[1] Abu Bakar Z. A., Madon M., Muhamad A. J., 2007. Deep-marine sedimentary facies in the Belaga Formation (Cretaceous-Eocene), Sarawak: Observations from new outcrops in the Sibu and Tatau areas. Bulletin of the Geological Society of Malaysia, 53, 35-45. https://doi.org/10.7186/bgsm53200707
[2] Albaghdady A., Abdullah W. H., Lee C. P.,2003. An organic geochemical study of the Miocene sedimentary sequence of Labuan Island, offshore western Sabah, East Malaysia. Bulletin of the Geological Society of Malaysia, 46, 455-460. https://doi.org/10.7186/bgsm46200374
[3] Amy L. A., Talling P. J., 2006. Anatomy of turbidites and linked debrites based on long distance (120 x 30 km) bed correlation, Marnoso Arenacea Formation, Northern Apennines, Italy. Sedimentology, 53(1), 161-212. https://doi.org/10.1111/j.1365-3091.2005.00756.x
[4] Asis J., Abdul Rahman, M. N. L., Jasin B., Tahir S., 2015. Late Oligocene and Early Miocene planktic foraminifera from the Temburong Formation, Tenom, Sabah. Bulletin of the Geological Society of Malaysia, 61, 43-47. https://doi.org/10.7186/bgsm61201505.
[5] Asis J., Tahir S., Musta B., Jasin B., 2018. Lower Miocene planktic foraminifera from the Temburong Formation in Menumbok, Klias Peninsula, Sabah. Bulletin of the Geological Society of Malaysia, 65(1), 59-62. https://doi.org/10.7186/bgsm65201806.
[6] Bakar, B., Hj. Tahir,S., Asis, J., 2017. Deep marine benthic foraminiferal from temburong formation in Labuan Island. Earth Science Malaysia, 1(2), 17-22. https://doi.org/10.26480/esmy.02.2017.17.22.
[7] Balaguru A., Lukie T., 2012. Tectono-stratigraphy and development of the Miocene Delta Systems on an active margin of Northwest Borneo, Malaysia. PGCE, 2012. https://doi.org/10.3997/2214-4609-pdb.297.b8.
[8] Bol A., van Hoorn B., 1980. Structural styles in western Sabah offshore. Bulletin of the Geological Society of Malaysia, 12, 1-16. https://doi.org/10.7186/bgsm12198001.
[9] Bouma A. H.,1962). Sedimentology of Some Flysch Deposits : A graphic Approach to Facies Interpretation. Amsterdam : Elsevier EBooks. http://ci.nii.ac.jp/ncid/BA02319007/.
[10] Brondijk J. F.,1962). Sedimentological investigations in North Borneo and northern Sarawak. In British Borneo Geological Survey Annnual ReportFull expression should be amended.Amended.
[11] Buatois L. A., andMángano M. G., 2011. Ichnology of deep-marine clastic environments. Ichnology, 181-196. https://doi.org/10.1017/cbo9780511975622.010.
[12] Burley S. D., Breitfeld H. T., Stanbrook D. S., Morley R. J., Kassan J., Sukarno M., Wantoro D. W., 2021. A tuffaceous volcaniclastic turbidite bed of Early Miocene age in the Temburong Formation of Labuan, North‐West Borneo and its implications for the Proto‐South China Sea subduction in the Burdigalian. The Depositional Record, 7(1), 111-146. https://doi.org/10.1002/dep2.132.
[13] Callow R. H.,McIlroy, D., Kneller, B., Dykstra, M., 2012. Integrated ichnological and sedimentological analysis of a Late Cretaceous submarine channel-levee system: The Rosario Formation, Baja California, Mexico. Marine and Petroleum Geology, 41, 277-294. https://doi.org/10.1016/j.marpetgeo.2012.02.001.
[14] Callow, R. H. T., McIlroy, D. (2011). Ichnofabrics and ichnofabric-forming trace fossils in Phanerozoic turbidites. Bulletin of Canadian Petroleum Geology, 59(2), 103-111. https://doi.org/10.2113/gscpgbull.59.2.103.
[15] Claussmann B., Bailleul J., Chanier F., Mahieux G., Caron V.,McArthur, A. D., Chaptal, C., Morgans, H. E. G., Vendeville, B. C., 2021. Shelf-derived mass-transport deposits: origin and significance in the stratigraphic development of trench-slope basins. New Zealand Journal of Geology and Geophysics, 65(1), 17-52. https://doi.org/10.1080/00288306.2021.1918729.
[16] Crevello P. D., Johnson H., Clayburn J., Rahman R. A., 2005. Deltaic and turbidite reservoir systems of SE Asia: high resolution exploration and development models and applications, from outcrop to subsurface. AAPG Field Seminar Guide Book.
[17] Cullen A. B.,2010. Transverse segmentation of the Baram-Balabac Basin, NW Borneo: refining the model of Borneo’s tectonic evolution. Petroleum Geoscience, 16(1), 3-29. https://doi.org/10.1144/1354-079309-828.
[18] Cummings J. P., Hodgson D. M.,2011. Assessing controls on the distribution of ichnotaxa in submarine fan environments, the Basque Basin, Northern Spain. Sedimentary Geology, 239(3-4), 162-187. https://doi.org/10.1016/j.sedgeo.2011.06.009.
[19] Fan R. Y., Gong Y. M., Uchman A.,2018. Topological analysis of graphoglyptid trace fossils, a study of macrobenthic solitary and collective animal behaviors in the deep-sea environment. Paleobiology, 44(2), 306-325. https://doi.org/10.1017/pab.2018.1.
[20] Fonnesu M., Felletti F., Haughton P. D. W., Patacci M., McCaffrey W. D., 2017). Hybrid event bed character and distribution linked to turbidite system sub-environments: The North Apennine Gottero Sandstone (north-west Italy). Sedimentology, 65(1), 151-190. https://doi.org/10.1111/sed.12376.
[21] García-Ramos J. C., Mángano M. G., Piñuela L., Buatois L. A., Rodríguez-Tovar F. J., 2014. The ichnogenus Tubotomaculum: an enigmatic pellet-filled structure from Upper Cretaceous to Miocene deep-marine deposits of southern Spain. Journal of Paleontology, 88(6), 1189-1198. https://doi.org/10.1666/13-123.
[22] Hall R.,2013. Contraction and extension in northern Borneo driven by subduction rollback. Journal of Asian Earth Sciences, 76, 399-411. https://doi.org/10.1016/j.jseaes.2013.04.010.
[23] Hansen L., Janocko M., Kane I., Kneller B.,2017. Submarine channel evolution, terrace development, and preservation of intra-channel thin-bedded turbidites: Mahin and Avon channels, offshore Nigeria. Marine Geology, 383, 146-167. https://doi.org/10.1016/j.margeo.2016.11.011.
[24] Haughton P. D. W., Barker S. P., andMcCaffrey W. D., 2003. ‘Linked’ debrites in sand-rich turbidite systems - origin and significance. Sedimentology, 50(3), 459-482. https://doi.org/10.1046/j.1365-3091.2003.00560.x.
[25] Haughton P., Davis C.,McCaffrey, W., Barker, S., 2009. Hybrid sediment gravity flow deposits - Classification, origin and significance. Marine and Petroleum Geology, 26(10), 1900-1918. https://doi.org/10.1016/j.marpetgeo.2009.02.012.
[26] Hazebroek H. P., Tan D. N., 1993. Tertiary tectonic evolution of the NW Sabah Continental Margin. Bulletin of the Geological Society of Malaysia, 33, 195-210. https://doi.org/10.7186/bgsm33199315.
[27] Heard T. G., Pickering K. T., 2008. Trace fossils as diagnostic indicators of deep-marine environments, Middle Eocene Ainsa-Jaca basin, Spanish Pyrenees. Sedimentology, 55(4), 809-844. https://doi.org/10.1111/j.1365-3091.2007.00922.x.
[28] Hennig-Breitfeld,J., Breitfeld, H. T., Hall, R., BouDagher-Fadel, M., Thirlwall, M., 2019. A new upper Paleogene to Neogene stratigraphy for Sarawak and Labuan in northwestern Borneo: Paleogeography of the eastern Sundaland margin. Earth-Science Reviews, 190, 1-32. https://doi.org/10.1016/j.earscirev.2018.12.006.
[29] Hodgson D. M.,2009. Distribution and origin of hybrid beds in sand-rich submarine fans of the Tanqua depocentre, Karoo Basin, South Africa. Marine and Petroleum Geology, 26(10), 1940-1956. https://doi.org/10.1016/j.marpetgeo.2009.02.011.
[30] Hutchison C. S.,1996. The 'Rajang accretionary prism' and 'Lupar Line' problem of Borneo. Hall, R. & Blundell, D.(eds.). Tectonic Evolution of Southeast Asia. Geological Society of London Special Publication 106, 247-261.
[31] Hutchison C. S.,2005. Geology of North-West Borneo: Sarawak, Brunei and Sabah. ElsevierPublisher and place should be amended.The publisher for this book is Elsevier.
[32] Hutchison C. S., Bergman S. C., Swauger D. A., Graves J. E., 2000. A Miocene collisional belt in north Borneo: uplift mechanism and isostatic adjustments quantified by thermochronology. Journal of Geological Society of London, 157, 783-793.
[33] Jackson C. A.L., Johnson, H. D., 2009. Sustained turbidity currents and their interaction with debrite-related topography; Labuan Island, offshore NW Borneo, Malaysia. Sedimentary Geology, 219(1-4), 77-96. https://doi.org/10.1016/j.sedgeo.2009.04.008.
[34] Jackson C. A.L., Zakaria, A. A., Johnson, H. D., Tongkul, F., Crevello, P. D., 2009. Sedimentology, stratigraphic occurrence and origin of linked debrites in the West Crocker Formation (Oligo-Miocene), Sabah, NW Borneo. Marine and Petroleum Geology, 26(10), 1957-1973. https://doi.org/10.1016/j.marpetgeo.2009.02.019.
[35] Jamil M., Abd Rahman A. H., Siddiqui N. A., Ibrahim N. A., Ahmed N., 2020. A contemporary review of sedimentological and stratigraphic framework of the Late Paleogene deep marine sedimentary successions of West Sabah, North-West Borneo. Bulletin of the Geological Society of Malaysia, 69, 53-65. https://doi.org/10.7186/bgsm69202005.
[36] Jasin B., Firdaus M. S., 2019. Some deep-marine ichnofossils from Labuan and Klias Peninsula, west of Sabah. Bulletin of the Geological Society of Malaysia, 67, 47-51. https://doi.org/10.7186/bgsm67201906.
[37] Kane I. A., Kneller B. C., Dykstra M., Kassem A.,McCaffrey, W. D., 2007. Anatomy of a submarine channel-levee: An example from Upper Cretaceous slope sediments, Rosario Formation, Baja California, Mexico. Marine and Petroleum Geology, 24(6-9), 540-563. https://doi.org/10.1016/j.marpetgeo.2007.01.003.
[38] Kane I. A., Pontén A. S., 2012. Submarine transitional flow deposits in the Paleogene Gulf of Mexico. Geology, 40(12), 1119-1122. https://doi.org/10.1130/g33410.1.
[39] Kane I. A., Pontén A. S. M., Vangdal B., Eggenhuisen J. T., Hodgson D. M., Spychala Y. T., 2017. The stratigraphic record and processes of turbidity current transformation across deep-marine lobes. Sedimentology, 64(5), 1236-1273. https://doi.org/10.1111/sed.12346.
[40] Knaust D.,2009. Characterisation of a Campanian deep-sea fan system in the Norwegian Sea by means of ichnofabrics. Marine and Petroleum Geology, 26(7), 1199-1211. https://doi.org/10.1016/j.marpetgeo.2008.09.009.
[41] Knaust D.,2017. Atlas of Trace Fossils in Well Core: Appearance, Taxonomy and Interpretation. Springer Publishing.
[42] Kneller B. C., Branney M. J., 1995. Sustained high-density turbidity currents and the deposition of thick massive sands. Sedimentology, 42(4), 607-616. https://doi.org/10.1111/j.1365-3091.1995.tb00395.x.
[43] Kuswandaru G. Y., Amir Hassan M. H., Matenco L. C., Taib N. I., Mustapha K. A., 2018. Turbidite, debrite, and hybrid event beds in submarine lobe deposits of the Palaeocene to middle Eocene Kapit and Pelagus members, Belaga Formation, Sarawak, Malaysia. Geological Journal, 54(6), 3421-3437. https://doi.org/10.1002/gj.3347.
[44] Lambiase J. J., Damit A. R., Simmons M. S., Abdoerrias R., Hussin A., 2003. A Depositional Model And The Stratigraphic Development Of Modern And Ancient Tide-Dominated Deltas In NW Borneo. In: SEPM (Society for Sedimentary Geology) eBooks (pp. 109-123). https://doi.org/10.2110/pec.03.76.0109.
[45] Lee C. P.,1977. The geology of Labuan Island, Sabah, East Malaysia [BSc. Hons Thesis]. University of Malaya.
[46] Levell B.,1987. The nature and significance of regional unconformities in the hydrocarbon-bearing Neogene sequence offshore West Sabah. Bulletin of the Geological Society of Malaysia, 21, 55-90. https://doi.org/10.7186/bgsm21198704.
[47] Lowe D. R.,1982. Sediment gravity flows: II depositional models with special reference to the deposits of high-density turbidity currents. SEPM Journal of Sedimentary Research, Vol. 52. https://doi.org/10.1306/212f7f31-2b24-11d7-8648000102c1865d.
[48] Lunt P.,2022. Re-examination of the Base Miocene Unconformity in west Sabah, Malaysia, and stratigraphic evidence against a slab-pull subduction model. Journal of Asian Earth Sciences, 230, 105193. https://doi.org/10.1016/j.jseaes.2022.105193.
[49] Luthi S. A.,1981. Experiments on non-channelized turbidity currents and their deposits. Marine Geology, 40(3-4), M59-M68. https://doi.org/10.1016/0025-3227(81)90139-0.
[50] Madon M.,1994. The stratigraphy of northern Labuan, NW Sabah Basin, East Malaysia.Geological Society of Malaysia Bulletin, 36, 19-30.
[51] Madon M.,1997. Sedimentological aspects of the Temburong and Belait Formations, Labuan (offshore west Sabah, Malaysia). Bulletin of the Geological Society of Malaysia, 41, 61-84. https://doi.org/10.7186/bgsm41199707.
[52] Madon M.,1999a. Plate tectonic elements and evolution of Southeast Asia. The Petroleum Geology and Resources of Malaysia. Petroliam Nasional Berhad (PETRONAS). Kuala Lumpur.
[53] Madon M.,1999b. Sabah Basin.The Petroleum Geology and Resources of Malaysia. Petroliam Nasional Berhad (PETRONAS). Kuala Lumpur.
[54] Madon M.,2021. Deep-sea trace fossils in the West Crocker Formation, Sabah (Malaysia), and their palaeoenvironmental significance. Bulletin of the Geological Society of Malaysia, 71, 23-46. https://doi.org/10.7186/bgsm71202103.
[55] Mansor H. E., Amir Hassan M. H., 2021. Facies and bed type characteristics of channel‐lobe transition deposits from the Oligocene‐Miocene Tajau Sandstone Member, Kudat Formation, Sabah, Malaysia. Geological Journal, 56(11), 5642-5672. https://doi.org/10.1002/gj.4263.
[56] Martinsson A.,1970. Toponomy of trace fossils (Vol. 3, pp. 323-330). Geological Journal Special Issue.
[57] Monaco P.,2008. Taphonomic features of Paleodictyon and other graphoglyptid trace fossils in Oligo-Miocene thin-bedded turbidites, northern Apennines, Italy. PALAIOS, 23(10), 667-682. https://doi.org/10.2110/palo.2007.p07-016r.
[58] Morley C. K., Tingay M., Hillis R., King R., 2008. Relationship between structural style, overpressures, and modern stress, Baram Delta Province, northwest Borneo. Journal of Geophysical Research, 113(B9). https://doi.org/10.1029/2007jb005324.
[59] Morley R. J., Morley H. P., Swiecicki T., 2016. Mio-Pliocene palaeogeography, uplands and river systems of the Sunda Region based on mapping within a framework of Vim Depositional Cycles. Proceedings of Indonesian Petroleum Association 40th Anniversary Conv. https://doi.org/10.29118/ipa.0.16.506.g.
[60] Mueller P., Patacci M.,Di Giulio, A., 2017. Hybrid event beds in the proximal to distal extensive lobe domain of the coarse-grained and sand-rich Bordighera turbidite system (NW Italy). Marine and Petroleum Geology, 86, 908-931. https://doi.org/10.1016/j.marpetgeo.2017.06.047.
[61] Mulder T., Alexander J., 2001. The physical character of subaqueous sedimentary density flows and their deposits. Sedimentology, 48(2), 269-299. https://doi.org/10.1046/j.1365-3091.2001.00360.x.
[62] Mutti, E. (1992). Turbidite Sandstones. Agip, Istituto di geologia, Università di Parma.
[63] Mutti E., Tinterri R., Benevelli G., Biase D. D., Cavanna G.,2003. Deltaic, mixed and turbidite sedimentation of ancient foreland basins. Marine and Petroleum Geology, 20(6-8), 733-755. https://doi.org/10.1016/j.marpetgeo.2003.09.001.
[64] Phillips C.,McIlroy, D., Elliott, T., 2011. Ichnological characterization of Eocene/Oligocene turbidites from the Grès d’Annot Basin, French Alps, SE France. Palaeogeography, Palaeoclimatology, Palaeoecology, 300(1-4), 67-83. https://doi.org/10.1016/j.palaeo.2010.12.011.
[65] Posamentier H. W., Kolla V., 2003. Seismic geomorphology and stratigraphy of depositional elements in deep-water settings. Journal of Sedimentary Research, 73(3), 367-388. https://doi.org/10.1306/111302730367.
[66] Posamentier H. W., Martinsen O. J., 2011. The character and genesis of submarine mass-transport deposits: Insights from outcrop and 3D seismic data. Mass-Transport Deposits in Deepwater Settings, 7-38. https://doi.org/10.2110/sepmsp.096.007
[67] Prélat A., Covault J., Hodgson D., Fildani A., Flint S.,2010. Intrinsic controls on the range of volumes, morphologies, and dimensions of submarine lobes. Sedimentary Geology, 232(1-2), 66-76. https://doi.org/10.1016/j.sedgeo.2010.09.010.
[68] Prélat A., Hodgson D. M., 2013. The full range of turbidite bed thickness patterns in submarine lobes: controls and implications. Journal of the Geological Society, 170(1), 209-214. https://doi.org/10.1144/jgs2012-056.
[69] Prélat A., Hodgson D. M., Flint S. S., 2009. Evolution, architecture and hierarchy of distributary deep-water deposits: a high-resolution outcrop investigation from the Permian Karoo Basin, South Africa. Sedimentology, 56(7), 2132-2154. https://doi.org/10.1111/j.1365-3091.2009.01073.x.
[70] Seilacher, A. (2007). Trace Fossil Analysis (1st ed.). Springer.
[71] Seilacher A., Seilacher E., 1994. Bivalvian trace fossils a lesson from actuopaleontology.Courier Forschungs-Institute Senckenberg, 169, 5-15
[72] Som M. R. M., Kadir M. F. A., Ali S. S. M., Jirin S., Sulaiman W. M. K. A. B. W., Mohsin N., Shah S. S. M., 2011. Labuan outcrop revisited: New findings on Belait formation facies evolution. PGCE 2011. https://doi.org/10.3997/2214-4609-pdb.251.21.
[73] Spychala Y. T., Hodgson D. M., Prélat A., Kane I. A., Flint S. S., Mountney N. P.,2017. Frontal and lateral submarine lobe fringes: Comparing sedimentary facies, architecture and flow processes. Journal of Sedimentary Research, 87(1), 75-96. https://doi.org/10.2110/jsr.2017.2
[74] Starek D., Fuksi T., 2017. Distal turbidite fan/lobe succession of the Late Oligocene Zuberec Fm. - architecture and hierarchy (Central Western Carpathians, Orava-Podhale basin). Open Geosciences, 9(1), 385-406. https://doi.org/10.1515/geo-2017-0030
[75] Talling P. J., Amy L. A., andWynn R. B. (2007). New insight into the evolution of large-volume turbidity currents: comparison of turbidite shape and previous modelling results. Sedimentology, 54(4), 737-769. https://doi.org/10.1111/j.1365-3091.2007.00858.x
[76] Talling P. J., Amy L. A., Wynn R. B., Peakall J., Robinson M., 2004. Beds comprising debrite sandwiched within co-genetic turbidite: origin and widespread occurrence in distal depositional environments. Sedimentology, 51(1), 163-194. https://doi.org/10.1111/j.1365-3091.2004.00617.x.
[77] Talling P. J., Masson D. G., Sumner E. J., Malgesini G., 2012. Subaqueous sediment density flows: Depositional processes and deposit types. Sedimentology, 59(7), 1937-2003. https://doi.org/10.1111/j.1365-3091.2012.01353.x.
[78] Tongkul F.,2001. Sumber Geologi Intrinsik Pulau Labuan. In: Geological Heritage of Malaysia - Geosite Mapping and Geoheritage Characterisation (pp. 377-387). LESTARI UKM.
[79] Uchman A.,1998. Taxonomy and ethology of flysch trace fossils: revision of the Marian Książkiewicz Collection and studies of complementary material.Annales Societatis Geologorum Poloniae, 68, 105-218.
[80] Uchman, A. (2001). Eocene flysch trace fossils from the Hecho Group of the Pyrenees, northern Spain.Beringeria, 28.
[81] Uchman A., Janbu N. E., Nemec W., 2004. Trace fossils in the Cretaceous-Eocene flysch of the Sinop-Boyabat Basin, Central Pontides, Turkey. Annales Societatis Geologorum Poloniae, 74(2), 197-235. https://geojournals.pgi.gov.pl/asgp/article/download/12425/10899.
[82] Uchman A., Wetzel A., 2012. Deep-sea fans. Developments in Sedimentology, 643-671. https://doi.org/10.1016/b978-0-444-53813-0.00021-6.
[83] van Hattum, M., Hall, R., Pickard, A., Nichols, G., 2013. Provenance and geochronology of Cenozoic sandstones of northern Borneo. Journal of Asian Earth Sciences, 76, 266-282. https://doi.org/10.1016/j.jseaes.2013.02.033.
[84] van Hattum M. W., Hall R., Pickard A. L., Nichols G. J., 2006. Southeast Asian sediments not from Asia: Provenance and geochronology of north Borneo sandstones. Geology, 34(7), 589. https://doi.org/10.1130/g21939.1.
[85] Wan Hasiah,A., Lee, C. P., Gou, P., Shuib, M. K., Ng, T. F., Albaghdady, A. A., Mislan, M. F., Mustapha, K. A., 2013. Coal-bearing strata of Labuan: Mode of occurrences, organic petrographic characteristics and stratigraphic associations. Journal of Asian Earth Sciences, 76, 334-345. https://doi.org/10.1016/j.jseaes.2013.05.017.
[86] Wilson, R. A. M., & Wong, N. P. Y. (1964). The geology and mineral resources of the Labuan and Padas Valley area.Sabah, Malaysia, Memoir, 17
[87] Young S. S., Chul W. R., Pom-Yong C., Weon-Seo K., Jin Y. S., Eun-Ju L., 2013. Distal turbidite fan/lobe succession of the Late Paleozoic Taean Formation, western Korea. Geosciences Journal, 7(1), 9-25. https://doi.org/10.1007/s12303-013-0016-0.
[88] Zakaria A. A., Johnson H. D., Jackson C. A.L., Tongkul, F., 2013. Sedimentary facies analysis and depositional model of the Palaeogene West Crocker submarine fan system, NW Borneo. Journal of Asian Earth Sciences, 76, 283-300. https://doi.org/10.1016/j.jseaes.2013.05.002. |