Related Experiment Video
Updated: Mar 5, 2026

Use of 3D Robotic Ultrasound for In Vivo Analysis of Mouse Kidneys
Published on: August 12, 2021
A step-by-step regressed pediatric kidney depth formula validated by a reasonable index
Si Hongwei1, Chen Yingmao, Li Li
1Department of Nuclear Medicine, The First Hospital of Shanxi Medical University, Taiyuan, Shanxi Province Department of Nuclear Medicine, Chinese PLA General Hospital, Beijing Department of Nuclear Medicine, The First Affiliated Hospital of Anhui Medical University, Hefei, Anhui Province, China.
Insights
A new formula accurately predicts pediatric kidney depth, showing improved precision and accuracy over existing methods. This advancement is crucial for reliable pediatric kidney measurements.
Area of Science:
- Pediatric Nephrology
- Medical Imaging Analysis
- Biostatistics
Background:
- Accurate pediatric kidney depth prediction is essential for clinical assessment.
- Existing formulas often lack sufficient precision and accuracy for pediatric populations.
- Error range analysis is critical for evaluating predictive models.
Purpose of the Study:
- To develop and validate a novel formula for predicting pediatric kidney depth.
- To evaluate the accuracy and precision of the new formula against established methods.
- To assess the proportion of estimates within a narrow range (P5mm) as a key performance indicator.
Main Methods:
- Nonlinear and Passing & Bablok regression analyses were used to develop the formula.
- Children aged 1-19 years were randomly assigned to training (Group A) and validation (Group B) cohorts.
- Accuracy was assessed using bias, absolute bias, and P5mm; precision was evaluated by correlation coefficient and root-mean-square error.
Main Results:
- The developed formula demonstrated significantly improved accuracy and precision compared to existing formulas.
- The proportion of estimates within -5 to 5mm (P5mm) for the new formula reached approximately 60% for both left and right kidneys.
- In children younger than 10 years, P5mm exceeded 70% for both kidneys, indicating high accuracy in this subgroup.
Conclusions:
- A step-by-step regressed formula offers superior accuracy and precision for pediatric kidney depth prediction.
- The developed formula is a valuable tool for clinical practice, outperforming traditional methods.
- The P5mm metric effectively quantifies the reliability of kidney depth estimation in children.
Abstract:
In predicting pediatric kidney depth, we are especially interested in that the errors of most estimates are within a narrow range. Therefore, this study was intended to use the proportion of estimates within a range of -5 to 5 mm (P5 mm) to evaluate the formulas and tried to regress a kidney depth formula for children. The enrolled children aged from 1 to 19 years were randomly sampled into group A and group B (75% and 25% of all recruits, respectively). Using data of the group A, the test formula was regressed by nonlinear regression and subsequently Passing & Bablok regression, and validated in group B. The Raynaud, Gordon, Tonnesen, Taylor, and the test formulas were evaluated in the 2 groups. Accuracy was evaluated by bias, absolute bias, and P5 mm; and precision was evaluated by correlation coefficient. In addition, root-mean square error was used as a mixed index for both accuracy and precision. Body weight, height, and age did not have significant differences between the 2 groups. In the nonlinear regression, coefficients of the formula (kidney depth = a × weight/height + b × age) from group A were in narrower 95% confidence intervals. After the Passing & Bablok regression, biases of left and right kidney estimates were significantly decreased. In the evaluation of formulas, the test formula was obviously better than other formulas mentioned above, and P5 mm for left and right kidneys was about 60%. Among children younger than 10 years, P5 mm was even more than 70% for left and right kidney depths. To predict pediatric kidney depth, accuracy and precision of a step-by-step regressed formula were better than the 4 "standard" formulas.
More Related Videos
10:38Observational Study Protocol for Repeated Clinical Examination and Critical Care Ultrasonography Within the Simple Intensive Care Studies
Published on: January 16, 2019
06:38Early Detection of Drug-Induced Renal Hemodynamic Dysfunction Using Sonographic Technology in Rats
Published on: March 11, 2016
Related Concept Videos
Drug Dosing in Renal Diseases: Estimation of Glomerular Filtration Rate Based on Serum Creatinine Concentration
Determination of Renal Drug Clearance: Graphical and Midpoint Methods
The graphical method involves plotting the rate of drug excretion in urine against the plasma drug concentration. By analyzing the graph, the clearance can be calculated and obtained. Drugs rapidly excreted by the kidneys exhibit a...
Drug Dosing in Renal Diseases: Measurement of Glomerular Filtration Rate
Acute Kidney Injury IV: Diagnostic Studies and Prevention
One-Compartment Open Model: Urinary Excretion Data and Determination of k
Kidney Structure