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click hereAnalysis of Medical Images for Identification of Abnormality Detection for Kidney using Deep Learning
The security system is very crucial in our daily sphere of life. With the
rapid advancement of technology and the increasing demand for secure access
control systems, developing efficient security systems has become a critical
area of research. This paper represents the two significant techniques
Eigenface and Wavelet feature. Eigenface utilizes Principal Component Analysis
(PCA) to extract the most significant features from any facial image. However,
the performance of the eigenface can be affected by various factors such as
lighting, pose, and expression. To overcome this inability, we have adopted the
wavelet technique. The wavelet feature extraction technique helps to extract detailed
information about the image by decomposing it into different sub-bands. A
comprehensive facial image of a dataset is initially collected and then the
Eigenface technique is applied to extract features. The wavelet technique is
also performed to recognize images and identify the image having distortion to
it. By imposing Wavelet features, higher accuracy, and reliability of the
classifier are obtained. We hope the concept of security system development
will benefit by implementing this technique.
| Details | |||
| Role | Supervisor | ||
|---|---|---|---|
| Class / Degree | Masters | ||
| Students | M.Sc-231235, Firoz Biswas | ||
| Start Date | 1st July 2022 | ||
| End Date | 30 Jun, 2023 | ||