Hadlock Formula Calculator- Free Fetal Weight Estimation Tool

Hadlock Formula Calculator – Free Fetal Weight Estimation Tool | Super-Calculator.com

Hadlock Formula Calculator

Calculate estimated fetal weight from ultrasound biometric measurements using all four Hadlock formula variants. Enter biparietal diameter (BPD), head circumference (HC), abdominal circumference (AC), and femur length (FL) to compute EFW in grams, compare results across Hadlock I through IV, and view percentile-based growth classification including SGA, AGA, and LGA indicators with 95% confidence intervals.

Important Medical Disclaimer

This calculator is provided for informational and educational purposes only. It is not intended to replace professional medical advice, diagnosis, or treatment. Always consult with a qualified healthcare professional before making any medical decisions. The results from this calculator should be used as a reference guide only and not as the sole basis for clinical decisions.

Select Hadlock Formula Variant
Hadlock I (AC, FL)
Hadlock II (BPD, AC, FL)
Hadlock III (HC, AC, FL)
Hadlock IV (All)
Measurement Units: cm
mm
Gestational Age30w 0d
14 weeks42 weeks
0 days6 days
Biparietal Diameter (BPD)7.8 cm
2.0 cm11.0 cm
Head Circumference (HC)28.5 cm
8.0 cm40.0 cm
Abdominal Circumference (AC)26.0 cm
8.0 cm42.0 cm
Femur Length (FL)5.8 cm
1.0 cm9.0 cm
Hadlock Formula Measurement Protocol: All measurements should be entered in centimeters (or toggle to millimeters). BPD is measured outer-to-outer on the transthalamic axial plane. HC is measured by ellipse around the outer skull border. AC is measured at the level of the umbilical vein entering the liver. FL is measured from the greater trochanter to the distal metaphysis. Hadlock III (HC, AC, FL) is the most widely validated formula, recommended by INTERGROWTH-21st based on systematic review evidence.
Estimated Fetal Weight (Hadlock I)
1,559 g
3 lbs 7 oz
Weight Percentile
50th
Growth Classification
AGA
95% Confidence Interval
1,325 – 1,793 g
Formula Accuracy (SD)
8.2%
Where the Estimated Weight Falls on the Percentile Range
50th Percentile – AGA
SGA
Low
Normal
High
LGA
0th percentile 10th 25th 50th 75th 90th 100th percentile
Normal Growth Estimated weight is appropriate for gestational age (AGA). The weight falls within the normal range between the 10th and 90th percentiles.
Hadlock Formula Comparison – All Four Variants
Hadlock I
AC + FL
1,559 g
3 lbs 7 oz
50th Percentile
SD: 8.2%
Hadlock II
BPD + AC + FL
— g
SD: 7.7%
Hadlock III
HC + AC + FL
— g
SD: 7.6%
Hadlock IV
BPD + HC + AC + FL
— g
SD: 7.5%
Formula Comparison Summary
Weight Range Across Available Formulas
Maximum Difference Between Formulas
Average Estimate Across Formulas
Formula Agreement on Classification
Gestational Age (Weeks)3rd Percentile (g)10th Percentile (g)50th Percentile (g)90th Percentile (g)97th Percentile (g)
FormulaParametersEquationSD (%)95% CI
Hadlock IAC, FLlog10(EFW) = 1.304 + 0.05281*AC + 0.1938*FL – 0.004*AC*FL8.2%+/- 16%
Hadlock IIBPD, AC, FLlog10(EFW) = 1.335 – 0.0034*AC*FL + 0.0316*BPD + 0.0457*AC + 0.1623*FL7.7%+/- 15%
Hadlock IIIHC, AC, FLlog10(EFW) = 1.326 – 0.00326*AC*FL + 0.0107*HC + 0.0438*AC + 0.158*FL7.6%+/- 15%
Hadlock IVBPD, HC, AC, FLlog10(EFW) = 1.3596 – 0.00386*AC*FL + 0.0064*HC + 0.00061*BPD*AC + 0.0424*AC + 0.174*FL7.5%+/- 15%

All measurements in centimeters. EFW = 10^(log10 value) in grams. Hadlock III is recommended by INTERGROWTH-21st (2020) based on systematic review evidence. Source: Hadlock FP et al. Am J Obstet Gynecol. 1985;151:333-337.

Important Medical Disclaimer

This calculator is provided for informational and educational purposes only. It is not intended to replace professional medical advice, diagnosis, or treatment. Always consult with a qualified healthcare professional before making any medical decisions. The results from this calculator should be used as a reference guide only and not as the sole basis for clinical decisions.

About This Hadlock Formula Fetal Weight Estimation Calculator

This Hadlock formula calculator is designed for expectant parents, medical students, healthcare providers, and anyone seeking to understand estimated fetal weight from ultrasound biometric measurements. It computes estimated fetal weight (EFW) in grams using all four published Hadlock equations (Hadlock I through IV) based on combinations of biparietal diameter (BPD), head circumference (HC), abdominal circumference (AC), and femur length (FL) entered in centimeters or millimeters.

The calculator applies the original Hadlock regression coefficients published in the American Journal of Obstetrics and Gynecology (1985) and follows the recommendation of INTERGROWTH-21st and multiple systematic reviews that identify Hadlock III (HC, AC, FL) as the formula with the lowest estimation error. Percentile classification uses the Hadlock fetal growth standard (1991) to determine SGA (below 10th percentile), AGA (10th to 90th percentile), and LGA (above 90th percentile) status at each gestational age.

The side-by-side formula comparison allows users to see how different Hadlock variants produce slightly different weight estimates from the same measurements, with horizontal percentile range bars and color-coded growth classification making results easy to interpret. The calculator also displays the 95% confidence interval for each estimate, providing transparency about the inherent uncertainty in ultrasound-based fetal weight estimation. All calculations run instantly in the browser with no data stored or transmitted.

Hadlock Formula Calculator: Complete Guide to Ultrasound Fetal Weight Estimation

Accurate estimation of fetal weight during pregnancy is one of the most important aspects of modern prenatal care. The Hadlock formula, developed by Dr. Frank P. Hadlock and colleagues in the 1980s, remains the most widely used and clinically validated method for estimating fetal weight from ultrasound biometric measurements. This comprehensive guide explores all four Hadlock formula variants, explains the biometric parameters involved, discusses clinical interpretation, and provides evidence-based context for understanding your ultrasound results.

Whether you are an expectant parent trying to understand your prenatal ultrasound report, a medical student learning fetal biometry, or a healthcare provider looking for a quick reference tool, this Hadlock fetal weight estimation calculator and guide will help you interpret estimated fetal weight (EFW) values and understand the science behind these widely used obstetric formulas.

What Is the Hadlock Formula?

The Hadlock formula is a set of regression equations that use ultrasound measurements of a fetus to estimate its weight in utero. Published originally by Frank P. Hadlock, R.B. Harrist, R.S. Sharman, R.L. Deter, and S.K. Park in the American Journal of Obstetrics and Gynecology in 1985, these formulas use various combinations of four key biometric parameters: biparietal diameter (BPD), head circumference (HC), abdominal circumference (AC), and femur length (FL).

The Hadlock group developed at least seven regression models using different combinations of fetal parameters. Among these, four have become widely used in clinical practice. All four formulas express the logarithm (base 10) of estimated fetal weight as a linear combination of the biometric measurements. The estimated fetal weight is then obtained by raising 10 to the power of the computed value, giving the result in grams when the input measurements are in centimeters.

A systematic review of fetal weight estimation formulas found that the Hadlock three-parameter formula using HC, AC, and FL (often called Hadlock III or Hadlock C) is associated with the lowest estimation error and is recommended by INTERGROWTH-21st, one of the leading international fetal growth monitoring projects. However, all four Hadlock variants remain in clinical use, and the choice of formula often depends on which measurements can be reliably obtained during an ultrasound examination.

Hadlock Formula I (AC, FL) - Two Parameters
log10(EFW) = 1.304 + 0.05281 x AC + 0.1938 x FL - 0.004 x AC x FL
Uses abdominal circumference and femur length only. Standard deviation: 8.2%. Useful when head measurements are difficult to obtain.
Hadlock Formula II (BPD, AC, FL) - Three Parameters
log10(EFW) = 1.335 - 0.0034 x AC x FL + 0.0316 x BPD + 0.0457 x AC + 0.1623 x FL
Adds biparietal diameter. Standard deviation: 7.7%. Good alternative when head circumference is hard to trace accurately.
Hadlock Formula III (HC, AC, FL) - Three Parameters
log10(EFW) = 1.326 - 0.00326 x AC x FL + 0.0107 x HC + 0.0438 x AC + 0.158 x FL
Most widely validated and commonly recommended formula. Standard deviation: 7.6%. Recommended by INTERGROWTH-21st and multiple systematic reviews.
Hadlock Formula IV (BPD, HC, AC, FL) - Four Parameters
log10(EFW) = 1.3596 - 0.00386 x AC x FL + 0.0064 x HC + 0.00061 x BPD x AC + 0.0424 x AC + 0.174 x FL
Uses all four biometric parameters. Standard deviation: 7.5%. Slightly more precise but requires all measurements to be reliable.

Understanding Fetal Biometric Parameters

The accuracy of any fetal weight estimation depends heavily on the quality of the ultrasound measurements used as inputs. Each biometric parameter captures a different aspect of fetal size and development. Understanding what each parameter measures helps explain why different combinations produce slightly different weight estimates.

Biparietal Diameter (BPD)

The biparietal diameter measures the distance across the widest part of the fetal skull, from one parietal bone to the other. It is measured on an axial section of the fetal head at the level of the thalami and the cavum septi pellucidi. Two measurement methods exist: outer-to-outer and outer-to-inner caliper placement. The method used should match the reference chart being applied. BPD is one of the earliest parameters used for gestational dating and remains useful throughout pregnancy, though its accuracy for dating decreases after the first trimester.

Head Circumference (HC)

Head circumference is measured by tracing an ellipse around the outer border of the fetal skull on the same axial plane used for BPD measurement. HC is considered more reliable than BPD for assessing head size because it accounts for variations in head shape. Some fetal heads may be more oval (dolichocephalic) or rounder (brachycephalic), which affects BPD but not HC. The head circumference is particularly important in the Hadlock III formula, which multiple systematic reviews have found to produce the most accurate weight estimates.

Abdominal Circumference (AC)

The abdominal circumference is the single most important measurement for fetal weight estimation and growth assessment. It is measured on a cross-sectional image of the fetal abdomen at the level where the umbilical vein enters the liver, showing the stomach bubble and a short segment of the umbilical vein. AC reflects the size of the fetal liver and subcutaneous fat, which are directly related to fetal nutritional status and weight. All four Hadlock formulas include AC, underscoring its critical importance. Research has shown that AC alone can predict fetal growth restriction better than estimated fetal weight in the third trimester.

Femur Length (FL)

Femur length measures the length of the fetal thighbone diaphysis (shaft). It is measured from the greater trochanter to the distal metaphysis, excluding the femoral head epiphysis. FL is a useful indicator of skeletal growth and gestational age. In fetal weight estimation, it serves as a proxy for fetal body length. An isolated short femur in the mid-trimester, in the absence of chromosomal abnormalities or skeletal dysplasias, has been associated with increased risk of fetal growth restriction and preterm birth.

How the Hadlock Formulas Were Developed

The Hadlock fetal weight estimation formulas were developed at Jefferson Davis Hospital in Houston, Texas, using regression analysis on ultrasound measurements from a study population of fetuses examined within one week of delivery. The original 1984 publication presented preliminary models, and the 1985 landmark paper by Hadlock, Harrist, Sharman, Deter, and Park in the American Journal of Obstetrics and Gynecology confirmed and expanded these models using an expanded sample of 276 fetuses.

The researchers measured BPD, HC, AC, and FL for each fetus and then compared the predicted weights against actual birth weights. They tested various combinations of these measurements and selected the models with the best statistical fit. The key finding was that models incorporating three or more parameters, particularly those including a measure of head size, abdominal size, and femur length, produced significantly better weight estimates than two-parameter models using only head and abdomen measurements. The standard deviation of the best three-parameter model (HC, AC, FL) was approximately 7.6%, meaning that about 68% of estimated weights fell within 7.6% of the actual birth weight.

Comparing the Four Hadlock Formula Variants

While all four Hadlock formulas are validated and clinically useful, they have distinct characteristics that make them more or less suitable for different clinical situations.

Hadlock I (AC + FL) is the simplest formula, using only two parameters. It is most useful when fetal head measurements cannot be reliably obtained, such as when the head is deeply engaged in the pelvis or in cases of significant head molding during labor. Its standard deviation of 8.2% makes it slightly less precise than the three-parameter formulas, but it provides a reasonable estimate when options are limited.

Hadlock II (BPD + AC + FL) adds the biparietal diameter to the equation. With a standard deviation of 7.7%, it offers improved accuracy over the two-parameter model. This formula is useful when the head circumference is difficult to trace accurately but a BPD measurement can be obtained.

Hadlock III (HC + AC + FL) is the most widely validated formula and is recommended by multiple international organizations including INTERGROWTH-21st. Its standard deviation of 7.6% is among the lowest of any fetal weight estimation formula. The use of head circumference rather than BPD provides more consistent results across different head shapes.

Hadlock IV (BPD + HC + AC + FL) incorporates all four biometric parameters. While it has the lowest standard deviation at 7.5%, the improvement over Hadlock III is minimal, and the formula requires all four measurements to be accurate. In practice, the small gain in precision may not justify the additional measurement when one of the head parameters is unreliable.

Key Point: Formula Selection in Clinical Practice

Hadlock III (HC + AC + FL) is the most commonly recommended formula due to its combination of accuracy and practical reliability. However, the choice of formula should depend on which measurements can be most reliably obtained during the ultrasound examination. A perfectly measured two-parameter formula will outperform a poorly measured four-parameter one.

Accuracy and Limitations of Hadlock Formulas

Understanding the accuracy and limitations of fetal weight estimation is essential for proper clinical interpretation. No ultrasound-based formula can perfectly predict actual birth weight. The accepted clinical margin of error is plus or minus 15%, meaning that 95% of actual birth weights are expected to fall within 15% of the estimated weight for the best Hadlock formulas.

Several factors influence the accuracy of Hadlock formula estimates. Measurement technique and operator experience significantly impact results, as even small errors in biometric measurements can compound in the weight calculation. The quality and resolution of the ultrasound equipment also play a role. Biological variation is another important factor, as fetuses with the same biometric measurements may have different body compositions and thus different actual weights.

The accuracy of Hadlock formulas tends to decrease at the extremes of birth weight. Studies consistently show that the highest random errors occur in the macrosomic group (fetuses estimated to weigh more than 4,000 grams). In cases of suspected macrosomia, the formulas tend to overestimate weight, while in pregnancies with suspected fetal growth restriction, they may underestimate weight. Mean percentage error across populations ranges from approximately minus 6.9% to 22.2%, highlighting the wide confidence intervals inherent in ultrasound weight estimation.

Key Point: Understanding Estimation Error

A reported estimated fetal weight of 3,000 grams with the Hadlock III formula means the actual weight is likely between 2,550 and 3,450 grams (within the 15% margin of error). This inherent uncertainty should be considered when making clinical decisions based on estimated fetal weight alone.

Clinical Applications of Fetal Weight Estimation

Estimated fetal weight derived from Hadlock formulas plays a central role in several areas of obstetric management. The primary applications include screening for fetal growth disorders, planning the timing and mode of delivery, and counseling parents about expected birth weight and potential neonatal outcomes.

Fetal growth restriction (FGR), previously known as intrauterine growth restriction (IUGR), is typically defined as an estimated fetal weight below the 10th percentile for gestational age. Identifying growth-restricted fetuses is clinically important because FGR is associated with increased risks of stillbirth, neonatal morbidity, and long-term developmental problems. The American College of Obstetricians and Gynecologists (ACOG) and the Royal College of Obstetricians and Gynaecologists (RCOG) both use EFW thresholds for screening and management of FGR.

Large for gestational age (LGA) fetuses, generally defined as those with an EFW above the 90th percentile, are at increased risk for birth complications including shoulder dystocia, birth trauma, and the need for cesarean delivery. Identifying LGA fetuses allows providers to plan appropriate delivery management and discuss potential risks with families.

In preterm pregnancies where delivery may be necessary, EFW informs decisions about the timing of delivery, the use of antenatal corticosteroids, and the level of neonatal care required. For very preterm infants, the estimated weight helps neonatologists prepare for resuscitation and initial management, communicate prognosis to parents, and plan appropriate interventions.

Fetal Weight Percentiles and Growth Charts

Once the estimated fetal weight is calculated, it is typically plotted against gestational age on a growth chart to determine the weight percentile. Multiple growth standards are available, and the choice of growth chart can significantly affect the classification of fetal size. The same EFW value may place a fetus at the 8th percentile on one chart (classified as small for gestational age) and the 15th percentile on another (classified as appropriate for gestational age).

Major fetal growth standards include the Hadlock fetal growth curves (1991), the INTERGROWTH-21st international standards (2014, updated 2020), the WHO fetal growth charts (2017), and the NICHD Fetal Growth Studies charts (2015). Each was derived from different populations using different methodologies. The INTERGROWTH-21st standards, for example, were developed from a multinational cohort of 8 countries, enrolling only low-risk pregnancies meeting strict health and nutritional criteria. In contrast, the NICHD charts were developed from a United States cohort with race and ethnicity-specific curves.

An important consideration is that Hadlock-derived fetal weights tend to be higher than neonatal birth weight curves at similar gestational ages, particularly before 37 weeks. This discrepancy exists because fetal growth restriction is overrepresented in premature deliveries, as preterm infants are known to be somewhat smaller on average than fetuses of the same gestational age who remain in utero. Therefore, using birth weight charts to evaluate EFW may miss some cases of growth restriction in preterm pregnancies.

Validation Across Diverse Populations

The original Hadlock formulas were developed from a predominantly North American population in Houston, Texas. Since their publication, extensive research has evaluated their performance across diverse ethnic populations worldwide. This validation work is critically important because fetal size and growth patterns can vary among different ethnic and geographic groups.

Studies conducted across North America, Europe, Asia, Australia, Africa, and other regions have generally confirmed that the Hadlock formulas provide reasonable weight estimates across populations, though performance varies. Some research suggests that the Hadlock formulas may overestimate fetal weight in certain East Asian populations and underestimate weight in some South Asian populations. In extremely preterm or growth-restricted pregnancies, accuracy across all populations tends to decrease.

The INTERGROWTH-21st project, which validated the Hadlock III formula in an international cohort from 8 countries (Brazil, China, India, Italy, Kenya, Oman, United Kingdom, and United States), found it to be the most accurate formula overall based on systematic review evidence. This multinational validation strengthens the case for the Hadlock III formula as a global standard for fetal weight estimation.

Healthcare providers should be aware that no single formula performs equally well in all populations and clinical contexts. When population-specific fetal weight estimation formulas or growth charts are available and locally validated, they may provide more accurate results than universal formulas. The use of customized fetal growth charts that adjust for maternal characteristics such as height, weight, ethnicity, and parity has been proposed as a way to improve the precision of fetal growth evaluation.

Regional Variations and Alternative Calculators

While the Hadlock formulas are the most widely used globally, several alternative fetal weight estimation methods exist. The Shepard formula (1982) uses only BPD and AC and was one of the earliest widely adopted formulas. It tends to overestimate weight at higher birth weights. The INTERGROWTH-21st formula (2017) uses HC and AC without femur length and was developed specifically as part of an international growth monitoring framework.

In the United Kingdom, the GROW (Gestation Related Optimal Weight) system and customized growth charts are widely used. The European SCORE system and various national guidelines may recommend specific formulas or growth standards. In Australia, the Hadlock HC/AC/FL formula is recommended by the Australasian Society for Ultrasound in Medicine (ASUM).

The Faschingbauer formula was specifically developed for fetuses with congenital diaphragmatic hernia, where the standard Hadlock formulas tend to underestimate weight due to the altered abdominal anatomy. This illustrates an important principle: specialized populations may require modified estimation approaches.

For very preterm or very low birth weight fetuses, some centers use formulas specifically validated in this weight range, as the standard Hadlock formulas may perform differently at the extremes of fetal size.

Understanding Your Ultrasound Report

Prenatal ultrasound reports typically include the individual biometric measurements (BPD, HC, AC, FL), the estimated fetal weight calculated from these measurements, and the corresponding percentile based on the gestational age. Understanding how to read these values can help expectant parents engage more meaningfully with their prenatal care.

The measurements are usually reported in centimeters or millimeters. If your report shows values in millimeters, remember that most Hadlock formula implementations expect centimeters as input. To convert, simply divide the millimeter value by 10. For example, an HC of 320 mm equals 32.0 cm.

The estimated fetal weight is typically reported in grams. For reference, 1,000 grams equals approximately 2.2 pounds. A full-term baby typically weighs between 2,500 and 4,000 grams (5.5 to 8.8 pounds). The percentile indicates where your baby falls relative to other fetuses at the same gestational age. For instance, a 50th percentile means your baby is of average size, while a 25th percentile means your baby weighs more than 25% of fetuses at the same gestational age.

It is important to remember that a single measurement gives a snapshot of fetal size, not growth. Growth assessment requires at least two measurements separated by two to three weeks. A fetus that has been tracking along the 20th percentile throughout pregnancy is likely normally grown at a smaller size, while a fetus that drops from the 60th to the 15th percentile may be experiencing growth restriction even though the weight is still technically above the 10th percentile threshold.

Key Point: Single Measurement vs. Growth Trend

A single estimated fetal weight measurement shows size at one moment in time. True growth assessment requires serial measurements over time. A consistent percentile track, even at the lower end, is generally more reassuring than a declining trend from higher percentiles.

When to Seek Professional Advice

While this calculator provides a useful reference tool for understanding fetal weight estimation, it is essential to remember that clinical decisions should never be based on calculator results alone. There are several situations where professional medical advice is particularly important.

If the estimated fetal weight falls below the 10th percentile for gestational age, your healthcare provider may recommend additional monitoring including serial growth scans, Doppler blood flow studies of the umbilical artery, and increased fetal surveillance. If the estimated weight is above the 90th percentile, particularly in pregnancies complicated by gestational diabetes, your provider may discuss implications for delivery planning.

Any significant discrepancy between the estimated weight from your ultrasound report and the result from this calculator should be discussed with your healthcare provider. Differences may arise from variations in measurement technique, the formula used by your ultrasound machine, or differences in how the measurements were taken.

Estimated fetal weight should always be interpreted in the broader clinical context, including maternal health conditions, gestational age, amniotic fluid volume, placental function, and the overall pattern of fetal growth. No single number can capture the full picture of fetal wellbeing.

Measurement Units and Conversion

Different healthcare systems and ultrasound machines may report biometric measurements in different units. The Hadlock formulas were originally published with measurements in centimeters and produce weight estimates in grams. This calculator accepts measurements in centimeters by default but also provides a millimeter input option for convenience.

For weight conversion: 1 kilogram equals 1,000 grams, and 1 pound equals approximately 453.6 grams. The calculator displays results in both grams and pounds/ounces for convenience. When comparing results with your ultrasound report, ensure you are using consistent units to avoid errors.

Limitations of Ultrasound-Based Fetal Weight Estimation

While the Hadlock formulas represent the best available non-invasive method for estimating fetal weight, several important limitations should be understood. First, the formulas assume standard fetal body proportions. In conditions where body proportions are altered, such as congenital diaphragmatic hernia, skeletal dysplasias, or severe hydrops, the estimates may be significantly inaccurate.

Second, the formulas were derived from populations with specific characteristics and may not perform equally well in all ethnic groups or clinical settings. Third, the accuracy decreases at the extremes of fetal weight, with larger errors in very small and very large fetuses. Fourth, the time interval between the ultrasound measurement and actual delivery affects the comparison between estimated and actual birth weight, as the fetus continues to grow approximately 185 grams per week in the late third trimester.

Fifth, biological variation means that two fetuses with identical biometric measurements may have different actual weights due to differences in body composition, such as varying amounts of subcutaneous fat. Finally, ultrasound measurement error compounds through the formula, so even small measurement inaccuracies can lead to meaningful differences in estimated weight. Studies report inter-observer error ranges of 1.3% to 3.1% and intra-observer error ranges of 1.1% to 1.9% for individual biometric parameters.

Key Point: Clinical Decision Making

Estimated fetal weight is one tool among many in obstetric assessment. Neonatal outcomes are best predicted by multivariable models that incorporate gestational age, fetal biometry, Doppler indices, and maternal factors, rather than by estimated weight alone. Always consult with qualified healthcare professionals when interpreting fetal growth data.

History and Evolution of Fetal Weight Estimation

The quest to estimate fetal weight before birth has a rich history spanning several decades. Before the advent of ultrasound, clinicians relied on physical examination techniques such as fundal height measurement and abdominal palpation (Leopold maneuvers) to estimate fetal size. While these methods remain part of routine prenatal care, they are less accurate than ultrasound-based estimation, particularly at the extremes of fetal weight.

Early ultrasound-based weight estimation formulas appeared in the late 1970s, with Warsof and colleagues publishing a computer-assisted analysis in 1977. Campbell and Wilkin developed a formula using abdominal circumference alone, though it had a relatively wide confidence interval. Shepard and colleagues published their BPD and AC formula in 1982, which became one of the first widely adopted ultrasound weight estimation methods.

The Hadlock formulas, published in 1984 and 1985, represented a major advance by demonstrating that incorporating femur length alongside head and abdominal measurements significantly improved estimation accuracy. These formulas have stood the test of time, remaining the most commonly used fetal weight estimation method worldwide for over four decades. More recent developments include the INTERGROWTH-21st project's adoption and international validation of the Hadlock III formula, and the development of 3D ultrasound-based approaches using fractional limb volume measurements, which show promise for improved accuracy.

Frequently Asked Questions

What is the Hadlock formula used for in pregnancy?
The Hadlock formula is used to estimate fetal weight during pregnancy based on ultrasound measurements. It combines biometric parameters such as biparietal diameter (BPD), head circumference (HC), abdominal circumference (AC), and femur length (FL) to calculate an estimated fetal weight in grams. This estimation helps healthcare providers monitor fetal growth, screen for growth disorders, plan delivery timing and mode, and counsel families about expected birth outcomes.
How accurate is the Hadlock formula for estimating fetal weight?
The best Hadlock formulas (Hadlock III and IV) have a standard deviation of approximately 7.5% to 7.6%, meaning that about 68% of estimated weights will be within this range of the actual birth weight. The 95% confidence interval is approximately plus or minus 15%, so 95% of actual birth weights are expected to fall within 15% of the estimated weight. Accuracy tends to decrease for very large or very small fetuses, and also depends on the quality of the ultrasound measurements and the time interval between measurement and delivery.
Which Hadlock formula is the most accurate?
Hadlock Formula III (using HC, AC, and FL) is the most widely recommended and validated formula. Multiple systematic reviews and the INTERGROWTH-21st project have found it to have the lowest overall estimation error. While Hadlock IV (BPD, HC, AC, FL) has a slightly lower standard deviation (7.5% vs. 7.6%), the practical improvement is minimal, and requiring all four accurate measurements can be difficult. Hadlock III offers the best balance of accuracy and clinical practicality.
What do BPD, HC, AC, and FL mean on my ultrasound report?
BPD stands for biparietal diameter, the distance across the widest part of the fetal skull. HC is head circumference, measured around the outer edge of the skull. AC is abdominal circumference, measured around the fetal abdomen at the level of the liver. FL is femur length, the length of the fetal thighbone. These four measurements are the standard biometric parameters used in prenatal ultrasound to assess fetal size, estimate weight, and monitor growth throughout pregnancy.
How do I convert my ultrasound measurements from millimeters to centimeters?
To convert millimeters to centimeters, divide the value by 10. For example, if your ultrasound report shows a head circumference of 320 mm, the equivalent in centimeters is 32.0 cm. Most Hadlock formula calculators and implementations expect measurements in centimeters. Check whether your ultrasound report uses millimeters or centimeters before entering values into a calculator to ensure accurate results.
Can the Hadlock formula predict the exact birth weight of my baby?
No, the Hadlock formula provides an estimate, not an exact prediction. Due to biological variation, measurement limitations, and the inherent uncertainty of regression-based estimation, the actual birth weight may differ from the estimated weight by up to 15% or more. The estimate should be used as a guide for clinical decision-making and growth monitoring, not as a definitive prediction of birth weight. Factors such as timing of measurement relative to delivery and fetal body composition contribute to this variability.
What is considered small for gestational age (SGA)?
Small for gestational age is generally defined as an estimated fetal weight or birth weight below the 10th percentile for gestational age. However, some researchers and organizations have proposed the 15th percentile as a more optimal cutoff. An SGA classification does not necessarily mean the fetus is growth restricted, as constitutionally small but healthy fetuses may fall below this threshold. Conversely, a fetus whose growth trajectory is declining may be growth restricted even if the weight is still above the 10th percentile.
What is considered large for gestational age (LGA)?
Large for gestational age is typically defined as an estimated fetal weight or birth weight at or above the 90th percentile for gestational age. Some definitions use the 97th percentile as a more stringent cutoff. LGA fetuses are at increased risk for birth complications including shoulder dystocia, birth trauma, and the need for operative delivery. LGA is more common in pregnancies complicated by gestational diabetes, maternal obesity, or post-term pregnancy. Not all LGA babies experience complications, and clinical management depends on multiple factors.
Why do different ultrasound machines give different estimated fetal weights?
Different ultrasound machines may use different Hadlock formula variants or entirely different estimation formulas. Additionally, measurement technique, operator experience, fetal position, and amniotic fluid volume can all affect the biometric measurements obtained. The choice of growth chart used to determine percentiles adds another source of variation. A difference of even 1-2 mm in the abdominal circumference measurement can change the estimated weight by 50 grams or more at term.
How often should fetal weight be estimated during pregnancy?
In uncomplicated pregnancies, fetal biometry is typically assessed at routine ultrasound examinations, commonly at the anatomy scan around 18-22 weeks and again in the third trimester if clinically indicated. In high-risk pregnancies with concerns about fetal growth, serial growth scans are usually performed every 2-4 weeks. Measurements taken less than 2 weeks apart may not show meaningful growth and can lead to unnecessary intervention.
Does the Hadlock formula work for twin pregnancies?
The Hadlock formulas can be applied to individual fetuses in a twin pregnancy, but the interpretation of results differs. Twin fetuses tend to be smaller on average than singletons at the same gestational age, particularly in the third trimester. Using singleton growth charts for twins may overestimate the rate of growth restriction. Twin-specific growth references have been developed and may be more appropriate for monitoring twin pregnancies. The formulas themselves calculate weight the same way regardless of plurality.
What is the difference between estimated fetal weight and birth weight percentile?
Estimated fetal weight (EFW) is the weight of the fetus calculated from ultrasound measurements while still in utero. Birth weight is the actual weight measured after delivery. EFW percentiles are derived from fetal growth standards based on ultrasound data, while birth weight percentiles come from neonatal weight data. These two reference systems can give different percentile rankings for the same weight at the same gestational age, particularly in preterm pregnancies, because preterm births are enriched for growth restriction.
Can the Hadlock formula detect fetal growth restriction?
The Hadlock formula is a key tool for screening for fetal growth restriction (FGR), but it has limitations. An EFW below the 10th percentile is a common screening threshold for suspected FGR. However, some research suggests that the abdominal circumference alone may perform better than EFW for detecting late-onset FGR in the third trimester. Additionally, a falling growth trajectory may indicate FGR even when the EFW remains above the 10th percentile. FGR diagnosis typically involves additional assessments including Doppler studies and clinical evaluation.
What are the normal ranges for BPD, HC, AC, and FL at different gestational ages?
Normal ranges vary by gestational age and reference standard. As general guidelines: at 20 weeks, typical values are BPD 4.7 cm, HC 17.5 cm, AC 15.2 cm, FL 3.3 cm; at 30 weeks, typical values are BPD 7.8 cm, HC 28.5 cm, AC 26.0 cm, FL 5.8 cm; at 40 weeks, typical values are BPD 9.6 cm, HC 34.0 cm, AC 35.0 cm, FL 7.6 cm. These are approximate 50th percentile values and vary depending on the reference chart used. Your healthcare provider will assess your baby's measurements against appropriate reference standards.
Why does the Hadlock formula use logarithmic calculations?
The Hadlock formulas use a logarithmic (base 10) transformation of fetal weight because the relationship between biometric measurements and fetal weight is not linear. As a fetus grows, small changes in linear measurements correspond to increasingly larger changes in weight because weight is a three-dimensional (volume-based) property. The logarithmic transformation linearizes this relationship, allowing accurate regression modeling. The estimated weight in grams is obtained by raising 10 to the power of the computed logarithmic value.
Is the Hadlock formula more accurate than clinical estimation by palpation?
Yes, ultrasound-based estimation using the Hadlock formulas is generally more accurate than clinical estimation by palpation, particularly at the extremes of fetal weight. However, the difference in accuracy may be smaller than expected for average-sized fetuses. Studies have shown that experienced clinicians can estimate fetal weight within 10% of actual weight in about 60-70% of cases by palpation, compared to 70-85% using ultrasound. Ultrasound estimation is particularly superior for detecting very small or very large fetuses.
What happens if one of the measurements cannot be obtained during the ultrasound?
If one or more biometric measurements cannot be reliably obtained, a formula using the available measurements should be selected. For example, if head circumference cannot be measured due to the fetal position, Hadlock I (AC + FL) or Hadlock II (BPD + AC + FL) can be used instead of Hadlock III. The accuracy will be somewhat lower with fewer parameters, but a reliable two or three-parameter estimate is better than a four-parameter estimate based on inaccurate measurements.
How much does fetal weight change per week in the third trimester?
Fetal weight gain accelerates throughout pregnancy. In the early third trimester (28-32 weeks), fetuses typically gain approximately 150-200 grams per week. In the late third trimester (35-40 weeks), weight gain is approximately 185-200 grams per week, though this rate slows slightly near term. These estimates are averages, and individual growth rates vary. When adjusting estimated fetal weight for the time interval between ultrasound measurement and delivery, a commonly used estimate is 185 grams per week from 35 to 40 weeks of gestation.
Can the Hadlock formula be used in the first trimester?
The Hadlock fetal weight estimation formulas are not designed for use in the first trimester. In early pregnancy, fetal size is assessed primarily by crown-rump length (CRL), which is the most accurate parameter for gestational dating up to 14 weeks. The biometric parameters used in the Hadlock formulas (BPD, HC, AC, FL) become reliably measurable in the second trimester, and the formulas are validated for use from approximately 14-16 weeks onward, with the most common clinical application from 20 weeks to term.
What is the Shepard formula and how does it compare to Hadlock?
The Shepard formula, published in 1982, uses only biparietal diameter (BPD) and abdominal circumference (AC) to estimate fetal weight. While it was one of the earliest widely adopted formulas, it tends to have higher random error compared to the Hadlock three-parameter formulas, particularly at higher birth weights where it tends to overestimate. The Hadlock formulas, by incorporating femur length, generally provide more accurate and consistent estimates across different weight ranges.
What is the INTERGROWTH-21st formula and how does it relate to Hadlock?
The INTERGROWTH-21st project initially developed its own two-parameter formula for estimating fetal weight using head circumference and abdominal circumference. However, based on systematic review evidence showing that the Hadlock three-parameter formula (HC, AC, FL) produced lower estimation errors, INTERGROWTH-21st updated its EFW standards in 2020 to use the Hadlock III formula. This endorsement by a major international fetal growth monitoring project strongly supports the continued use of Hadlock III as a global standard.
Does maternal BMI affect the accuracy of the Hadlock formula?
Maternal body mass index can indirectly affect the accuracy of fetal weight estimation because increased maternal adipose tissue can reduce ultrasound image quality, making biometric measurements less precise. Some studies have shown that ultrasound estimation of fetal weight is less accurate in obese women compared to women of normal weight, primarily due to measurement difficulty rather than a flaw in the formula itself. Using the most easily measurable parameters and appropriate ultrasound techniques can help mitigate this limitation.
What should I do if my baby's estimated weight is in the 5th percentile?
An estimated fetal weight at the 5th percentile warrants clinical evaluation for possible fetal growth restriction. Your healthcare provider will likely recommend additional testing, which may include serial growth ultrasounds every 2-3 weeks, Doppler assessment of umbilical artery blood flow, assessment of amniotic fluid volume, and possibly non-stress testing. It is important to know that some babies are constitutionally small and healthy, while others may be growth restricted due to placental insufficiency or other causes. The clinical context and growth trajectory are important factors in determining management.
Can I use this calculator to replace my prenatal ultrasound?
No, this calculator is an educational and reference tool only. It cannot replace professional prenatal ultrasound examination. The calculator requires accurate biometric measurements that can only be obtained through properly performed ultrasound by trained healthcare professionals. Additionally, prenatal ultrasound provides much more information beyond fetal weight, including assessment of fetal anatomy, amniotic fluid, placental location, fetal position, and blood flow patterns. Always attend scheduled prenatal appointments and ultrasound examinations as recommended by your healthcare provider.
Why might my doctor use a different formula than the one on this calculator?
Different healthcare institutions and ultrasound machines may have different default formulas programmed. Your doctor may select a specific formula based on institutional protocols, local validation studies, available measurements, or clinical circumstances. Some centers may use population-specific formulas that have been locally validated and shown to perform better in their patient population. This is a normal part of clinical practice, and the differences between commonly used formulas are generally small for average-sized fetuses.
How does gestational diabetes affect fetal weight estimation?
Gestational diabetes can lead to fetal macrosomia (excessive growth), particularly causing disproportionate growth of the fetal abdomen due to increased fat deposition and liver glycogen storage. The Hadlock formulas may be less accurate in diabetic pregnancies because the fetal body proportions may differ from those in the original study population. The abdominal circumference tends to be disproportionately large relative to head and femur measurements. Despite these limitations, ultrasound estimation with Hadlock formulas remains the standard method for monitoring fetal growth in diabetic pregnancies.
What is the difference between fetal growth restriction and small for gestational age?
Small for gestational age (SGA) is a statistical definition based on size (typically below the 10th percentile), while fetal growth restriction (FGR) is a pathological condition where the fetus fails to reach its growth potential. Not all SGA fetuses are growth restricted, as some are constitutionally small but healthy. Conversely, a fetus may be growth restricted even if its weight is above the 10th percentile if its growth trajectory has declined significantly. FGR diagnosis often requires additional evidence such as abnormal Doppler findings, reduced amniotic fluid, or a falling growth trajectory.
At what gestational age is fetal weight estimation most accurate?
Fetal weight estimation using the Hadlock formulas tends to be most accurate between 20 and 36 weeks of gestation for absolute accuracy and in the late second trimester for relative accuracy (as a percentage of actual weight). In the early third trimester, the combination of adequate fetal size for reliable measurements and moderate total weight makes the percentage error relatively consistent. Accuracy tends to decrease near term when the fetus is large and measurement may be more difficult due to fetal position and engagement in the pelvis.
Can the Hadlock formula detect macrosomia?
The Hadlock formulas can help identify suspected macrosomia (typically defined as estimated weight above 4,000 or 4,500 grams), but their accuracy for this purpose is limited. Studies show that at the extremes of fetal weight, the formulas tend to be less precise. For macrosomic fetuses, the mean percentage error can be substantially higher than for average-weight fetuses. Despite these limitations, ultrasound estimation remains the best available tool for prenatal identification of macrosomia. An EFW above the 90th percentile should prompt clinical discussion about delivery planning.
What units should I use when entering measurements into this calculator?
This calculator accepts measurements in centimeters (cm), which is the standard unit used in the original Hadlock publications. If your ultrasound report shows measurements in millimeters (mm), you should convert to centimeters by dividing by 10. For example, an abdominal circumference of 280 mm becomes 28.0 cm. The calculator provides a unit toggle switch to easily convert between millimeters and centimeters. The estimated weight result is displayed in grams and also converted to pounds and ounces for convenience.
How do the Hadlock growth curves differ from WHO growth charts?
The Hadlock growth curves (1991) were derived from a cross-sectional study population in Houston, Texas, and provide expected fetal weight ranges by gestational age. The WHO fetal growth charts (2017) were developed from a multinational prospective study across 10 countries, using stricter inclusion criteria. The two standards can give different percentile results for the same estimated weight, particularly at the extremes of gestational age. The choice of growth standard should be made by your healthcare provider based on local guidelines and the characteristics of your population.
Is it normal for the estimated fetal weight to differ from the actual birth weight?
Yes, it is completely normal and expected for the estimated fetal weight to differ from the actual birth weight. Even with the best formulas and perfect measurements, the 95% confidence interval is approximately plus or minus 15%. This means that for an estimated weight of 3,000 grams, the actual birth weight could reasonably range from 2,550 to 3,450 grams. Additionally, if the ultrasound was performed days or weeks before delivery, the fetus will have continued to grow in the interval, further increasing the difference between the estimated and actual weight.
Why is abdominal circumference the most important measurement for weight estimation?
Abdominal circumference is the single most important parameter for fetal weight estimation because it most directly reflects the size of the fetal liver and subcutaneous adipose tissue, which are the primary determinants of fetal weight variation. The fetal liver accounts for a significant proportion of abdominal volume and is sensitive to nutritional status. In growth-restricted fetuses, the liver is typically smaller due to reduced glycogen stores, while in macrosomic fetuses (particularly those of diabetic mothers), the liver is enlarged. All four Hadlock formulas include AC as a required parameter.
Can I track my baby's growth over time using this calculator?
While you can enter measurements from different ultrasound sessions to see how the estimated weight changes over time, meaningful growth assessment requires proper clinical interpretation. Growth should be evaluated using serial measurements plotted on standardized growth charts, with attention to the growth velocity and trajectory rather than individual point estimates. A minimum interval of 2-3 weeks between measurements is recommended to detect meaningful growth changes. Your healthcare provider is best positioned to interpret serial growth data in the context of your pregnancy.

Conclusion

The Hadlock formulas for fetal weight estimation represent a cornerstone of modern obstetric care, providing clinicians and families with valuable information about fetal size and growth. Developed over four decades ago, these formulas have been extensively validated across diverse populations worldwide and continue to be the most widely used method for estimating fetal weight from ultrasound measurements.

Understanding the principles behind these calculations, including the role of each biometric parameter, the expected accuracy range, and the clinical limitations, empowers expectant parents to engage meaningfully with their prenatal care. The Hadlock III formula (HC, AC, FL) stands out as the most broadly recommended variant, combining excellent accuracy with practical reliability, and has been endorsed by the INTERGROWTH-21st project based on systematic review evidence.

However, it is essential to remember that estimated fetal weight is one component of a comprehensive assessment of fetal wellbeing. Clinical decisions should be made by qualified healthcare professionals who can integrate multiple sources of information, including growth trends, Doppler assessments, amniotic fluid evaluation, and maternal health factors. This calculator serves as an educational resource and reference tool to support informed conversations between expectant parents and their healthcare providers.

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