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Published in: Oral Radiology 2/2023

08-09-2022 | Dentistry | Original Article

Evaluation of histogram equalization and contrast limited adaptive histogram equalization effect on image quality and fractal dimensions of digital periapical radiographs

Authors: Mojdeh Mehdizadeh, Kioumars Tavakoli Tafti, Parisa Soltani

Published in: Oral Radiology | Issue 2/2023

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Abstract

Objectives

This study aims to evaluate the effects of histogram equalization (HE) and contrast limited adaptive histogram equalization (CLAHE) on periapical images and fractal dimensions in the periapical region.

Methods

In this cross-sectional study, digital periapical images were selected from the archive of Dentistry School of Isfahan University of Medical Sciences. The radiographs were taken from mandibular and maxillary anterior single root teeth with healthy root and periodontium. After applying HE and CLAHE algorithms to images, two radiologists evaluated the quality of apex detection from using a 5-point Likert scale (from 5 for very good image quality to 1 for very bad image quality). Afterward, all the images were imported to the ImageJ application, and the region of interest (ROI) was specified as the region between the two central incisors. The fractal box-counting method was used to determine fractal dimensions (FD) values. Nonparametric Wilcoxon–Friedman test, Intraclass Correlation Coefficient test, T-test, and Pair T-test were performed as statistical analysis (α = 0.05).

Results

Fifty-three radiographs were analyzed and the image quality assessments were significantly different between raw images and images after performing HE, CLAHE (p value < 0.001), and using CLAHE algorithm significantly increases image quality assessments more than HE (p value = 0.009). There was a significant difference in FD values for images after applying CLAHE and HE compared to raw images (p value < 0.001), and HE decreased the FD value significantly more than CLAHE (p value = 0.019).

Conclusions

Employing CLAHE and HE algorithm via OpenCV python library improves the periapical image quality, which is more significant using the CLAHE algorithm. Moreover, applying CLAHE and HE reduces trabecular bone structure detection and FD values in periapical images, especially in HE.
Literature
1.
go back to reference Karuntanović T, et al. In vitro comparison of the accuracy of two apex locators of different generations. Acta Medica Medianae. 2019;58(1):28–32.CrossRef Karuntanović T, et al. In vitro comparison of the accuracy of two apex locators of different generations. Acta Medica Medianae. 2019;58(1):28–32.CrossRef
2.
go back to reference Arslan ZB, et al. Diagnostic accuracy of panoramic radiography and ultrasonography in detecting periapical lesions using periapical radiography as a gold standard. Dentomaxillofac Radiol. 2020;49(6):20190290.CrossRefPubMedPubMedCentral Arslan ZB, et al. Diagnostic accuracy of panoramic radiography and ultrasonography in detecting periapical lesions using periapical radiography as a gold standard. Dentomaxillofac Radiol. 2020;49(6):20190290.CrossRefPubMedPubMedCentral
3.
go back to reference Katayama R. Series: practical evaluation of clinical image quality (1): image quality verification of digital radiography. Igaku Butsuri. 2016;35(4):307–13.PubMed Katayama R. Series: practical evaluation of clinical image quality (1): image quality verification of digital radiography. Igaku Butsuri. 2016;35(4):307–13.PubMed
4.
go back to reference Çalışkan A, Sumer AP. Definition, classification and retrospective analysis of photostimulable phosphor image artefacts and errors in intraoral dental radiography. Dentomaxillofac Radiol. 2017;46(3):20160188.CrossRefPubMedPubMedCentral Çalışkan A, Sumer AP. Definition, classification and retrospective analysis of photostimulable phosphor image artefacts and errors in intraoral dental radiography. Dentomaxillofac Radiol. 2017;46(3):20160188.CrossRefPubMedPubMedCentral
5.
go back to reference Raghav N, et al. Comparison of the efficacy of conventional radiography, digital radiography, and ultrasound in diagnosing periapical lesions. Oral Surg Oral Med Oral Pathol Oral Radiol Endod. 2010;110(3):379–85.CrossRefPubMed Raghav N, et al. Comparison of the efficacy of conventional radiography, digital radiography, and ultrasound in diagnosing periapical lesions. Oral Surg Oral Med Oral Pathol Oral Radiol Endod. 2010;110(3):379–85.CrossRefPubMed
7.
8.
go back to reference Alkhaled F, Hasan A, Alhammad A. Improving radiographic image contrast using multi layers of histogram equalization technique. IAES Int J Artif Intell. 2021;10:151–6. Alkhaled F, Hasan A, Alhammad A. Improving radiographic image contrast using multi layers of histogram equalization technique. IAES Int J Artif Intell. 2021;10:151–6.
9.
go back to reference White SC, Pharoah MJ. Oral radiology: principles and interpretation. St. Louis: Mosby Inc.; 2019. White SC, Pharoah MJ. Oral radiology: principles and interpretation. St. Louis: Mosby Inc.; 2019.
10.
go back to reference Subramani B, Veluchamy M. Fuzzy gray level difference histogram equalization for medical image enhancement. J Med Syst. 2020;44(6):103.CrossRefPubMed Subramani B, Veluchamy M. Fuzzy gray level difference histogram equalization for medical image enhancement. J Med Syst. 2020;44(6):103.CrossRefPubMed
11.
12.
go back to reference Zimmerman JB, et al. A psychophysical comparison of two methods for adaptive histogram equalization. J Digit Imaging. 1989;2(2):82–91.CrossRefPubMed Zimmerman JB, et al. A psychophysical comparison of two methods for adaptive histogram equalization. J Digit Imaging. 1989;2(2):82–91.CrossRefPubMed
13.
go back to reference Leszczynski KW, Shalev S, Cosby NS. The enhancement of radiotherapy verification images by an automated edge detection technique. Med Phys. 1992;19(3):611–21.CrossRefPubMed Leszczynski KW, Shalev S, Cosby NS. The enhancement of radiotherapy verification images by an automated edge detection technique. Med Phys. 1992;19(3):611–21.CrossRefPubMed
14.
15.
go back to reference Pizer SM, et al. Adaptive histogram equalization and its variations. Comput Vis Graph Image Process. 1987;39(3):355–68.CrossRef Pizer SM, et al. Adaptive histogram equalization and its variations. Comput Vis Graph Image Process. 1987;39(3):355–68.CrossRef
16.
go back to reference Singh P, Mukundan R, De Ryke R. Feature enhancement in medical ultrasound videos using contrast-limited adaptive histogram equalization. J Digit Imaging. 2020;33(1):273–85.CrossRefPubMed Singh P, Mukundan R, De Ryke R. Feature enhancement in medical ultrasound videos using contrast-limited adaptive histogram equalization. J Digit Imaging. 2020;33(1):273–85.CrossRefPubMed
17.
go back to reference Niroomandfam B, NickravanShalmani A, Khalilian M. Breast abnormalities segmentation using the wavelet transform coefficients aggregation. Iran Quart J Breast Dis. 2019;12(2):57–71.CrossRef Niroomandfam B, NickravanShalmani A, Khalilian M. Breast abnormalities segmentation using the wavelet transform coefficients aggregation. Iran Quart J Breast Dis. 2019;12(2):57–71.CrossRef
18.
go back to reference Kalyani J, Chakraborty M. Contrast enhancement of MRI images using histogram equalization techniques. in 2020 International Conference on Computer, Electrical & Communication Engineering (ICCECE); 2020. Kalyani J, Chakraborty M. Contrast enhancement of MRI images using histogram equalization techniques. in 2020 International Conference on Computer, Electrical & Communication Engineering (ICCECE); 2020.
19.
go back to reference Albeiruti H, AwheedJeiad H. OPG images preprocessing enhancement for diagnosis purposes. Int J Sci Res. 2018;7:1656–64. Albeiruti H, AwheedJeiad H. OPG images preprocessing enhancement for diagnosis purposes. Int J Sci Res. 2018;7:1656–64.
20.
go back to reference Leonardi Dutra K, et al. Diagnostic accuracy of cone-beam computed tomography and conventional radiography on apical periodontitis: a systematic review and meta-analysis. J Endod. 2016;42(3):356–64.CrossRefPubMed Leonardi Dutra K, et al. Diagnostic accuracy of cone-beam computed tomography and conventional radiography on apical periodontitis: a systematic review and meta-analysis. J Endod. 2016;42(3):356–64.CrossRefPubMed
21.
go back to reference Palatyńska-Ulatowska A, et al. The pulp stones: morphological analysis in scanning electron microscopy and spectroscopic chemical quantification. Medicina (Kaunas). 2021;58(1):5.CrossRefPubMed Palatyńska-Ulatowska A, et al. The pulp stones: morphological analysis in scanning electron microscopy and spectroscopic chemical quantification. Medicina (Kaunas). 2021;58(1):5.CrossRefPubMed
22.
go back to reference Alwazzan MJ, Ismael MA, Ahmed AN. A hybrid algorithm to enhance colour retinal fundus images using a wiener filter and CLAHE. J Digit Imaging. 2021;34(3):750–9.CrossRefPubMedPubMedCentral Alwazzan MJ, Ismael MA, Ahmed AN. A hybrid algorithm to enhance colour retinal fundus images using a wiener filter and CLAHE. J Digit Imaging. 2021;34(3):750–9.CrossRefPubMedPubMedCentral
23.
go back to reference Qassim HM, Basheer NM, Farhan MN. Brightness preserving enhancement for dental digital X-ray images based on entropy and histogram analysis. J Appl Sci Eng. 2019;22(1):187–94. Qassim HM, Basheer NM, Farhan MN. Brightness preserving enhancement for dental digital X-ray images based on entropy and histogram analysis. J Appl Sci Eng. 2019;22(1):187–94.
24.
go back to reference ElSayed A, Yousef WA, Matlab vs. OpenCV: a comparative study of different machine learning algorithms. ArXiv, 2019. abs/1905.01213. ElSayed A, Yousef WA, Matlab vs. OpenCV: a comparative study of different machine learning algorithms. ArXiv, 2019. abs/1905.01213.
25.
go back to reference Soltani P, et al. Application of fractal analysis in detecting trabecular bone changes in periapical radiograph of patients with periodontitis. Int J Dent. 2021;2021:3221448.CrossRefPubMedPubMedCentral Soltani P, et al. Application of fractal analysis in detecting trabecular bone changes in periapical radiograph of patients with periodontitis. Int J Dent. 2021;2021:3221448.CrossRefPubMedPubMedCentral
26.
go back to reference Coşgunarslan A, et al. The evaluation of the mandibular bone structure changes related to lactation with fractal analysis. Oral Radiol. 2020;36(3):238–47.CrossRefPubMed Coşgunarslan A, et al. The evaluation of the mandibular bone structure changes related to lactation with fractal analysis. Oral Radiol. 2020;36(3):238–47.CrossRefPubMed
27.
go back to reference Meier AW, et al. Interpretation of chemically created periapical lesions using direct digital imaging. J Endod. 1996;22(10):516–20.CrossRefPubMed Meier AW, et al. Interpretation of chemically created periapical lesions using direct digital imaging. J Endod. 1996;22(10):516–20.CrossRefPubMed
28.
go back to reference Rahmi-Fajrin H, et al. Dental radiography image enhancement for treatment evaluation through digital image processing. J Clin Exp Dent. 2018;10(7):e629–34.PubMedPubMedCentral Rahmi-Fajrin H, et al. Dental radiography image enhancement for treatment evaluation through digital image processing. J Clin Exp Dent. 2018;10(7):e629–34.PubMedPubMedCentral
29.
go back to reference Mehdizadeh M, Dolatyar S. Study of effect of adaptive histogram equalization on image quality in digital preapical image in pre apex area. Res J Biol Sci. 2009;4(8):922–4. Mehdizadeh M, Dolatyar S. Study of effect of adaptive histogram equalization on image quality in digital preapical image in pre apex area. Res J Biol Sci. 2009;4(8):922–4.
Metadata
Title
Evaluation of histogram equalization and contrast limited adaptive histogram equalization effect on image quality and fractal dimensions of digital periapical radiographs
Authors
Mojdeh Mehdizadeh
Kioumars Tavakoli Tafti
Parisa Soltani
Publication date
08-09-2022
Publisher
Springer Nature Singapore
Keyword
Dentistry
Published in
Oral Radiology / Issue 2/2023
Print ISSN: 0911-6028
Electronic ISSN: 1613-9674
DOI
https://doi.org/10.1007/s11282-022-00654-7

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