{"id":658810,"date":"2026-10-08T14:03:05","date_gmt":"2026-10-08T12:03:05","guid":{"rendered":"https://aivancity.ai/blog/?p=658810"},"modified":"2026-10-08T14:10:06","modified_gmt":"2026-10-08T12:10:06","slug":"prompts-educatifs-et-ia-generative-que-fait-reellement-un-prompt-sur-le-plan-pedagogique","status":"publish","type":"post","link":"https://aivancity.ai/blog/prompts-educatifs-et-ia-generative-que-fait-reellement-un-prompt-sur-le-plan-pedagogique/","title":{"rendered":"Prompts éducatifs et IA générative : que fait réellement un prompt sur le plan pédagogique ?"},"content":{"rendered":"\n<div style=\"\n  margin:20px 0 30px;\n  padding:22px 26px;\n  background:#171D45;\n  border-top:3px solid #B18418;\n  font-family:inherit;\n\">\n  <p style=\"\n    margin:0 0 16px;\n    color:#DEC078;\n    font-size:12px;\n    line-height:1.4;\n    font-weight:700;\n    letter-spacing:1.5px;\n    text-transform:uppercase;\n  \">\n    By\n  </p>\n\n  <div style=\"display:flex; flex-wrap:wrap; gap:20px 36px;\">\n\n    <div style=\"flex:1 1 280px; min-width:0;\">\n      <p style=\"margin:0 0 7px; font-size:18px; line-height:1.4;\">\n        <a href=\"https://aivancity.ai/en/faculte/dr-antoun-yaacoub\" style=\"color:#FFFFFF; font-weight:800; text-decoration:none;\">\n          Dr. Antoun Yaacoub\n        </a>\n      </p>\n      <p style=\"margin:0; color:#E0E4F0; font-size:14px; line-height:1.6;\">\n        Assistant Professor at aivancity<br/>\n        Director of the MSc in Generative and Agent-Based Artificial Intelligence\n      </p>\n    </div>\n\n    <div style=\"flex:1 1 280px; min-width:0;\">\n      <p style=\"\n        margin:0 0 7px;\n        color:#FFFFFF;\n        font-size:18px;\n        line-height:1.4;\n        font-weight:800;\n      \">\n        Zainab Assaghir\n      </p>\n      <p style=\"margin:0; color:#E0E4F0; font-size:14px; line-height:1.6;\">\n        University Professor<br/>        Faculty of Sciences, Lebanese University\n      </p>\n    </div>\n\n  </div>\n</div>\n\n\n\n<div style=\"\n  margin: 28px 0;\n  padding: 26px 30px;\n  background: linear-gradient(135deg, #f4eee5 0%, #ffffff 100%);\n  border-left: 6px solid #986e13;\n  border-radius: 0 14px 14px 0;\n  box-shadow: 0 5px 18px rgba(59, 75, 132, 0.10);\n\">\n  <p style=\"\n    margin: 0;\n    color: #26345f;\n    font-family: Arial, sans-serif;\n    font-size: 18px;\n    line-height: 1.75;\n    font-weight: 400;\n    text-align: justify;\n  \">\n    <strong>Libraries of educational prompts</strong>\n    are proliferating, but they describe what we ask\n <strong>   generative AI</strong> to produce, rarely the\n <strong>   educational function</strong> of that request.\n    Our study proposes a\n <strong style=\"color: #3358ff;\">   taxonomy of five pedagogical functions of prompts</strong>\n    and shows that it can be reliably applied by\n <strong>   two evaluators</strong>. It also shows that it is\n    difficult to deduce, based solely on the text of a prompt,\n <strong style=\"color: #986e13;\">   the level of cognitive complexity\n    it will require.</strong>\n  </p>\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Generative artificial intelligence is becoming increasingly integrated into educational practices, to the point that UNESCO and the OECD have now developed recommendation frameworks dedicated to it (Miao and Holmes, 2023; OECD, 2026). Teachers use it to prepare lessons, design activities, or create teaching materials; students use it to get explanations, practice, or receive feedback on their work. In all these uses, interaction occurs via a prompt—that is, the written instruction given to a generative AI model.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Behind this diversity of uses lies a more fundamental question: <strong>What role does a prompt actually play in education?</strong></p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Does it simply ask the AI to generate an answer, does it gradually guide the learner, does it require the learner to provide reasoning, or does it encourage the learner to evaluate their own reasoning?</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Our study <em>, “From Engineering to Pedagogy: A Functional Taxonomy for Teacher and Student-Facing Educational Prompts</em>,” published in the proceedings of the EC-TEL 2026 conference (Yaacoub and Assaghir, 2027), addresses this question. In it, we propose classifying educational prompts not solely based on the task they require students to perform, but rather based on <strong>the pedagogical function they seek to fulfill</strong>.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">After calibration, two raters who applied this classification to 50 previously unseen prompts achieved a high level of agreement (88%, κ = 0.80). However, <strong>the text of a prompt, taken in isolation, does not allow for a reliable determination of the level of cognitive complexity it will actually require</strong>. The corpora, coding grid, and annotation workbook are available as open access on the OSF platform.</p>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    01\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nWhy Look Beyond \"Prompt Engineering\"?\n  </h2>\n\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Libraries of educational prompts are growing rapidly. Recent literature reviews highlight the rise of large language models in education, the diversity of prompt-writing practices, and the lack of a shared analytical framework (Chen et al., 2024; Shi et al., 2026). These libraries are most often organized around the task at hand: preparing a lesson, generating a quiz, creating an assessment rubric, or explaining a concept.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">This organization is useful in practice, but it provides little insight into the intended pedagogical mechanism and makes it difficult to compare prompts across different contexts.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Two prompts that appear to ask for the same task can, in fact, organize the cognitive work very differently.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">One provides an answer directly; another guides the user step by step; a third asks the user to explain their reasoning, consider a counterargument, or evaluate their own work.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The question, therefore, is no longer just <strong>what we ask AI to produce</strong>, but <strong>how the prompt structures the cognitive activity of the teacher or learner</strong>.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">This distinction is important in education, where the quality of an interaction with an AI depends not only on the quality of the response it generates, but also on what the user is prompted to do on their own.</p>\n\n\n\n<p><style>\n.aiv4-pill{display:inline-flex;align-items:center;gap:4px;background:rgba(255,255,255,0.12);border:1px solid rgba(255,255,255,0.2);border-radius:20px;padding:4px 12px;font-size:11.5px;color:rgba(255,255,255,0.85);white-space:nowrap;font-family:-apple-system,BlinkMacSystemFont,'Segoe UI',Roboto,sans-serif;}\n.aiv4-pill svg{width:11px;height:11px;flex-shrink:0;stroke:#fff;}\n.aiv4-cta:hover{background:#fff !important;color:#232641 !important;}\n@media(max-width:640px){\n  .aiv4-inner{padding:28px 20px 24px !important;}\n  .aiv4-logo{width:140px !important;}\n  .aiv4-title{font-size:21px !important;}\n  .aiv4-cta{width:100% !important;text-align:center !important;}\n}\n</style>\n</p><div style=\"border-radius:16px;overflow:hidden;margin:40px 0;position:relative;font-family:-apple-system,BlinkMacSystemFont,'Segoe UI',Roboto,sans-serif;min-height:280px;\">\n  <img decoding=\"async\" src=\"https://aivancity.ai/en/sites/default/files/2025-11/banniere-ia-managers.webp\" alt=\"\" style=\"position:absolute;inset:0;width:100%;height:100%;object-fit:cover;object-position:center center;display:block;\">\n  <div style=\"position:absolute;inset:0;background:linear-gradient(105deg,rgba(35,38,65,0.97) 0%,rgba(35,38,65,0.88) 45%,rgba(35,38,65,0.35) 100%);\"></div>\n  <div class=\"aiv4-inner\" style=\"position:relative;z-index:1;padding:32px 40px 30px;display:flex;flex-direction:column;gap:18px;max-width:640px;box-sizing:border-box;\">\n    <div style=\"display:flex;align-items:center;justify-content:space-between;flex-wrap:wrap;gap:10px;\">\n      <img decoding=\"async\" class=\"aiv4-logo\" src=\"https://aivancity.ai/en/blog/wp-content/uploads/2026/05/BLANC-FRANCAIS-COMPLET.png\" alt=\"aivancity\" style=\"width:160px;height:auto;display:block;opacity:0.95;\">\n      <span style=\"display:inline-flex;align-items:center;gap:5px;border-radius:6px;padding:4px 10px;font-size:11px;font-weight:700;letter-spacing:0.05em;text-transform:uppercase;background:rgba(57,134,225,0.2);border:1px solid rgba(57,134,225,0.5);color:#3986e1;\">\n        ● RS6787 Certification\n      </span>\n    </div>\n    <div style=\"display:flex;flex-direction:column;gap:8px;\">\n      <p style=\"margin:0;font-size:11.5px;font-weight:600;color:rgba(255,255,255,0.45);text-transform:uppercase;letter-spacing:0.1em;\">Executive Training</p>\n      <h2 class=\"aiv4-title\" style=\"margin:0;font-size:26px;font-weight:700;color:#fff;line-height:1.2;\">AI & Data Science<br/><span style=\"color:#3986e1;\">s for Managers</span></h2>\n      <p style=\"margin:0;font-size:13px;color:rgba(255,255,255,0.6);line-height:1.6;max-width:480px;\">Integrate AI into your business strategy. A 360° approach—Technology, Business, and Ethics—designed for decision-makers. Prerequisites: 5 years of managerial experience.</p>\n    </div>\n    <div style=\"display:flex;flex-wrap:wrap;gap:7px;align-items:center;\">\n      <span class=\"aiv4-pill\"><svg viewBox=\"0 0 24 24\" fill=\"none\" stroke-width=\"2\"><circle cx=\"12\" cy=\"12\" r=\"10\"></circle><polyline points=\"12 6 12 12 16 14\"></polyline></svg>3 days</span>\n      <span class=\"aiv4-pill\"><svg viewBox=\"0 0 24 24\" fill=\"none\" stroke-width=\"2\"><polyline points=\"20 6 9 17 4 12\"></polyline></svg>Eligible for CPF funding — €1,800 (excluding tax)</span>\n      <span class=\"aiv4-pill\"><svg viewBox=\"0 0 24 24\" fill=\"none\" stroke-width=\"2\"><path d=\"M12 2C8.13 2 5 5.13 5 9c0 5.25 7 13 7 13s7-7.75 7-13c0-3.87-3.13-7-7-7z\"></path><circle cx=\"12\" cy=\"9\" r=\"2.5\"></circle></svg>Paris-Villejuif &amp; Nice</span>\n    </div>\n    <a class=\"aiv4-cta\" href=\"https://aivancity.ai/en/formations-professionnel/ia-et-data-science-pour-les-managers\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"display:inline-block;width:fit-content;background:rgba(255,255,255,0.12) !important;color:#fff !important;font-size:13.5px;font-weight:600;padding:11px 26px;border-radius:8px;text-decoration:none !important;white-space:nowrap;border:1px solid rgba(255,255,255,0.35);\">\n      Learn more about the program →\n    </a>\n  </div>\n</div><p></p>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    02\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nFive Pedagogical Functions for Analyzing Prompts\n  </h2>\n\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Our taxonomy is based on the theory of scaffolding (Wood, Bruner, and Ross, 1976) and on research on self-regulated learning (Zimmerman, 2002). It distinguishes five functions, and each prompt is assigned a single code: that of its dominant function. The English terms listed in parentheses are those used in the published taxonomy.</p>\n\n\n\n<style>\n  .pedagogie-ia-liste {\n    display: grid;\n    gap: 18px;\n    margin: 28px 0;\n  }\n\n  .pedagogie-ia-liste .pedagogie-ia-ligne {\n    display: grid;\n    grid-template-columns: 94px minmax(0, 1fr);\n    align-items: start;\n    column-gap: 22px;\n    padding: 24px 28px;\n    border-left: 3px solid #b18418;\n    background: #f8f7f4;\n  }\n\n  .pedagogie-ia-liste .pedagogie-ia-picto {\n    display: flex;\n    align-items: center;\n    justify-content: center;\n    width: 94px;\n    height: 94px;\n    box-sizing: border-box;\n    border: 1px solid #dce0ea;\n    background: #ffffff;\n    color: #a47719;\n  }\n\n  .pedagogie-ia-liste .pedagogie-ia-picto svg {\n    display: block;\n    width: 42px;\n    height: 42px;\n  }\n\n  .pedagogie-ia-liste .pedagogie-ia-contenu {\n    min-width: 0;\n    padding: 0;\n  }\n\n  .pedagogie-ia-liste .pedagogie-ia-contenu h3 {\n    display: block !important;\n    min-height: 0 !important;\n    margin: 0 0 10px !important;\n    padding: 0 !important;\n    color: #171d45;\n    font-size: 21px;\n    font-weight: 800;\n    line-height: 1.3;\n  }\n\n  .pedagogie-ia-liste .pedagogie-ia-contenu p {\n    margin: 0 0 10px !important;\n    padding: 0 !important;\n    color: #30394f;\n    font-size: 17px;\n    line-height: 1.65;\n    text-align: justify !important;\n    hyphens: auto;\n  }\n\n  .pedagogie-ia-liste .pedagogie-ia-contenu p:last-child {\n    margin-bottom: 0 !important;\n  }\n\n  .pedagogie-ia-liste .pedagogie-ia-contenu strong {\n    color: #171d45;\n  }\n\n  @media (max-width: 600px) {\n    .pedagogie-ia-liste .pedagogie-ia-ligne {\n      grid-template-columns: 62px minmax(0, 1fr);\n      column-gap: 15px;\n      padding: 20px 16px;\n    }\n\n    .pedagogie-ia-liste .pedagogie-ia-picto {\n      width: 62px;\n      height: 62px;\n    }\n\n    .pedagogie-ia-liste .pedagogie-ia-picto svg {\n      width: 31px;\n      height: 31px;\n    }\n\n    .pedagogie-ia-liste .pedagogie-ia-contenu h3 {\n      font-size: 18px;\n    }\n\n    .pedagogie-ia-liste .pedagogie-ia-contenu p {\n      font-size: 16px;\n    }\n  }\n</style>\n\n<div class=\"pedagogie-ia-liste\" lang=\"fr\">\n\n  <!-- 1. ÉTAYAGE -->\n  <div class=\"pedagogie-ia-ligne\">\n    <div class=\"pedagogie-ia-picto\">\n      <svg viewBox=\"0 0 48 48\" fill=\"none\" stroke=\"currentColor\" stroke-width=\"2.2\" stroke-linecap=\"round\" stroke-linejoin=\"round\" aria-hidden=\"true\">\n        <path d=\"M6 41h12V30h11V19h12\"></path>\n        <path d=\"M8 24 30 6M20 6h10v10\"></path>\n      </svg>\n    </div>\n    <div class=\"pedagogie-ia-contenu\">\n      <h3>1. Scaffolding: guiding without thinking for the learner</h3>\n\n      <p>The \" <strong>Support</strong> \" category includes prompts that offer steps, templates, cues, or forms of gradual support.</p>\n\n      <p>The idea is to provide enough structure to help the user move forward, while still leaving the user responsible for the core reasoning.</p>\n\n      <p>For example, one prompt in our corpus asks the AI to create an educational simulation led by a “game master” who structures the flow of the activity.</p>\n\n      <p>Distinguishing this category from others requires precision. A series of questions is not automatically Socratic: if the questions are used primarily to gather the information needed to complete a task, they fall under the category of scaffolding. This is one of the decision rules established during calibration.</p>\n    </div>\n  </div>\n\n  <!-- 2. QUESTIONNEMENT SOCRATIQUE -->\n  <div class=\"pedagogie-ia-ligne\">\n    <div class=\"pedagogie-ia-picto\">\n      <svg viewBox=\"0 0 48 48\" fill=\"none\" stroke=\"currentColor\" stroke-width=\"2.2\" stroke-linecap=\"round\" stroke-linejoin=\"round\" aria-hidden=\"true\">\n        <path d=\"M9 7h30a3 3 0 0 1 3 3v23a3 3 0 0 1-3 3H20L9 43v-7a3 3 0 0 1-3-3V10a3 3 0 0 1 3-3Z\"></path>\n        <path d=\"M19 17a5 5 0 1 1 8 4c-2 1-3 2-3 5\"></path>\n        <circle cx=\"24\" cy=\"30\" r=\"1\" fill=\"currentColor\" stroke=\"none\"></circle>\n      </svg>\n    </div>\n    <div class=\"pedagogie-ia-contenu\">\n      <h3>2. Socratic questioning: asking questions rather than giving the answer</h3>\n\n      <p>In this category, the AI is explicitly instructed to ask questions that bring out, clarify, or challenge the user’s reasoning, and to record the direct response.</p>\n\n      <p>The goal is not to gradually gather information, but to use questioning to stimulate critical thinking.</p>\n\n      <p>This definition avoids labeling any dialogue in which the AI asks several questions in succession as “Socratic.”</p>\n    </div>\n  </div>\n\n  <!-- 3. CONTRAINTE COGNITIVE -->\n  <div class=\"pedagogie-ia-ligne\">\n    <div class=\"pedagogie-ia-picto\">\n      <svg viewBox=\"0 0 48 48\" fill=\"none\" stroke=\"currentColor\" stroke-width=\"2.2\" stroke-linecap=\"round\" stroke-linejoin=\"round\" aria-hidden=\"true\">\n        <rect x=\"8\" y=\"6\" width=\"32\" height=\"36\" rx=\"2\"></rect>\n        <path d=\"m14 16 2 2 4-4M25 16h9\"></path>\n        <path d=\"m14 25 2 2 4-4M25 25h9\"></path>\n        <path d=\"m14 34 2 2 4-4M25 34h9\"></path>\n      </svg>\n    </div>\n    <div class=\"pedagogie-ia-contenu\">\n      <h3>3. Cognitive Enforcement: imposing tasks that require deeper thinking</h3>\n\n      <p>This category refers to prompts that introduce constraints requiring the user to engage in certain cognitive processes: critical thinking, synthesis, counterargumentation, analysis of trade-offs, or evaluation using a rubric.</p>\n\n      <p>The challenge is to go beyond merely carrying out a task in a superficial way.</p>\n\n      <p>Simply asking the AI to generate a text in several steps is not enough; asking it to examine a counterargument, compare options based on explicit criteria, or critique a piece of work using a rubric adds an additional constraint. One prompt in our corpus, for example, asks the AI to critique a lesson plan using a rubric based on Universal Design for Learning (UDL).</p>\n    </div>\n  </div>\n\n  <!-- 4. MÉTACOGNITION -->\n  <div class=\"pedagogie-ia-ligne\">\n    <div class=\"pedagogie-ia-picto\">\n      <svg viewBox=\"0 0 48 48\" fill=\"none\" stroke=\"currentColor\" stroke-width=\"2.2\" stroke-linecap=\"round\" stroke-linejoin=\"round\" aria-hidden=\"true\">\n        <path d=\"M38 16a16 16 0 0 0-27-4\"></path>\n        <path d=\"M10 5v8h8\"></path>\n        <path d=\"M10 32a16 16 0 0 0 27 4\"></path>\n        <path d=\"M38 43v-8h-8\"></path>\n        <circle cx=\"24\" cy=\"21\" r=\"4\"></circle>\n        <path d=\"M17 31v-2a7 7 0 0 1 14 0v2\"></path>\n      </svg>\n    </div>\n    <div class=\"pedagogie-ia-contenu\">\n      <h3>4. Metacognition: observing one's own reasoning</h3>\n\n      <p>This feature applies to prompts that explicitly guide users through planning, monitoring, self-assessment, error analysis, or review based on defined criteria.</p>\n\n      <p>The presence of reflexive vocabulary is not enough: learners must be asked to take concrete steps to check their own work—for example, by using a checklist to review their work during a tutoring session.</p>\n\n      <p>This category refers to the self-regulatory mechanisms of learning: planning one's activities, monitoring one's progress, and evaluating the results achieved (Zimmerman, 2002).</p>\n    </div>\n  </div>\n\n  <!-- 5. AUTRE / INDÉTERMINÉ -->\n  <div class=\"pedagogie-ia-ligne\">\n    <div class=\"pedagogie-ia-picto\">\n      <svg viewBox=\"0 0 48 48\" fill=\"none\" stroke=\"currentColor\" stroke-width=\"2.2\" stroke-linecap=\"round\" stroke-linejoin=\"round\" aria-hidden=\"true\">\n        <path d=\"M29 5H10v38h28V14L29 5Z\"></path>\n        <path d=\"M29 5v9h9\"></path>\n        <path d=\"M17 22h14M17 29h14M17 36h8\"></path>\n      </svg>\n    </div>\n    <div class=\"pedagogie-ia-contenu\">\n      <h3>5. Other/Unclear: producing content without an identifiable instructional protocol</h3>\n\n      <p>This last category mainly includes prompts that request the generation of an artifact—such as an assessment rubric or course materials—without a specific teaching protocol.</p>\n\n      <p>However, the creation of a teaching resource is not automatically classified in this category: if the prompt includes a teaching sequence, an investigative process, or another identifiable function, that function takes precedence.</p>\n    </div>\n  </div>\n\n</div>\n\n\n\n<figure class=\"wp-block-image size-full\"><img loading=\"lazy\" decoding=\"async\" width=\"939\" height=\"697\" src=\"https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image.png\" alt=\"\" class=\"wp-image-658813\" srcset=\"https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image.png 939w, https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-300x223.png 300w, https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-360x267.png 360w\" sizes=\"auto, (max-width: 939px) 100vw, 939px\"></figure>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    03\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nHow was this taxonomy tested?\n  </h2>\n\n</div>\n\n\n\n<p class=\"wp-block-paragraph\">The study was conducted in two phases.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">An initial development corpus of <strong>50 prompts in English</strong> was compiled from four public libraries consulted on February 9, 2026: More Useful Things (11 prompts), Wharton Interactive (6), Microsoft prompts-for-edu (6), and AI for Education (27). The prompts were selected to cover the full range of categories offered by each repository.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">This corpus reflected a characteristic of today's public libraries: it was overwhelmingly intended for teachers (<strong>46 out of 50 prompts</strong>).</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The two authors of the study, who are researchers in educational technology, independently coded each prompt along two dimensions.</p>\n\n\n\n<p class=\"wp-block-paragraph\">The first was its primary educational function.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The second was based on the <strong>SOLO (Structure of the Observed Learning Outcome)</strong> taxonomy, which classifies the complexity of a response into successive levels: unstructured, multistructured, relational, and extended abstract (Biggs and Collis, 1982; Yaacoub et al., 2025). It was used here on an exploratory basis to determine whether the targeted level of cognitive complexity could be inferred from the text of a prompt alone.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">To measure inter-rater reliability, the study uses the percentage of agreement and Cohen’s kappa (κ). The latter estimates the agreement between two raters by accounting for the portion of agreement that could occur by chance. According to the most common interpretation scale, a κ between 0.41 and 0.60 corresponds to moderate agreement, between 0.61 and 0.80 to substantial agreement, and above that to near-perfect agreement (Landis and Koch, 1977). These thresholds are arbitrary and vary depending on the author (McHugh, 2012).</p>\n\n\n\n<p><style>\n.aiv3-pill{display:flex;align-items:center;gap:4px;background:rgba(255,255,255,0.07);border:1px solid rgba(255,255,255,0.11);border-radius:20px;padding:4px 10px;font-size:11.5px;color:rgba(255,255,255,0.72);white-space:nowrap;font-family:-apple-system,BlinkMacSystemFont,'Segoe UI',Roboto,sans-serif;}\n.aiv3-pill svg{width:11px;height:11px;flex-shrink:0;stroke:#3986e1;}\n.aiv3-cta:hover{background:#2f72c8 !important;}\n.aiv3-badge-inner{display:inline-flex;align-items:center;gap:5px;background:rgba(57,134,225,0.12);border:1px solid rgba(57,134,225,0.35);border-radius:20px;padding:3px 10px;}\n.aiv3-badge-dot{width:5px;height:5px;border-radius:50%;background:#3986e1;display:inline-block;flex-shrink:0;}\n@media(max-width:640px){\n  .aiv3-responsive{flex-direction:column-reverse !important;}\n  .aiv3-img-wrap{width:100% !important;height:180px !important;}\n  .aiv3-img-overlay{background:linear-gradient(to top,rgba(35,38,65,0) 30%,rgba(35,38,65,1) 100%) !important;}\n  .aiv3-body-wrap{padding:18px 20px 24px !important;}\n  .aiv3-logo-img{width:150px !important;}\n  .aiv3-cta{width:100% !important;text-align:center !important;display:block !important;}\n  .aiv3-badge-hide{display:none !important;}\n}\n</style>\n</p><div style=\"background:#232641;border-radius:16px;overflow:hidden;margin:40px 0;box-sizing:border-box;font-family:-apple-system,BlinkMacSystemFont,'Segoe UI',Roboto,sans-serif;\">\n  <div class=\"aiv3-responsive\" style=\"display:flex !important;flex-direction:row !important;min-height:240px;\">\n    <div class=\"aiv3-body-wrap\" style=\"flex:1;padding:26px 24px 26px 32px;display:flex !important;flex-direction:column !important;justify-content:space-between;gap:14px;position:relative;z-index:1;box-sizing:border-box;\">\n      <img decoding=\"async\" class=\"aiv3-logo-img\" src=\"https://aivancity.ai/en/blog/wp-content/uploads/2026/05/BLANC-FRANCAIS-COMPLET.png\" alt=\"aivancity\" style=\"width:170px !important;height:auto !important;display:block !important;max-width:170px !important;opacity:0.95;\">\n      <div style=\"display:flex;flex-direction:column;gap:10px;flex:1;justify-content:center;\">\n        <h2 style=\"font-size:22px;font-weight:700;color:#fff;line-height:1.25;margin:0;\">Master <span style=\"color:#3986e1;\">ChatGPT</span> and Generative AI-<br/></h2>\n        <p style=\"font-size:13px;color:rgba(255,255,255,0.58);line-height:1.55;max-width:400px;margin:0;\">Demystify generative AI tools and unlock their potential in your field. A 100% hands-on approach, with no technical prerequisites.</p>\n        <div style=\"display:flex;flex-wrap:wrap;gap:6px;\">\n          <span class=\"aiv3-pill\"><svg viewBox=\"0 0 24 24\" fill=\"none\" stroke-width=\"2\"><circle cx=\"12\" cy=\"12\" r=\"10\"></circle><polyline points=\"12 6 12 12 16 14\"></polyline></svg>2-day training course</span>\n          <span class=\"aiv3-pill\"><svg viewBox=\"0 0 24 24\" fill=\"none\" stroke-width=\"2\"><path d=\"M17 21v-2a4 4 0 0 0-4-4H5a4 4 0 0 0-4 4v2\"></path><circle cx=\"9\" cy=\"7\" r=\"4\"></circle></svg>All professional profiles</span>\n          <span class=\"aiv3-pill\"><svg viewBox=\"0 0 24 24\" fill=\"none\" stroke-width=\"2\"><polyline points=\"20 6 9 17 4 12\"></polyline></svg>Eligible for CPF — €1,250 (excl. tax)</span>\n          <span class=\"aiv3-pill\"><svg viewBox=\"0 0 24 24\" fill=\"none\" stroke-width=\"2\"><path d=\"M12 2C8.13 2 5 5.13 5 9c0 5.25 7 13 7 13s7-7.75 7-13c0-3.87-3.13-7-7-7z\"></path><circle cx=\"12\" cy=\"9\" r=\"2.5\"></circle></svg>Paris-Villejuif &amp; Nice</span>\n        </div>\n      </div>\n      <div style=\"display:flex;align-items:center;justify-content:space-between;flex-wrap:wrap;gap:10px;\">\n        <a class=\"aiv3-cta\" href=\"https://aivancity.ai/en/formations-professionnel/maitriser-chatgpt-et-les-ia-generatives-pour-transformer-votre-approche\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"background:#3986e1 !important;color:#fff !important;font-size:13.5px;font-weight:600;padding:10px 24px;border-radius:8px;text-decoration:none !important;white-space:nowrap;display:inline-block !important;\">\n          Learn more about the course →\n        </a>\n        <span class=\"aiv3-badge-hide aiv3-badge-inner\">\n          <span class=\"aiv3-badge-dot\"></span>\n          <span style=\"font-size:10.5px;color:#3986e1;font-weight:600;letter-spacing:0.04em;text-transform:uppercase;\">RS6787 Certification</span>\n        </span>\n      </div>\n    </div>\n    <div class=\"aiv3-img-wrap\" style=\"width:42% !important;flex-shrink:0 !important;position:relative;overflow:hidden;\">\n      <img decoding=\"async\" src=\"https://aivancity.ai/en/sites/default/files/2025-11/vignette-chatgpt-ia-gen.webp\" alt=\"ChatGPT &amp; Generative AI\" style=\"width:100% !important;height:100% !important;object-fit:cover !important;object-position:center center !important;display:block !important;\">\n      <div class=\"aiv3-img-overlay\" style=\"position:absolute;inset:0;background:linear-gradient(to left,rgba(35,38,65,0) 40%,rgba(35,38,65,0.6) 75%,rgba(35,38,65,1) 100%);\"></div>\n    </div>\n  </div>\n</div><p></p>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    04\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nAn initial, imperfect classification, followed by a marked improvement after calibration\n  </h2>\n\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">During the initial coding of the development corpus, classification based on pedagogical function achieved <strong>58% agreement</strong>, with a <strong>κ of 0.41</strong> (95% confidence interval: [0.24; 0.57]), indicating moderate agreement.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The disagreements center on three areas: Scaffolding/Other (4 cases), Scaffolding/Socratic Questioning (3), and Scaffolding/Metacognition (3).</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">This finding is instructive in and of itself: categories do not become reliable simply because they have been defined; their boundaries must be precise enough for multiple evaluators to apply them consistently.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">A calibration session was therefore conducted on ten cases involving significant disagreement. It resulted in <strong>seven decision rules</strong>, focusing in particular on the distinction between Socratic questioning and justification, and on how to handle prompts related to the generation of artifacts.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The coding scheme was then finalized. A new coding of the same corpus yielded <strong>88% agreement and a κ of 0.82</strong> ([0.67; 0.94]).</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">However, this improvement—achieved using prompts that had already been discussed—was not enough to demonstrate that the rules worked on new prompts.</p>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    05\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nValidation using 50 previously unseen prompts\n  </h2>\n\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The taxonomy was therefore evaluated on a <strong>second corpus of 50 prompts</strong>, which was compiled after the coding scheme had been established and <strong>excluded all prompts from the development corpus</strong>.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">This corpus was intentionally balanced to include <strong>25 prompts for teachers and 25 prompts for students</strong>, drawn from Microsoft prompts-for-edu (6 and 8) and AI for Education (19 and 17).</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Only the pedagogical function was coded here, in two independent runs conducted blind with a fixed grid, with no discussion between runs prior to calculating the agreement.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\"><strong>The main result is an 88% agreement, with κ = 0.80 and a 95% confidence interval of [0.64, 0.93].</strong></p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The results are similar for both groups: <strong>92% agreement and κ = 0.81 for the prompts intended for teachers, and 84% agreement and κ = 0.78 for those intended for students</strong>.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">However, these two subsamples each contain only 25 prompts: these figures are for illustrative purposes only, and the difference between them has not been statistically tested.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Under the conditions of this study, these results indicate that the taxonomy retains substantial reliability for prompts not used during its development, whether they are intended for teachers or students. However, not all discrepancies have been resolved. The six remaining discrepancies concern Scaffolding/Cognitive Constraint (2), Scaffolding/Other (2), Scaffolding/Socratic Questioning (1), and Scaffolding/Metacognition (1). All involve scaffolding, making it, in our corpus, the category whose boundaries with other functions remain the most difficult to define.</p>\n\n\n\n<figure class=\"wp-block-image size-full\"><img loading=\"lazy\" decoding=\"async\" width=\"939\" height=\"394\" src=\"https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-1.png\" alt=\"\" class=\"wp-image-658814\" srcset=\"https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-1.png 939w, https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-1-300x126.png 300w, https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-1-360x151.png 360w\" sizes=\"auto, (max-width: 939px) 100vw, 939px\"></figure>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    06\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nNot all functions are represented in the same way\n  </h2>\n\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">In the validation corpus, <strong>scaffolding</strong> is the dominant function, with 28 out of 50 prompts: 18 intended for teachers and 10 for students.</p>\n\n\n\n<p class=\"wp-block-paragraph\">The <strong>cognitive task</strong> consists of 12 prompts, divided equally between the two groups.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The six metacognitive prompts, on the other hand, are all intended for students, as are the two Socratic prompts. The “Other/Undefined” category includes two prompts.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">This distribution should be interpreted with caution. The corpus was deliberately constructed to be equally divided between the two audiences, using only two libraries: its distribution describes this sample, not the frequency of these functions across all educational prompts. It does, however, suggest a hypothesis to be tested on larger corpora: certain functions, such as metacognition and Socratic questioning, may be more prevalent in prompts directly intended for learners.</p>\n\n\n\n<figure class=\"wp-block-image size-full\"><img loading=\"lazy\" decoding=\"async\" width=\"939\" height=\"475\" src=\"https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-2.png\" alt=\"\" class=\"wp-image-658815\" srcset=\"https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-2.png 939w, https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-2-300x152.png 300w, https://aivancity.ai/en/blog/wp-content/uploads/2026/10/image-2-360x182.png 360w\" sizes=\"auto, (max-width: 939px) 100vw, 939px\"></figure>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    07\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nAn insightful negative result: the limitations of SOLO when using only the prompt\n  </h2>\n\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">One of the study's key findings does not concern what worked, but rather what <strong>did not work consistently</strong>.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">During the initial coding, the use of SOLO to infer cognitive complexity from the text of the prompts yielded only <strong>36% inter-rater agreement, with κ = 0.05</strong>—a level close to chance.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">An ordinal weighting, which takes into account the distance between levels, did not improve the results. Given this limitation, the SOLO coding method was not applied to the validation corpus.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The discrepancy with the pedagogical function can be explained by the nature of what is encoded. The functions in our taxonomy often correspond to mechanisms explicitly stated in the text: “proceed step by step,” “use a checklist,” “offer a counterargument,” “check one’s work.”</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Cognitive complexity, on the other hand, requires inferring the actual level of understanding required—information that the prompt, taken on its own, rarely provides.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The same text can lead to different interactions depending on the context, the user, the model used, and the successive responses generated during the exchange.</p>\n\n\n\n<div style=\"\n  margin:28px 0;\n  padding:30px 38px;\n  background:#1B2345;\n  border-left:4px solid #B18418;\n\">\n  <p style=\"\n    margin:0;\n    color:#FFFFFF;\n    font-size:15px;\n    line-height:1.6;\n    font-weight:700;\n    text-align: justify;\n  \">\nThis finding calls for methodological caution: when analyzing cognitive complexity using a framework such as SOLO, the relevant unit of analysis might be the prompt-response pair—or even the entire interaction—rather than the prompt alone.\n  </p>\n</div>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    08\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nDesigning an educational prompt also involves deciding where the cognitive effort lies\n  </h2>\n\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">This taxonomy can serve as a framework for interpretation, but also as a design tool. The following recommendations do not stem from the study’s findings, which do not identify any learning outcomes; rather, they stem from its theoretical framework and align with existing recommendations on the responsible use of generative AI in education (Miao and Holmes, 2023; OECD, 2026).</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">First, they urge us to avoid a systematic “response-first” approach, in which AI immediately provides the expected result.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">On the contrary,<strong>scaffolding</strong> and <strong>Socratic questioning</strong> can help preserve some productive effort by requiring intermediate steps or justifications.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\"><strong>Cognitive constraints</strong> make it possible to explicitly incorporate critical analysis, synthesis, counterarguments, and evaluation.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Finally, <strong>metacognitive prompts</strong> can help make the stages of planning, monitoring, and self-assessment more visible.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">In modules and activities that require writing code, I often observe the same pattern: students paste their code and error message, then ask the AI to correct it. The prompt receives a response, but the student misses the diagnostic insight. So I’ve reworded the instructions I give them: the assistant should not provide corrected code, but should ask one question at a time to guide the student toward formulating a hypothesis about the source of the error, and then verifying it. The task remains the same. What changes is who is doing the reasoning.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">However, no category is inherently superior to the others. The appropriate approach depends on the educational objective, the context, the learner, and how the interaction with AI is actually implemented.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">These design choices are not merely technical. Deciding how much of the reasoning process to entrust to AI also means deciding how much autonomy to grant the learner: a prompt that systematically provides the answer can relieve the learner of that responsibility, whereas a prompt that withholds it leaves that responsibility to the learner. This decision calls for transparency, because a student who does not understand why the assistant refuses to give them the solution may perceive this withholding as a limitation of the tool rather than as a pedagogical choice. It also raises a question of inclusion: the prompts studied come from English-language libraries designed for specific educational contexts, and their adaptation for French-speaking or multilingual learners is not straightforward. Finally, these prompts run on models whose behavior evolves with each new version; a pedagogical function carefully embedded in a prompt therefore also depends on technical choices beyond the teacher’s control.</p>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    09\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nWhat this study allows us to affirm, and what it does not yet allow us to conclude\n  </h2>\n\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The study shows that, after calibration, the five proposed functions can be distinguished with a high degree of reliability on the validation dataset examined.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">However, it does not demonstrate that one type of prompt leads to better learning outcomes than another.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The analysis focuses on <strong>the text of the prompts</strong>: it does not examine the interactions that follow, the models’ responses, the work produced by the learners, or their learning outcomes.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">However, the educational function embedded in a prompt can change when it is applied in a real-world situation.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">A next step in the research, therefore, is to link the categories of prompts to the interactions and outcomes observed: for example, to determine whether scaffolding prompts or Socratic questioning prompts elicit more “productive struggle”—the effort through which the learner must search, reason, and justify—than prompts aimed at the direct generation of a result.</p>\n\n\n\n<p class=\"wp-block-paragraph\">There are also several limitations that must be taken into account.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Both corpora are small in size and come from English-language public libraries; therefore, the results cannot be generalized without caution to multilingual environments, less structured libraries, or real-world tutoring situations.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">Furthermore, the development and validation corpora come from the same broad categories of sources. Finally, the validation was conducted in two independent rounds using the same fixed <strong>coding</strong> scheme, rather than by a new team of annotators. It should therefore be interpreted as <strong data-wg-splitted>evidence of the coding scheme’s out-of-sample stability</strong>, rather than as a comprehensive demonstration of its generalizability to other teams.</p>\n\n\n\n<div style=\"\n  display:grid;\n  grid-template-columns:42px 1fr;\n  column-gap:2px;\n  align-items:start;\n  margin:20px 0 30px;\n\">\n\n  <div style=\"\n    color:#B18418;\n    font-size:23px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:1px;\n    padding-top:5px;\n  \">\n    10\n  </div>\n\n  <h2 style=\"\n    margin:0;\n    color:#171D45;\n    font-size:30px;\n    line-height:1.2;\n    font-weight:800;\n    letter-spacing:-0.6px;\n  \">\nFrom the prompt as an instruction to the prompt as a teaching tool\n  </h2>\n\n</div>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The development of generative AI in education raises a question that goes beyond simply mastering prompt engineering—that is,<strong>the art of formulating effective instructions for a model</strong>.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">An educational prompt is not merely an instruction designed to produce a better output: it also determines <strong>who is reasoning, when, under what constraints, and with what degree of autonomy</strong>.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">The proposed taxonomy provides a vocabulary for analyzing these differences.</p>\n\n\n\n<p class=\"text-justify wp-block-paragraph\">This is only the first step. It remains to be seen how these functions play out in real-world interactions and what effects they have on learning processes and outcomes.</p>\n\n\n\n<p class=\"wp-block-paragraph\">The focus then shifts: it is no longer just a matter of writing prompts that enable AI to provide better responses, but <strong>of designing interactions in which AI supports learning without taking over the cognitive work that gives it its value</strong>.</p>\n\n\n\n<div style=\"\n  margin:35px 0;\n  background:#F3F5FA;\n  border-radius:12px;\n  overflow:hidden;\n  box-shadow:0 5px 18px rgba(23,29,69,0.07);\n  box-sizing:border-box;\n\">\n\n  <div style=\"\n    display:flex;\n    width:100%;\n    height:5px;\n  \">\n    <div style=\"\n      width:80%;\n      background:#171D45;\n    \"></div>\n    <div style=\"\n      width:20%;\n      background:#986E13;\n    \"></div>\n  </div>\n\n  <div style=\"padding:30px 36px;\">\n\n    <p style=\"\n      margin:0;\n      color:#171D45;\n      font-family:Arial,sans-serif;\n      font-size:16px;\n      line-height:1.85;\n      text-align:justify;\n    \">\n      The focus then shifts: it is no longer just\n      a matter of writing prompts that enable the AI to respond better,\n      but\n <strong style=\"\n        color:#986E13;\n        font-weight:700;\n        text-decoration:none;\n      \">     \n        of designing interactions in which the AI\n        supports learning without taking over the cognitive work\n        that gives it its value\n      . </strong>\n    </p>\n\n    <div style=\"\n      width:40px;\n      height:3px;\n      background:#986E13;\n      margin:24px 0 0 auto;\n    \"></div>\n\n  </div>\n</div>\n\n\n\n<section style=\"\n  width:100%;\n  margin:32px auto;\n  padding:28px 30px;\n  box-sizing:border-box;\n  background-color:#f4f6fb;\n  border:1px solid #d9dce8;\n  border-radius:14px;\n  box-shadow:0 5px 18px rgba(59,75,132,0.10);\n  font-family:Arial,sans-serif;\n\">\n\n  <div style=\"\n    margin-bottom:22px;\n    padding-bottom:14px;\n    border-bottom:3px solid #3b4b84;\n  \">\n    <h2 style=\"\n      margin:0;\n      color:#3b4b84;\n      font-size:25px;\n      line-height:1.3;\n    \">\n    References\n    </h2>\n  </div>\n\n  <div style=\"\n    display:flex;\n    flex-direction:column;\n    gap:13px;\n  \">\n\n    <p id=\"ref1\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #3358ff;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#3358ff;\">[1]</strong>\n      Biggs, J. B., and Collis, K. F. (1982).\n <em>     Evaluating the Quality of Learning: The SOLO Taxonomy\n      (Structure of the Observed Learning Outcome)</em>.\n      New York: Academic Press.\n    </p>\n\n    <p id=\"ref2\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #009688;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#007c71;\">[2]</strong>\n      Chen, E., et al. (2024).\n <em>     A Systematic Review on Prompt Engineering in LLMs for K-12 STEM Education</em>.\n      arXiv:2410.11123.\n <a href=\"https://doi.org/10.48550/arXiv.2410.11123\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#007c71;font-weight:700;text-decoration:underline;overflow-wrap:anywhere;\">     \n        View the preprint\n     </a>\n    </p>\n\n    <p id=\"ref3\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #986e13;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#986e13;\">[3]</strong>\n      Landis, J. R., and Koch, G. G. (1977).\n <em>     The Measurement of Observer Agreement for Categorical Data</em>.\n <em>     Biometrics</em>, 33(1), 159–174.\n    </p>\n\n    <p id=\"ref4\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #e91e63;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#c2185b;\">[4]</strong>\n      McHugh, M. L. (2012).\n <em>     Interrater Reliability: The Kappa Statistic</em>.\n <em>     Biochemia Medica</em>, 22(3), 276–282.\n <a href=\"https://doi.org/10.11613/BM.2012.031\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#c2185b;font-weight:700;text-decoration:underline;overflow-wrap:anywhere;\">     \n        View the scientific article\n     </a>\n    </p>\n\n    <p id=\"ref5\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #3b4b84;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#3b4b84;\">[5]</strong>\n      Miao, F., and Holmes, W. (2023).\n <em>     Guidance for Generative AI in Education and Research</em>.\n      Paris: UNESCO.\n <a href=\"https://unesdoc.unesco.org/ark:/48223/pf0000386693\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#3b4b84;font-weight:700;text-decoration:underline;overflow-wrap:anywhere;\">     \n        View the guide\n     </a>\n    </p>\n\n    <p id=\"ref6\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #3358ff;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#3358ff;\">[6]</strong>\n      OECD (2026).\n <em>     OECD Digital Education Outlook 2026</em>.\n      Paris: OECD Publishing.\n <a href=\"https://www.oecd.org/en/publications/oecd-digital-education-outlook-2026_062a7394-en.html\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#3358ff;font-weight:700;text-decoration:underline;overflow-wrap:anywhere;\">     \n        View the report\n     </a>\n    </p>\n\n    <p id=\"ref7\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #009688;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#007c71;\">[7]</strong>\n      Shi, Y., Yu, K., Dong, Y., and Chen, F. (2026).\n <em>     Large Language Models in Education: A Systematic Review</em>.\n <em>     Computers and Education: Artificial Intelligence</em>,\n      10, 100529.\n <a href=\"https://doi.org/10.1016/j.caeai.2025.100529\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#007c71;font-weight:700;text-decoration:underline;overflow-wrap:anywhere;\">     \n        View the study\n     </a>\n    </p>\n\n    <p id=\"ref8\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #986e13;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#986e13;\">[8]</strong>\n      Wood, D., Bruner, J. S., and Ross, G. (1976).\n <em>     The Role of Tutoring in Problem Solving</em>.\n <em>     Journal of Child Psychology and Psychiatry</em>,\n      17(2), 89–100.\n <a href=\"https://doi.org/10.1111/j.1469-7610.1976.tb00381.x\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#986e13;font-weight:700;text-decoration:underline;overflow-wrap:anywhere;\">     \n        View the scientific article\n     </a>\n    </p>\n\n    <p id=\"ref9\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #e91e63;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#c2185b;\">[9]</strong>\n      Yaacoub, A., and Assaghir, Z. (2027).\n <em>     From Engineering to Pedagogy: A Functional Taxonomy for Teacher and Student-Facing Educational Prompting</em>.\n      In J. Weidlich et al. (eds.),\n <em>     Mindful TEL: Learning Technologies Shaped with Intention.\n      EC-TEL 2026</em>.\n      Lecture Notes in Computer Science, vol. 16906,\n      pp. 255–260. Cham: Springer.\n <a href=\"https://doi.org/10.1007/978-3-032-37982-5_41\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#c2185b;font-weight:700;text-decoration:underline;overflow-wrap:anywhere;\">     \n        View publication\n     </a>\n    </p>\n\n    <p id=\"ref10\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #3b4b84;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#3b4b84;\">[10]</strong>\n      Yaacoub, A., Assaghir, Z., and Da-Rugna, J. (2025).\n     <em>Cognitive Depth Enhancement in AI-Driven Educational Tools via SOLO Taxonomy</em>.\n      In <em>ACR’25</em>, LNNS 1346,\n      pp. 14–25. Springer.\n <a href=\"https://doi.org/10.1007/978-3-031-87647-9_2\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#3b4b84;font-weight:700;text-decoration:underline;overflow-wrap:anywhere;\">     \n        View publication\n     </a>\n    </p>\n\n    <p id=\"ref11\" style=\"\n      margin:0;\n      padding:16px 18px;\n      background:#ffffff;\n      color:#26345f;\n      border-left:4px solid #3358ff;\n      border-radius:8px;\n      font-size:15px;\n      line-height:1.65;\n    \">\n      <strong style=\"color:#3358ff;\">[11]</strong>\n      Open Science Framework (OSF).\n <em>     Open materials: corpus, coding grid, and annotation workbook</em>.\n <a href=\"https://osf.io/7fwn8/overview?view_only=1b69c5bf6b374a45ba0a60c22daff8a7\" target=\"_blank\" rel=\"noopener noreferrer\" style=\"color:#3358ff;font-weight:700;text-decoration:underline;overflow-wrap:anywhere;\">     \n        View the research materials\n     </a>\n    </p>\n\n  </div>\n</section>\n","protected":false},"excerpt":{"rendered":"<p>By Dr. Antoun YAACOUB, Associate Professor at aivancity and Director of the MSc in Generative and Agent-Based Artificial Intelligence; Zainab Assaghir, University Professor, Faculty of Sciences, Lebanese University. Libraries of educational prompts are on the rise, but…</p>\n","protected":false},"author":7,"featured_media":658812,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"content-type":"","footnotes":""},"categories":[28],"tags":[],"class_list":["post-658810","post","type-post","status-publish","format-standard","has-post-thumbnail","category-articles"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.6 - https://yoast.com/product/yoast-seo-wordpress/ -->\n<title>Educational Prompts and Generative AI: What Does a Prompt Actually Do from an Educational Perspective?</title>\n<meta name=\"description\" content=\"How can we design effective educational prompts using generative AI? 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