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BloomNet: A Robust Transformer based model for Bloom’s Learning Outcome Classification

2021-11-01 · ICNLSP 2021 11 · Abdul Waheed, Muskan Goyal, Nimisha Mittal, Deepak Gupta, Ashish Khanna, Moolchand Sharma
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BloomNet: A Robust Transformer based model for Bloom's Learning Outcome Classification

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Bloom taxonomy is a common paradigm for categorizing educational learning objectives into three learning levels: cognitive, affective, and psychomotor. For the optimization of educational programs, it is crucial to desig…

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Blooms Taxonomy (BT) have been used to classify the objectives of learning outcome by dividing the learning into three different domains; the cognitive domain, the effective domain and the psychomotor domain. In this pap…

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Automated Analysis of Learning Outcomes and Exam Questions Based on Bloom's Taxonomy

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This paper explores the automatic classification of exam questions and learning outcomes according to Bloom's Taxonomy. A small dataset of 600 sentences labeled with six cognitive categories - Knowledge, Comprehension, A…

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Coastal algal bloom monitoring requires frequent, spatially detailed, and globally consistent observations, provided by Landsat-8/9 and Sentinel-2 A/B/C. Together, these missions offer over a decade of medium-resolution …

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A Model for Learned Bloom Filters, and Optimizing by Sandwiching

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Recent work has suggested enhancing Bloom filters by using a pre-filter, based on applying machine learning to determine a function that models the data set the Bloom filter is meant to represent. Here we model such lear…

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