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Intra-individual variability and measurement noise in estimates of energy expenditure by whole body indirect calorimetry

Published online by Cambridge University Press:  09 March 2007

P. R. Murgatroyd
Affiliation:
MRC Dunn Clinical Nutrition Centre, 100 Tennis Court Road, Cambridge CB2 1QL
H. L. Davies
Affiliation:
MRC Dunn Clinical Nutrition Centre, 100 Tennis Court Road, Cambridge CB2 1QL
A. M. Prentice
Affiliation:
MRC Dunn Clinical Nutrition Centre, 100 Tennis Court Road, Cambridge CB2 1QL
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Abstract

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1. Four men were each studied continuously over 12 d in a whole-body calorimeter. Dietary intake and daily activities were kept constant throughout the study.

2. Day-to-day coefficients of variation in energy expenditure within subjects were found to be 1.97% over 24 h, 5.93% during basal metabolic rate measurement, 2.40% overnight and 3.22% in exercise.

3. The contribution of measurement system noise to the observed variability was analysed and shown to be generally small. The source of this noise was considered.

4. The results reinforce and extend other comparable reports and show that within-subject variability forms a small part of reported observations of between-subject variability.

Type
Clinical and Human Nutrition papers: Studies in Man
Copyright
Copyright © The Nutrition Society 1987

References

REFERENCES

Bakker, H. K. & Struikenkamp, R. S. (1977). Human Biology 49, 187202.Google Scholar
Brown, D., Cole, T. J., Dauncey, M. J., Marrs, R. W. & Murgatroyd, P. R. (1984). Medical and Biological Engineering and Computing 22, 333338.CrossRefGoogle Scholar
Coward, W. A., Prentice, A. M., Murgatroyd, P. R., Davies, H. L., Cole, T. J., Sawyer, M., Coldberg, G. R., Halliday, D. & MacNamara, J. P. (1985). In Human Energy Metabolism. Euro-Nut Report no. 5, pp. 126131 [Van Es, A. J. H., editor]. Wageningen, The Netherlands: University of Wageningen.Google Scholar
Dallosso, H. M. & James, W. P. T. (1984). British Journal of Nutrition 52, 6572.CrossRefGoogle Scholar
Dallosso, H., James, W. P. T., Bisdee, J. T. & Zed, C. A. (1985). Abstracts of Original Communications, XIIIth International Congress of Nutrition, Brighton, 08 1985.Google Scholar
Dallosso, H. M., Murgatroyd, P. R. & James, W. P. T. (1982). Human Nutrition: Clinical Nutrition 36C, 2539.Google Scholar
De Boer, J. O. (1985). Energy requirements of lean and overweight women assessed by indirect calorimetry. PhD Thesis, Agricultural University, Wageningen, The Netherlands.Google Scholar
Food and Agriculture Organization/World Health Organizatio/United Nations University (1985). Energy and Protein Requirements. Technical Report Series no. 724. Geneva: WHO.Google Scholar
Garby, L. (1985). Human Nutrition: Clinical Nutrition 39C, 455458.Google Scholar
Garby, L. & Lammert, O. (1984). Human Nutrition: Clinical Nutrition 38C, 395397.Google Scholar
Garby, L., Lammert, O. & Nielsen, E. (1984). Human Nutrition: Clinical Nutrition 38C, 391394.Google Scholar
Murgatroyd, P. R. (1985). In Human Energy Metabolism. Euro-Nut Report no. 5, pp. 4648 [Van Es, A. J. H., editor]. Wageningen, The Netherlands: University of Wageningen.Google Scholar
Schofield, W. N., Schofield, C. & James, W. P. T. (1985). Human Nutrition: Clinical Nutrition 39C, Suppl. 1, 196.Google Scholar
Soares, M. J. & Shetty, P. S. (1986). Human Nutrition: Clinical Nutrition 40C, 365369.Google Scholar
Weir, J. B. de V. (1949). Journal of Physiology 109, 19.CrossRefGoogle Scholar