쉐도잉 연습: The Most Confused Concepts in Engineering - 영상으로 영어 말하기 배우기

레슨 만드는 중...
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Think back to the last time when you were searching something on Google.
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If you notice your browser bar, you may see something like this.
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If we look carefully, we can see that the spaces are actually replaced by person 20, and question mark is replaced by person 3f.
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The browser somehow transformed our query into something different.
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Why?
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Because the URLs are allowed to have only a limited number of characters, and in that character set, characters like space are not valid.
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but it still needs to be sent, and therefore it is converted into something that belongs to the allowed character set.
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This type of transformation of data from one form to another, for the purpose of storage or transmission, is called encoding.
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And similar to this, the data can be encoded to other forms as well.
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For example, the text hello can be converted into many different forms, for example binary, hexadecimal, or base64.
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The encoding is not only limited to transmitting data, but has other uses as well.
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For example, if you work on the front-end with CSS, you might have seen the color codes which have the RGB values.
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Those values are usually written in hexadecimal for its compact nature.
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In decimal, the same value would look like this.
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Similarly, in HTML, you may have seen the image stack to add images to your page, which refer to the URL where the image resides.
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While this is fine for large images, The lighter images can be directly embedded in the Base64 format via HTML or CSS to save a network call.
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The key point to understand here is that encoding is reversible.
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For example, anyone who sees person 20 can decode it back to a space.
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It's about data representation, not security.
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And speaking of security, let's talk a bit about hashing.
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Whenever you create an account online, your password is never stored in plain text.
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Instead, it's converted into a fixed-length string of characters, which could look like this.
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From this string alone, it is impossible to construct the original password again, and this type of transformation is possible by a process called hashing.
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Hashing is a process where you convert data into another irreversible form by the use of a hashing algorithm, which does some complex math behind the scenes to achieve this.
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So when you login, the password that you enter is hashed again and compared with the hash that exists in the system.
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If they are same, the login is successful.
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Hashing is defined by three main things.
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First, that it is one way.
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You can't reverse a hash to retrieve the original input.
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Second, it is deterministic.
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The same input always produces the same hash.
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And third, is that it is always of fixed length.
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So, no matter how long your password is, the hash always will be of the same size.
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Hashing is not only used in passwords, but it has other applications as well.
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For example, in file downloads.
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If the downloaded file is corrupt, its hash would be different from the original file.
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Whereas if the downloaded file is intact, its hash would be the same as original file.
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If you're intrigued by hashing, check out my deep dive video on what is hashing, to learn about different hashing algorithms and hash collisions.
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Now, what if you need that one-way transformation to be two-way, but only for some selected people or systems?
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That's where encryption comes in.
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Imagine that you have a top-secret document on your computer.
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Anyone with access to your machine can open and read it.
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Encryption provides a way to transform your document or data into a form
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that can only be reversed by the use of a key.
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So whoever holds the key can access the data.
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If someone tries to open it without the key, they'll only see gibberish.
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Let's take a simple example of encryption, one that dates back over 2000 years.
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Julius Caesar used a basic encryption technique to protect messages of military importance.
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It's now famously known as Caesar's cipher, or the shift cipher.
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The idea?
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Shift each letter of the message by a fixed number of positions in the alphabet.
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say 3.
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So if we take the word hello and shift each letter by 3, H becomes K, E becomes H,
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L becomes O, the next L also becomes O, and O becomes R.
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That gives us KHOOR.
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To anyone who intercepts this message without knowing the shift, it looks like gibberish.
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But if the recipient knows that each letter was shifted by 3, they can just reverse the shift and decrypt the message back to hello.
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This kind of encryption is laughably easy to crack today, especially with modern computers.
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But it beautifully illustrates the core idea.
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The message is only readable to someone who has the key.
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Modern encryption is, let's just say, a bit more advanced.
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Instead of the letter shifts, we now use complex mathematical algorithms that are designed to be unbreakable by brute force, at least with current computers.
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Quantum computing might change that, but that's a topic for another video.
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Take WhatsApp, for example.
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Every message that you send is encrypted on your device before it even leaves your phone.
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If someone tries to snoop on the network, all they see is garbled nonsense.
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Only the person that you are messaging with the matching decryption key can turn that noise back into actual words.
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That's encryption, locking your data in such a way that only the right key can unlock it.
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To put it all together, encoding is like translating data into another format so computers can store or transmit it properly.
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It's not about secrecy, it's about structure and readability.
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And yes, it is completely reversible.
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Some examples are UTF-8, binary, hexadecimal, and base64.
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Hashing takes your data and runs it through a special formula to create a unique, fixed-length code.
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This code doesn't reveal the original data, and you cannot convert it back.
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That's why it's perfect for safely storing passwords or checking if a file has been tampered with.
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If the data changes, the hash changes too.
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Encryption is about confidentiality.
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It transforms your data into something unreadable, but only temporarily.
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Because unlike hashing, encryption is reversible if and only if you have the right key.
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That's how secure messaging apps like WhatsApp protect your conversations even from their own servers.

이 수업에 대하여

이번 수업에서는 데이터 인코딩, 해싱 및 암호화에 대한 개념을 탐구합니다. 이러한 기술들은 시스템의 보안과 데이터 전송에 필수적입니다. 여러분은 이러한 개념들이 어떻게 작동하는지, 그리고 일상 생활 속에서 어떻게 활용되는지를 배우게 됩니다. 이 내용을 통해 영어 회화 연습을 하며 기술적인 어휘와 표현을 익히는 데 도움을 받을 수 있습니다.

주요 어휘 및 표현

  • 인코딩 (Encoding): 데이터를 다른 형식으로 변환하는 과정
  • 해싱 (Hashing): 데이터를 복원할 수 없는 형태로 변환하는 과정
  • 암호화 (Encryption): 데이터를 특정 키로만 복원 가능하도록 변환하는 과정
  • 10진법 (Decimal): 숫자의 기본적인 표현 방식 중 하나
  • 16진법 (Hexadecimal): 데이터를 보다 간결하게 표현하는 데 사용되는 숫자 체계
  • RGB 값 (RGB values): 색상을 정의하기 위한 색상 모델
  • 키 (Key): 암호화된 데이터를 복원하기 위해 필요한 비밀스러운 값
  • 문서 (Document): 정보를 담고 있는 파일 또는 문서

연습 팁

이 비디오의 속도는 논리적이고 차분합니다. 영어 쉐도잉을 할 때, shadow speak 기법을 활용하여 화자의 발음을 따라 하세요. 처음에는 속도를 조금 줄여 발음을 정확히 익히고, 익숙해지면 원래 속도로 돌아가 보세요. 특정 어휘와 구문을 반복적으로 연습하며 인코딩, 해싱, 암호화와 같은 기술적 내용을 이해할 수 있는 기회를 창출해 보세요. 유튜브 영어 공부를 통해 이러한 주제에 대해 더 많은 예제를 탐구할 수 있으며, 흥미로운 회화 주제를 찾는 데 도움이 됩니다. 매일 영어 회화 연습을 통해 여러분의 언어 능력을 한층 더 향상시킬 수 있습니다.

쉐도잉이란? 영어 실력을 빠르게 키우는 과학적 방법

쉐도잉(Shadowing)은 원래 전문 통역사 훈련을 위해 개발된 언어 학습 기법으로, 다언어 학자인 Dr. Alexander Arguelles에 의해 대중화된 방법입니다. 핵심 원리는 간단하지만 매우 강력합니다: 원어민의 영어를 들으면서 1~2초의 짧은 지연으로 즉시 소리 내어 따라 말하는 것——마치 '그림자(shadow)'처럼 화자를 따라가는 것입니다. 문법 공부나 수동적인 청취와 달리, 쉐도잉은 뇌와 입 근육이 동시에 실시간으로 영어를 처리하고 재현하도록 훈련합니다. 연구에 따르면 이 방법은 발음 정확도, 억양, 리듬, 연음, 청취력, 말하기 유창성을 크게 향상시킵니다. IELTS 스피킹 준비와 자연스러운 영어 소통을 원하는 분들에게 특히 효과적입니다.