attach, or to be intended to attach or capable of attaching, to another object.
- passenger /ˈpæs.ɪn.d͡ʒɚ/ (اسم) — مُسَافِر, مُسَافِرَة. One who rides or travels in a vehicle, but who does not operate it and is not a member of the crew.
- collect /ˈkɑlɪkt/ (فعل) — جَمَعَ. To gather together; amass.
- unlikely /ʌnˈlaɪkli/ (صفة) — مِنْ غَيْرِ المُرَجَّحِ. Not likely; improbable; not to be reasonably expected.
الأفعال المركبة التي ستسمعها
- stand up (فعل) — قَامَ. To rise from a lying or sitting position.
- talk about (فعل) — تَكَلَّمَ فِي, تَكَلَّمَ عَلَى. Used to draw attention to the speaker's characterization of someone or something.
نطق يحتاج إلى انتباه
يستخدم المتحدث 14 من الصيغ المختصرة، مثل you're, aren't, they're. انطقها بصيغتها القصيرة كما تسمعها.
- أصوات “sh” و“zh”: capture /ˈkæp.(t)ʃɚ/, essentially /ɪˈsɛnʃəli/, variation /ˌvɛəɹiˈeɪʃn̩/, automation /ˌɔ.təˈmeɪ.ʃən/, transactional /trænˈzækʃ(ə)nəl/
- الكلمات الطويلة — انتبه لموضع النبر: literacy /ˈlɪtəɹəsi/, analytics /ˌæn.əˈlɪt.ɪks/, analytical /ˌæn.əˈlɪt.ɪ.kəl/, primarily /ˈpɹaɪ.mə.ɹə.li/, essentially /ɪˈsɛnʃəli/
كيف تتدرب بهذا الفيديو
- استمع إلى الفيديو كاملًا مرة واحدة دون أن تتكلم، ودوّن الكلمات التي لا تعرفها.
- ابدأ بسرعة 0.75×، وردّد جملة جملة، ثم عُد إلى السرعة العادية عندما يصبح الأمر سهلًا.
- سجّل صوتك وقارنه بالأصل، مع الانتباه إلى كلمات مثل database, warehouse, literacy.
ما هي تقنية التظليل الصوتي؟
التظليل الصوتي (Shadowing) تقنية تعلم لغة مدعومة علمياً، طُورت أصلاً لتدريب المترجمين الفوريين المحترفين. الطريقة بسيطة لكنها قوية: تستمع لصوت إنجليزي أصلي وتكرره فوراً بصوت عالٍ — كظل يتبع المتحدث بتأخير 1-2 ثانية. تُظهر الأبحاث تحسناً كبيراً في دقة النطق والتنغيم والإيقاع وربط الأصوات والاستماع والطلاقة.












