Full text of this article is only available in PDF format.

Mikko Peltoniemi (email), Juha Heikkinen, Raisa Mäkipää

Stratification of regional sampling by model-predicted changes of carbon stocks in forested mineral soils

Peltoniemi M., Heikkinen J., Mäkipää R. (2007). Stratification of regional sampling by model-predicted changes of carbon stocks in forested mineral soils. Silva Fennica vol. 41 no. 3 article id 287. https://doi.org/10.14214/sf.287

Abstract

Monitoring changes in soil C has recently received interest due to reporting under the Kyoto Protocol. Model-based approaches to estimate changes in soil C stocks exist, but they cannot fully replace repeated measurements. Measuring changes in soil C is laborious due to small expected changes and large spatial variation. Stratification of soil sampling allows the reduction of sample size without reducing precision. If there are no previous measurements, the stratification can be made with model-predictions of target variable. Our aim was to present a simulation-based stratification method, and to estimate how much stratification of inventory plots could improve the efficiency of the sampling. The effect of large uncertainties related to soil C change measurements and simulated predictions was targeted since they may considerably decrease the efficiency of stratification. According to our simulations, stratification can be useful with a feasible soil sample number if other uncertainties (simulated predictions and forecasted forest management) can be controlled. For example, the optimal (Neyman) allocation of plots to 4 strata with 10 soil samples from each plot (unpaired repeated sampling) reduced the standard error (SE) of the stratified mean by 9–34% from that of simple random sampling, depending on the assumptions of uncertainties. When the uncertainties of measurements and simulations were not accounted for in the division to strata, the decreases of SEs were 2–9 units less. Stratified sampling scheme that accounts for the uncertainties in measured material and in the correlates (simulated predictions) is recommended for the sampling design of soil C stock changes.

Keywords
uncertainty; soil carbon; anticipated variance; forest soil; monitoring; repeated measurement; soil survey; stratified sampling

Author Info
  • Peltoniemi, Finnish Forest Research Institute, Vantaa Research Unit, P.O. Box 18, FI-01301 Vantaa, Finland E-mail mikko.peltoniemi@metla.fi (email)
  • Heikkinen, Finnish Forest Research Institute, Vantaa Research Unit, P.O. Box 18, FI-01301 Vantaa, Finland E-mail jh@nn.fi
  • Mäkipää, Finnish Forest Research Institute, Vantaa Research Unit, P.O. Box 18, FI-01301 Vantaa, Finland E-mail raisa.makipaa@metla.fi

Received 23 August 2006 Accepted 20 June 2007 Published 31 December 2007

Views 6578

Available at https://doi.org/10.14214/sf.287 | Download PDF

Creative Commons License CC BY-SA 4.0

Register
Click this link to register to Silva Fennica.
Log in
If you are a registered user, log in to save your selected articles for later access.
Contents alert
Sign up to receive alerts of new content

Your selected articles
Your search results
Lehtelä M., Hotanen J.-P. et al. (1996) Understorey vegetation in fresh and herb-rich up.. Silva Fennica vol. 30 no. 1 article id 5572
Mäkipää R., (1994) Effects of nitrogen fertilization on the humus l.. Silva Fennica vol. 28 no. 2 article id 5399
Nieppola J., (1993) Site classification in Pinus sylvestris L. fores.. Silva Fennica vol. 27 no. 1 article id 5494
Fritze H., (1992) Effects of environmental pollution on forest soi.. Silva Fennica vol. 26 no. 1 article id 5471
Smolander H., Kostamo J. et al. (1981) Effect of soil compaction on transpiration and h.. Silva Fennica vol. 15 no. 3 article id 5122
Sepponen P., (1981) Particle size distribution characteristics of mi.. Silva Fennica vol. 15 no. 2 article id 5120
Ohenoja E., Pohjola L. (1981) Sucrose inversion method for measuring the tempe.. Silva Fennica vol. 15 no. 2 article id 5109
Schalin I., (1967) On the effect of nitrogen fertilization on the b.. Silva Fennica vol. 1 no. 3 article id 4751
Schalin I., (1967) Microfungi in the humus layer of pine, spruce an.. Silva Fennica vol. 1 no. 2 article id 4745
Schalin I., (1966) Studies on the microfungi in the forest floor of.. Acta Forestalia Fennica vol. 81 no. 7 article id 7172
Gyllenberg H., Hanioja P. et al. (1954) Observations on the composition of the microbial.. Acta Forestalia Fennica vol. 62 no. 2 article id 7451
Fehér D., (1929) Biology of forest soil and its physiological mea.. Acta Forestalia Fennica vol. 34 no. 14 article id 7227
Linkola K., (1922) Distribution of the agricultural settlements on .. Acta Forestalia Fennica vol. 22 no. 3 article id 7072
Valmari J., (1921) Paper on chemical soil analyses Acta Forestalia Fennica vol. 20 no. 4 article id 7064
Aaltonen V. T., (1920) Use of water of the trees and the moisture condi.. Acta Forestalia Fennica vol. 14 no. 2 article id 7035
Lukkala O. J., (1919) Studies on distribution of fertile lands in Savo.. Acta Forestalia Fennica vol. 9 no. 1 article id 7019
Peltoniemi M., Heikkinen J. et al. (2007) Stratification of regional sampling by model-pre.. Silva Fennica vol. 41 no. 3 article id 287
Erber G., Spinelli R. (2020) Timber extraction by cable yarding on flat and w.. Silva Fennica vol. 54 no. 2 article id 10211
Saarsalmi A., Tamminen P. et al. (2014) Effects of long-term fertilisation on soil prope.. Silva Fennica vol. 48 no. 1 article id 989
Tanskanen N., Ilvesniemi H. (2007) Spatial distribution of fine roots at ploughed N.. Silva Fennica vol. 41 no. 1 article id 306