{"id":103,"date":"2021-11-29T17:03:43","date_gmt":"2021-11-29T17:03:43","guid":{"rendered":"http:\/\/192.168.64.4\/in-en\/?post_type=ai&#038;p=103"},"modified":"2023-06-12T10:36:00","modified_gmt":"2023-06-12T10:36:00","slug":"serving-a-range-of-student-learning-styles","status":"publish","type":"ai","link":"https:\/\/www.embibe.com\/in-en\/artificial-intelligence-ai-in-education\/serving-a-range-of-student-learning-styles\/","title":{"rendered":"Serving A Range of Student Learning Styles"},"content":{"rendered":"<p><span style=\"font-weight: 400;\">The pedagogical choices of instructors in schools and colleges have largely driven student learning styles. Therefore, there is a range of learning styles for students. Felder-Silverman and Kolb&#8217;s learning styles are the two well-known frameworks that have a major influence on them and acted as the bedrock for Embibe\u2019s digital learning platform and pedagogy. <\/span><\/p>\n<h2><strong>What Are Learning Styles Anyways?<\/strong><\/h2>\n<p><span style=\"font-weight: 400;\">Learning styles proposed by Felder-Silverman are active-reflective, visual or verbal, sensing or intuitive and sequential or global, a highly personalized approach to learning. With a more process-oriented framework, Kolb defined stages of learning as active experimentation, concrete experience, reflective observation and abstract conceptualization. While the former\u2019s classification is based on an individual&#8217;s personality traits, the latter highlighted the idea of experience-led knowledge construction split across stages of mastery.<\/span><\/p>\n<h3><strong>What is Embibe Solving?<\/strong><\/h3>\n<p><span style=\"font-weight: 400;\">Embibe has built the student learning platform around two underlying ideas powering these frameworks using learning style examples: personalisation (Felder-Silverman) and learning outcomes (Kolb). The catch here is: for an instructor teaching a class of four-to-five students, intuition and real-time feedback through students\u2019 physical and emotional responses can help pull off a relevant learning style; however, doing the same across 400 exams and millions of students, with age ranging between 10 years and 25 years, is the problem statement facing the Embibe AI and engineering teams.<\/span><\/p>\n<p><span style=\"font-weight: 400;\">Through the experiences of more than 500 domain experts and extensive user research surveys with over 2000 students across exams, we have identified that any student\u2019s learning methodology is a combination of Felfer-Silverman\u2019s styles. And students unable to maximize their potential were either not getting a suitable learning style or had a missing stage out of Kolb\u2019s stages of mastery.\u00a0<\/span><\/p>\n<p><span style=\"font-weight: 400;\">So, we zeroed in on two problem statements as a derivative of our objectives to deliver personalisation and learning outcomes, offering a range of features that cater to the range of learning styles and keeping track of the effort and performance at a very granular level to identify nudges for students to cross a stage of mastery.<\/span><\/p>\n<h3><strong>How Does Embibe Offer Relevant Experiences for All Learning Styles?<\/strong><\/h3>\n<p><span style=\"font-weight: 400;\">There are primarily three loops of learning, where we deliver these styles activities for learning styles. The top loop includes learning, practice and test modules. The second loop includes the sequence and type of content served in these modules:\u00a0<\/span><\/p>\n<ol>\n<li style=\"font-weight: 400;\" aria-level=\"1\"><span style=\"font-weight: 400;\">Learn offers a range of video types, from 3D interactive concept explainers to whiteboard videos of top instructors solving complex problems step by step<\/span><\/li>\n<li style=\"font-weight: 400;\" aria-level=\"1\"><span style=\"font-weight: 400;\">Practice takes care of serving questions and is augmented by learning interventions offering relevant videos and summaries to improve micro-level performance.<\/span><\/li>\n<li style=\"font-weight: 400;\" aria-level=\"1\"><span style=\"font-weight: 400;\">The test includes pre-generated tests at exam levels and customized tests with an option to select a subset of the curriculum and difficulty level. As a feedback loop for a student\u2019s current stage and future potential, the test module also includes exhaustive feedback that highlights a student\u2019s skill readiness among Low-order-thinking-skills and High-order-thinking-skills, potential score on completing a journey on Embibe and granular details of weak and strong topics.<\/span><\/li>\n<\/ol>\n<p><span style=\"font-weight: 400;\">The innermost and third loop includes hints provided while solving a question, defined steps to solve a complex problem, and rewards for solving a question, discovering a feature, or reaching a milestone.<\/span><\/p>\n<h3><strong>How Do We Make it a Truly Personalized Experience?<\/strong><\/h3>\n<p><span style=\"font-weight: 400;\">The data we capture while creating content and during student interactions with content is at the heart of the personalisation offered by Embibe, as it powers our predictive and adaptive learning algorithms, providing a highly engaging experience to students across exams and knowledge levels.\u00a0<\/span><\/p>\n<p><span style=\"font-weight: 400;\">The most granular level of Embibe\u2019s content platform is concepts, which are stored as a knowledge graph and connected across exams with a range of relationships to analyze the learning style theory. Higher-level entities include topics, a collection of concepts, and chapters, a collection of topics. A concept or a group of concepts act as an identifier for learning objects such as video, question and test.\u00a0<\/span><\/p>\n<p><span style=\"font-weight: 400;\">As soon as a student interacts with a few learning objects, Embibe\u2019s Bayesian Knowledge Tracing Algorithm predicts a value between 0 and 1 as the concept mastery level of the student across more than 93,659 concepts in Embibe\u2019s knowledge graph.<\/span><\/p>\n<p><span style=\"font-weight: 400;\">These mastery values, along with a range of metadata, such as skill, bloom and difficulty, stored with each learning object, help us predict the probability of dropoff during a live session and offer relevant learning interventions through a learning-to-rank algorithm to fill knowledge gaps in real-time.<\/span><\/p>\n<p><span style=\"font-weight: 400;\">As the student interacts with more learning preferences and objects, specifically questions, we are able to come up with academic quotient and behavioural quotient vectors for each student. We also have a representation of each exam in the same high-dimensional space, derived across academic attributes using previous year exams. These vectors help us identify a student\u2019s current acumen against any exam and the areas that require the most effort, this is a key offering in Embibe\u2019s test feedback.<\/span><\/p>\n<p><img decoding=\"async\" class=\"aligncenter size-full wp-image-480951\" src=\"https:\/\/exams-assets.embibe.com\/exams\/wp-content\/uploads\/2021\/11\/03004951\/ai14.png\" alt=\"\" width=\"624\" height=\"472\" \/><\/p>\n<p><span style=\"font-weight: 400;\">Embibe\u2019s biggest differentiation in personalized experience comes from behavioural nudges at a user session granularity, during practice, video watching and test sessions, and at a global level. These nudges are powered by features we derive through each student and learn-object interaction, such as attempt quality, current mastery level and content metadata.<\/span><\/p>\n<h4><b>References:<\/b><\/h4>\n<p>[1] Sabine Graf, Silvia Rita Viola and Tommaso Leo, Kinshuk. \u201cIn-Depth Analysis of the Felder-Silverman Learning Style Dimensions.\u201d Journal of Research on Technology in Education, 2007, 40(1), 79\u201393<\/p>\n<p>[2] Doreen J. Gooden, Robert C. Preziosi, F. Barry Barnes. \u201cAn Examination Of Kolb&#8217;s Learning Style Inventory\u201d <a href=\"https:\/\/www.researchgate.net\/journal\/American-Journal-of-Business-Education-AJBE-1942-2504\">American Journal of Business Education (AJBE)<\/a> 2(3) DOI:<a href=\"http:\/\/dx.doi.org\/10.19030\/ajbe.v2i3.4049\">10.19030\/ajbe.v2i3.4049<\/a><\/p>\n<p>[3] Cho, et al., &#8220;What is Bayesian Knowledge Tracing?&#8221;, Proceedings of the Workshop on Visualization for AI explainability (VISxAI), 2018.<\/p>\n<p>[4] Keyur Faldu, Aditi Avasthi, and Achint Thomas. \u201cAdaptive Learning Machine for Score Improvement and Parts Thereof.\u201d US Patent No. 10854099 B2.<\/p>\n<p>[5] Keyur Faldu, Aditi Avasthi, and Achint Thomas.\u201cSystem and method for behavioral analysis and recommendations.\u201d US20200312178A1.<\/p>\n<p>[6] Keyur Faldu, Aditi Avasthi, and Achint Thomas. \u201cSystem and method for recommending personalized content using contextualized knowledge base\u201d US20200311152A1<\/p>\n<p>[7] Lalwani, Amar, and Sweety Agrawal. &#8220;What Does Time Tell? Tracing the Forgetting Curve Using Deep Knowledge Tracing.&#8221; In International Conference on Artificial Intelligence in Education, pp. 158-162. Springer, Cham, 2019.<\/p>\n","protected":false},"featured_media":0,"template":"","yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v21.1 - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Empowering Students with Effective Learning Styles: Embibe&#039;s AI-Driven Test Platform<\/title>\n<meta name=\"description\" content=\"Discover how Embibe revolutionizes education by serving a range of student learning styles through its innovative approach to Personalised learning\" \/>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/www.embibe.com\/in-en\/artificial-intelligence-ai-in-education\/serving-a-range-of-student-learning-styles\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Empowering Students with Effective Learning Styles: Embibe&#039;s AI-Driven Test Platform\" \/>\n<meta property=\"og:description\" content=\"Discover how Embibe revolutionizes education by serving a range of student learning styles through its innovative approach to Personalised learning\" \/>\n<meta property=\"og:url\" content=\"https:\/\/www.embibe.com\/in-en\/artificial-intelligence-ai-in-education\/serving-a-range-of-student-learning-styles\/\" \/>\n<meta property=\"og:site_name\" content=\"EMBIBE - 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