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AI 플랫폼 디렉터리 Model Matrix 비교 어떤 AI를 사용해야 하나요? 연동 가이드 OpenClaw 설정 Prompt Fit
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무료 계정을 만들어 프로필을 구축하세요. 기본적으로 비공개입니다. 직접 공개하지 않는 한 아무것도 공유되지 않습니다.

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다크 모드

🧭 가이드 보기
프롬프트, 시스템 지침, 컨텍스트 윈도우, 토큰이 처음이신가요? 모든 용어를 쉬운 설명으로 탐색하면서 익힐 수 있습니다. 동일한 페이지에 도움말이 내장되어 있습니다.

⚡ 전문가 보기
프롬프트 작동 방식은 이미 알고 계시죠. 군더더기 없이, 핵심만 간결하게. 기본 보기입니다.

인터페이스 언어

The Working Prompter · 섹션 2/5, Showing Beats Telling

학습 목표
다음을 탭하거나(또는 방향키를 사용하여) 한 번에 하나씩 이동하세요. 제한 시간 없음, 5문제 퀴즈는 마지막에 있습니다. 상단의 ← 로 언제든지 나갈 수 있으며, 진행 상황은 저장됩니다.

An example is an instruction in disguise

Course 1 said it in passing; this section makes it a tool. An example in a prompt is not an illustration. It is a pattern the model will continue, usually more faithfully than it follows a description. 'Reply like this:' plus one real support reply you loved outperforms three sentences of adjectives about warmth and brevity.

The standard shape is a labeled input → output pair: 'Customer message: … / Our reply: …'. One pair teaches the transformation; the labels teach where the pattern starts and stops. The technique has a name, few-shot prompting but the habit matters more than the name: when you can show it, show it.

One to three good ones beat ten mediocre ones

Examples are potent, and that cuts both ways: the model imitates everything about them, including the flaws you didn't notice. A mediocre example actively teaches mediocrity. Quality beats quantity, one to three strong examples usually cover a task, and past that you are adding weight, not signal.

Choose examples that show the hard part. If your real inputs range from angry customers to billing confusion, don't paste three easy thank-you notes, show the edge you most need handled well. Good examples vary along the same dimension your real inputs vary.

The example IS the format spec

The model treats your example's format as part of the pattern. If the example has a subject line, outputs grow subject lines. If it runs four sentences, expect four-ish sentences. So build the example in exactly the shape you want back, same headers, same length class, same markup.

The trap is instructions that argue with examples. You write 'keep replies under 100 words' and paste a 300-word example; now the rule and the pattern disagree, and outputs drift long or wobble between the two. When you spot that conflict, fix the example. It usually speaks louder than the rule.

Label your counter-examples

Sometimes the fastest way to define good is to show the bad thing you keep getting. That is safe only with labels: 'Not like this: "I sincerely apologize for any inconvenience…", why: it opens on apology instead of the fix.' Unlabeled, a bad example is just another pattern, and the model may continue it.

The strongest setup bounds the target from both sides: one 'Like this' example and one labeled 'Not like this' with the reason it fails. The reason matters. It tells the model which feature of the bad example to avoid, instead of leaving it to guess.

미니 퀴즈, Showing Beats Telling

5 질문은 매 시도마다 문제 은행에서 새로 출제됩니다. 합격 기준 60%. 재시도 횟수 제한 없음.

다음 섹션: Structure at Scale →
레슨 전체 텍스트 읽기

1. An example is an instruction in disguise

Course 1 said it in passing; this section makes it a tool. An example in a prompt is not an illustration. It is a pattern the model will continue, usually more faithfully than it follows a description. 'Reply like this:' plus one real support reply you loved outperforms three sentences of adjectives about warmth and brevity.

The standard shape is a labeled input → output pair: 'Customer message: … / Our reply: …'. One pair teaches the transformation; the labels teach where the pattern starts and stops. The technique has a name, few-shot prompting but the habit matters more than the name: when you can show it, show it.

2. One to three good ones beat ten mediocre ones

Examples are potent, and that cuts both ways: the model imitates everything about them, including the flaws you didn't notice. A mediocre example actively teaches mediocrity. Quality beats quantity, one to three strong examples usually cover a task, and past that you are adding weight, not signal.

Choose examples that show the hard part. If your real inputs range from angry customers to billing confusion, don't paste three easy thank-you notes, show the edge you most need handled well. Good examples vary along the same dimension your real inputs vary.

3. The example IS the format spec

The model treats your example's format as part of the pattern. If the example has a subject line, outputs grow subject lines. If it runs four sentences, expect four-ish sentences. So build the example in exactly the shape you want back, same headers, same length class, same markup.

The trap is instructions that argue with examples. You write 'keep replies under 100 words' and paste a 300-word example; now the rule and the pattern disagree, and outputs drift long or wobble between the two. When you spot that conflict, fix the example. It usually speaks louder than the rule.

4. Label your counter-examples

Sometimes the fastest way to define good is to show the bad thing you keep getting. That is safe only with labels: 'Not like this: "I sincerely apologize for any inconvenience…", why: it opens on apology instead of the fix.' Unlabeled, a bad example is just another pattern, and the model may continue it.

The strongest setup bounds the target from both sides: one 'Like this' example and one labeled 'Not like this' with the reason it fails. The reason matters. It tells the model which feature of the bad example to avoid, instead of leaving it to guess.

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