This Protocol provides the requirements and procedures for the calculation of net carbon dioxide equivalent (CO2e) removal from the atmosphere via Improved Forest Management (IFM). IFM refers to activities that refine the management of existing forests to increase carbon stocks beyond business-as-usual practices, while maintaining the ecological integrity and productive capacity of the forest ecosystem. IFM encompasses a broad range of practices including extended or deferred rotation periods, reduced impact logging techniques that minimize soil disturbance and preserve forest structure, enhanced silvicultural techniques that promote faster growth, selection harvesting approaches, fire and pest management strategies to enhance existing carbon stocks and forest resilience, and transitioning portions of commercial forests towards long-term conservation.
Earth's forests store approximately 861 gigatonnes of carbon1. Forests can act as a source or sink of carbon, and are estimated to absorb a net 7.6 gigatonnes of CO2 per year2 by converting atmospheric CO2 into biomass through photosynthesis. Carbon is also steadily released from forest biomass through respiration and oxidation, or as a result of disturbances such as timber harvesting, fires, and deforestation. Forest soil contains on average 112.9 Mg C ha⁻¹ to a depth of 1 meter in the conterminous United States, compared to approximately 53.6 Mg C ha⁻¹ in above-ground biomass3,4, highlighting the critical importance of comprehensive forest carbon management approaches as an additional benefit of improved forest management.
IFM focuses on enhancing how existing forests are managed to increase carbon storage over time, representing a nature-based solution that supports climate outcomes. The voluntary carbon market has experienced significant growth, with forestry projects representing 50% of all credits issued in the first quarter of 2022, with an expected value of almost USD 1 billion in 20225. IFM has been identified as a mid-range cost climate solution for carbon sequestration while also supporting community livelihoods and environmental benefits when implemented with scientific rigor6,7. However, despite the rapid expansion of IFM projects, comprehensive uptake in the voluntary carbon market has been lacking, with only 2 million acres of forestland enrolled across 24 states in registered IFM projects8.
Compared to baseline scenarios representing conventional forest management, IFM practices have demonstrated carbon storage improvements ranging from 9.91% to 78.66% across analyzed projects8. This substantial range reflects the diversity of forest types, management histories, and specific IFM strategies employed across different regions and ownership structures.
This Protocol accounts for the quantification of the gross amount of CO2 removed via enhanced carbon storage in forest biomass and — subject to the IFM intervention strategy detailed in relevant and applicable Modules — optionally soil and harvested wood products, as well as all cradle-to-grave life-cycle Greenhouse Gas (GHG)emissions associated with the IFM implementation process. This Protocol is developed to adhere to the requirements of ISO 14064-2: 2019 – Greenhouse Gasses – Part 2: Specification with guidance at the Project level for quantification, monitoring, and reporting of greenhouse gas emission reductions or removal enhancements.
The Protocol ensures:
Throughout this Protocol, the use of "must" indicates a requirement, whereas "should" indicates a recommendation.
This Protocol relies on and is intended to be compliant with the following standards and protocols:
Additional reference standards that inform the requirements and overall practices incorporated in this Protocol include:
Additional principles that were considered in the development of this Protocol and aligned with, where feasible, include:
This Protocol was developed based on the current state of the art, publicly available science regarding IFM activities and long-term monitoring of forest carbon projects. This Protocol aims to be scientifically stringent and robust. We recognize that some requirements may exceed the status quo in the market and that there are numerous opportunities to improve the rigor of this Protocol. Key future improvements to the Protocol are outlined in Appendix A.
Additionally, this Protocol will be reviewed when there is an update to published scientific literature, government policies, or legal requirements which would affect net CO2e removal quantification or the monitoring guidelines outlined in this Protocol, or at a minimum of every 2 years.
This Protocol aims to guide Projects that enhance the management of existing forested lands to increase carbon storage beyond baseline conditions while maintaining the ecological integrity and productive capacity of forest ecosystems. Projects should emphasize sustainable forest management practices that optimize carbon sequestration, support biodiversity conservation, and provide social and economic benefits to local communities. Projects must not constitute business-as-usual commercial forestry operations, and forest management practices implemented in accordance with this Protocol should demonstrate measurable improvements in carbon storage that are additional to what would occur under conventional management scenarios.
This Protocol sets forth universal requirements for all IFM Projects. All Projects are also subject to additional requirements tailored to the implementation practice(s) of the Project Proponent's forest management, and all Project Proponents must therefore select one or more of the following IFM intervention Modules, and demonstrate their reasoning for and capability to carry out the selected implementation practice(s) in the Project Design Document (PDD).
This provides the requirements and procedures for the calculation of net carbon dioxide equivalent (CO2e) removal from the atmosphere through improved forest management (IFM) practices implemented by small forest landowners.
This provides the requirements and procedures for the calculation of net carbon dioxide equivalent (CO2e) removal from the atmosphere through improved forest management (IFM) practices implemented by transitioning forests from logging to protected status.
The geographic Project Boundary must encompass all areas where the Project Proponent is conducting IFM activities for crediting purposes. This Protocol also applies across the temporal (see Section 5) and spatial scope (see Section 4.1) of the Project. For Projects with grouped sites, all sites must adhere to every requirement laid out in this Protocol and any applicable Module(s).
The Project Boundary must be set at the time of project initiation and cannot be modified beyond the addition of new areas to the Project or removal of areas which become ineligible during the course of the Crediting Period due to external factors outside the Project Proponents control.
Any adjacent forest management activities or land use practices by the Project Proponent and/or enrolled landower(s) must be disclosed with justification and evidence that they do not pose any risks to the IFM activities within the Project Boundary or create opportunities for leakage that would undermine the additionality of the Project.
[/R-ZZKC-0]In order to maintain ecological integrity and ecosystem function, demonstrate additionality, and ensure trust and transparency, it is incumbent upon Projects to adhere to the requirements below, which must be demonstrated in the PDD.
Physical and ecological conditions can create natural and regulatory limitations that would render forest interventions or their natural equivalent improbable under baseline conditions, and thus these areas within the Project Boundary cannot be claimed as additional. These constraints often reflect existing government regulations and established best management practices (BMPs) that govern forest operations independent of carbon market incentives. Isometric's guide to the BMPs Project Proponents should adhere to can be found in Appendix B.
Project activities must demonstrate additionality by accounting for site-specific constraints that limit harvesting feasibility under baseline conditions. Thus, Project Proponents must follow all requirements that establish the material assessment of harvest constraints and determine the eligible project area(s) within the IFM intervention Module(s) the Project is crediting against.
See Section 4.1 for additional requirements.
See Section 4.1 for additional requirements.
Project Proponents must identify and exclude from crediting calculations any areas within the Project Boundary where physical or regulatory constraints make forest interventions or their natural equivalent highly unlikely under baseline management scenarios.
Project Proponents must disclose any adverse impacts non-project activities in these excluded areas may have on the active project areas, and the subsequent mitigation plan for these impacts, in the PDD.
[/R-KMF1-0]Project Proponents must conduct a comprehensive assessment of the cumulative impact of all project area constraints identified in both this Protocol and the IFM intervention Module(s) the Project is crediting against to determine the total eligible project area for crediting purposes.
[/R-79AP-0]The Project Proponent must provide a summary report of all areas within the Project Boundary that are thus excluded from enrollment within the Project for crediting purposes. The Project Proponent must report these exclusions in the PDD, which must include detailed mapping and quantification of all excluded areas, with clear justification for constraint identification and application of required thresholds.
[/G-QVYM-0]Projects should aim to improve ecosystem function and integrity — while also enhancing biodiversity — through actions including, but not limited to: facilitating wildlife corridors, avoiding negative impacts on existing ecological functions, and increasing habitat for native flora, fauna, and funga.
The Project must not harm Indigenous People and local, underserved, or marginalized communities, in compliance with relevant section of the Isometric Standard and Section 6 of this Protocol.
The Project may be subject to additional applicability and eligibility requirements set forth in the Applicability section(s) of the IFM intervention Module(s) the Project is crediting against. The Project Proponent must demonstrate adherence to these additional requirements in the PDD.
See Section 4 for additional requirements.
See Section 4 for additional requirements.
Additionally, this Protocol applies to Projects and associated operations that meet all of the following project conditions:
Finally, IFM is not reforestation, in purpose or substance. Thus, planting of new trees is limited under many IFM interventions, and the Project must adhere to all planting requirements established in the IFM intervention Module(s) the Project is crediting against.
See Section 4.2 for guidance on planting.
See Section 4.4 for guidance on planting.
The Crediting Period is the interval between project initiation (e.g., first activity on site associated with the Project) and the end of the last Reporting Period. The Crediting Period is made up of successive Reporting Periods. Project Proponents must provide the following to evidence the length of the Crediting Period as detailed in Sections 5.1.1, 5.1.2, and 5.1.3.
CreditCertificate issuances occur throughout the Crediting Period. CreditsCertificates are issued upon Verification of a Reporting Period.
Abandonment or failure to perform project activities at any point in the Crediting Period willand any required Monitoring Period, where not remedied by the Project Proponent or a successor within a reasonable period, may result in project failure. AllProject Creditsfailure is treated as a Reversal of all Certificates issued under the Project will be canceled.
The Project may be subject to additional terms that set the Crediting Period as set forth in the Crediting Period section of the IFM intervention Module(s) the Project is crediting against.
See Section 5.1 for additional requirements.
See Section 5.1 for additional requirements.
The duration of the Crediting Period is determined by the operational and ecological impact of the IFM intervention practice and ex-ante estimates of forest growth rates. Due to the variability of intervention practices coupled with forest growth factors and tree biology, the Crediting Period may vary by Project.
Project Proponents must determine and report the length of the Crediting Period according to the guidance and requirements of the IFM intervention Module(s) the Project is crediting against.
[/R-TY6B-0]See Section 5.1 for guidance on the length of the Crediting Period and additional requirements that must be met by the Project Proponent.
See Section 5.2 for guidance on the length of the Crediting Period and additional requirements that must be met by Project Proponent.
To ensure the Project Proponent has proper authorization from the true property ownership, this Protocol explicitly prohibits lessees or concessionaires from enrolling land for CreditsCertificates without the landowner's signatory consent, which must be provided in the PDD.
Thus, the Project Proponent must have legal, documented land tenure for the duration of the Crediting Period; or, if the Project Proponent is contracting on land owned by another party, the landowners must have legal, documented land tenure for the duration of the Crediting Period and the Project Proponent must have contractual access to the land to perform all requirements set forth by this Protocol and the IFM intervention Module(s) the Project is crediting against.
[/R-EK20-0]To evidence continued financial viability of the Project over the full Crediting Period, Project Proponents must provide a financial model and cash flow statement which demonstrates a clear payment structure for the duration of the Crediting Period.
[/R-27XN-0]The Reporting Period is the interval of time over which removals are calculated. The first Reporting Period starts at the beginning of the Crediting Period. Subsequent Reporting Periods begin at the end of the previous Reporting Period.
The minimum duration of a Reporting Period is one year. The maximum duration of a Reporting Period is five years. Project Proponents may request an extension for a longer Reporting Period provided they submit suitable justification for the delay (e.g., slower forest growth than expected).
Verification of project activities by a third-party Verification and Validation Body (VVB) is conducted for each Reporting Period (see Section 7.2).
Project Proponents must indicate the last Reporting Period to be submitted for Verification.
[/R-NWSA-0]Failure to initiate a Verification within 5 years of the previous Reporting Period or request an extension will conclude the Crediting Period.
The Project must consider environmental and social impacts at all project locations. Appropriate measures must also be implemented to identify and eliminate potential risks to terrestrial and aquatic ecosystems and biodiversity (see Section 6.4). Where risks cannot be eliminated, the Project Proponent must identify measures to monitor ecosystem health and mitigate adverse effects through a site-specific mitigation plan. Mitigation plans must be prepared by subject matter experts, in consultation with Isometric, the VVB, and relevant local authorities, if applicable. Refer to relevant section of the Isometric Standard for further guidelines on environmental and social impacts.
Following the Isometric Standard, CreditsCertificates issued under this Protocol are contingent on the implementation, transparent reporting, and independent Verification of comprehensive safeguards. These safeguards encompass a wide range of considerations, including environmental protection, social equity, community engagement, and respect for cultural values. The process mandates that safeguard plans be incorporated into all major project phases, with detailed reports made accessible to stakeholders. Adherence to and verification of environmental and social safeguards is a condition for all Crediting Projects.
An environmental and social risk assessment in compliance with relevant section of the Isometric Standard must be completed to identify potential risks, followed by the development of tailored mitigation plans. These plans must encompass specific actions to avoid, minimize or rectify identified impacts. Effective implementation of these measures must also be accompanied by a robust monitoring plan to detect adverse effects and pause project activities if necessary, using the principles of adaptive management described below.
Environmental and social risk identification, assessment, avoidance, and mitigation planning will be unique to the technical, environmental, and social contexts of the Project. To accommodate this variation, the requirements outlined in this section serve as a minimum to which the Project Proponent and Isometric can add risks on a case by case basis, to be included in the PDD, if applicable. Projects may be subject to additional environmental and social safeguard requirements set forth in the IFM intervention Module(s) the Project is crediting against.
See Section 6 for additional requirements.
See Section 6 for additional requirements.
As detailed in relevant section of the Isometric Standard, Project Proponents must comply with all national and local laws, regulations and policies, and receive any necessary permits for project activities, if applicable. Where relevant, projects must comply with international conventions and standards governing human rights and uses of the environment (e.g., UN Declaration on the Rights of Indigenous Peoples (UNDRIP), ILO Convention 169).
Project Proponents must document activities that trigger regulatory and/or environmental permitting requirements, as well as plans to comply and obtain permits, in the PDD.
[/R-9HMZ-0]Adaptive management incorporates learnings and takeaways from project monitoring into project development10. Regular data collection and sharing is necessary to implement adaptive management.
Results from data collection prior to Validation and at the end of each Reporting Period must be shared with local stakeholders, as described in Section 6.6.1 of this Protocol, and be used to inform future iterations of project management and development.
[/G-1E07-0]Project Proponents are required to predict and plan for potential unintended outcomes of project activities and construct mitigation plans for such instances.
[/R-X6GM-0]Foreseeable risks identified during the preparation of the environmental and social risk assessment must be included in the PDD and the following must be detailed for each potential risk:
The Project should not hinder the ability of the community or local ecosystem to adapt to climate change as a result of the Carbon Dioxide Removal (CDR) activity.
[/G-8QQH-0]IFM practices must maintain and should enhance the biodiversity of existing forest ecosystems while optimizing carbon storage outcomes. Unlike land use conversion activities — such as Reforestation — IFM projects often operate within established forest systems where existing species assemblages, habitat structures, and ecological processes are already present. The primary biodiversity objective for IFM projects is to ensure that management practices designed to enhance carbon sequestration and storage do not compromise the ecological integrity of these established forest communities, and where possible, enhance biodiversity through improved forest structure, age class diversity, and habitat complexity.
IFM practices such as extended rotation or deferred harvest, selection harvesting, and reduced impact logging can provide significant opportunities to enhance biodiversity by creating more diverse forest structures, preserving old-growth characteristics, and maintaining continuous forest cover. However, these same practices must be carefully designed to avoid unintended consequences such as species composition shifts, habitat degradation, or disruption of ecological processes that support native wildlife populations.
Project Proponents must not implement high grading11 and must demonstrate adherence to this requirement in the PDD.
[/R-GVC9-0]Additionally, Project Proponents must demonstrate that proposed management changes will maintain existing biodiversity while contributing to measurable improvements in forest ecosystem function and resilience by following the requirements set out in Section 6.4.1 and 6.4.2 below.
The Project Proponent must list the species planted and/or maintained in the project area via project activities in the PDD. These species may include native, naturalized, or non-native range-expanding species.
[/R-4G7Y-0]Any species that does not meet the requirements of this section (i.e., native, naturalized, or non-native range expanding) must be removed from the project area within the first three years of the Project or by the end of the first Reporting Period, whichever comes first, to ensure that the carbon sequestered by these species is not counted in the generation of CreditsCertificates. Project emissions associated with clearance of these species must be reported according to the requirements in Section 8.
Project Proponents must not introduce or maintain species invasive to the region or similar climates, geographies, or ecosystems of the project area12,13.
[/G-G1EV-0]The definition of 'invasive species' in this Protocol is consistent with the Convention on Biological Diversity's definition of Invasive Alien Species, being a "species whose introduction and/or spread threatens biological diversity"14. Projects that plant or maintain invasive species will not be eligible for crediting under this Protocol.
Additionally, Project Proponents must not introduce or maintain any species that harm rare, threatened, or endangered species as defined in Section 6.4.2.
[/G-3PAG-0]Project Proponents are highly encouraged to consult with Isometric, the VVB, and/or external subject matter experts to ensure that species included in the PDD meet these requirements and the criteria described below.
For the purposes of this Protocol, native species are defined as:
Naturalized species are defined as:
Planting and maintenance of native species should be the first course of action. If project activities with only native and naturalized species is not feasible, non-native range-expanding species may be included in the Project. Any non-native species not considered range-expanding for the purposes of this Protocol must not be planted or maintained for Crediting.
Non-native range-expanding species are defined as:
In such instances, 90% of species planted or maintained must be native and/or naturalized, and the plurality must be native species. Additionally, the following due diligence must be taken when planting or maintaining non-native range-expanding species for a Project to be eligible for crediting. The Project Proponent must demonstrate:
Alternative burdens of proof may be sufficient, in consultation with Isometric.
[/G-QB65-0]The following due diligence must be conducted and included in the PDD if non-native range-expanding species are to be planted or maintained during project activities. The Project Proponent must demonstrate:
The use of genetically-modified species for project activities will be reviewed by Isometric on a case by case basis. Genetically-modified species are defined as:
If genetically-modified species are included in the Project, Project Proponents must submit a justification explaining their use. This should cover why alternative non-genetically-modified species are not used and how biodiversity is safeguarded from the use of genetically-modified species.
[/G-YMXF-0]The Project Proponent must provide due diligence to ensure that the population density of rare, threatened, and endangered species in the project area does not decrease, nor are new species added to this list, as a result of project activities by generating a review of rare, threatened, and endangered species which must be included and referenced in the PDD.
[/R-R53K-0]If either of these adverse impacts do occur, the Project Proponent must work with Isometric and the VVB to identify sources and explanations for these impacts in order to rule out project activities as the primary cause.
Project Proponents should strive to increase the population of rare, threatened, and endangered species. Endangered species are defined as species under threat of extinction from all or a significant amount of their natural habitat. Threatened species are defined as those that are at risk of becoming endangered. Rare species are defined as those uncommon and found in isolated geographical locations.
Project Proponents must consult local authorities for further regulations on these or similar groups. If national, state/province, or local regulations exist, the Project Proponent must state them in the PDD.
[/G-J9S4-0]The Project Proponent must consult reputable and current sources on rare, threatened, and endangered species to develop a list of these species, in the following order of priority:
For the purposes of this Protocol, the IUCN Red List designation of Vulnerable (VU) shall be considered Threatened, and Near Threatened (NT) shall be considered Rare.
[/G-5YMS-0]For each rare, threatened, or endangered species identified, the Project Proponent must list the following in the PDD:
The Project Proponent must handle data and information related to rare, threatened, and endangered species with discretion for the protection of these species, especially regarding species and/or regions that have histories of poaching, over-harvesting, or other elevated threats to population density and livelihoods.
[/G-D8C3-0]While planting of new trees is limited under this Protocol (see Section 4.3), Project Proponents may need to procure seedlings throughout the Crediting Period. A robust seedling and germplasm pipeline is central to the ecological, socioeconomic, and cultural success of any forestry project. A diverse, local, and sustainable pipeline ensures that project activities contribute to the maintenance and/or restoration of ecosystem function and integrity, restore and protect biodiversity, safeguard community livelihoods, and uphold cultural values.
The pipeline must be described in the PDD.
[/R-BSZ8-0]Project Proponents must procure and maintain their seedling and germplasm pipeline in alignment with the environmental and social safeguards outlined in Section 6 of this Protocol and relevant section of the Isometric Standard.
[/G-0X7R-0]Forest management activities under this Protocol must adhere to government regulations and best management practices (BMPs), following the guidance in Appendix B to meet these requirements.
Project Proponents — and if applicable, enrolled landowners — must follow all local and national laws regarding forest management activities and maintain responsibility for any activities conducted by contracted third parties. Project Proponents must identify applicable laws and describe how they will conform in the PDD.
[/R-ZETX-0]The Project Proponent — and if applicable, all enrolled landowners — must agree to conform to government-level BMPs. Project Proponents must identify the BMPs and describe how they will conform in the PDD.
[/R-K3PJ-0]Projects may be subject to additional forest management requirements set forth in the IFM intervention Module(s) the Project is crediting against.
See Section 6.2 for additional requirements.
See Section 6.1 for additional requirements.
Project Proponents should not use synthetic herbicides or fertilizers for forest management during the Crediting Period. Exceptions include, but are not limited to, the control of non-native and/or invasive species.
Any use of synthetic herbicides or fertilizers must be reported to Isometric and adhere to BMPs as well as all local, state/provincial, and national laws and regulations regarding their use.
[/R-6RJ7-0]Project Proponents should not use synthetic pesticides except for the control of non-native pests and/or invasive insect outbreaks.
Any such use of synthetic pesticides must be targeted and limited in scope towards the targeted pest(s) or insect(s), be thoroughly justified and reported immediately to Isometric, and adhere to BMPs as well as all local, state/provincial, and national laws and regulations regarding their use.
[/R-TDDW-0]The emissions associated with any use of synthetic herbicides, fertilizers, and pesticides must be accounted for in line with the emissions accounting requirements of Section 9.5.
The impacts of IFM extends beyond the Project Proponents and the landowners enrolled in or implementing the forest management program. Ensuring the protection and enhancement of community livelihoods not only increases the likelihood of success in carbon sequestration, but also in transforming livelihoods equitably and justly.
In accordance with relevant section of the Isometric Standard, Project Proponents must demonstrate active stakeholder engagement throughout project planning and operation, ensuring that all risk mitigation strategies contribute to sustainable project outcomes. Local stakeholders may contribute an in-depth understanding of the project area and operations, and provide invaluable insights and recommendations on potential risks, necessary safeguards and specific monitoring needs. Engaging local stakeholders in IFM projects creates community buy-in, providing long term commitment and investment in the success of carbon projects, especially in regions that have historically resisted or been weary of climate action17. Furthermore, lack of community support, stakeholder engagement, and perceived community benefits has been identified as a contributing source of project failure in previous forestry management projects18,19.
The Project Proponent must develop a Stakeholder Engagement Plan in accordance with the requirements outlined in the relevant section of the Isometric Standard. The plan and supporting documentation, including evidence of meetings or other forms of engagement, must be submitted in the PDD.
[/R-E29H-0]Prior to the commencement of Project activities, Project Proponents must consult a reputable third party or subject matter expert to assess if Indigenous Peoples will be impacted by project activities. Impacts may include, but are not limited to:
The results of this report must be included in the PDD.
[/G-HS0N-0]If the report identifies potential impacts to Indigenous Peoples, the Project Proponent must enact a Stakeholder Engagement Plan consistent with the principles of Free, Prior, and Informed Consent (FPIC) as outlined by the United Nations (UN) Declaration on the Rights of Indigenous Peoples in 2007 and expanded upon by the Food and Agriculture Organization of the United Nations in 2016, and adhere to the following requirements:
The Project Proponent is encouraged to prepare alternatives for the withdrawal or denial of consent to project activities by stakeholder groups.
If required, the Stakeholder Engagement Process must be enacted early in the project development process, prior to the initiation of project activities. The stakeholder engagement schedule must be circulated prior to project initiation, and with enough notice to engage stakeholders in the planning processes.
[/G-S2QZ-0]In some instances, Project Proponents that initiated project activities prior to engaging with Isometric and did not engage Indigenous Peoples stakeholders under the principles of FPIC may still be eligible for crediting under this Protocol, in consultation with Isometric, by demonstrating how stakeholder engagement will be incorporated into future project planning.
[/G-CQKM-0]The following may serve as burdens of proof that the Stakeholder Input Process conforms with the principles of FPIC. The Project Proponent must indicate how these steps in the Stakeholder Engagement Process were or will be carried out during the project lifetime. Multiple rounds of stakeholder engagement may take place during a project lifetime, as needed. The Project Proponent may identify other burdens of proof demonstrating that the principles of FPIC have been observed and submit them in the PDD in addition to, or instead of, those below, in consultation with Isometric.
The VVB may conduct random surveys or interviews with stakeholder groups, and/or witness some or all of the processes described above.
Project Proponents that do not identify Indigenous Peoples that will be affected by Project activities are encouraged to consider if other relevant stakeholders rely on land or resources located within the project area, and engage them following the principles of FPIC described above. All stakeholder groups and local communities have valuable and unique perspectives on developments in the project area, which can contribute to project success.
[/G-M1AY-0]Project Proponents may additionally be required to undergo the FPIC process with additional stakeholder groups, as identified in and defined by the IFM intervention Module(s) the Project is crediting against.
See Section 6.3.1 for additional requirements.
See Section 6.2.1 for additional requirements.
The following information from the Stakeholder Engagement Process must be made publicly available, with personal information anonymized or redacted to protect stakeholders, project personnel, and project outcomes. This may include:
Project Proponents must actively identify and develop processes for the protection and promotion of community well-being in the PDD, as follows:
[/R-1Q56-0]Community buy-in is critical to the success of IFM projects, as the impact goes beyond the Project Proponent or enrolled landowners20,21. Community buy-in may be established when stakeholders are properly informed about the benefits — and transparently provided the potential downsides — they can expect from project activities. Equally important in maintaining buy-in is for the positive impacts resulting from the Project to match the perception of potential benefits presented to community stakeholders at the project onset. A mismatch in benefits expected and benefits realized may similarly hinder project success.
While this Protocol will not prescribe requirements for community impacts, the Project Proponent may be subject to additional requirements in the IFM intervention Module(s) the Project is crediting against, and is strongly encouraged to consider establishing the following programs and activities:
It is recommended that the Project Proponent provide support to local communities and ecosystems in establishing region specific mitigation strategies to adapt to the changing climate.
See Section 6.3.2 for additional requirements.
See Section 6.2.2 for additional requirements.
The Project must not harm the quantity or quality of local water resources. Even in forest ecosystems, alterations for forest management practices can alter the hydrological balance in ways that can be detrimental to surrounding communities if there are pre-existing strains on water resources.
Project Proponents must report in the PDD all national, state/province, and local water regulations that impact or are affected by project activities, including — but not limited to — water usage and harvesting near water bodies.
[/R-NC0V-0]Project Proponents must assess whether the Project is occurring in an area that already has existing risks to water availability due to supply and demand dynamics.
[/R-90WG-0]If the Project is occurring in an area with existing elevated water risk per the above criteria, Project Proponents must assess whether project activities are projected to have any negative impact(s) on water supply.
[/G-9YGW-0]The following topics are covered briefly in this Protocol due to their inclusion in the Isometric Standard, which governs all Isometric Protocols. See in-text references to the Isometric Standard for further guidance.
For each specific Project to be evaluated under this Protocol, the Project Proponent must document project characteristics in a PDD as outlined in the relevant section of the Isometric Standard. The PDD will form the basis for project Validation and evaluation in accordance with this Protocol.
Projects must be validated and net CO2e removals verified by an independent third party, consistent with the requirements described in this Protocol, as well as in the relevant section of the Isometric Standard.
The VVB must consider the following requisite components:
As part of this evaluation, the VVB must also review the characterization and quantification of all individual uncertainty sources within the listed components that contribute to the calculation of net CO2e removal.
The threshold for Materiality, considering the totality of all omissions, errors and misstatements, is 5%, in accordance with the relevant section of the Isometric Standard.
Verifiers should also verify the documentation of uncertainty of the GHG Statement as required by the relevant section of the Isometric Standard. Qualitative Materiality issues may also be identified and documented, such as:
Project Validation and Verification must incorporate site visits to project facilities, namely in situ field plots, in accordance with the requirements of ISO 14064-3, 6.1.4.2. This is to include, at a minimum, site visits during the first Validation or Verification of a Project, to the project site(s). Validators should, whenever possible, observe project operation to ensure full documentation of process inputs and outputs through visual observation and validation of instrumentation, measurements, and required data quality measures.
A site visit must occur at least once during each Project Validation. Additional site visits may be required if there are substantial changes to field operations over the course of a Project's Validation period, or if deemed necessary by Isometric or the VVB. Site visit plans are to be determined according to the VVB's internal assessment, in consultation with Isometric.
Validators and Verifiers must comply with the requirements defined in the relevant section of the Isometric Standard. In addition, verification teams must maintain and demonstrate expertise associated with the specific technologies of forest management, including both forest field measurements and Earth observation remote sensing data processing and analysis.
CDR via IFM is a result of a multi-step, multi-stakeholder process (e.g., re-planting, forest maintenance, monitoring, harvesting), with activities in each step potentially managed by a different operator, company, enrolled landowner, or owner. A single Project Proponent must be specified contractually as the sole owner of the CreditsCertificates when there are multiple parties involved in the process, and to avoid Double Counting of net CO2e removals. Contracts must comply with all requirements defined in the relevant section of the Isometric Standard.
The Project Proponent must demonstrate additionality through compliance with the relevant section of the Isometric Standard and any additional subsequent requirements listed in this Section. Project Proponents may be subject to additional additionality requirements as set forth by the IFM intervention Module(s) the Project is crediting against. The baseline scenario and Counterfactual utilized to assess additionality must be project-specific and comply with Section 9.4 of this Protocol.
See Section 7.1 for additional requirements.
See Section 7.1 for additional requirements.
Government subsidies or civil contractual obligations for IFM, such as organization bylaws, inhibit additionality and fall under the Regulatory criteria in the relevant section of the Isometric Standard. Environmental additionality is assessed each Reporting Period using dynamic baselining as outlined in Section 9.4.
Financial Additionality must be reconsidered at Crediting Period renewal, in accordance with the requirements in this section. Projects must select one of the following options to meet ongoing Financial Additionality:
If a review indicates the Project has become non-additional, the Project will be ineligible for future CreditsCertificates. Current or past Crediting Periods will not be affected.
Where a Project's existing Financial Additionality demonstration was conducted over a defined investment horizon, the existing Financial Additionality determination remains valid up to the end of that investment horizon, provided the Project can demonstrate that key economic and operational assumptions used in the original demonstration remain materially unchanged. Projects which continue under an existing Financial Additionality determination in this way may only do so until the end of the investment horizon considered in the original determination, and must reassess Financial Additionality at the first verification event following the end of the existing investment horizon period.
Reassessment of Financial Additionality is required if any of the following conditions apply:
Where reassessment is required in accordance with the above requirements, the Project Proponent must demonstrate that continued Carbon Finance remains necessary to continue project crediting activities, by conducting a full Financial Additionality assessment against the updated Project and baseline scenarios.
To ensure additionality, IFM activities must occur as a direct result of carbon market incentives rather than fulfillment of pre-existing legal, civil, or fiduciary obligations. Project Proponents must demonstrate that project activities represent voluntary management decisions that exceed baseline requirements and would not occur absent Carbon Finance.
Areas subject to the below pre-existing requirements that mandate project activities are ineligible and must be excluded from the Project.
Pre-existing legal requirements include conservation easements requiring project activities that date to more than one year prior to the start of the Project and/or governmental regulations requiring project activities.
Project Proponents must demonstrate in the PDD that project activities do not occur within a conservation easement nor due to governmental regulations, and must disclose project areas subject to these requirements and exclude these areas from the Project.
[/R-WNR5-0]Pre-existing fiduciary or civil requirements include organizational bylaws, organizational governance mechanisms, or other contractual requirements that require project activities to occur within the Project Boundary under the baseline scenario(s). Conservation organizations with a pre-existing claim to the project area are ineligible to enroll in this Protocol due to their pre-existing mandate to conserve forest carbon stocks.
Project Proponents must demonstrate in the PDD that they are not subject to pre-existing fiduciary or civil requirements by disclosing organizational bylaws, organizational governance mechanisms, or other contractual requirements that require project activities to occur within the Project Boundary under the baseline scenario(s).
[/R-GAKT-0]The following steps must be taken to demonstrate that without Carbon Finance the project activity is not Common Practice, in accordance with the requirements defined in the relevant section of the Isometric Standard.
[/R-3ZFF-0]In accordance with the relevant section of the Isometric Standard, the proposed Project activity is considered to demonstrate Common Practice additionality where the market penetration rate is [math: \leq] 20%.
Project Proponents must first survey a representative sample of similar landowners from within the relevant geographic domain within five years of the project start date, and then calculate the cumulative market penetration rate (as a percentage) of the project activity by landowners who have not received Carbon Finance revenue (e.g., are neither part of a registered Isometric Project, nor registered under other GHG programs) in the sample of adopters.
[/G-75E4-0]Project Proponents may use statistics on IFM activities derived from data collected within five years of the project start date, provided they are relevant to the project area, do not distinguish between activities incentivized by and not incentivized by Carbon Finance (thus are conservative), and are publicly available as:
The uncertainty in the overall estimate of the net CO2e removal as a result of the Project must be accounted for. The total net CO2e removed for a specific Reporting Period (RP), [math: CO_2e_{removal, RP}], must be conservatively determined in accordance with the requirements outlined in the relevant section of the Isometric Standard.
Projects must report a list of all key variables used in the net CO2e removal calculation and their individual uncertainties, as well as a description of the uncertainty analysis approach, including:
The uncertainty information should at least include the minimum and maximum values of each individual variable.
[/G-NRWR-0]More detailed uncertainty information should be provided if available, as outlined in the relevant section of the Isometric Standard.
All variables must be included in the uncertainty analysis, unless it can be demonstrated that they have a negligible contribution to the final net CO2e uncertainty. This must be demonstrated via the sensitivity analysis required by the relevant section of the Isometric Standard, which demonstrates the impact of each input parameter's uncertainty on the final net CO2e uncertainty. Details of the sensitivity analysis method must be provided such that a third party can reproduce the results. Input variables may be omitted from an uncertainty analysis if they contribute to a 1% change in the net CO2e removal. For all other parameters, information about uncertainty must be specified and included as part of the overall assessment of Removal uncertainty.
The resulting uncertainty in the calculated Removal as a result of the individual contributing sources must be quantified using one of the approved approaches in the relevant section of the Isometric Standard.
Under this Protocol, a Monte Carlo simulation approach is recommended. In this approach, the uncertainty in removals is probabilistically simulated via random sampling of input parameters from their distributions which are reflective of uncertainty in parameter values.
[/G-9DRD-0]From the resulting simulated distribution of Removal values, a conservative estimate of the Removal value must be used — at least 1 standard deviation (square-root of the variance) below the mean, equivalent to the ≤16th percentile — in line with the relevant section of the Isometric Standard.
In accordance with the Isometric Standard, all evidence and data related to the underlying quantification of CO2e removal and environmental and social safeguards monitoring will be available to the public through the Isometric platform. That includes:
The Project Proponent may be required to disclose additional public evidence and data related to the underlying quantification of CO2e removal and environmental and social safeguards monitoring as required by the IFM intervention Module(s) the Project is crediting against.
See Section 6.3.1 on monitoring disclosure as part of the FPIC process.
The Project Proponent can request certain information to be restricted (only available to authorized Buyers, the Registry, and VVB) where it is subject to confidentiality. This includes emission factors, specific data, and/or proprietary models from licensed databases. However, all other numerical data produced or used as part of the quantification of net CO2e removal will be made available.
The scope of this Protocol includes GHG sources, sinks and reservoirs (SSRs) associated with an IFM project.
A cradle-to-grave GHG Statement must be prepared encompassing the GHG emissions relating to the activities outlined within the system boundary.
GHG emissions and removals associated with the Project may be direct emissions from a process, or indirect emissions from combustion of fuels, electricity generation, or other sources. Emissions must include all GHG SSRs within the system boundary, from the construction or manufacturing of each physical site and associated equipment, closure and disposal of each site and associated equipment, and operation of each process, including embodied emissions of equipment and consumables used in the project. The Project Proponent is responsible for identifying all sources of emissions directly or indirectly related to project activities.
Any emissions from sub-processes or process changes that would not have taken place without the CDR Project must be fully considered in the system boundary. Any activity that ultimately leads to the issuance of CreditsCertificates should be included in the system boundary.
The system boundary must include all relevant GHG SSRs controlled by, related to and affected by the Project, including but not limited to the SSRs set out in Table 1. If any GHG SSRs within Table 1 are deemed not appropriate to include in the system boundary, they may be excluded provided that robust justification and appropriate evidence is provided in the PDD.
Table 1. Scope of activities and GHG SSRs to be included in the system boundary.
Activity | GHG Source, sink or Reservoir | GHG | Scope | Timescale of emissions and accounting allocation |
|---|---|---|---|---|
Project Establishment | Equipment and materials | All GHGs | Embodied emissions associated with equipment and materials manufacture related to project establishment (lifecycle Modules A1-3). This must include product manufacture emissions for: equipment (e.g., excavators), buildings/structures (e.g., on-site nurseries), infrastructure (e.g., roads or footpaths), and temporary structures (e.g., tree shelters, fencing) | Before project operations start — must be accounted for in the first Reporting Period or amortized in line with allocation rules (See Section 9.5.1) |
Equipment and materials transport to site | All GHGs | Transport emissions associated with transporting materials, equipment and seedlings to the project site(s) (lifecycle Module A4). | ||
Planting and installation | All GHGs | Emissions related to construction and installation of the project site(s) (lifecycle Module A5). This must include, as appropriate: energy use for planting, installation and groundworks and/or waste processing activities, and emissions associated with land use change and site clearance — including biomass burning and fertilizer use. | ||
Misc. | All GHGs | Any SSRs not captured by categories above (e.g., staff travel). | ||
Operations | Fertilizer use (Direct) | N2O | Direct emissions related to the use of nitrogen-based fertilizers. | Over each Reporting Period — must be accounted for in the relevant Reporting Period (See Section 9.5.2). |
Forest management | All GHGs | Emissions related to forest management activities (e.g., harvesting, pruning, weeding, pest control, biomass burning and watering). This must include embodied emissions of equipment, as well as consumables such as water, fertilizers and pesticides. | ||
Maintenance | All GHGs | Maintenance of the project area, including any repair or replacement of equipment, vehicles, buildings and infrastructure. | ||
MRV | All GHGs | Emissions related to MRV activities (e.g., measurements, sampling, or commissioning LiDAR flights). | ||
CO₂ storage activities | All GHGs | Emissions related to additional activities required for CO2 storage, where applicable. These emissions must be quantified in line with the IFM intervention Module(s) the Project is crediting against. | ||
CO2 stored | CO2 | The gross amount of CO2 removed and durably stored in above and below ground biomass, and other optional carbon pools where eligible. See Section 9.3. | ||
Misc. | All GHGs | Any SSRs not captured by categories above (e.g., staff travel). | ||
End-of-Life | Ongoing Monitoring | All GHGs | Emissions relating to ongoing project monitoring activities after the Crediting Period, in line with the IFM intervention Module(s) the Project is crediting against. | After last Reporting Period — must be estimated and accounted for in the first Reporting Period or amortized in line with allocation rules (see Section 9.5.3) |
Ongoing forest management | All GHGs | Emissions relating to ongoing project management activities after the Crediting Period, in line with the IFM intervention Module(s) the Project is crediting against. | ||
End-of-life of project facilities and related to storage activities | All GHGs | Anticipated end-of-life emissions (lifecycle Modules C1-4) of project facilities. To include deconstruction and disposal of the project site(s), equipment, vehicles, buildings or infrastructure. To include end-of-life activities related to storage activities where applicable, in line with the IFM intervention Module(s) the Project is crediting against. | ||
Misc. | All GHGs | Any SSRs not captured by categories above (e.g., staff travel). |
The Project Proponent must consider all GHGs associated with SSRs, in alignment with the United States Environmental Protection Agency's definition of GHGs, which includes: carbon dioxide (CO2), methane (CH4), nitrous oxide (N2O) and fluorinated gasses such as hydrofluorocarbons (HFCs), perfluorocarbons (PFCs), sulfur hexafluoride (SF6) and nitrogen trifluoride (NF3). For CO2 stored, only CO2 will be included as part of the quantification and for Fertilizer use (Direct), only N2O shall be included as part of the quantification. For all other activities, all GHGs must be considered. For example, the release of CO2, CH4, and N2O is expected during diesel combustion.
All GHGs must be quantified and converted to CO2e in the GHG Statement using the 100-year Global Warming Potential (GWP) for the GHG of interest, based on the most recent volume of the IPCC Assessment Report (currently the Sixth Assessment Report).
Miscellaneous GHG emissions are those that cannot be categorized by the GHG SSR categories provided in Table 1. The Project Proponent is responsible for identifying all sources of emissions directly or indirectly related to project activities and must report any outside of the SSR categories identified as miscellaneous emissions.
Emissions associated with theThe Project's impact on activities that fall outside of the system boundary of theThe Project must also be considered. This is covered under Leakage in Section 8.23.
GHG accounting must be undertaken inIn line with the GHG Accounting Module v1.01, includingthe considerationsProject must:
See the GHG Accounting Module for full requirements.
The baseline scenario for improved forest management assumes that the activities associated with the Project do not take place and that any infrastructure associated with the Project is not built.
The Counterfactual is the CO2 stored that would have occurred due to natural regeneration over the Crediting Period in the absence of the Project. This Protocol uses a dynamic baseline approach to quantify the Counterfactual, detailed in Section 9.4. In this approach, the counterfactual is determined by observing changes in forest carbon stocks for a collection of areas outside of and/or excluded from forest management interventions within the project area (e.g., control pixels or plots) that are representative of the project area, except for the project activity.
Through this approach of using observations of matched controls, dynamic baselines are able to reflect changes in market trends, policies, environmental changes, etc., that can affect counterfactual carbon storage and which would be difficult to capture in static approaches. As such, the use of real-time remote sensing and robust matching procedures in the dynamic baseline procedure leads to the most plausible baseline scenario that can be clearly quantified and compared to the project activities. Further, in the dynamic baseline approach, the pixel or plot matching procedure matches project pixels or plots to multiple pixels or plots in the control area. Through this procedure, an ensemble of samples is generated which captures multiple baseline scenarios. This ensemble approach inherently generates probabilistic uncertainty through the variation in control pixels or plots. This uncertainty is then included in carbon calculations. Because of this, the use of dynamic baseline approaches that leverage remote sensing to compare project activities to matched controls has been noted as a rigorous and conservative approach in the scientific literature23,24,25,26,27.
Dynamic baselines will be independently determined and transparently reported by Isometric at each Verification to determine any deduction in CreditCertificate issuance based on the baseline scenario. CreditCertificate issuance will only occur for carbon removal that is determined to be additional via the procedure(s) within the IFM Intervention Module(s) the Project is crediting against, inclusive of uncertainty. Although dynamic baseline approaches are reliant on the suitability of the matched areas to act as controls, the standardized approach includes provisions for using several criteria for the matching, matching to multiple pixels or plots, assessing match quality, expanding the number of potential matches, and regularly reassessing control pixel or plot suitability to minimize the associated uncertainty.
In order to provide insight into the most realistic baseline scenario, it is imperative that Project Proponents detail all planned stand improvement activities and harvests in line with Section 6.5 and related sections of the IFM intervention Module(s) the Project is crediting against, as well as disclose all pre-existing forest management plans as required by the IFM intervention Module(s) the Project is crediting against.
See Sections 6.2.1, 6.2.2 and 6.2.3 for stand improvement, harvesting, and forest management requirements and disclosures.
See Section 6.1 for forest management requirements.
This section provides the framework for quantifying and deducting carbon emitted through forestry activities displaced by improved forest management projects, e.g. leakage.
Leakage emissions, [math: CO_2e_{leakage}], occur when project activities lead to emissions that occur outside the system boundary of improved forest management projects. They include increases in GHG emissions as a result of IFM projects displacing emissions or causing a secondary effect that increases emissions elsewhere. Three key types of leakage can occur for IFM projects:
Assessing ecological leakage impacts from IFM activities is complex. Project activities that adversely alter the water table, harming ecological integrity within the project area and surrounding landscape and watershed, are not permitted under this Protocol. For IFM activities, ecological interventions are limited to silvicultural practices on existing forested land. Therefore, it is unlikely that surrounding landscapes would be sensitive to hydrological dynamics as a result of IFM activities alone. For this version of the Protocol ecological leakage is assumed to be zero. This will be revisited in future updates to the Protocol.
Projects that displace production of any commodity that is not timber, or other products derived from wood, are not eligible under this Protocol (See Section 4.3). Therefore there is no risk of market or activity-shifting leakage associated with commodities other than timber or other wood products.
Project Proponents must demonstrate in the PDD that the Project will not displace commodity production of non-timber and/or non-wood-derived products by reporting all non-timber and/or non-wood-derived products generated in the project area prior to project activities, and how this productivity will be maintained throughout the Crediting Period.
[/R-QMB4-0]Furthermore, eligible projects are required to demonstrate that Direct Actors will not displace or transfer timber or wood-derived commodity production activities to alternative locations as a consequence of the Project. Projects must adhere to all activity-shifting requirements set forth in the IFM Intervention Module(s) the Project is crediting against.
See Section 8.1.2 for additional requirements.
See Section 8.1.2 for additional requirements.
Therefore, the risk of activity-shifting leakage is assumed to be zero.
Market leakage associated with timber or wood-product displacement are addressed in this Protocol and in the relevant IFM intervention Module(s) the Project is crediting against.
See Section 8.1 for additional requirements.
See Section 8.1 for additional requirements.
This Protocol acknowledges that carbon leakage from IFM projects implementing various forest management practices is only indirectly correlated to the potential volume reduction in timber. This discrepancy occurs because different forests and economies produce different wood products with variable efficiencies and market dynamics. Thus, the approach to and quantification of leakage — following the most recent best practices in the scientific literature — will vary by intervention type and forest management practice.
Project Proponents must quantify any leakage emissions according to the requirements set forth in the IFM intervention Module(s) the Project is crediting against.
See Section 8.1 for additional requirements.
See Section 8.1 for additional requirements.
The Reporting Period for IFM projects represents an interval of time over which removals are calculated and reported for Verification. The minimum duration of a Reporting Period is one year and the maximum duration of a Reporting Period is five years (see Section 5.2).
Total net CO2e removal is calculated for each Reporting Period and is written hereafter as [math: CO_2e_{Removal, RP}]. The net CO2e removal quantification must be conservatively determined, giving high confidence that at a minimum, the credited amount of CO2e was removed and stored.
GHG emission calculations must include all emissions related to project activities that occur within the Reporting Period (see Table 1). This includes:
In line with the Isometric Standard, this Protocol requires that Removal CreditsCertificates are issued ex-post. CreditsCertificates may be issued once CO2 has been removed from the atmosphere and is stored in living trees, soil, and/or harvested wood products.
Net CO2e removal for an improved forest management project for each Reporting Period (RP), is calculated with the following equation:
[math: CO_2e_{Removal, RP} = CO_2e_{Stored, RP} - CO_2e_{Counterfactual, RP} - CO_2e_{Emissions, RP}]
(Equation 1)
Where:
[math: CO_2e_{Stored, RP} = CO_2e_{AGB, RP} + CO_2e_{BGB, RP} + CO_2e_{HWP, RP} + CO_2e_{Soil, RP}]
(Equation 2)
Where:
The mandatory carbon pools within the scope of this Protocol are aboveground and belowground woody biomass (see Table 1), since they can be quantified with the highest level of accuracy and are able to be effectively monitored over time. Deadwood and litter carbon pools are excluded from the calculation of [math: CO_2e_{Stored, RP}] due to large uncertainties in quantification approaches and/or relatively small contributions to the total forest carbon pool. The inclusion of both HWPs and soil carbon as pools for Projects crediting under this Protocol is subject to the guidance and requirements of the IFM intervention Module(s) the Project is crediting against, and the details of how to calculate [math: CO_2e_{HWP, RP}] and [math: CO_2e_{Soil, RP}] are described in the applicable IFM intervention Module(s) the Project is crediting against.
See Section 8 for carbon pool applicability and requirements.
See Section 8 for carbon pool applicability and requirements.
For the remainder of the Protocol, the use of AGB and BGB refers to only the living aboveground and belowground woody biomass, respectively, unless otherwise noted. Details of how to calculate [math: CO_2e_{AGB, RP}] and [math: CO_2e_{BGB, RP}] are described below.
In certain distributed Projects where site(s) have varying contract lengths — such as in deferred harvest — [math: CO_2e_{Stored, RP}] may need to be equilibrated across the Project to ensure additionality and establish durability.
Project Proponents must follow any additional guidance and requirements set forth in the IFM intervention Module(s) the Project is crediting against for final determination of [math: CO_2e_{Stored, RP}].
See Section 9.1 for calculation of [math: CO_2e_{Stored, RP}].
See Section 9.1 for calculation of [math: CO\_2e\_{Stored}].
In cases where the intervention and forest management practices do not require adjustments to [math: CO_2e_{Stored, RP}], Projects must use the values as determined under this Protocol in Equation 2 for final determination of [math: CO_2e_{Stored, RP}].
The total carbon stored in aboveground biomass over a Reporting Period is calculated by taking the difference between the start and end of the Reporting Period:
[math: CO_2e_{AGB, RP} = CO_2e_{AGB}(t_2) - CO_2e_{AGB}(t_1)]
(Equation 3)
Where:
Reporting Periods are consecutive, so that [math: t_2] then becomes the start of the next RP.
The aboveground biomass carbon stock at a point in time, [math: t], is further calculated as:
[math: CO_2e_{AGB}(t) = \frac{44}{12} \times CF \times M_{AGB}(t)]
Where:
The carbon fraction, [math: CF], must be chosen from the following hierarchy.
[/R-B96S-0]This Protocol currently supports the following three Capture and Conversion Modules for quantifying the total aboveground woody biomass over the project area at a point in time, [math: M_{AGB}(t)]:
See the Area-based Quantification of Aboveground Biomass Module.
See the LiDAR Based Quantification of Aboveground Biomass Module.
See the Earth Observation Based Quantification of Aboveground Biomass Module.
For certain forest management interventions, subject to meeting all the requirements set forth in the IFM intervention Module(s) the Project is crediting against, Projects may elect to quantify [math: M_{AGB}(t)] through alternative approaches.
Requirements for each approach are described either in the corresponding Capture & Conversion Modules or in the IFM intervention Module(s) the Project is crediting against. Project Proponents must describe in the PDD which option is used, and adhere to the requirements of that approach. Note that both the LiDAR and Earth Observation Capture & Conversion Modules and, if applicable, the alternative quantification approach in the IFM intervention Module(s) the Project is crediting against, still require field plots as the source of truth for benchmarking the maps.
This list of acceptable approaches may be expanded upon in future versions of the Protocol.
See Section 9.2.1 on Calculation of [math: M_{AGB}] through Growth-Disturbance Models.
The total carbon stored in belowground biomass over a Reporting Period, [math: CO_2e_{BGB, RP}], is calculated as:
[math: CO_2e_{BGB, RP} = RS \times CO_2e_{AGB, RP}]
(Equation 4)
Where:
Appropriate root-to-shoot ratios should be selected by regional and species-specific factors that are justified based on scientific literature (e.g., USFS's Component Ratio Method or similar national-level species-specific ratios). This is the preferred approach to have the most accurate estimate and minimize the likelihood of overestimation.
[/R-YY2E-0]Project Proponents should use root-to-shoot ratios developed in tandem with other allometry, using resources such as the National Scale Volume Biomass (NSVB) equations31 or Allometric, an R package that curates allometric equations and facilitates their usage.
[/G-GQFQ-0]The uncertainty in selected [math: RS] factors must be reported from the same source dataset. For example, the IPCC 2019 Chapter on Forest Land29 provides an uncertainty in the root-to-shoot ratio.
[/G-R171-0]This Protocol uses a dynamic baseline approach to quantify the counterfactual impact on forest carbon stocks if the project activity had not occurred. Dynamic baselines will be independently determined and transparently reported by Isometric at each Verification — according to the procedures described in the IFM intervention Module(s) the Project is crediting against — to determine any deduction in CreditCertificate issuance based on the baseline scenario. CreditCertificate issuance will only occur for carbon removal that is determined to be additional via the procedures described in the IFM intervention Module(s) the Project is crediting against.
See Section 9.3 for the approach to dynamic baselining and calculation of [math: CO_2e_{Counterfactual, RP}].
See Section 9.3 for the approach to dynamic baselining and calculation of [math: CO_2e_{Counterfactual,RP}].
[math: CO_2e_{Emissions, RP}] is the total GHG emissions associated with a Reporting Period, [math: RP], in tonnes of CO2e. This can be calculated as:
[math: CO_2e_{Emissions, RP} = CO_2e_{Establishment, RP} + CO_2e_{Operations, RP} + CO_2e_{End-of-Life, RP} + CO_2e_{Leakage, RP}]
(Equation 5)
Where:
The following sections set out specific quantification requirements for each term in Equation 5.
GHG emissions associated with project establishment should include all historic emissions incurred as a result of project establishment, including but not limited to the SSRs set out in Table 1, such as biomass burning for site preparation, temporary structures, and fertilizer and/or herbicide application. An inventory of pre-project vegetation is required to quantify vegetation removed during project establishment.
Project establishment emissions occur from the point of project inception to the moment before the first removal activity takes place. GHG emissions associated with project establishment may be amortized over the anticipated project lifetime, or per output of product. Rules on amortization are outlined in Section 7 of the GHG Accounting Module v1.1.
See Section 7 of the GHG Accounting Module
GHG emissions associated with [math: CO_2e_{Operations, RP}] should include all emissions associated with operational activities, including but not limited to the SSRs set out in Table 1.
For IFM projects, the Reporting Period covers a set period of time (e.g., one year), during which the forest was growing and increasing its woody biomass. [math: CO_2e_{Operations, RP}] emissions must be attributed to the Reporting Period in which they occur. Allocation outside of the current Reporting Period may be permitted in certain instances, on a case by case basis in agreement with Isometric.
[math: CO_2e_{End-of-Life, RP}] includes all emissions associated with activities that are anticipated to occur at the end of the Crediting Period.
[math: CO_2e_{End-of-Life, RP}] must be estimated upfront and allocated in the same way as set out for calculation of [math: CO_2e_{Establishment}].
Given the uncertain nature of [math: CO_2e_{End-of-Life, RP}] emissions, assumptions must be revisited at each Reporting Period and any necessary adjustments made. Furthermore, if there are unexpected [math: CO_2e_{End-of-Life, RP}] emissions that occur after the Project has ended, then the Reversal process described in the relevant section of the Isometric Standard will be triggered to compensate for any emissions not accounted for.
[math: CO_2e_{Leakage, RP}] includes emissions associated with a Project's impact on activities that fall outside of the system boundary of the Project. It includes increases in GHG emissions as a result of the Project displacing emissions or causing a secondary effect that increases emissions elsewhere.
The [math: CO_2e_{Leakage, RP}] calculation approach is set out in Section 8.2.23 and is not repeated here.
ProjectGHG Proponentsemissions accounting must usebe undertaken in alignment with the mostGHG representativeAccounting Module v1.1, accuratewhich ensures a consistently rigorous standard in how GHG emissions are quantified and plausiblereported between different CDR Projects and approaches. This includes:
Refer to GHG Accounting Module.
An example isfor emissions accounting guidelines.
The Energy Use Accounting Module v1.3 provides requirements on how energy-related toemissions harvesting.must be calculated for The Project Proponentso shouldthat strivethey tocan obtainbe activitysubtracted data such as electricity use and consumable use ofin the harvestingnet machineryCO₂e removal calculation. If such data is not available, it is acceptable to use an industry average emission factor for the type of machinery and use case. Suitable emission factor sources are described in relevant Modules, as set out below.
This sectionIt sets out specificthe requirementscalculation relatingapproach to quantificationbe offollowed energyfor useintensive asfacilities partand ofnon-intensive thefacilities GHGand Statement.acceptable Emissionsemission associated with energy usage result from the consumption of electricity or fuelfactors.
ExamplesEnergy ofemissions activitiesare thatthose mayrelated requireto electricity or fuel usage. They may include, but are not limited to:
TheRefer to the Energy Use Accounting Module for guidance on fuel and energy emissions calculations.
The GHG Accounting Module v1.1 provides requirements on how energy-relatedtransportation and embodied emissions must be calculated for theThe Project so that they can be subtracted in the net CO2₂e removal calculation. It sets out the calculation approach to be followed for intensive facilities and non-intensive facilities and acceptable emission factors.
See the Energy Use Accounting Module.
This section sets out specific requirements relating to quantification of transportation emissions as part of the GHG Statement.
Emissions associated with transportation include transportation of products and equipment as part of project activities. Examples may include, but are not limited to:
The GHG Accounting Module provides requirements on how transportation-related emissions must be calculated so that they can be subtracted in the net CO2e removal calculation. It sets out the calculation scope, approach to be followed, and acceptable emissions factors.
See Section 4.2.
This section sets out specific requirements relating to quantification of embodied emissions as part of the GHG Statement. Embodied emissions are those related to energy use or other emissions during the manufacturelife cycle impact of equipment and materialsconsumables. usedThey in a process.
Examples of project-specific materials and equipment that must be considered as part of the embodied emission calculationmay include, but are not limited to:
TheTransportation GHGemissions Accountingare Modulethose setsrelated outto transportation of products and equipment. They may include, but are not limited to:
SeeRefer to Section 4.1 and Section 4.2 of the GHG Accounting Module for guidance on embodied and transportation emissions calculations.
Any models used to fill requirements under this Protocol must be well-validated and skillful for the purpose that they were used for. Proof of model validation can be achieved through either:
Projects may be subject to additional model validation requirements as set forth in the Capture and Conversion Module(s) and/or the IFM intervention Module(s) the Project is crediting against.
See Section 4.2.1.
See Section 7.
See Section 4.
See Section 9.5 for model validation requirements.
See Section 9.5 for model requirements.
The storage reservoir of the CO2 removed through IFM is live aboveground and belowground woody biomass and, if applicable, soil carbon or harvested wood products. The durability of a CDR process refers to the length of time for which CO2 is removed from the Earth's atmosphere and cannot contribute to further climate change. This section details the durability, risks of Reversals and requirements for storage of removed atmospheric CO2 as live woody biomass and, if applicable, soil carbon or harvested wood products.
The durability of the CreditCertificate is informed by the intervention and forest management practice. Thus, Projects must claim durability according to the guidance and requirements as set forth in the IFM intervention Module(s) the Project is crediting against. The minimum durability of CreditsCertificates issued under this Protocol is 40 years.
See Section 10.1 for information on and requirements for Durability claims.
See Section 10.1 for information and and requirements for Durability claims.
Reversals are defined as reductions in forest biomass that may result in emissions of CO2 to the atmosphere. Reversal risk is quantified by assessing the likelihood of a disturbance event occurring over a period of time and estimating the severity of the disturbance in terms of biomass loss. Disturbance events may be natural or anthropogenic, such as fire, drought/heat, insect and disease, illegal deforestation, and windfall events. A disturbance event which results in a reduction in forest biomass is considered a loss event. The duration of disturbance events may be over multiple years (e.g., drought) or for a very limited duration (e.g., windstorm).
The likelihood and severity of disturbances are influenced by external and project-related factors.
Furthermore, the risk profile of the Project may change over the project lifetime due to:
Projects must complete the Risk Assessment(s) of the IFM intervention Module(s) the Project is crediting against, the results of which are independently evaluated by a third-party VVB.
See Appendix A for the Risk Assessment.
See Appendix A for the Risk Assessment.
The Risk Assessment is used to determine the risk profile of the Project, including risks to CreditCertificate delivery and storage. Aspects of the Project which have higher risk exposure should be accompanied by an appropriate risk mitigation plan. To safeguard against high risk projects, the Project must score below the indicated thresholds to be eligible for crediting under this Protocol.
The Risk Assessment(s) must be updated each Reporting Period by the Project Proponent and increased risk scores will result in additional mitigation activities.
The following safeguards are required for all IFM projects and must be in place at the start of the Project and maintained throughout the Crediting Period. The Project Proponent must comply with each of the following.
Within reason and feasibility, select appropriate project siting to reduce disturbance risk from neighboring activities.
[/R-JJY3-0]Identify and reduce risk of unintended fires through a fire management plan (e.g., removing fuel, fire breaks or fire towers, fire-fighting equipment and training).
[/R-67SR-0]For Projects with project areas categorized as "High" or "Extremely High" according to the Baseline Annual Physical Risk for Water Quantity (see Section 6.7.2), Project Proponents must reduce risk of drought through a water management plan (e.g., securing water supply, water infrastructure, ensuring water resources are not strained for neighboring areas).
Project Proponents must identify the risk of windfall events through analysis of historical storm events and topography.
[/R-SWND-0]Identify and reduce the risk of pests and disease through a management plan.
[/R-DHH2-0]Evaluate the risk of ice storms.
[/R-16CQ-0]Identify and reduce risks unique to the Project.
[/R-MV8C-0]The Project Proponent must include the results of its mandatory safeguard evaluation, mitigation, and design in the PDD.
As outlined in the relevant section of the Isometric Standard, the Buffer Pool is a mechanism used to insure against risks of Reversals that may be observable and attributable to the Project through monitoring.
Currently, there is insufficient published scientific evidence to quantitatively account for climate change, management activities, or forest age and translate this into a highly accurate Buffer Pool contribution. As a result, Isometric applies either a flat contribution requirement on the Project or a model to translate the Module Risk Assessment(s) into a Buffer Pool contribution. As actuarial data improve and more research is published, the Protocol requirements will be updated accordingly.
To be eligible under this Protocol, the Project must either:
The Buffer Pool contribution will be held in a IFM-wideForestry Buffer Pool managed by Isometric. Pooling of a diversified portfolio of improved forest management projects across geographic regions, spatial scales and temporal scales can reduce the exposure to systemic risks stemming from IFM projects constrained to a geographic area or ecological type23,38,39. The IFM-wide Buffer Pool composition will be transparently reported on the Isometric Registry.
The Buffer Pool Compensation Process is governed by the Isometric Standard. The following procedures apply upon detection and quantification of a loss event.
For more details on Reversals, refer to the relevant sections on reversal risk and reversals of the Isometric Standard.
Reversals represent a loss of carbon stock to the forest since the Project's last verification — i.e., carbon losses exceed gains for that Reporting Period. Yet, in many IFM practices, these losses may be due to planned harvest or stand improvement activity.
Isometric will evaluate forest carbon loss against any planned activities of the Project for determination of reversals and the liability of Project Proponents for the compensation of any such reversals. Thus, it is imperative that Project Proponents detail all planned stand improvement activities and harvests in line with Section 6.5 and applicable sections of the IFM intervention Module(s) the Project is crediting against.
See Section 6.2 for monitoring requirements around forest management activities.
See Section 10.2 for monitoring requirements over the Ongoing Monitoring Period.
Isometric will independently conduct continuous monitoring for Reversals for the full length of the Crediting Period. Monitoring will consist of:
Upon detection of a Reversal, Project Proponents must thoroughly investigate, initiate adaptive management to minimize losses, and implement mitigation actions to reduce future risks of Reversal.
Unplanned loss events representing a reduction of carbon stored in live woody biomass greater than 1% of the cumulative tonnes of CO2e removed by the Project (based on total number of CreditsCertificates issued) or exceeding 15% of the project area must be reported, investigated, and compensated for.
Upon detection of a loss event by Isometric or other third party, the following procedures will commence:
Quantification of Reversals are calculated through two approaches. To be eligible under this Protocol, the Project must either:
Since only carbon stored in live woody biomass is considered for all IFM Projects in the quantification of carbon removal, this Protocol conservatively assumes that all carbon stored in live woody biomass is immediately released to the atmosphere upon mortality as a result of a disturbance event. Belowground biomass is conservatively assumed to be lost proportionally to aboveground biomass. For Projects where HWPs or soil carbon are applicable and eligible pools according to the IFM intervention Module(s) the Project is Crediting against, those IFM intervention Module(s) will dictate reversal quantification for those pools.
Projects which experience a Reversal on the scale of 20% of the cumulative tonnes of CO2e removed by the Project (based on total number of CreditsCertificates issued) must conduct Option 1 — field sampling or LiDAR surveys — to quantify the remaining stocks of forest carbon stored in live woody biomass according to the guidance and requirements in Area-based Quantification of Aboveground Biomass and LiDAR Based Quantification of Aboveground Biomass, respectively.
All pre-deployment requirements must be described in the PDD, as outlined in Section 7.1. The requirements are as follows:
This Protocol requires a combination of in situ and remotely-sensed monitoring for the following purposes:
This section summarizes the Monitoring requirements that are discussed throughout this Protocol.
Project monitoring responsibilities are split between the Project Proponent and Isometric as follows:
This Protocol refers to monitoring at multiple different locations, which are illustrated in an example in Figure 1.
Georeferenced maps of monitoring locations that the Project Proponent is responsible for (i.e., everything inside the project area) must be described and submitted with the PDD.
[/R-FSVB-0]Isometric will transparently disclose locations of control pixels or plots.
[Image: Schematic of monitoring locations]
Figure 1. Schematic of the various monitoring locations referred to throughout this Protocol.
The entire project area in Figure 1 must be monitored for the duration of the Crediting Period.
During the Crediting Period, monitored parameters from an AGB proxy map (e.g., canopy height) in the project area is used in conjunction with control pixels or plots to establish a dynamic baseline for determining the additionality of carbon storage in the project area. Isometric or another independent third party will be responsible for project area monitoring for establishing relative change compared to control pixels or plots (see Section 12.2.2).
Control pixels or plots are used to assess forest outcomes in similar land areas outside the project area to determine the additional carbon storage of an IFM project beyond the counterfactual scenario. Control pixels or plots are selected by matching each project area pixel or plots to a number of pixels or plots outside the project area that historically behaved similarly (see Section 9.4).
An AGB proxy map (e.g., canopy height) is used to determine the relative difference in forest carbon between the Project and Counterfactual scenario for each Reporting Period. Isometric is responsible for the selection of control pixels or plots and the calculation of the dynamic baseline (see Section 9.4).
Airborne laser scanning measurements are only applicable for projects that wish to use regional LiDAR models to estimate AGB (see LiDAR Based Quantification of Above-ground Biomass). LiDAR data collection should occur throughout the Crediting Period. The minimum frequency is set by the IFM Intervention Module(s) the Project is crediting against.
In situ field measurements are required for all projects throughout the Crediting Period. Field plots may be used as the primary method for calculating aboveground biomass (see Area-based Quantification of Above-ground Biomass), or used for benchmarking LiDAR-derived AGB maps, as well as regional or global third-party AGB maps. Details of the application of these methodologies for AGB quantification are described in the corresponding Modules.
For projects selecting the quantification approach where AGB is derived directly from field measurements, then in situ field plots must be sampled at the beginning and end of each Reporting Period. Otherwise, for both LiDAR approaches and global AGB maps, field measurements must be taken at the minimum frequency set by the IFM Intervention Module(s) the Project is crediting against for benchmarking purposes.
Table 2. Summary of the required and recommended monitoring parameters.
Frequency | Location | Parameter | Methods | Justification | Required or not | Responsible party |
|---|---|---|---|---|---|---|
At the start and end of each RP for Area-Based Quantification. Otherwise, at least every 5 years — unless superseded by the IFM Intervention Module(s) the Project is crediting against. | In-situ field plots | DBH for all trees larger than 10 cm diameter, though Project Proponents may collect and report data on all trees > 2 cm | Tape measure | Fundamental measurement estimating AGB using allometric equations | Required | Project Proponent |
Tree species | Ecologist identification | Necessary for selecting species-specific allometric equations and parameters | Required | Project Proponent | ||
As frequent as the start and end of each Reporting Period, e.g. once a year in the same season. Minimally, as set by the IFM Intervention Module(s) the Project is crediting against. | Laser scanning plots | 3D Point clouds | Laser scanning instruments | To derive estimates of forest aboveground biomass | Required when LiDAR quantification Module selected | Project Proponent |
At the start and end of each Reporting Period, e.g. once a year in the same season | Project Area | AGB Map | Satellite data or third-party mapped product | To derive estimates of forest aboveground biomass | Required when Earth Observation quantification Module selected | Isometric or a third party |
Control pixels & project area | Forest carbon proxy (e.g, canopy height, biomass saturation index) | Satellite data or third-party mapped product | To quantify relative change in forest carbon sequestration between control pixels and project area | Required | Isometric or a third party | |
From the end of the Crediting Period to the end of the Project, annually | Project Area | Indicators of deforestation | Satellite | To identify Reversals and appropriately remediate through the Buffer Pool | Required | Isometric or a third party |
Isometric would like to thank Renoster, for their extensive feedback during this Protocol's development.
Several of the terms provided here are discussed in more thorough detail in specific sections within the Protocol. Please refer to these sections for more detail for how these terms relate to eligibility and crediting procedures.
Additionality
Approved Resources and Third-Party Datasets
Baseline
Buffer Pool Contribution
Insurance
Leakage
Leakage Mitigation
Stakeholder Engagement
This appendix provides Project Proponents with a systematic approach to identify, evaluate, and apply existing Best Management Practices (BMPs) relevant to their specific Improved Forest Management (IFM) projects. Rather than prescribing specific practices, this guide establishes a framework for leveraging the extensive body of BMP literature and guidance developed by governmental agencies, research institutions, and forest management organizations.
Project Proponents must demonstrate in their Project Design Document (PDD) that they have conducted a thorough review of applicable BMP sources and have selected appropriate practices based on site-specific conditions, local regulations, and project objectives.
[/R-3EQ0-0]Project Proponents should follow a four-step process to identify and implement appropriate BMPs.
When evaluating BMP sources, Project Proponents should assess scientific credibility, practical applicability, date of publication, and geographic transferability.
[/G-WHVK-0]When sources provide conflicting BMP recommendations, Project Proponents should prioritize regulatory requirements over voluntary guidance, select the most protective environmental standard, consult technical experts, and document rationale for selected practices.
[/G-G6Q8-0]If existing BMP sources do not adequately address project-specific conditions, Project Proponents should extrapolate from similar conditions in other regions, consult technical experts, develop practices based on scientific principles, or implement adaptive management with enhanced monitoring.
[/G-3VJX-0]BMP identification and implementation is an ongoing process throughout the project lifecycle, with regular updates based on new research findings, regulatory changes, and monitoring results. Success depends on thorough planning, careful implementation, and continuous improvement through adaptive management.
Project Proponents should establish monitoring protocols to evaluate BMP effectiveness by defining measurable environmental outcomes, establishing baseline conditions before implementation, monitoring during operations and post-implementation, and adapting practices based on monitoring results.
[/G-QGEJ-0]Table B1. BMP Source Hierarchy and Regional Resources. This table provides a structured framework for identifying Best Management Practices organized by tier and region, with specific resource examples for each combination.
Tier | Scope | Regions | Resources |
|---|---|---|---|
Tier 1: Regulatory Requirements (Legal requirements that must be followed) | Federal/National | United States | National Forest Management Act Regulations (36 CFR 219), Clean Water Act NPDES Permits, Endangered Species Act Section 7 Consultation |
Canada | Canadian Environmental Protection Act, Species at Risk Act (SARA), Fisheries Act | ||
International | Convention on Biological Diversity, UN Framework Convention on Climate Change, Ramsar Convention on Wetlands | ||
State/Provincial | United States | Oregon Forest Practices Act, Washington Forest Practices Rules, Maine Forest Practices Act | |
Canada | British Columbia Forest and Range Practices Act, Ontario Crown Forest Sustainability Act, Quebec Sustainable Forest Development Act | ||
International | National forest laws and regulations in applicable jurisdictions (e.g., European Union Timber Regulation, Australian Forest Management Standards) | ||
Local | United States | County timber harvest permits, municipal tree ordinances, local watershed protection districts, fire prevention ordinances | |
Canada | Municipal forest bylaws, conservation authority permits, regional district regulations | ||
International | Local government forestry permits and bylaws | ||
Tier 2: Governmental BMP Guidance (Non-regulatory authoritative guidance) | Federal Agencies | United States | USDA Forest Service National Core BMP Technical Guide, EPA Forestry Nonpoint Source Guidance, NRCS Field Office Technical Guides |
Canada | Natural Resources Canada Criteria and Indicators Framework, Environment Canada Water Quality Guidelines, Canadian Forest Service Technical Publications | ||
International | FAO Sustainable Forest Management Guidelines, UNEP Forest Management Guidelines | ||
State/Regional Agencies | United States | Georgia Forestry Commission BMP Manual, Washington State Forest Practices Board Manual, Michigan Silviculture BMP Manual | |
Canada | BC Silviculture Guidebook Series, Ontario Forest Management Guide for Silviculture, Quebec Ministry of Forests BMP Guides | ||
International | Regional government forestry extension services and BMP manuals | ||
Tier 3: Professional and Industry Standards | Professional Organizations | United States | SAF Certified Forester Standards, Association of Consulting Foresters Practice Standards, SFI Forest Management Standards |
Canada | Canadian Institute of Forestry Professional Standards, PEFC Canada Sustainable Forest Management Standards, Association of BC Forest Professionals Practice Standards | ||
International | FSC Principles and Criteria v5.2, PEFC International Standards, IUFRO Good Forest Engineering Practices | ||
Industry Standards | United States | American Forest Foundation Standards, National Alliance of Forest Owners Guidelines, AFPA Sustainability Standards | |
Canada | Forest Products Association of Canada Standards, Council of Forest Industries BC Standards | ||
International | Global Forest Registry Standards, International timber trade association sustainability criteria | ||
Tier 4: Research-Based Guidance | Academic Sources | United States | USDA Forest Service Research Stations Publications, Penn State Extension Forestry Resources, University of Florida SFRC Publications |
Canada | Canadian Forest Service Research Publications, FORREX Research Extension Publications, University of Alberta Forestry Research | ||
International | IUFRO Scientific Publications, CIFOR Research Papers, European Forest Institute research outputs | ||
Research Organizations | United States | NCASI Technical Bulletins, Pinchot Institute Research Publications, Regional forest research cooperatives (e.g., Hardwood Research Cooperative) | |
Canada | FPInnovations Technical Reports, Sustainable Forest Management Network Publications, Provincial forest research institutes | ||
International | IUFRO Task Force Reports, CIFOR Working Papers, European Forest Institute Publications |
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