Abstract
Tooth extraction is the process of removing the tooth or cures the damage teeth from the socket present in the bone. During the tooth extraction and non-extraction process, the reaction of soft tissue identification is difficult to decide which may create problem after making the tooth extraction process. Due to the complexity of soft tissue identification process, it is more difficult to estimate the longevity of teeth and borderline class I malocclusion. So, in this paper analyze the detailed profile of the soft tissues present in the borderline class I malocclusion by using the wearable IoT device in teeth. Along with this medical IoT device, facial patterns, pathologies, tooth-arch discrepancy, compliance and cephalometric discrepancy have been examined continuously for making the decision about tooth extraction and non-extraction process. In addition to this, gathered information helps to create the treatment plan that helps to minimize the disease serious rate. Then the analyzed study has been examined by collecting sample data from 100 female patients in which 50 patients data is collected in terms of premolar extraction treatment patients and other 50 patients data is gathered from premolar extraction non-treatment process which is implemented using MATLAB implementation process. From the collected data, soft-tissue reaction has been examined effectively and decision also handled successfully.
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