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What is a “meal”? Comparative methods of auditing carbon offset compliance for fuel-efficient cookstoves

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  • Harrell, Stephen
  • Beltramo, Theresa
  • Blalock, Garrick
  • Kyayesimira, Juliet
  • Levine, David I.
  • Simons, Andrew M.

Abstract

Smoke from inefficient biomass cookstoves contributes to global climate change and kills approximately four million people per year. Credits for reduced carbon emissions can potentially subsidize fuel-efficient cookstoves that reduce these harmful effects. Understanding the accuracy of different methods of monitoring stove usage is useful to measure the effects of cookstove programs and to target carbon credits. This paper compares four methods of measuring stove usage: hours cooked (derived from a predictive logistic regression of stove usage monitors and observations of stoves in use); number of people cooked for reported in household food diaries; fuel weight used gathered in a kitchen performance test; and household air pollution using mean 24-hour concentrations of particulate matter collected with particulate air monitors. We find statistically significant positive correlations between five out of six of these pairs of measures. While the correlations are positive, the explanatory power of each measure for another is weak. The weak correlations emphasize the importance of using multiple measures to track changes in stove use for both researchers and carbon auditors.

Suggested Citation

  • Harrell, Stephen & Beltramo, Theresa & Blalock, Garrick & Kyayesimira, Juliet & Levine, David I. & Simons, Andrew M., 2016. "What is a “meal”? Comparative methods of auditing carbon offset compliance for fuel-efficient cookstoves," Ecological Economics, Elsevier, vol. 128(C), pages 8-16.
  • Handle: RePEc:eee:ecolec:v:128:y:2016:i:c:p:8-16
    DOI: 10.1016/j.ecolecon.2016.03.014
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    References listed on IDEAS

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    5. Beltramo, Theresa & Blalock, Garrick & Levine, David I. & Simons, Andrew M., 2015. "The effect of marketing messages and payment over time on willingness to pay for fuel-efficient cookstoves," Journal of Economic Behavior & Organization, Elsevier, vol. 118(C), pages 333-345.
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    1. Simons, Andrew M. & Beltramo, Theresa & Blalock, Garrick & Levine, David I., 2017. "Using unobtrusive sensors to measure and minimize Hawthorne effects: Evidence from cookstoves," Journal of Environmental Economics and Management, Elsevier, vol. 86(C), pages 68-80.
    2. Simons, Andrew M., 2020. "Making Business Statistics Come Alive: Incorporating Field Trial Data from a Cookstove Study into the Classroom," Applied Economics Teaching Resources (AETR), Agricultural and Applied Economics Association, vol. 2(3), July.
    3. Beltramo, Theresa & Blalock, Garrick & Levine, David I. & Simons, Andrew M., 2015. "The effect of marketing messages and payment over time on willingness to pay for fuel-efficient cookstoves," Journal of Economic Behavior & Organization, Elsevier, vol. 118(C), pages 333-345.
    4. Jan, Inayatullah & Lohano, Heman Das, 2021. "Uptake of energy efficient cookstoves in Pakistan," Renewable and Sustainable Energy Reviews, Elsevier, vol. 137(C).

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