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NARROW
GeoRef Subject
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all geography including DSDP/ODP Sites and Legs
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Africa
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North Africa
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Algeria (1)
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Atlas Mountains
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Moroccan Atlas Mountains
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Anti-Atlas (1)
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Morocco
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Asia
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Nova Scotia
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Colchester County Nova Scotia (3)
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Digby County Nova Scotia (3)
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Prince Edward Island (10)
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Europe
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Western Interior
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stable isotopes
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Ar-40/Ar-36 (1)
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Ar-40/Ar-39 (1)
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C-13/C-12 (21)
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D/H (6)
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deuterium (5)
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Hf-177/Hf-176 (2)
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Nd-144/Nd-143 (27)
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O-18 (2)
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O-18/O-16 (34)
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Os-188/Os-187 (1)
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Pb-206/Pb-204 (4)
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Pb-207/Pb-204 (4)
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Pb-207/Pb-206 (1)
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Pb-208/Pb-204 (2)
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Rb-87/Sr-86 (2)
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S-34/S-32 (12)
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Sm-147/Nd-144 (13)
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Sr-87/Sr-86 (28)
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U-238/Pb-206 (1)
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Lu/Hf (2)
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metals
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actinides
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strontium
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aluminum (4)
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iron
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neodymium
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samarium
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noble gases
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nonmetals (1)
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oxygen
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O-18 (2)
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O-18/O-16 (34)
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phosphorus (3)
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Tetrapoda
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Aves
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Mammalia
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Reptilia
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Cotylosauria
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Diapsida
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Synapsida
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Cynodontia (1)
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Thelodonti (1)
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coprolites (2)
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Graptolithina (3)
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Invertebrata
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Mandibulata
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Podocopida (1)
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Insecta
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Pterygota
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Neoptera
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Diptera
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Myriapoda (1)
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Trilobitomorpha
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Ptychopariida
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Brachiopoda
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Articulata
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Cnidaria
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Scyphozoa
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Echinodermata
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Crinozoa
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Crinoidea (3)
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Mollusca
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Bivalvia
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Heterodonta
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Mytilus
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Pterioida
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Cephalopoda
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Gastropoda (6)
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Tentaculitida
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Protista
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Foraminifera
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Rotaliina
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Textulariina
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Thecamoeba (3)
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Vermes
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Metazoa (1)
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microfossils
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palynomorphs
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Plantae
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Spermatophyta
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problematic fossils (4)
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upper Pleistocene
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Sangamonian (3)
-
Weichselian
-
upper Weichselian
-
Allerod (2)
-
Younger Dryas (6)
-
-
-
Wisconsinan
-
upper Wisconsinan (4)
-
-
-
-
upper Quaternary (5)
-
-
Tertiary
-
Neogene
-
Miocene (1)
-
-
Paleogene
-
Eocene (2)
-
Oligocene (4)
-
Paleocene (1)
-
-
-
-
Coal Measures (1)
-
Laurentide ice sheet (1)
-
Mesozoic
-
Cretaceous
-
Logan Canyon Formation (7)
-
Lower Cretaceous
-
Albian (1)
-
Barremian (1)
-
Berriasian (1)
-
Missisauga Formation (9)
-
Neocomian (1)
-
Valanginian (2)
-
-
Middle Cretaceous (2)
-
Upper Cretaceous
-
Dawson Canyon Formation (2)
-
Edmonton Group (1)
-
Maestrichtian (1)
-
Senonian (1)
-
Turonian (1)
-
Wyandot Formation (3)
-
-
-
Jurassic
-
Clarens Formation (1)
-
Lower Jurassic
-
Hettangian (2)
-
lower Liassic (2)
-
Toarcian (1)
-
Triassic-Jurassic boundary (2)
-
upper Liassic (1)
-
-
Mic Mac Formation (2)
-
Middle Jurassic
-
Bajocian (1)
-
-
Upper Jurassic
-
Tithonian (1)
-
-
-
lower Mesozoic (6)
-
Newark Supergroup (6)
-
Pucara Group (1)
-
Triassic
-
Middle Triassic
-
Ladinian (1)
-
-
Moenkopi Formation (1)
-
Upper Triassic
-
Carnian (3)
-
Norian (2)
-
Rhaetian (2)
-
Stormberg Series (1)
-
Triassic-Jurassic boundary (2)
-
-
-
-
MIS 5 (1)
-
Paleozoic
-
Cambrian
-
Acadian (4)
-
Lower Cambrian
-
Terreneuvian (3)
-
-
Middle Cambrian (12)
-
Upper Cambrian
-
Furongian (3)
-
Goldenville Formation (14)
-
-
-
Carboniferous
-
Albert Formation (1)
-
Lower Carboniferous
-
Dinantian (37)
-
-
Mabou Group (12)
-
Middle Carboniferous (7)
-
Mississippian
-
Lower Mississippian
-
Tournaisian (7)
-
-
Macumber Formation (9)
-
Middle Mississippian
-
Visean (21)
-
-
Upper Mississippian
-
Heath Formation (1)
-
Serpukhovian (1)
-
-
Windsor Group (43)
-
-
Namurian (7)
-
Pennsylvanian
-
Cumberland Group (12)
-
Joggins Formation (22)
-
Lower Pennsylvanian
-
Bashkirian (1)
-
-
Middle Pennsylvanian
-
Allegheny Group (2)
-
Moscovian (1)
-
-
Morien Group (14)
-
Upper Pennsylvanian (3)
-
-
Silesian (2)
-
Upper Carboniferous
-
Stephanian (8)
-
Westphalian (23)
-
-
-
Devonian
-
Fisset Brook Formation (4)
-
Lower Devonian (6)
-
Middle Devonian (1)
-
Upper Devonian
-
Famennian (1)
-
-
-
Horton Group (28)
-
lower Paleozoic (18)
-
middle Paleozoic (3)
-
Ordovician
-
Lower Ordovician
-
Arenigian (1)
-
Tremadocian
-
Halifax Formation (10)
-
-
-
Martinsburg Formation (1)
-
Meguma Group (65)
-
Middle Ordovician
-
Darriwilian (1)
-
-
Upper Ordovician
-
Caradocian (1)
-
-
-
Permian
-
Lower Permian (2)
-
-
Silurian
-
Lower Silurian
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Llandovery (3)
-
Wenlock (1)
-
-
Upper Silurian
-
Ludlow (2)
-
Pridoli (1)
-
-
-
upper Paleozoic
-
Pictou Group (5)
-
-
-
Phanerozoic (1)
-
Precambrian
-
Archean (1)
-
upper Precambrian
-
Proterozoic
-
Athabasca Formation (1)
-
Coldbrook Group (1)
-
Dedham Granodiorite (1)
-
Mesoproterozoic (2)
-
Neoproterozoic
-
Cryogenian (1)
-
Ediacaran (8)
-
Hadrynian
-
Fourchu Group (4)
-
George River Group (1)
-
-
Tonian (3)
-
Vendian (2)
-
-
Paleoproterozoic (1)
-
-
-
-
-
igneous rocks
-
agglutinates (1)
-
igneous rocks
-
kimberlite (1)
-
plutonic rocks
-
anorthosite (1)
-
appinite (2)
-
diabase (5)
-
diorites
-
quartz diorites (1)
-
tonalite (8)
-
-
gabbros
-
norite (3)
-
-
granites
-
adamellite (4)
-
alaskite (3)
-
aplite (2)
-
A-type granites (10)
-
granite porphyry (1)
-
I-type granites (1)
-
leucogranite (14)
-
monzogranite (16)
-
rapakivi (2)
-
two-mica granite (1)
-
-
granodiorites (25)
-
lamprophyres
-
spessartite (1)
-
-
pegmatite (18)
-
quartz monzonite (1)
-
syenites
-
albitite (1)
-
-
ultramafics
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peridotites (1)
-
-
-
porphyry (1)
-
volcanic rocks
-
andesites (1)
-
basalts
-
alkali basalts (1)
-
flood basalts (2)
-
mid-ocean ridge basalts (2)
-
tholeiite (6)
-
tholeiitic basalt (5)
-
-
pyroclastics
-
ignimbrite (2)
-
tuff (3)
-
-
rhyolites (19)
-
trachyandesites (1)
-
-
-
volcanic ash (1)
-
-
metamorphic rocks
-
K-bentonite (2)
-
metamorphic rocks
-
amphibolites (1)
-
gneisses
-
granite gneiss (1)
-
orthogneiss (1)
-
paragneiss (1)
-
-
granulites (3)
-
hornfels (1)
-
marbles (2)
-
metaigneous rocks
-
meta-anorthosite (1)
-
metabasalt (2)
-
metadiabase (1)
-
metadiorite (1)
-
metagabbro (2)
-
metagranite (2)
-
metarhyolite (2)
-
-
metaplutonic rocks (5)
-
metasedimentary rocks
-
metaconglomerate (2)
-
metapelite (1)
-
metasandstone (1)
-
paragneiss (1)
-
-
metasomatic rocks
-
greisen (11)
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skarn (2)
-
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metavolcanic rocks (13)
-
migmatites (1)
-
mylonites (8)
-
phyllites (2)
-
quartzites (5)
-
schists (6)
-
slates (6)
-
-
turbidite (18)
-
-
minerals
-
arsenates
-
pharmacosiderite (1)
-
scorodite (1)
-
-
arsenides
-
arsenopyrite (4)
-
-
carbonates
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aragonite (1)
-
bastnaesite (2)
-
calcite (8)
-
dolomite (3)
-
parisite (1)
-
rhodochrosite (1)
-
siderite (1)
-
synchysite (1)
-
-
halides
-
chlorides
-
halite (2)
-
-
fluorides
-
bastnaesite (2)
-
fluorite (1)
-
parisite (1)
-
synchysite (1)
-
topaz (4)
-
-
-
K-bentonite (2)
-
minerals (13)
-
oxides
-
baddeleyite (1)
-
brucite (1)
-
cassiterite (3)
-
chrome spinel (1)
-
corundum (1)
-
ferrihydrite (1)
-
gibbsite (1)
-
groutite (1)
-
hematite (3)
-
hydroxides (1)
-
ilmenite (4)
-
iron oxides (1)
-
leucoxene (1)
-
magnetite (4)
-
niobates
-
aeschynite (1)
-
columbite (1)
-
samarskite (1)
-
-
ramsdellite (1)
-
rutile (8)
-
sapphire (2)
-
tantalates
-
tantalite (1)
-
-
-
phosphates
-
apatite (4)
-
crandallite (1)
-
monazite (12)
-
xenotime (2)
-
-
silicates
-
aluminosilicates (1)
-
chain silicates
-
amphibole group
-
clinoamphibole
-
actinolite (1)
-
arfvedsonite (1)
-
hornblende (11)
-
pargasite (1)
-
riebeckite (1)
-
-
-
pyroxene group
-
clinopyroxene
-
spodumene (2)
-
-
orthopyroxene (1)
-
-
-
framework silicates
-
feldspar group
-
alkali feldspar
-
K-feldspar (5)
-
-
plagioclase
-
albite (3)
-
-
-
scapolite group
-
scapolite (1)
-
-
silica minerals
-
quartz (14)
-
tridymite (1)
-
-
zeolite group
-
analcime (2)
-
clinoptilolite (1)
-
epistilbite (1)
-
heulandite (1)
-
mordenite (1)
-
phillipsite (1)
-
stilbite (3)
-
-
-
orthosilicates
-
nesosilicates
-
andalusite (1)
-
garnet group
-
almandine (1)
-
andradite (1)
-
pyrope (1)
-
spessartine (2)
-
-
olivine group
-
olivine (1)
-
peridot (1)
-
-
sillimanite (2)
-
titanite group
-
titanite (2)
-
-
topaz (4)
-
zircon group
-
thorite (2)
-
zircon (65)
-
-
-
sorosilicates
-
chevkinite group
-
chevkinite (1)
-
-
epidote group
-
allanite (1)
-
epidote (3)
-
-
-
-
ring silicates
-
aquamarine (1)
-
cordierite (2)
-
emerald (1)
-
tourmaline group
-
schorl (1)
-
-
-
sheet silicates
-
chlorite group
-
chlorite (3)
-
-
clay minerals
-
kaolinite (5)
-
smectite (3)
-
-
corrensite (1)
-
illite (2)
-
mica group
-
biotite (12)
-
glauconite (1)
-
muscovite (29)
-
-
-
-
sulfates
-
barite (3)
-
copiapite (1)
-
epsomite (1)
-
gypsum (2)
-
halotrichite (1)
-
melanterite (2)
-
pickeringite (1)
-
rozenite (1)
-
-
sulfides
-
arsenopyrite (4)
-
galena (1)
-
iron sulfides (1)
-
pyrite (5)
-
pyrrhotite (2)
-
realgar (1)
-
sphalerite (3)
-
stibnite (1)
-
-
tungstates
-
wolframite (1)
-
-
-
Primary terms
-
absolute age (169)
-
Africa
-
North Africa
-
Algeria (1)
-
Atlas Mountains
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Moroccan Atlas Mountains
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Anti-Atlas (1)
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High Atlas (1)
-
-
-
Morocco
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Moroccan Atlas Mountains
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Anti-Atlas (1)
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High Atlas (1)
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-
-
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Sahara (1)
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Southern Africa
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South Africa (1)
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West Africa (1)
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Arctic Ocean
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Beaufort Sea (1)
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Arctic region (1)
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Asia
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Indian Peninsula
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Pakistan (1)
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Middle East
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Turkey (1)
-
-
-
Atlantic Ocean
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Equatorial Atlantic (1)
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North Atlantic
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Bay of Fundy (36)
-
Caribbean Sea (1)
-
Georges Bank (5)
-
Georges Bank basin (1)
-
Gulf of Maine (5)
-
Gulf of Mexico (1)
-
Gulf of Saint Lawrence (12)
-
Hudson Bay (2)
-
Jeanne d'Arc Basin (2)
-
Labrador Sea (3)
-
North Sea
-
East Shetland Basin (1)
-
-
Northeast Atlantic (1)
-
Northwest Atlantic (30)
-
Sable Island Bank (6)
-
Scotian Shelf (67)
-
Scotian Slope (12)
-
-
South Atlantic
-
Espirito Santo Basin (1)
-
-
-
Atlantic Ocean Islands
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Saint Pierre and Miquelon (1)
-
-
Atlantic region (5)
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atmosphere (1)
-
Australasia
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Australia
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New South Wales Australia
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Tamworth Australia (1)
-
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Tamworth Belt (1)
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Victoria Australia
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Ballarat Australia (1)
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Ballarat gold field (1)
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Bendigo Australia (1)
-
Bendigo gold field (1)
-
-
Western Australia (1)
-
-
New Zealand
-
Otago Schist (1)
-
-
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barite deposits (9)
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bibliography (1)
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biogeography (16)
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biography (1)
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bitumens (2)
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brines (24)
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Canada
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Arctic Archipelago (2)
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Eastern Canada
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Gander Zone (4)
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Maritime Provinces
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New Brunswick
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Albert County New Brunswick (2)
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Fredericton New Brunswick (1)
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Moncton Basin (2)
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Saint George Batholith (1)
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Saint John County New Brunswick
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-
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Westmorland County New Brunswick (1)
-
-
Nova Scotia
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Annapolis County Nova Scotia (4)
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Antigonish County Nova Scotia
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Antigonish Nova Scotia (7)
-
-
Cape Breton Island
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Cape Breton County Nova Scotia
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Sydney Nova Scotia (7)
-
-
Cape Breton Highlands (13)
-
Inverness County Nova Scotia (2)
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Richmond County Nova Scotia (1)
-
-
Chedabucto Bay (3)
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Cobequid Bay (1)
-
Cobequid Fault (12)
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Cobequid Highlands (21)
-
Colchester County Nova Scotia (3)
-
Cumberland County Nova Scotia
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Joggins Fossil Cliffs (7)
-
-
Digby County Nova Scotia (3)
-
Gays River Deposit (16)
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Halifax County Nova Scotia
-
Halifax Nova Scotia (12)
-
-
Hants County Nova Scotia (8)
-
Kings County Nova Scotia (6)
-
Lunenburg County Nova Scotia (4)
-
Minas Basin (42)
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Pictou County Nova Scotia (3)
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Queens County Nova Scotia (2)
-
Sable Island (17)
-
Shelburne County Nova Scotia (2)
-
Yarmouth County Nova Scotia
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Yarmouth Nova Scotia (3)
-
-
-
Prince Edward Island (10)
-
-
Meguma Terrane (71)
-
Newfoundland and Labrador
-
Labrador (4)
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Newfoundland
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Avalon Peninsula (2)
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Burin Peninsula (1)
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Port au Port Peninsula (1)
-
-
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Ontario (9)
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Quebec
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Gaspe Peninsula (2)
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Magdalen Islands (1)
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Saint Lawrence Estuary (1)
-
-
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Hudson Bay (2)
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Northumberland Strait (3)
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Nunavut
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Devon Island (1)
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Queen Elizabeth Islands
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Devon Island (1)
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Western Canada
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Alberta (4)
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British Columbia
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Fraser River delta (1)
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Vancouver Island (2)
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Manitoba (1)
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Northwest Territories
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Pine Point mining district (1)
-
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Saskatchewan (4)
-
Yukon Territory (3)
-
-
-
carbon
-
C-13/C-12 (21)
-
C-14 (24)
-
organic carbon (6)
-
-
Caribbean region
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West Indies
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Bahamas (1)
-
-
-
Cenozoic
-
lower Cenozoic (1)
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Quaternary
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Holocene
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Atlantic (1)
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lower Holocene (1)
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middle Holocene (1)
-
upper Holocene (7)
-
-
Pleistocene
-
upper Pleistocene
-
Sangamonian (3)
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Weichselian
-
upper Weichselian
-
Allerod (2)
-
Younger Dryas (6)
-
-
-
Wisconsinan
-
upper Wisconsinan (4)
-
-
-
-
upper Quaternary (5)
-
-
Tertiary
-
Neogene
-
Miocene (1)
-
-
Paleogene
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Eocene (2)
-
Oligocene (4)
-
Paleocene (1)
-
-
-
-
chemical analysis (1)
-
Chordata
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Vertebrata
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Pisces
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Acanthodii
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Acanthodes (1)
-
-
Chondrichthyes
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Elasmobranchii (1)
-
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Osteichthyes
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Sarcopterygii (1)
-
-
-
Tetrapoda
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Amphibia
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Labyrinthodontia
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Anthracosauria (2)
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Temnospondyli (1)
-
-
Lepospondyli (2)
-
Lissamphibia
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Anura (1)
-
-
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Aves
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Neornithes (1)
-
-
Mammalia
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Theria
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Eutheria
-
Proboscidea
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Mastodontoidea
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Mammutidae
-
Mammut (1)
-
-
-
-
-
-
-
Reptilia
-
Anapsida
-
Cotylosauria
-
Captorhinomorpha (1)
-
-
-
Diapsida
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Lepidosauria
-
Rhynchocephalia (1)
-
-
-
Synapsida
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Therapsida
-
Cynodontia (1)
-
-
-
-
-
Thelodonti (1)
-
-
-
clay mineralogy (5)
-
climate change (4)
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coal deposits (2)
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continental drift (10)
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continental shelf (63)
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continental slope (12)
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crust (50)
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crystal structure (5)
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data processing (14)
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deformation (41)
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diagenesis (29)
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diamond deposits (2)
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Earth (2)
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earthquakes (7)
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Europe
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Southern Europe
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Wales
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explosions (2)
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Graptolithina (3)
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heat flow (12)
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hydrogen
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D/H (6)
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deuterium (5)
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hydrology (1)
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ichnofossils
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Chondrites ichnofossils (1)
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Skolithos (1)
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Thalassinoides (1)
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Trypanites (1)
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Zoophycos (1)
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-
igneous rocks
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kimberlite (1)
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plutonic rocks
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anorthosite (1)
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appinite (2)
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diabase (5)
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diorites
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tonalite (8)
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gabbros
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norite (3)
-
-
granites
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adamellite (4)
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alaskite (3)
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aplite (2)
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A-type granites (10)
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granite porphyry (1)
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I-type granites (1)
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leucogranite (14)
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monzogranite (16)
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rapakivi (2)
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two-mica granite (1)
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granodiorites (25)
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lamprophyres
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spessartite (1)
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pegmatite (18)
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quartz monzonite (1)
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syenites
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ultramafics
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peridotites (1)
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porphyry (1)
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volcanic rocks
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andesites (1)
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basalts
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alkali basalts (1)
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flood basalts (2)
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mid-ocean ridge basalts (2)
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tholeiite (6)
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tholeiitic basalt (5)
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pyroclastics
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ignimbrite (2)
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tuff (3)
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rhyolites (19)
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trachyandesites (1)
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inclusions
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fluid inclusions (29)
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Indian Ocean
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Dampier Sub-basin (1)
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interplanetary space (1)
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intrusions (126)
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Invertebrata
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Arthropoda
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Chelicerata
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Merostomata
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Eurypterida (1)
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Mandibulata
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Crustacea
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Ostracoda
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Podocopida (1)
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Insecta
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Pterygota
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Neoptera
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Endopterygota
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Coleoptera (3)
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Diptera
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Chironomidae (1)
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-
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Myriapoda (1)
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Trilobitomorpha
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Trilobita
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Agnostida (1)
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Ptychopariida
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Olenidae (2)
-
-
-
-
-
Brachiopoda
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Articulata
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Strophomenida (1)
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-
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Bryozoa (1)
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Cnidaria
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Anthozoa
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Zoantharia
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Rugosa (1)
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-
-
Scyphozoa
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Conulariida (1)
-
-
-
Echinodermata
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Crinozoa
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Crinoidea (3)
-
-
-
Mollusca
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Bivalvia
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Heterodonta
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Veneroida
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Veneridae
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Mercenaria (1)
-
-
-
-
Mytilus
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Mytilus edulis (1)
-
-
Pterioida
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Pteriina
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Anthraconauta (2)
-
-
-
-
Cephalopoda
-
Nautiloidea (1)
-
-
Gastropoda (6)
-
Scaphopoda (1)
-
Tentaculitida
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Tentaculitidae
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Tentaculites (1)
-
-
-
-
Protista
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Foraminifera
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Rotaliina
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Rotaliacea
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Ammonia (1)
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Elphidium (3)
-
-
-
Textulariina
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Lituolacea
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Ammobaculites (2)
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Trochammina (4)
-
-
-
-
Thecamoeba (3)
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Vermes
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Annelida (3)
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scolecodonts (1)
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-
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isostasy (2)
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isotopes
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radioactive isotopes
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Ar-40/Ar-39 (1)
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C-14 (24)
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Pb-206/Pb-204 (4)
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Pb-207/Pb-204 (4)
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Pb-208/Pb-204 (2)
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Ra-226 (1)
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Rb-87/Sr-86 (2)
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Sm-147/Nd-144 (13)
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U-238/Pb-206 (1)
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stable isotopes
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Ar-40/Ar-36 (1)
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Ar-40/Ar-39 (1)
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C-13/C-12 (21)
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D/H (6)
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deuterium (5)
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Hf-177/Hf-176 (2)
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Nd-144/Nd-143 (27)
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O-18 (2)
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O-18/O-16 (34)
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Os-188/Os-187 (1)
-
Pb-206/Pb-204 (4)
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Pb-207/Pb-204 (4)
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Pb-207/Pb-206 (1)
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Pb-208/Pb-204 (2)
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Rb-87/Sr-86 (2)
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S-34/S-32 (12)
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Sm-147/Nd-144 (13)
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Sr-87/Sr-86 (28)
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U-238/Pb-206 (1)
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-
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kaolin deposits (1)
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land use (1)
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lava (12)
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lineation (4)
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magmas (57)
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mantle (14)
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maps (6)
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marine geology (15)
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marine installations (1)
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Mesozoic
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Cretaceous
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Logan Canyon Formation (7)
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Lower Cretaceous
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Albian (1)
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Barremian (1)
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Berriasian (1)
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Missisauga Formation (9)
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Neocomian (1)
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Valanginian (2)
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-
Middle Cretaceous (2)
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Upper Cretaceous
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Dawson Canyon Formation (2)
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Edmonton Group (1)
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Maestrichtian (1)
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Senonian (1)
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Turonian (1)
-
Wyandot Formation (3)
-
-
-
Jurassic
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Clarens Formation (1)
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Lower Jurassic
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Hettangian (2)
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lower Liassic (2)
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Toarcian (1)
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Triassic-Jurassic boundary (2)
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upper Liassic (1)
-
-
Mic Mac Formation (2)
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Middle Jurassic
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Bajocian (1)
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-
Upper Jurassic
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Tithonian (1)
-
-
-
lower Mesozoic (6)
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Newark Supergroup (6)
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Pucara Group (1)
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Triassic
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Middle Triassic
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Ladinian (1)
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Moenkopi Formation (1)
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Upper Triassic
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Carnian (3)
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Norian (2)
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Rhaetian (2)
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Stormberg Series (1)
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Triassic-Jurassic boundary (2)
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-
-
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metal ores
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antimony ores (1)
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base metals (13)
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copper ores (10)
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gold ores (29)
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lead ores (5)
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lead-zinc deposits (29)
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metals
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actinides
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thorium (7)
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uranium
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U-238/Pb-206 (1)
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alkali metals
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cesium (1)
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lithium (3)
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potassium (5)
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rubidium
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Rb-87/Sr-86 (2)
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sodium (3)
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alkaline earth metals
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calcium (3)
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magnesium (3)
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radium
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Ra-226 (1)
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strontium
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Rb-87/Sr-86 (2)
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Sr-87/Sr-86 (28)
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aluminum (4)
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antimony (1)
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arsenic (7)
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bismuth (1)
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cadmium (2)
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chromium (1)
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cobalt (2)
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copper (4)
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germanium (1)
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gold (3)
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hafnium
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Hf-177/Hf-176 (2)
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iron
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ferrous iron (2)
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lead
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Pb-206/Pb-204 (4)
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Pb-207/Pb-204 (4)
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Pb-207/Pb-206 (1)
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Pb-208/Pb-204 (2)
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U-238/Pb-206 (1)
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manganese (7)
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mercury (5)
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molybdenum (2)
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nickel (4)
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niobium (4)
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platinum group
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osmium
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Os-188/Os-187 (1)
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palladium (1)
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ruthenium (1)
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precious metals (1)
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rare earths
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europium (1)
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lanthanum (1)
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lutetium (5)
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neodymium
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Nd-144/Nd-143 (27)
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Sm-147/Nd-144 (13)
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-
samarium
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Sm-147/Nd-144 (13)
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scandium (1)
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terbium (1)
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ytterbium (1)
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yttrium (4)
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tantalum (3)
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tin (1)
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metamorphic rocks
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amphibolites (1)
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granulites (3)
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metaigneous rocks
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metarhyolite (2)
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metaplutonic rocks (5)
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metasomatic rocks
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greisen (11)
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skarn (2)
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metamorphism (55)
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mineralogy (20)
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Mohorovicic discontinuity (1)
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mud volcanoes (1)
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noble gases
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argon
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Ar-40/Ar-36 (1)
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Ar-40/Ar-39 (1)
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nonmetal deposits (1)
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nonmetals (1)
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North America
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Appalachians
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Northern Appalachians (46)
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Basin and Range Province (1)
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Canadian Shield
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Grenville Province (1)
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Slave Province (1)
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Superior Province
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Swayze greenstone belt (1)
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Humber Zone (1)
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Saint Pierre and Miquelon (1)
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Western Interior
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Western Interior Seaway (1)
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ocean circulation (11)
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ocean floors (6)
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ocean waves (4)
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oceanography (48)
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oil and gas fields (14)
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orogeny (40)
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oxygen
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O-18 (2)
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O-18/O-16 (34)
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Pacific Coast (1)
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paleobotany (4)
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paleoclimatology (40)
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paleoecology (53)
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paleogeography (72)
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paleomagnetism (17)
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paleontology (44)
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Paleozoic
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Cambrian
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Acadian (4)
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Lower Cambrian
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Terreneuvian (3)
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Middle Cambrian (12)
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Upper Cambrian
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Furongian (3)
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Goldenville Formation (14)
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-
-
Carboniferous
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Albert Formation (1)
-
Lower Carboniferous
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Dinantian (37)
-
-
Mabou Group (12)
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Middle Carboniferous (7)
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Mississippian
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Lower Mississippian
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Tournaisian (7)
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-
Macumber Formation (9)
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Middle Mississippian
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Visean (21)
-
-
Upper Mississippian
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Heath Formation (1)
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Serpukhovian (1)
-
-
Windsor Group (43)
-
-
Namurian (7)
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Pennsylvanian
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Cumberland Group (12)
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Joggins Formation (22)
-
Lower Pennsylvanian
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Bashkirian (1)
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-
Middle Pennsylvanian
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Allegheny Group (2)
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Moscovian (1)
-
-
Morien Group (14)
-
Upper Pennsylvanian (3)
-
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Silesian (2)
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Upper Carboniferous
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Stephanian (8)
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Westphalian (23)
-
-
-
Devonian
-
Fisset Brook Formation (4)
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Lower Devonian (6)
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Middle Devonian (1)
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Upper Devonian
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Famennian (1)
-
-
-
Horton Group (28)
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lower Paleozoic (18)
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middle Paleozoic (3)
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Ordovician
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Lower Ordovician
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Arenigian (1)
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Tremadocian
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Halifax Formation (10)
-
-
-
Martinsburg Formation (1)
-
Meguma Group (65)
-
Middle Ordovician
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Darriwilian (1)
-
-
Upper Ordovician
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Caradocian (1)
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-
-
Permian
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Lower Permian (2)
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Silurian
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Lower Silurian
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Llandovery (3)
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Wenlock (1)
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Upper Silurian
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Ludlow (2)
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Pridoli (1)
-
-
-
upper Paleozoic
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Pictou Group (5)
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-
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palynology (1)
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palynomorphs
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acritarchs (4)
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Chitinozoa (2)
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Dinoflagellata (5)
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miospores
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pollen (18)
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paragenesis (27)
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permafrost (1)
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petroleum
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natural gas (15)
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petrology (51)
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Phanerozoic (1)
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phase equilibria (5)
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phosphorus (3)
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placers (2)
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Plantae
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algae
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Chlorophyta
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Charophyta (1)
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diatoms (1)
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nannofossils (3)
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Pteridophyta
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Lycopsida
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Stigmaria (3)
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Sphenopsida
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Equisetales
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Calamites (2)
-
-
-
-
Spermatophyta
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Angiospermae
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Dicotyledoneae
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Acer (1)
-
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Monocotyledoneae
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Gramineae
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Spartina (1)
-
-
-
-
Gymnospermae
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Bennettitales (1)
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Coniferales
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Araucariaceae
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Araucaria (1)
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Pinaceae
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Pinus (2)
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-
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Cordaitales
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Cordaites (2)
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Cycadales (1)
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Ginkgoales (1)
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Pteridospermae
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Neuropteris (1)
-
-
-
-
-
plate tectonics (54)
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pollution (14)
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Precambrian
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Archean (1)
-
upper Precambrian
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Proterozoic
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Athabasca Formation (1)
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Coldbrook Group (1)
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Dedham Granodiorite (1)
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Mesoproterozoic (2)
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Neoproterozoic
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Cryogenian (1)
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Ediacaran (8)
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Hadrynian
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Fourchu Group (4)
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George River Group (1)
-
-
Tonian (3)
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Vendian (2)
-
-
Paleoproterozoic (1)
-
-
-
-
problematic fossils (4)
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reclamation (1)
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reefs (2)
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remote sensing (6)
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sea water (1)
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sea-floor spreading (5)
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sea-level changes (33)
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sedimentary petrology (34)
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sedimentary rocks
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carbonate rocks
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boundstone (1)
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chalk (3)
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dolostone (4)
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grainstone (1)
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limestone (13)
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packstone (1)
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wackestone (2)
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-
chemically precipitated rocks
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evaporites
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salt (3)
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clastic rocks
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arenite (1)
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bentonite (1)
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black shale (2)
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claystone (2)
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conglomerate (11)
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marl (1)
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mudstone (18)
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red beds (15)
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sandstone (59)
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shale (19)
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coal
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bituminous coal (1)
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oil shale (2)
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sedimentary structures
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bedding plane irregularities
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dune structures (1)
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ripple marks (3)
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biogenic structures
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algal structures
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algal mats (1)
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banks (1)
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planar bedding structures
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primary structures (2)
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secondary structures
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soft sediment deformation
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sole marks (1)
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sedimentation (96)
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sediments
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sand (14)
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silt (4)
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till (16)
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marine sediments (31)
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peat (6)
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seismology (6)
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selenium (1)
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shorelines (4)
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slope stability (1)
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South America
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Amazonian Craton (3)
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spectroscopy (4)
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S-34/S-32 (12)
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tectonics
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neotectonics (2)
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salt tectonics (18)
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X-ray analysis (1)
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rock formations
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Alum Shale Formation (1)
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sedimentary rocks
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calcrete (2)
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flysch (1)
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chemically precipitated rocks
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clastic rocks
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Nova Scotia
Type material of Paraconularia planicostata (Dawson) from the Upper Mississippian of Nova Scotia, Atlantic Canada
Automated seismic semantic segmentation using attention U-Net
Geochemical variation in biotite from the Devonian South Mountain Batholith, Nova Scotia: Constraints on emplacement pressure, temperature, magma redox state and the development of a magmatic vapor phase (MVP)
Abstract Following the collision of Gondwana and Laurussia to form Pangaea, a large system of regional-scale strike-slip faults developed which resulted in the formation of transtensional syncollisional basins. One such basin, the Antigonish Basin, contains late Devonian fluvial, marine and lacustrine sedimentary rocks, including sandstone, conglomerate and shale. LA-ICP-MS U–Pb detrital zircon data from three samples from the lower and middle of the McIsaacs Point section have a strong Silurian–Devonian ( c. 440–380 Ma) population whereas the top of the section lacks these age populations and is instead dominated by Neoproterozoic ( c. 630–550 Ma) grains. Detritus was derived from a mix of local Avalonian and more distal Meguma terrane sources. Detrital zircon and field data show that sediments were deposited in a braided to meandering fluvial system transitional to a proximal braided stream environment followed by evolution to a more distal braided stream environment. As the basin evolved, the source of detritus shifted from a dominantly Meguma terrane source to a more local Avalonian source. This temporal evolution in provenance and depositional environment attests to the complex depositional processes associated with syntectonic basin evolution during the formation of Pangaea.
Reply to the Discussion by Landing and Geyer on “The Terreneuvian MacCodrum Brook section, Mira terrane, Cape Breton Island, Nova Scotia, Canada: age constraints from ash layers, organic-walled microfossils, and trace fossils”
Discussion: The Terreneuvian MacCodrum Brook section, Mira terrane, Cape Breton Island, Nova Scotia, Canada: age constraints from ash layers, organic-walled microfossils, and trace fossils
P / SV Amplitude Ratios of Shallow Isotropic Explosions and Earthquakes Could Be Indistinguishable at Local Distances: Insights from Single‐Station Waveform Simulations
Recognizing Tourmaline in Mineralized Porphyry Cu Systems: Textures and Major-Element Chemistry
Foraminifera Associated With Swirled Spartina Patens Beds on Perched Marshes Along the Rocky Coastline of Lunenburg County, Nova Scotia
U-Pb zircon ages from metasedimentary and plutonic rocks in the Bras d’Or terrane of Cape Breton Island, Nova Scotia, Canada: insights into the Ediacaran–Cambrian tectonomagmatic evolution of Ganderia
APPLICATIONS OF PHOTOGRAMMETRY TO NEOICHNOLOGICAL STUDIES: THE SIGNIFICANCE OF SHOREBIRD TRACKWAY DISTRIBUTIONS AT THE BAY OF FUNDY
The Terreneuvian MacCodrum Brook section, Mira terrane, Cape Breton Island, Nova Scotia, Canada: age constraints from ash layers, organic-walled microfossils, and trace fossils
Trans-Avalonian green–black boundary (early Middle Cambrian): transform fault-driven epeirogeny and onset of 26 m.y. of shallow-marine, black mudstone in Avalonia (Rhode Island–Belgium) and Baltica
The Cambrian (Furongian) olenid trilobite Peltura from Avalonian Nova Scotia, Canada, with a review of some species from Baltica
ABSTRACT West Avalonia is a composite terrane that rifted from the supercontinent Gondwana in the Ordovician and accreted to Laurentia during the latest Silurian to Devonian Acadian orogeny. The nature and extent of West Avalonia are well constrained in Nova Scotia, New Brunswick, and Newfoundland, Canada, by U-Pb detrital zircon data and/or isotope geochemistry of (meta)sedimentary and igneous rocks. The southeastern New England Avalon terrane in eastern Massachusetts, Connecticut, and Rhode Island has generally been interpreted as an along-strike continuance of West Avalonia in Canada, but the ages and origins of metasedimentary units along the western boundary of the Avalon terrane in Massachusetts and Connecticut remain poorly constrained. In this study, new detrital zircon U-Pb and Lu-Hf laser-ablation–inductively coupled plasma–mass spectrometry (LA-ICP-MS) data from three samples of metasedimentary units along the western boundary of the southeastern New England Avalon terrane in Connecticut and Massachusetts were compared with existing data to test whether these metasedimentary units can be correlated along strike. The data were also compared with existing detrital zircon U-Pb and εHf data in New England and Canada in order to constrain the extent and provenance of West Avalonia. The maximum depositional age of two of the three detrital zircon samples analyzed in this study, based on the youngest single grain in each sample (600 ± 28 Ma, n = 1; 617 ± 28 Ma, n = 1) and consistency with existing analyses elsewhere in the southeastern New England Avalon terrane, is Ediacaran, while that of the third sample is Tonian (959 ± 40 Ma, n = 4). Detrital zircon analyses of all three samples from this study showed similar substantial Mesoproterozoic and lesser Paleoproterozoic and Archean populations. Other existing detrital zircon U-Pb data from quartzites in the southeastern New England Avalon terrane show similar Tonian populations with or without Ediacaran grains or populations. Most published detrital zircon U-Pb data from (meta)sedimentary rocks in West Avalonia in Canada yielded Ediacaran youngest detrital zircon age populations, except for a quartzite unit within the Gamble Brook Formation in the Cobequid Highlands of Nova Scotia, which showed a Tonian maximum depositional age, and otherwise a nearly identical detrital zircon signature with rocks from the southeastern New England Avalon terrane. All samples compiled from the southeastern New England Avalon terrane and West Avalonia in Canada show main age populations between ca. 2.0 Ga and ca. 1.0 Ga, with major peaks at ca. 1.95, ca. 1.50, ca. 1.20, and ca. 1.00 Ga, and minor ca. 3.1–3.0 Ga and ca. 2.8–2.6 Ga populations. The εHf ( t ) values from the three samples yielded similar results to those from West Avalonia in Canada, suggesting that both regions were derived from the same cratonic sources. The εHf ( t ) values of all West Avalonian samples overlap with both Amazonia and Baltica, suggesting that there is a mixed signature between cratonic sources, possibly as a result of previous collision and transfer of basement fragments between these cratons during the formation of supercontinent Rodinia, or during subsequent arc collisions.
ABSTRACT The Avalon terrane of southeastern New England is a composite terrane in which various crustal blocks may have different origins and/or tectonic histories. The northern part (west and north of Boston, Massachusetts) correlates well with Avalonian terranes in Newfoundland, Nova Scotia, and New Brunswick, Canada, based on rock types and ages, U-Pb detrital zircon signatures of metasedimentary rocks, and Sm-Nd isotope geochemistry data. In the south, fewer data exist, in part because of poorer rock exposure, and the origins and histories of the rocks are less well constrained. We conducted U-Pb laser ablation–inductively coupled plasma–mass spectrometry analysis on zircon from seven metasedimentary rock samples from multiple previously interpreted subterranes in order to constrain their origins. Two samples of Neoproterozoic Plainfield Formation quartzite from the previously interpreted Hope Valley subterrane in the southwestern part of the southeastern New England Avalon terrane and two from the Neoproterozoic Blackstone Group quartzite from the adjacent Esmond-Dedham subterrane to the east have Tonian youngest detrital zircon age populations. One sample of Cambrian North Attleboro Formation quartzite of the Esmond-Dedham subterrane yielded an Ediacaran youngest detrital zircon age population. Detrital zircon populations of all five samples include abundant Mesoproterozoic zircon and smaller Paleoproterozoic and Archean populations, and are similar to those of the northern part of the southeastern New England Avalon terrane and the Avalonian terranes in Canada. These are interpreted as having a Baltican/Amazonian affinity based primarily on published U-Pb and Lu-Hf detrital zircon data. Based on U-Pb detrital zircon data, there is no significant difference between the Hope Valley and Esmond-Dedham subterranes. Detrital zircon of two samples of the Price Neck and Newport Neck formations of the Neoproterozoic Newport Group in southern Rhode Island is characterized by large ca. 647–643 and ca. 745–733 Ma age populations and minor zircon up to ca. 3.1 Ga. This signature is most consistent with a northwest African affinity. The Newport Group may thus represent a subterrane, terrane, or other crustal block with a different origin and history than the southeastern New England Avalon terrane to the northwest. The boundary of this Newport Block may be restricted to the boundaries of the Newport Group, or it may extend as far north as Weymouth, Massachusetts, as far northwest as (but not including) the North Attleboro Formation quartzite and associated rocks in North Attleboro, Massachusetts, and as far west as Warwick, Rhode Island, where eastern exposures of the Blackstone Group quartzite exist. The Newport Block may have amalgamated with the Amazonian/Baltican part of the Avalon terrane prior to mid-Paleozoic amalgamation with Laurentia, or it may have arrived as a separate terrane after accretion of the Avalon terrane. Alternatively, it may have arrived during the formation of Pangea and been stranded after the breakup of Pangea, as has been proposed previously for rocks of the Georges Bank in offshore Massachusetts. If the latter is correct, then the boundary between the Newport Block and the southeastern New England Avalon terrane is the Pangean suture zone.
ABSTRACT Southeastern New England is largely composed of Ediacaran granitoid and related volcanic rocks formed during the main phase of arc-related magmatism recorded in West Avalonian lithotectonic assemblages extending through Atlantic Canada to eastern Newfoundland. In situ Lu-Hf analyses presented here for zircons from the Dedham, Milford, and Esmond Granites and from the Lynn-Mattapan volcanic complex show a restricted range of εHf values (+2 to +5) and associated Hf- T DM model ages of 1.3–0.9 Ga, assuming felsic crustal sources. The most evolved granites within this suite lie in a belt north and west of the Boston Basin, whereas upfaulted granites on the south, as well as the slightly younger volcanic units, show more juvenile Hf isotopic compositions. Similar inferences have been drawn from previously published Sm-Nd isotopic signatures for several of the same plutons. Collectively, the isotopic compositions and high-precision U-Pb geochronological constraints now available for southeastern New England differ in important respects from patterns in the Mira terrane of Cape Breton Island or the Newfoundland Avalon zone, but they closely resemble those documented in the Cobequid and Antigonish Highlands of mainland Nova Scotia and New Brunswick’s Caledonia terrane. Particularly significant features are similarities between the younger than 912 Ma Westboro Formation in New England and the younger than 945 Ma Gamble Brook Formation in the Cobequid Highlands, both of which yield detrital zircon age spectra consistent with sources on the Timanide margin of Baltica. This relationship provides the starting point for a recent model in which episodic West Avalonian arc magmatism began along the Tonian margin of Baltica and terminated during diachronous late Ediacaran arc-arc collision with the Ganderian margin of Gondwana.
ABSTRACT Forty-three new U-Pb zircon ages from metasedimentary and igneous rock units throughout the Cobequid Highlands of northern mainland Nova Scotia, Canada, provide new insights into the Neoproterozoic evolution of this long-enigmatic part of Avalonia in the northern Appalachian orogen. Contrasts in ages and rock types resulted in the identification of fault-bounded Neoproterozoic assemblages of units forming the Bass River, Jeffers, and Mount Ephraim blocks. In the Bass River block, quartzite, metawacke, and minor calc-silicate rocks and marble (Gamble Brook Formation) with a maximum depositional age of 945 ± 12 Ma are associated with subaqueous mafic volcanic rocks, siltstone, and ironstone (Folly River Formation) and intruded by 615–600 Ma calc-alkalic subduction-related dioritic to granitic rocks of the Bass River plutonic suite. The contrasting Jeffers block forms most of the Cobequid Highlands and consists mainly of intermediate to felsic volcanic, epiclastic, and minor plutonic rocks. The western and eastern areas of that block yielded ages mainly ca. 607–592 Ma for both volcanic and plutonic rocks, whereas the central area has ages of ca. 630–625 Ma from both volcanic and plutonic rocks and inheritance in overlying Devonian conglomerate. The Mount Ephraim block forms the eastern part of the highlands and includes possible ca. 800 Ma quartzofeldspathic, semipelitic and pelitic gneiss and schist of the Mount Thom Formation, ca. 752 Ma volcanic arc rocks of the Dalhousie Mountain Formation and related 752–730 Ma gabbroic/dioritic to granitic plutons of the Mount Ephraim plutonic suite and Six Mile Brook pluton, as well as ca. 631 Ma granitoid rocks of the Gunshot Brook pluton. The pre–750 Ma high-grade regional metamorphism and deformation and 752–730 Ma subduction-related magmatism recorded in the Mount Ephraim block were previously unrecognized in Avalonia. Evidence from zircon inheritance and Sm-Nd isotopic data in igneous units suggests linkages among these now-separate areas, and comparison with other parts of Avalonia in the northern Appalachian orogen suggests similarity to southeastern New England.
ABSTRACT Avalonia and Ganderia are composite microcontinental fragments in the northern Appalachian orogen likely derived from Gondwanan sources. Avalonia includes numerous Neoproterozoic magmatic arc sequences that represent protracted and episodic subduction-related magmatism before deposition of an Ediacaran–Ordovician cover sequence of mainly siliciclastic rocks. We characterized the nature of the basement on which these arcs were constructed using zircon grains from arc-related magmatic rocks in Atlantic Canada that were analyzed for their Lu-Hf isotope composition. The majority of zircon grains from Avalonia are characterized by initial 176 Hf/ 177 Hf values that are more radiogenic than chondritic uniform reservoir, and calculated crust formation Hf T DM (i.e., depleted mantle) model ages range from 1.2 to 0.8 Ga. These data contrast with those from Ganderia, which show typically positive initial εHf values and Hf T DM model ages that imply magmatism was derived by melting of crustal sources with diverse ages ranging from ca. 1.8 to 1.0 Ga. The positive distribution of initial εHf values along with the pattern of Hf T DM model ages provide a clear record of two distinct subduction systems. Cryogenian–Ediacaran magmatism is interpreted to have resulted from reworking of an evolved Mesoproterozoic crustal component in a long-lived, subduction-dominated accretionary margin along the margin of northern Amazonia. A change in Hf isotope trajectory during the Ediacaran implies a greater contribution of isotopically evolved material consistent with an arc-arc–style collision of Ganderia with Avalonia. The shallow-sloping Hf isotopic pattern for Paleozoic Ganderian magmatism remains continuous for ~200 m.y., consistent with tectonic models of subduction in the Iapetus and Rheic Oceans and episodic accretion of juvenile crustal terranes to Laurentia.