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Inventory

(27)
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2018/26

Topic

(27)
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Number of standing living trees and shrubs ≥12 cm in diameter at breast height (dbh) on which a microhabitat was found. Since various microhabitats at a time may be found on the same tree, the tree may contribute to the number of stems (standing-living) of several different microhabitats. Microhabitats are defined as: fungal fruiting bodies; areas on the stem where moss, lichen or ivy covers more than 10%; woodpecker breeding cavity; shallow tree cavity; wide crack; bark pocket; fresh break; dendrotelm; canker or burr; buttress-root concavity; deep tree cavity; area of exposed bare wood larger than a hand; stag-headedness; resin flow; insect damage (foot of trunk /trunk/stem); >20% dead branches.
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Classification

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Altitudinal vegetation belts in the system used in the guidelines for monitoring the sustainability and performance of protection forests (NaiS; Frehner et al. 2005), reduced to six classes. The variable represents a simplification of the NaiS altitudinal vegetation belts with ten classes (NAISHSTKOMB) in which the classes «hyperinsubric» and «colline» are merged with «colline with beech» to form the class «hyperinsubric and colline» and the class «lower montane» with «upper montane» and «lower/upper montane» to form the class «lower and upper montane». The information is based on the altitudinal vegetation belts determined by experts (accessible forest sample plots of NFI4 on the 1.4-km network; Arge Frehner et al. 2020), as well as on the altitudinal vegetation belts modelled for the period 1981-2010 (other sample plots; Zischg et al. 2021).
(6)
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Diameter at breast height (dbh) of trees and shrubs ≥12 cm – in classes of 20 cm. Reference: Field Survey (MID 60: Brusthöhendurchmesser, MID 62: Umfang)
(3)
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Areas in higher and lower altitude zones classified according to the system used for altitudinal vegetation belts in the guidelines for monitoring the sustainability and performance of protection forests (NaiS; Frehner et al. 2005). The boundary between the higher and lower altitudes runs between the «upper montane» and «lower montane» levels on the Northern Alps and between the «high montane» and «upper/lower montane» levels to the Southern Alps. The information is based on the altitudinal vegetation belts determined by experts (accessible forest sample plots of NFI4 on the 1.4-km network; Arge Frehner et al. 2020), as well as on the altitudinal vegetation belts modelled for the period 1981-2010 (other sample plots; Zischg et al. 2021).
(27)
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Type of microhabitat that occurs at least once on a tree or shrub ≥12 cm in diameter at breast height (dbh). Reference: Field Survey (MID 819: Bemerkung zu Ex-LFI-Probebaum, MID1027: Baumschadenart, MID 1035-1049: Baummikrohabitate)
(3)
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Forest ownership, classified according to the two categories: 'public' and 'private'. Reference: Forest Service Survey (MID 365: Eigentum)
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region

(27)
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Regional demarcation with the forest districts as a unit. This variable is based on a survey of the cantonal forest services in winter 2022/2023.
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evaluation area

(9)
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Forest of which less than two-thirds is covered with shrubs that can be accessed on foot.
(9)
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Forest that was less than two-thirds covered with shrubs in the five inventories NFI1 (1983-1985), NFI2 (1993-1995), NFI3 (2004-2006), NFI4 (2009-2017) and NFI5 (2018-2026) and was accessible on foot.
(9)
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Forest that was less than two-thirds covered with shrubs in both NFI4 (2009-2017) and NFI5 (2018-2026) and is accessible on foot.

grid

(27)
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Sub-grids 1, 2, 3, 4 and 5 of the field surveys on the sampling grid with a mesh size of 1.4 km (base grid).
search result: 27 entries on 2 pages
12
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)
accessible forest without shrub forest
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)
accessible forest without shrub forest NFI1-NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)
accessible forest without shrub forest NFI4/NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
diameter at breast height (in 20 cm classes)·microhabitats (20 classes)
accessible forest without shrub forest
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
diameter at breast height (in 20 cm classes)·microhabitats (20 classes)
accessible forest without shrub forest NFI1-NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
diameter at breast height (in 20 cm classes)·microhabitats (20 classes)
accessible forest without shrub forest NFI4/NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·altitudinal vegetation belts (NaiS; 6 classes)
accessible forest without shrub forest
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·altitudinal vegetation belts (NaiS; 6 classes)
accessible forest without shrub forest NFI1-NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·altitudinal vegetation belts (NaiS; 6 classes)
accessible forest without shrub forest NFI4/NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·diameter at breast height (in 20 cm classes)
accessible forest without shrub forest
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·diameter at breast height (in 20 cm classes)
accessible forest without shrub forest NFI1-NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·diameter at breast height (in 20 cm classes)
accessible forest without shrub forest NFI4/NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·higher/lower altitude zone
accessible forest without shrub forest
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·higher/lower altitude zone
accessible forest without shrub forest NFI1-NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·higher/lower altitude zone
accessible forest without shrub forest NFI4/NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·ownership (2 categories)
accessible forest without shrub forest
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·ownership (2 categories)
accessible forest without shrub forest NFI1-NFI5
1.4 km grid, subgrids 1-5
LFI5 2018/26
forest district (2023)
number of stems (standing living trees) with microhabitat
microhabitats (20 classes)·ownership (2 categories)
accessible forest without shrub forest NFI4/NFI5
1.4 km grid, subgrids 1-5
search result: 27 entries on 2 pages
12

Citation

Abegg, M.; Ahles, P.; Allgaier Leuch, B.; Cioldi, F.; Didion, M.; Düggelin, C.; Fischer, C.; Herold, A.; Meile, R.; Rohner, B.; Rösler, E.; Speich, S.; Temperli, C.; Traub, B.,
2023: Swiss national forest inventory NFI. Result tables and maps of the NFI surveys 1983–2022 (NFI1, NFI2, NFI3, NFI4, NFI5.1–5) on the internet. [Published online 30.05.2023] Available from the World Wide Web <http://www.lfi.ch/resultate/> . Birmensdorf, Swiss Federal Research Institute WSL
https://doi.org/10.21258/1769925