2021
DOI: 10.1155/2021/7279260
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CPIDM: A Clustering‐Based Profound Iterating Deep Learning Model for HSI Segmentation

Abstract: The existing work on unsupervised segmentation frequently does not present any statistical extent to estimating and equating procedures, gratifying a qualitative calculation. Furthermore, regardless of the datum that enormous research is dedicated to the advancement of a novel segmentation approach and upgrading the deep learning techniques, there is an absence of research comprehending the assessment of eminent conventional segmentation methodologies for HSI. In this paper, to moderately fill this gap, we pro… Show more

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Cited by 41 publications
(9 citation statements)
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References 38 publications
(45 reference statements)
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“…e researchers intend to apply descriptive design as it enables us to understand and appreciate the role of AI in enhancing the overall management of wireless communication. ere is an increased investment in enhancing the technological advancement in information and communication aspects; hence, researchers need to understand the current nature of using AI in enhancing the overall management of wireless communication [14]. e researchers also intend to source the data through a primary source which is through the use of a questionnaire.…”
Section: Methodsmentioning
confidence: 99%
“…e researchers intend to apply descriptive design as it enables us to understand and appreciate the role of AI in enhancing the overall management of wireless communication. ere is an increased investment in enhancing the technological advancement in information and communication aspects; hence, researchers need to understand the current nature of using AI in enhancing the overall management of wireless communication [14]. e researchers also intend to source the data through a primary source which is through the use of a questionnaire.…”
Section: Methodsmentioning
confidence: 99%
“…The MURA-BC 32 9 32 X-ray image dataset has been used for training, validation, and testing purposes. This phase will help us to determine the best model from the benchmark is deep learning model (Mahajan et al 2021).…”
Section: Benchmark Deep Learning Models Trainingmentioning
confidence: 99%
“…Since the data source does not need to operate the data, the hash value is calculated after splicing the dimension table data into a string and stored in the corresponding array, without saving the original data. When reading the dimension table data in each round, the primary key and hash value are cached, and the data distribution behavior is judged according to the last cached result [19]. The specific algorithm first builds the critical value by calling the associated information selection function and constructing the entire big data's hash value and then writes the essential value and the hash value into the new cache.…”
Section: Cache Design and Optimization Of Data Source Nodesmentioning
confidence: 99%