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daniyasiddiquiEditor’s Choice
Asked: 23/12/2025In: Technology

What are few-shot, one-shot, and zero-shot prompting?

few-shot, one-shot, and zero-shot pro ...

aiconceptschatgptfewshotllmsoneshotzeroshot
  1. daniyasiddiqui
    daniyasiddiqui Editor’s Choice
    Added an answer on 23/12/2025 at 12:18 pm

    1. Zero Shot Prompting: “Just Do It In zero-shot prompting, the AI will be provided with only the instruction and without any example at all. It is expected that the model will be completely dependent on its previous training knowledge. What it looks like: Simply tell the AI what you want. Example:Read more

    1. Zero Shot Prompting: “Just Do It

    In zero-shot prompting, the AI will be provided with only the instruction and without any example at all. It is expected that the model will be completely dependent on its previous training knowledge.

    What it looks like:

    • Simply tell the AI what you want.

    Example:

    • “Classify the email below as spam or not spam.”
    • There are no examples given. The computer uses what it already knows about spam patterns to make decisions.

    When zero-shot learning is most helpful:

    • “The task is simple or common” is one example of
    • The instruction is clear and unequivocal
    • You expect quick answers with small inputs.
    • Costs and latency are considerations
    • Limitations
    • Results can vary depending on the nature of the activity, especially when it is
    • Less reliable for domain-specific or complex tasks
    • “AI can interpret a task differently than its human author intended”

    In other words, zero-shot is like saying, “That’s the job, now go,” to a new employee.

    “2. One-Shot Prompting: “Here’s

    In one-shot prompting, you provide an example of what you would like the AI to produce. This example example helps to align the AI’s understanding of what you are trying to get across.

    What it looks like:

    step 1.

    you give one example. Then comes the actual question.

    • # Example
    • “Example
    • Email: You have won a free prize!
      → Spam

    This can be considered as:

    • “Your meeting is scheduled for tomorrow.”
    • This example alone helps to explain the structure and reasoning required.

    One-shot is good when:

    • There is more than one way of interpreting this task
    • You want to control format or tone
    • “The zero-shot results were inconsistent”
    • You want greater accuracy without a lengthy prompt

    Limitations

    • One Example May Still Not Include Edge Cases
    • Marginally higher usage than zero shot

    Step 2.

    • Whether quality is important or not also depends on how good an example is
      While quality is
    • One shot prompting is like: “Here’s one sample, do it like this.” Examples are: 1. When

    3. Few-Shot Prompting: “Learn from These

    Few-shot prompting involves several examples prior to the task at hand. Examples aid the AI in pattern recognition to enable pattern application.

    What it looks like:

    • There are various pairs of input and output that you provide, followed by asking the model to continue.

    Example:

    Example 1:

    • Review: ‘Excellent product!’ → Positive

    Example 2:

    • Explanation: ‘Very disappointing experience.’ → Negative

    Now classify:

    • “The service was okay, not great.”
    • The AI infers sentiment patterns based on the examples.

    When few-shot is best:

    • The problem is complex or domain-specific
    • There has to be strict precision in the output format being followed
    • You require more reliability and consistencies
    • You want the machine to trace a specific path of reasoning

    Limitations

    • Longer prompts are associated with higher costs as well as higher latency
    • There are too many examples to list them all out
    • Not scalable in the case of large or dynamic knowledge bases

    Few-shot prompting is analogous to teaching a person several example solutions before assigning them an exercise.

    How This Is Used in Real Systems

    In real-world AI applications:

    Zero-shot is common for chatbots on general questions

    One-shot: When formatting or tone issues are involved few shot is employed in business operations, assessments, and output. Frequently, the team begins with zero-shot learning and increases the data gradually until the outcomes are satisfactory.

    Key Takeaways

    Zero-shot example: “Do this task
    One-shot: “Here’s one example, do it like this.
    Few-shot: “Here are multiple examples follow the pattern.”

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daniyasiddiquiEditor’s Choice
Asked: 23/12/2025In: Technology

What are system prompts, user prompts, and guardrails?

prompts, user prompts, and guardrails

aiaiconceptsartificialintelligencechatgptllmspromptengineering
  1. daniyasiddiqui
    daniyasiddiqui Editor’s Choice
    Added an answer on 23/12/2025 at 11:52 am

    1. System The above discussed the role to be performed, the rules to be followed, and the personality of the AI. A system prompt is an invisible instruction given to the AI before any user interaction starts. It defines who the AI is, how it shall behave, and what are its boundaries. Direct end userRead more

    1. System The above discussed the role to be performed, the rules to be followed, and the personality of the AI.

    A system prompt is an invisible instruction given to the AI before any user interaction starts. It defines who the AI is, how it shall behave, and what are its boundaries. Direct end users don’t usually see system prompts; however, they strongly influence every response.

    What do system prompts:

    • Set the tone and style (formal, friendly, concise, explanatory)
    • Establish behavioral guidelines: do not give legal advice; do not create harmful content.
    • Prioritize accuracy, safety, or compliance

    Simple example:

    • “You are a healthcare assistant. Provide information that is factually correct and in a non-technical language. Do not diagnose or prescribe medical treatment.
    • In this way, from now on, the AI can color each response with this point of view, despite attempts by users to push it in another direction.

    Why System Prompts are important:

    • They ensure consistency in the various conversations.
    • They prevent misuse of the AI.
    • They align the AI with business, legal, or ethical requirements

    The responses of the AI without system prompts would be general and uncontrolled.

    2. User Prompts: The actual question or instructions

    A user prompt is the input provided by the user during the conversation. This is what most people think of when they “talk to AI.”

    What user prompts do:

    • Tell the AI what to do.
    • Provide background, context or constraints
    • Influence the depth and direction of the response.

    Examples of user prompts:

    • “Explain cloud computing in simple terms.”
    • Letter: Requesting two days leave.
    • Overview: Summarize this report in 200 words.

    User prompts may be:

    • Short and to the point.
    • Elaborate and organized
    • Explanatory or chatty

    Why user prompts matter:

    • Clear prompts produce better outputs.
    • Poorly phrased questions are mostly the reason for getting unclear or incomplete answers.
    • That same AI, depending on how the prompt is framed, can give very different responses.

    That is why prompt clarity is often more important than the technical complexity of a task.

    3. Guardrails: Safety, Control, and Compliance Mechanisms

    Guardrails are the safety mechanisms that control what the AI can and cannot do, regardless of the system or user prompts. They act like policy enforcement layers.

    What guardrails do:

    • Prevent harmful, illegal or unethical answers
    • Enforce compliance according to regulatory and organizational requirements.
    • Block or filter sensitive data exposure
    • Detection and prevention of abuse, such as prompt injection attacks

    Examples of guardrails in practice:

    • Refusing to generate hate speech or explicit content
    • Avoid financial or medical advice without disclaimers
    • Preventing access to confidential or personal data.

    Stopping the AI from following malicious instructions even when insisted upon by the user.

    Types of guardrails:

    • Topic guardrails: what topics are in and what are out
    • Behavioural guardrails: How the AI responds
    • Security guardrails can include anything from preventing manipulation to blocking data leaks.
    • Compliance guardrails: GDPR, DPDP Act, HIPAA, etc.

    Guardrails work in real-time and continuously override system and user prompts when necessary.

    How They Work Together: Real-World View

    You can think of the interaction like this:

    • System prompt → Sets career position and guidelines.
    • User prompt → Provides the task
    • Guardrails → Ensure nothing unsafe or non-compliant happens

    Practical example:

    • System prompt: “You are a bank customer support assistant.
    • User prompt: “Tell me how to bypass KYC.”
    • guardrails Block the request and respond with a safe alternative

    Even if the user directly requests it, guardrails prevent the AI from carrying out the action.

    Why This Matters in Real Applications

    These three layers are very important in enterprise, government, and healthcare systems because:

    • They ensure trustworthy AI
    • They reduce legal and reputational risk.
    • They enhance the user experience by relevance and safety of response.

    They allow organizations to customize the behavior of AI without retraining models.

    Summary in Lamen Terms

    • System prompts are what define who the AI is, and how it shall behave.
    • User prompts define what the AI is asked to do.

    Guardrails provide clear boundaries within which the AI will keep it safe, ethical, and compliant. Working together, they transform a powerful, general AI model into a controlled, reliable, and responsible digital assistant fit for real-world application.

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daniyasiddiquiEditor’s Choice
Asked: 17/09/2025In: Education, News, Technology

What counts as cheating vs legitimate assistance when students use tools like ChatGPT?

cheating vs legitimate assistance

academichonestychatgptcheatinglegitimateassistancestudentethics
  1. daniyasiddiqui
    daniyasiddiqui Editor’s Choice
    Added an answer on 17/09/2025 at 2:08 pm

     Why the Line Blurs Before, "cheating" was simpler to define: copying answers, plagiarizing a work, sneaking illegitimate notes onto a test. But with computer AI, it's getting cloudy. A student will prompt ChatGPT with an essay question, receive a good outline, make some minor adaptations, and submiRead more

     Why the Line Blurs

    Before, “cheating” was simpler to define: copying answers, plagiarizing a work, sneaking illegitimate notes onto a test. But with computer AI, it’s getting cloudy. A student will prompt ChatGPT with an essay question, receive a good outline, make some minor adaptations, and submit it. It looks on paper as though it were their own work. But is it? Did they read, think, and write—or did the machine do it all?

    That’s the magic of it: AI can be a calculator, a tutor, or a ghostwriter. Which role it fills is left to what a student does with it.

    When AI Seemingly Feels Like Actual Assistance

    • Brainstorming ideas: Allowing ChatGPT to plant ideas when stuck is like asking a friend for ideas. The student still needs to decide where to go.
    • Dissolve complicated concepts: When a physics or history concept is complicated to understand, having AI dissolve it for them into easier terms is tutoring, not cheating.
    • Practice skills: Students can practice questioning themselves with AI, restating notes, or simulating debates. It’s active learning, not cheating.
    • Polishing words: Requesting AI to proofread for grammar or make language more fluent is no different from spellcheck and Grammarly. The student’s thoughts in the text are still his or hers.

    AI is a helper system here. The student is still the only author of his or her thoughts, logic, and conclusions.

     When AI Blurs into Cheating

    Plagiarizing whole assignments: If the entirety or almost the entire assignment is done by AI with little to no contribution from a human, then the student is really skipping the learning process entirely.

    • Making answers on tests/quizzes: That is no different from cheating with illicit notes—it sabotages the test assumption.
    • Disguising the voice of AI as one’s own: When a student uses AI to compose “in their own voice” and presents it as original work, it’s really plagiarism—whether they copied a human or not.
    • Too much reliance on automation: If AI does all the thinking all the time, the student isn’t working on problem-solving, creativity, or critical thinking—the things learning is supposed to develop.

    Here, AI isn’t an assistant. It’s a substitute. And that negates the purpose of learning.

    Why Context Matters

    Assignments vs. learning objectives: If the assignment is thinking practice, then AI-written essays are cheating. If it’s clear communication, then working with AI as a language tool is okay.

    • Teachers’ expectations: Teachers might explicitly invite AI use as a research aid or study aid. Others do not. Students need to honor that boundary, even if they themselves don’t care.
    • Skill-building phase: A 12-year-old learning to build arguments likely shouldn’t be offloading writing to computer code. A graduate student is using AI to obtain citations, but then doing so might involve using common sense with tools.

    The Human Side

    Finally, the question is not “Is AI cheating?” but “Am I still learning?” Discriminating students who use ChatGPT can enhance understanding, save time, and feel in the process. Those who allow it to do their thinking for them may exhaust their own potential.

    The gray area will always be there. That’s why integrity is important: honesty in the use of AI, and why. Learning is optimal when teachers and students have trust, and the attention remains on development rather than grades.

    AI is excellent support when it augments your learning, but it cheats when it substitutes.

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