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Activity of Slow-Moving Landslides Recorded in Eccentric Tree Rings of Norway Spruce Trees (Picea Abies Karst.) — An Example from the Kamienne MTS. (Sudetes MTS., Central Europe)

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Awdankiewicz M, 1999. Volcanism in a late Variscan intramontane trough: Carboniferous and Permian volcanic centres of the IntraSudetic Basin, SW Poland. Geologia Sudetica 32(1): 13–47.AwdankiewiczM1999Volcanism in a late Variscan intramontane trough: Carboniferous and Permian volcanic centres of the IntraSudetic Basin, SW PolandGeologia Sudetica3211347Search in Google Scholar

Baroň I, Řehánek T, Vošmik J, Musel V and Kondrová L, 2011. Report on a recent deep-seated landslide at Gírová Mt., Czech Republic, triggered by a heavy rainfall: The Gírová Mt., Outer West Carpathians; Czech Republic. Landslides 8(3): 355–361, DOI 10.1007/s10346-011-0255-y.BaroňIŘehánekTVošmikJMuselVKondrováL2011Report on a recent deep-seated landslide at Gírová Mt., Czech Republic, triggered by a heavy rainfall: The Gírová Mt., Outer West Carpathians; Czech RepublicLandslides83355361DOI10.1007/s10346-011-0255-yOpen DOISearch in Google Scholar

Berg G, Dathe E and Zimmermann E, 1910.Geologische Karte von Preussen 1:25 000.Blatt Friedland i. Schl.BergGDatheEZimmermannE1910Geologische Karte von Preussen 1:25 000Blatt Friedland i. SchlSearch in Google Scholar

Bossowski A, Cymerman Z, Grocholski A and Ihnatowicz A, 1995. Objaśnienia do Szczegółowej Mapy Geologicznej Sudetów 1:25000, Arkusz Jedlina Zdrój (Explanations to Detailed Geological Map of Poland, scale 1:25,000 Jedlina Zdrój Sheet). Warszawa, PIG: 60pp (in Polish).BossowskiACymermanZGrocholskiAIhnatowiczA1995Objaśnienia do Szczegółowej Mapy Geologicznej Sudetów 1:25000Arkusz Jedlina Zdrój(Explanations to Detailed Geological Map of Poland, scale 1:25,000 Jedlina Zdrój Sheet)WarszawaPIG:60pp(in Polish)Search in Google Scholar

Braam RR, Weiss EEJ and Burrough PA, 1987. Spatial and temporal analysis of mass movement using dendrochronology. Catena 14(6): 573–584, DOI 10.1016/0341-8162(87)90007-5.BraamRRWeissEEJBurroughPA1987Spatial and temporal analysis of mass movement using dendrochronologyCatena146573584DOI10.1016/0341-8162(87)90007-5Open DOISearch in Google Scholar

Cascini L, Fornaro G and Peduto D, 2009. Analysis at medium scale of low-resolution DInSAR data in slow-moving landslide-affected areas. ISPRS Journal of Photogrammetry and Remote Sensing 64(6): 598–611, DOI 10.1016/j.isprsjprs.2009.05.003.CasciniLFornaroGPedutoD2009Analysis at medium scale of low-resolution DInSAR data in slow-moving landslide-affected areasISPRS Journal of Photogrammetry and Remote Sensing646598611DOI10.1016/j.isprsjprs.2009.05.003Open DOISearch in Google Scholar

Ciężkowski W and Koszela S, 1988. Tremblements de terre locaux dans les Sudetes, SW Pologne, et certaines de leurs consequences. In: Marinos PG, Koukis GC, eds., The Engineering Geology of Ancient Works, Monuments and Historical Sites. Balkema, Rotterdam: 1285–1289.CiężkowskiWKoszelaS1988Tremblements de terre locaux dans les Sudetes, SW Pologne, et certaines de leurs consequencesMarinosPGKoukisGCThe Engineering Geology of Ancient Works, Monuments and Historical SitesBalkemaRotterdam12851289Search in Google Scholar

Comegna L, Picarelli L, Bucchignani E and Mercogliano P, 2013. Potential effects of incoming climate changes on the behaviour of slow active landslides in clay. Landslides 10(4): 373–391, DOI 10.1007/s10346-012-0339-3.ComegnaLPicarelliLBucchignaniEMercoglianoP2013Potential effects of incoming climate changes on the behaviour of slow active landslides in clayLandslides104373391DOI10.1007/s10346-012-0339-3Open DOISearch in Google Scholar

Corominas J and Moya J, 1999. Reconstructing recent landslides activity in relation to rainfall in the Llobregat River basin, Eastern Pyrenees, Spain.Geomorphology 30: 79–93, DOI 10.1016/S0169-555X(99)00046-X.CorominasJMoyaJ1999Reconstructing recent landslides activity in relation to rainfall in the Llobregat River basin, Eastern Pyrenees, SpainGeomorphology307993DOI10.1016/S0169-555X(99)00046-XOpen DOISearch in Google Scholar

Corominas J and Moya J, 2010. Contribution of dendrochronology to the determination of magnitude-frequency relationships for landslides.Geomorphology 124:137–149, DOI 10.1016/j.geomorph.2010.09.001.CorominasJMoyaJ2010Contribution of dendrochronology to the determination of magnitude-frequency relationships for landslidesGeomorphology124137149DOI10.1016/j.geomorph.2010.09.001Open DOISearch in Google Scholar

De Vita P, Carratù MT, La Barbera G and Santoro S, 2013. Kinematics and geological constraints of the slow-moving Pisciotta rock slide (southern Italy). Geomorphology 201: 415–429, DOI 10.1016/j.geomorph.2013.07.015.De VitaPCarratùMTLa BarberaGSantoroS2013Kinematics and geological constraints of the slow-moving Pisciotta rock slide (southern Italy)Geomorphology201415429DOI10.1016/j.geomorph.2013.07.015Open DOISearch in Google Scholar

Di Maio C, Vassallo R and Vallario M, 2013. Plastic and viscous shear displacements of a deep and very slow landslide in stiff clay formation. Engineering Geology 162: 53-66, DOI 10.1016/j.enggeo.2013.05.003.Di MaioCVassalloRVallarioM2013Plastic and viscous shear displacements of a deep and very slow landslide in stiff clay formationEngineering Geology1625366DOI10.1016/j.enggeo.2013.05.003Open DOISearch in Google Scholar

Du S, Sugano M, Tsushima M, Nakamura T and Yamamoto F, 2004. Endogenous indole-3-acetic acid and ethylene evolution in tilted Metasequoia glyptostroboides stems in relation to compressionwood formation.Journal of Plant Research 117(2): 171–174, DOI 10.1007/s10265-003-0135-1.DuSSuganoMTsushimaMNakamuraTYamamotoF2004Endogenous indole-3-acetic acid and ethylene evolution in tilted Metasequoia glyptostroboides stems in relation to compressionwood formationJournal of Plant Research1172171174DOI10.1007/s10265-003-0135-1Open DOISearch in Google Scholar

Fantucci R and McCord A, 1995. Reconstruction of landslide dynamic with dendrochronological methods.Dendrochronologia 13: 43–58.FantucciRMcCordA1995Reconstruction of landslide dynamic with dendrochronological methodsDendrochronologia134358Search in Google Scholar

Fantucci R and Sorriso-Valvo M, 1999. Dendrogeomorphological analysis of a slope near Lago Calabria (Italy).Geomorphology 30: 165–174, DOI 10.1016/S0169-555X(99)00052-5.FantucciRSorriso-ValvoM1999Dendrogeomorphological analysis of a slope near Lago Calabria (Italy)Geomorphology30165174DOI10.1016/S0169-555X(99)00052-5Open DOISearch in Google Scholar

Fernández-Merodo JA, García-Davalillo JC, Herrera G, Mira P and Pastor M, 2014.2D viscoplastic finite element modelling of slow landslides:the Portalet case study (Spain).Landslides 11(1): 29– 42, DOI 10.1007/s10346-012-0370-4.Fernández-MerodoJAGarcía-DavalilloJCHerreraGMiraPPastorM20142D viscoplastic finite element modelling of slow landslides: the Portalet case study (Spain)Landslides1112942DOI10.1007/s10346-012-0370-4Open DOISearch in Google Scholar

Filion L, Quinty F and Bégin C, 1991. A chronology of landslide activity in the valley of Rivière du Gouffre, Charlevoix, Quebec. Canadian Journal of Earth Sciences 28(2): 250–256, DOI 10.1139/e91-024.FilionLQuintyFBéginC1991A chronology of landslide activity in the valley of Rivière du Gouffre, Charlevoix, QuebecCanadian Journal of Earth Sciences282250256DOI10.1139/e91-024Open DOISearch in Google Scholar

Fotopoulou SD and Pitilakis KD, 2013. Vulnerability assessment of reinforced concrete buildings subjected to seismically triggered slow-moving earth slides.Landslides 10(5): 563–582, DOI 10.1007/s10346-012-0345-5.FotopoulouSDPitilakisKD2013Vulnerability assessment of reinforced concrete buildings subjected to seismically triggered slow-moving earth slidesLandslides105563582DOI10.1007/s10346-012-0345-5Open DOISearch in Google Scholar

García-Davalillo JC, Herrera G, Notti D, Strozzi T and ÁlvarezFernández I, 2014. DInSAR analysis of ALOS PALSAR images for the assessment of very slow landslides: the Tena Valley case study.Landslides 11(2): 225–246, DOI 10.1007/s10346-012-0379-8.García-DavalilloJCHerreraGNottiDStrozziTÁlvarezFernándezI2014DInSAR analysis of ALOS PALSAR images for the assessment of very slow landslides: the Tena Valley case studyLandslides112225246DOI10.1007/s10346-012-0379-8Open DOISearch in Google Scholar

Grana V and Tommasi P, 2014. A deep-seated slow movement controlled by structural setting in marly formations of Central Italy.Landslides 11(2): 195–212, DOI 10.1007/s10346-013-0384-6.GranaVTommasiP2014A deep-seated slow movement controlled by structural setting in marly formations of Central ItalyLandslides112195212DOI10.1007/s10346-013-0384-6Open DOISearch in Google Scholar

Greif V, Sassa K and Fukuoka H, 2006. Failure mechanism in an extremely slow rock slide at Bitchu-Matsuyama castle site (Japan). Landslides 3(1): 22–38, DOI 10.1007/s10346-005-0013-0.GreifVSassaKFukuokaH2006Failure mechanism in an extremely slow rock slide at Bitchu-Matsuyama castle site (Japan)Landslides312238DOI10.1007/s10346-005-0013-0Open DOISearch in Google Scholar

Guterch B, 2009. Sejsmiczność Polski w świetle danych historycznych (Seismicity in Poland in the light of historical records).Przegląd Geologiczny 57: 513–520 (in Polish).GuterchB2009Sejsmiczność Polski w świetle danych historycznych (Seismicity in Poland in the light of historical records)Przegląd Geologiczny57513520(in Polish)Search in Google Scholar

Handwerger AL, Roering JJ and Schmidt DA, 2013. Controls on the seasonal deformation of slow-moving landslides.Earth and Planetary Science Letters 377–378: 239–247, DOI 10.1016/j.epsl.2013.06.047.HandwergerALRoeringJJSchmidtDA2013Controls on the seasonal deformation of slow-moving landslidesEarth and Planetary Science Letters377378239247DOI10.1016/j.jpgl.2013.06.047Open DOISearch in Google Scholar

Herrera G, Gutiérrez F, García-Davalillo JC, Guerrero J, Notti D, Galve JP, Fernández-Merodo JA and Cooksley G, 2013. Multi-sensor advanced DInSAR monitoring of very slow landslides: The Tena Valley case study (Central Spanish Pyrenees).Remote Sensing of Environment 128: 31–43, DOI 10.1016/j.rse.2012.09.020.HerreraGGutiérrezFGarcía-DavalilloJCGuerreroJNottiDGalveJPFernández-MerodoJACooksleyG2013Multi-sensor advanced DInSAR monitoring of very slow landslides: The Tena Valley case study (Central Spanish Pyrenees)Remote Sensing of Environment1283143DOI10.1016/j.rse.2012.09.020Open DOISearch in Google Scholar

Hervás J, Barredo JI, Rosin PL, Pasuto A, Mantovani F and Silvano S, 2003. Monitoring landslides from optical remotely sensed imagery: the case history of Tessina landslide, Italy.Geomorphology 54(1–2): 63–75, DOI 10.1016/S0169-555X(03)00056-4.HervásJBarredoJIRosinPLPasutoAMantovaniFSilvanoS2003Monitoring landslides from optical remotely sensed imagery: the case history of Tessina landslide, ItalyGeomorphology541–26375DOI10.1016/S0169-555X(03)00056-4Open DOISearch in Google Scholar

Jibson RW, 2012. Models of the triggering of landslides during earthquakes. In: Clague JJ, Stead D, eds., Landslides.Types, Mechanisms and Modeling. Cambridge University Press, Cambridge: 196–206.JibsonRW2012Models of the triggering of landslides during earthquakesClagueJJSteadDLandslides. Types, Mechanisms and ModelingCambridge University PressCambridge19620610.1017/CBO9780511740367.018Search in Google Scholar

Kacprzak A, Migoń P and Musielok Ł, 2013. Using soils as indicators of past slope instability in forested terrain, Kamienne Mts, SW Poland.Geomorphology194:65–75, DOI 10.1016/j.geomorph.2013.04.014.KacprzakAMigońPMusielokŁ2013Using soils as indicators of past slope instability in forested terrain, Kamienne Mts, SW PolandGeomorphology1946575DOI10.1016/j.geomorph.2013.04.014Open DOISearch in Google Scholar

Kaunda RB, 2010. A linear regression framework for predicting subsurface geometries and displacement rates in deep-seated, slowmoving landslides.Engineering Geology 114(1–2): 1–9, DOI 10.1016/j.enggeo.2010.03.004.KaundaRB2010A linear regression framework for predicting subsurface geometries and displacement rates in deep-seated, slowmoving landslidesEngineering Geology1141–219DOI10.1016/j.enggeo.2010.03.004Open DOISearch in Google Scholar

Keefer DK, 1984. Landslides caused by earthquakes.Bulletin of the Geological Society of America 95(4): 406–421, DOI 10.1130/0016-7606(1984)95<406:LCBE>2.0.CO;2.KeeferDK1984Landslides caused by earthquakesBulletin of the Geological Society of America954406421DOI10.1130/0016-7606(1984)95<406:LCBE>2.0.CO;2Open DOISearch in Google Scholar

Klimeš J, Rowberry MD, Blahůt J, Briestenský M, Hartvich F, Košťák B, Rybář J, Stemberk J and Štěpančíková P, 2012. The monitoring of slow-moving landslides and assessment of stabilisation measures using an optical-mechanical crack gauge. Landslides 9(3): 407–415, DOI 10.1007/s10346-011-0306-4.KlimešJRowberryMDBlahůtJBriestenskýMHartvichFKošťákBRybářJStemberkJŠtěpančíkováP2012The monitoring of slow-moving landslides and assessment of stabilisation measures using an optical-mechanical crack gaugeLandslides93407415DOI10.1007/s10346-011-0306-4Open DOISearch in Google Scholar

Koi T, Hotta N, Ishigaki I, Matuzaki N, Uchiyama Y and Suzuki M, 2008. Prolonged impact of earthquake-induced landslides on sediment yield in a mountain watershed: The Tanzawa region, Japan.Geomorphology101:692–702, DOI 10.1016/j.geomorph.2008.03.007.KoiTHottaNIshigakiIMatuzakiNUchiyamaYSuzukiM2008Prolonged impact of earthquake-induced landslides on sediment yield in a mountain watershed: The Tanzawa region, JapanGeomorphology101692702DOI10.1016/j.geomorph.2008.03.007Open DOISearch in Google Scholar

Krąpiec M and Margielewski W, 1991. Zastosowanie analizy dendrogeomorfologicznej w datowaniu powierzchniowych ruchów masowych.Kwartalnik AGH Geologia 17(1–2): 67–81 (in Polish).KrąpiecMMargielewskiW1991Zastosowanie analizy dendrogeomorfologicznej w datowaniu powierzchniowych ruchów masowychKwartalnik AGH Geologia171–26781(in Polish)Search in Google Scholar

Krąpiec M and Margielewski W, 2000. Analiza dendrogeomorfologiczna ruchów masowych na obszarze polskich Karpat fliszowych (Dendrogeomorphic analysis of mass movements in the Polish flysch Carpathians).Kwartalnik AGH Geologia 26(2): 141–171 (in Polish).KrąpiecMMargielewskiW2000Analiza dendrogeomorfologiczna ruchów masowych na obszarze polskich Karpat fliszowych (Dendrogeomorphic analysis of mass movements in the Polish flysch Carpathians)Kwartalnik AGH Geologia262141171(in Polish)Search in Google Scholar

Krąpiec M, Danek M, Gil E, Kłusek M, Rączkowski W and Zabuski L, 2008. Monitoring dendrogeomorfologiczny osuwisk w Beskidzie Niskim (Dendrogeomorphic monitoring of landslides in Beskid Niski Mts.).Prace Komisji Paleogeografii Czwartorzędu PAU 6: 173–184 (in Polish).KrąpiecMDanekMGilEKłusekMRączkowskiWZabuskiL2008Monitoring dendrogeomorfologiczny osuwisk w Beskidzie Niskim (Dendrogeomorphic monitoring of landslides in Beskid Niski Mts.)Prace Komisji Paleogeografii Czwartorzędu PAU6173184(in Polish)Search in Google Scholar

Kwon M, Bedgar DL, Piastuch W, Davin LB and Lewis NG, 2001. Induced compression wood formation in Douglas fir (Pseudotsuga menziesii) in microgravity.Phytochemistry 57: 847–857, DOI 10.1016/S0031-9422(01)00145-5.KwonMBedgarDLPiastuchWDavinLBLewisNG2001Induced compression wood formation in Douglas fir (Pseudotsuga menziesii) in microgravityPhytochemistry57847857DOI10.1016/S0031-9422(01)00145-5Open DOISearch in Google Scholar

Lang A, Moya J, Corominas J, Schrott L and Dikau R, 1999. Classic and new dating methods for assessing the temporal occurrence of mass movements.Geomorphology 30: 33–52, DOI 10.1016/S0169-555X(99)00043-4.LangAMoyaJCorominasJSchrottLDikauR1999Classic and new dating methods for assessing the temporal occurrence of mass movementsGeomorphology303352DOI10.1016/S0169-555X(99)00043-4Open DOISearch in Google Scholar

Lin G-W, Chen H, Hovius N, Horng M-J, Dadson S, Meunier P and Lines M, 2008. Effects of earthquake and cyclone sequencing on landsliding and fluvial sediment transfer in a mountain catchment.Earth Surface Processes and Landforms 33: 1354–1373, DOI 10.1002/esp.1716.LinG-WChenHHoviusNHorngM-JDadsonSMeunierPLinesM2008Effects of earthquake and cyclone sequencing on landsliding and fluvial sediment transfer in a mountain catchmentEarth Surface Processes and Landforms3313541373DOI10.1002/esp.1716Open DOISearch in Google Scholar

Lopez Saez J, Corona C, Stoffel M, Astrade L, Berger F and Malet JP, 2012a. Dendrogeomorphic reconstruction of past landslide reactivation with seasonal precision: the Bois Noir landslide, southeast French Alps.Landslides 9(2): 189–203, DOI 10.1007/s10346-011-0284-6.Lopez SaezJCoronaCStoffelMAstradeLBergerFMaletJP2012aDendrogeomorphic reconstruction of past landslide reactivation with seasonal precision: the Bois Noir landslide, southeast French AlpsLandslides92189203DOI10.1007/s10346-011-0284-6Open DOISearch in Google Scholar

Lopez Saez J, Corona C, Stoffel M, Schoeneich P and Berger F, 2012b. Probability maps of landslide reactivation derived from tree-ring records: Pra Bellon landslide, southern French Alps. Geomorphology 138(1): 189–202, DOI 10.1016/j.geomorph.2011.08.034.Lopez SaezJCoronaCStoffelMSchoeneichPBergerF2012bProbability maps of landslide reactivation derived from tree-ring records: Pra Bellon landslide, southern French AlpsGeomorphology1381189202DOI10.1016/j.geomorph.2011.08.034Open DOISearch in Google Scholar

Macfarlane DF, 2009. Observations and predictions of the behaviour of large, slow-moving landslides in schist, Clyde Dam reservoir, New Zealand.Engineering Geology 109(1–2): 5–15, DOI 10.1016/j.enggeo.2009.02.005.MacfarlaneDF2009Observations and predictions of the behaviour of large, slow-moving landslides in schist, Clyde Dam reservoir, New ZealandEngineering Geology1091–2515DOI10.1016/j.enggeo.2009.02.005Open DOISearch in Google Scholar

Malet J-P, Maquaire O, Locat J and Remaître A, 2004. Assessing debris flow hazards associated with slow moving landslides: methodology and numerical analyses.Landslides 1(1): 83–90, DOI 10.1007/s10346-003-0005-x.MaletJ-PMaquaireOLocatJRemaîtreA2004Assessing debris flow hazards associated with slow moving landslides: methodology and numerical analysesLandslides118390DOI10.1007/s10346-003-0005-xOpen DOISearch in Google Scholar

Malik I and Wistuba M, 2012. Dendrochronological methods for reconstructing mass movements — An example of landslide activity analysis using tree-ring eccentricity. Geochronometria 39(3): 180– 196, DOI 10.2478/s13386-012-0005-5.MalikIWistubaM2012Dendrochronological methods for reconstructing mass movements — An example of landslide activity analysis using tree-ring eccentricityGeochronometria393180196DOI10.2478/s13386-012-0005-5Open DOISearch in Google Scholar

Massey CI, Petley DN and McSaveney MJ, 2013. Patterns of movement in reactivated landslides.Engineering Geology 159: 1–19, DOI 10.1016/j.enggeo.2013.03.011.MasseyCIPetleyDNMcSaveneyMJ2013Patterns of movement in reactivated landslidesEngineering Geology159119DOI10.1016/j.enggeo.2013.03.011Open DOISearch in Google Scholar

Migoń P, Hrádek M and Parzóch K, 2002. Extreme geomorphic events in the Sudetes Mountains and their long-term impact.Studia Geomorphologica Carpatho-Balkanica 36: 29–49.MigońPHrádekMParzóchK2002Extreme geomorphic events in the Sudetes Mountains and their long-term impactStudia Geomorphologica Carpatho-Balkanica362949Search in Google Scholar

Migoń P, Pánek T, Malik I, Hrádecký J, Owczarek P and áilhán K, 2010. Complex landslide terrain in the Kamienne Mountains, Middle Sudetes, SW Poland. Geomorphology 124: 200–214, DOI 10.1016/j.geomorph.2010.09.024.MigońPPánekTMalikIHrádeckýJOwczarekPŠilhánK2010Complex landslide terrain in the Kamienne Mountains, Middle Sudetes, SW PolandGeomorphology124200214DOI10.1016/j.geomorph.2010.09.024Open DOISearch in Google Scholar

Migoń P, Kacprzak A, Malik I, Kasprzak M, Owczarek P, Wistuba M and Pánek T, 2014. Geomorphological, pedological and dendrochronological signatures of a relict landslide terrain, Mt Garbatka (Kamienne Mts), SW Poland.Geomorphology 219: 213–231, DOI 10.1016/j.geomorph.2014.05.005.MigońPKacprzakAMalikIKasprzakMOwczarekPWistubaMPánekT2014Geomorphological, pedological and dendrochronological signatures of a relict landslide terrain, Mt Garbatka (Kamienne Mts), SW PolandGeomorphology219213231DOI10.1016/j.geomorph.2014.05.005Open DOISearch in Google Scholar

Noferini L, Pieraccini M, Mecatti D, Macaluso G, Atzeni C, Mantovani M, Marcato G, Pasuto A, Silvano S and Tagliavini F, 2007. Using GB-SAR technique to monitor slow moving landslide.Engineering Geology 95(3–4): 88–98, DOI 10.1016/j.enggeo.2007.09.002.NoferiniLPieracciniMMecattiDMacalusoGAtzeniCMantovaniMMarcatoGPasutoASilvanoSTagliaviniF2007Using GB-SAR technique to monitor slow moving landslideEngineering Geology953–48898DOI10.1016/j.enggeo.2007.09.002Open DOISearch in Google Scholar

Pánek T, Šilhán K, Tabořík P, Hrádecký J, Smolková V, Lenart J, Brázdil R, Kašičková L and Pazdur A, 2011. Catastrophic slope failure and its origins: case study of the May 2010 Girová Mountain long-runout rockslide (Czech Republic).Geomorphology 130: 352–364, DOI 10.1016/j.geomorph.2011.04.020.PánekTŠilhánKTaboříkPHradeckýJSmolkováVLenartJBrázdilRKašičkováLPazdurA2011Catastrophic slope failure and its origins: case study of the May 2010 Girová Mountain long-runout rockslide (Czech Republic)Geomorphology130352364DOI10.1016/j.geomorph.2011.04.020Open DOISearch in Google Scholar

Peyret M, Djamour Y, Rizza M, Ritz J.-F, Hurtrez J-E, Goudarzi MA, Nankali H, Chéry J, Le Dortz K and Uri F, 2008. Monitoring of the large slow Kahrod landslide in Alborz mountain range (Iran) by GPS and SAR interferometry.Engineering Geology 100(3–4): 131–141, DOI 10.1016/j.enggeo.2008.02.013.PeyretMDjamourYRizzaMRitzJ.-FHurtrezJ-EGoudarziMANankaliHChéryJLe DortzKUriF2008Monitoring of the large slow Kahrod landslide in Alborz mountain range (Iran) by GPS and SAR interferometryEngineering Geology1003–4131141DOI10.1016/j.enggeo.2008.02.013Open DOISearch in Google Scholar

Ranalli M, Gottardi G, Medina-Cetina Z and Nadim F, 2010. Uncertainty quantification in the calibration of a dynamic viscoplastic model of slow slope movements. Landslides 7(1): 31–41, DOI 10.1007/s10346-009-0185-0.RanalliMGottardiGMedina-CetinaZNadimF2010Uncertainty quantification in the calibration of a dynamic viscoplastic model of slow slope movementsLandslides713141DOI10.1007/s10346-009-0185-0Open DOISearch in Google Scholar

Razak KA, Straatsma MW, van Westen CJ, Malet J-P and de Jong SM, 2011. Airborne laser scanning of forested landslides characterization: Terrain model quality and visualization.Geomorphology 126(1–2): 186–200, DOI 10.1016/j.geomorph.2010.11.003.RazakKAStraatsmaMWvan WestenCJMaletJ-Pde JongSM2011Airborne laser scanning of forested landslides characterization: Terrain model quality and visualizationGeomorphology1261–2186200DOI10.1016/j.geomorph.2010.11.003Open DOISearch in Google Scholar

Remisz J and Bijak S, 2012. Dendrochronologiczny zapis aktywności stoków usypiskowych Suchawy i Kruczej Skały (Sudety Środkowe).Przyroda Sudetów 15: 209–218 (in Polish).RemiszJBijakS2012Dendrochronologiczny zapis aktywności stoków usypiskowych Suchawy i Kruczej Skały (Sudety Środkowe)Przyroda Sudetów15209218(in Polish)Search in Google Scholar

Remisz J, Migoń P, Malik I and Owczarek P, 2009. Stoki usypiskowe w polskiej części Sudetów – rozmieszczenie i wiek. In: Kostrzewski A, Paluszkiewicz R, eds., Geneza, Litologia i Stratygrafia Utworów Czwartorzędowych, vol. V, UAM, Seria Geografia 88: 447–465 (in Polish).RemiszJMigońPMalikIOwczarekP2009Stoki usypiskowe w polskiej części Sudetów – rozmieszczenie i wiekKostrzewskiAPaluszkiewiczRGeneza, Litologia i Stratygrafia Utworów Czwartorzędowych vol. V, UAM, Seria Geografia88447465(in Polish)Search in Google Scholar

Schulz WH, Galloway SL and Higgins JD, 2012. Evidence for earthquake triggering of large landslides in coastal Oregon, USA.Geomorphology 141–142: 88–98, DOI 10.1016/j.geomorph.2011.12.026.SchulzWHGallowaySLHigginsJD2012Evidence for earthquake triggering of large landslides in coastal Oregon, USAGeomorphology141142889810.1016/j.geomorph.2011.12.026Search in Google Scholar

Shroder Jr JF, 1980. Dendrogeomorphology: review and new techniques of tree-ring dating.Progress in Physical Geography4(2): 161– 188, DOI 10.1177/030913338000400202ShroderJr JF1980Dendrogeomorphology: review and new techniques of tree-ring datingProgress in Physical Geography42161188DOI10.1177/030913338000400202Open DOISearch in Google Scholar

Starkel L, 2012. Searching for regularities of slope modelling by extreme events (diversity of rainfall intensity-duration and physical properties of the substrate). Landform Analysis 21: 27–34.StarkelL2012Searching for regularities of slope modelling by extreme events (diversity of rainfall intensity-duration and physical properties of the substrate)Landform Analysis21273410.1016/j.geomorph.2010.03.037Search in Google Scholar

Stefanini MC, 2004. Spatio-temporal analysis of a complex landslide in the Northern Apennines (Italy) by means of dendrochronology. Geomorphology 63: 191–202, DOI 10.1016/j.geomorph.2004.04.003.StefaniniMC2004Spatio-temporal analysis of a complex landslide in the Northern Apennines (Italy) by means of dendrochronologyGeomorphology6319120210.1016/j.geomorph.2004.04.003Search in Google Scholar

Synowiec G, 2003. Formy osuwiskowe w Górach Kamiennych (Landslides in the Kamienne Mts, Sudetes, SW Poland). Przegląd Geologiczny 51: 59–65 (in Polish).SynowiecG2003Formy osuwiskowe w Górach Kamiennych (Landslides in the Kamienne Mts, Sudetes, SW Poland)Przegląd Geologiczny515965(in Polish)Search in Google Scholar

Vlcko J, 2004. Extremely slow slope movements influencing the stability of Spis Castle, UNESCO site. Landslides 1(1): 67–71, DOI 10.1007/s10346-003-0007-8.VlckoJ2004Extremely slow slope movements influencing the stability of Spis Castle, UNESCO siteLandslides116771DOI10.1007/s10346-003-0007-8Open DOISearch in Google Scholar

Wan Y and Kwong J, 2002. Shear strength of soils containing amorphous clay-size materials in a slow-moving landslide.Engineering Geology 65(4): 293–303, DOI 10.1016/S0013-7952(01)00139-9.WanYKwongJ2002Shear strength of soils containing amorphous clay-size materials in a slow-moving landslideEngineering Geology654293303DOI10.1016/S0013-7952(01)00139-9Open DOISearch in Google Scholar

Wistuba M, Malik I, Gärtner H, Kojs P and Owczarek P, 2013. Application of eccentric growth of trees as a tool for landslide analyses: The example of Picea abies Karst. in the Carpathian and Sudeten Mountains (Central Europe). Catena 111: 41–55, DOI 10.1016/j.catena.2013.06.027.WistubaMMalikIGärtnerHKojsPOwczarekP2013Application of eccentric growth of trees as a tool for landslide analyses: The example of Picea abies Karst. in the Carpathian and Sudeten Mountains (Central Europe)Catena1114155DOI10.1016/j.catena.2013.06.027Open DOISearch in Google Scholar

Yamaguchi K, Itoh T and Shimaji K, 1980. Compression Wood Induced by 1-N-Naphthylphthalamic Acid (NPA), an IAA Transport Inhibitor. Wood Science and Technology 14(3): 181–185, DOI 10.1007/BF00350568.YamaguchiKItohTShimajiK1980Compression Wood Induced by 1-N-Naphthylphthalamic Acid (NPA), an IAA Transport InhibitorWood Science and Technology143181185DOI10.1007/BF00350568Open DOISearch in Google Scholar

Zêzere JL, Trigo RM and Trigo IF, 2005. Shallow and deep landslides induced by rainfall in the Lisbon region (Portugal): assessment of relationships with the North Atlantic Oscillation. Natural Hazards and Earth System Sciences 5: 331–344, DOI 10.5194/nhess-5–331-2005.ZêzereJLTrigoRMTrigoIF2005Shallow and deep landslides induced by rainfall in the Lisbon region (Portugal): assessment of relationships with the North Atlantic OscillationNatural Hazards and Earth System Sciences5331344DOI10.5194/nhess-5–331-2005Open DOISearch in Google Scholar

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