REVIEW 3 major objections 6 minor 108 references
A systematic search for tectonic tremor and low-frequency earthquakes in the Atacama segment of the Chilean subduction zone (24$^\circ$S-31$^\circ$S) turns up empty
T0 review · 3 major / 6 minor · reviewed 2026-08-10 · deepseek-v4-flash
Pith's one-line read After 3.5 years of continuous seismic monitoring with two independent detection methods and manual verification, the Atacama segment of the Chilean subduction zone shows no evidence of tectonic tremor or low-frequency earthquakes, placing…
desk verdict A careful, well-hedged null result for tremor/LFEs in northern Chile; the main gap is the lack of synthetic sensitivity tests, but the paper is worth reviewing and publishing after revisions. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The argument is carried by two independent detection pipelines. For tremor, the envelope-correlation method of Wech (2021) cross-correlates smoothed 1–8 Hz envelopes across stations in 5-minute windows, locates coherent sources by grid search, and keeps only DBScan clusters of at least five detections to exploit tremor's burst-like recurrence. For LFEs, a deep-learning phase picker trained on Cascadia, Nankai, Guerrero and the San Andreas fault produces P/S picks that are associated and located, then template matching groups repeated waveforms into families that must exceed 100 detections. The final arbiter is manual inspection of each surviving family against three criteria: no anthropogenic time-of-day pattern, two clear phase arrivals, and burst-like (not bimodal or Poissonian) recurrence. Running identical pipelines on Cascadia and Nankai is the control that shows the methods can find tremor and LFEs where they are known to exist.
What would settle it
A single well-located repeating LFE family (at least 100 template matches, P and S arrivals, burst-like recurrence, no daytime-only pattern) at 30–40 km depth on the plate interface anywhere in 24°S–31°S, or a coherent envelope-correlation tremor burst located on the interface during the next deep SSE cycle, would directly falsify the absence claim.
Extended reading notes
Core claim
The central claim is that the Atacama segment, despite hosting shallow and deep slow slip events, shows no detectable tectonic tremor or LFE activity during November 2020 to February 2024. Roughly 430,000 envelope-correlation detections and 18,640 deep-learning LFE candidates were winnowed by DBScan clustering, template matching, and three diagnostic manual criteria (time-of-day, phase arrivals, recurrence pattern); every surviving family was either an earthquake, mine blast, airgun shot, teleseismic arrival, or an unexplained shallow seafloor signal. The same workflow run on short windows in Cascadia and Nankai recovered known tremors and LFEs with their characteristic migration patterns, so the authors argue the null result is not a methodological failure. They therefore conclude that tremors and LFEs in northern Chile either have moment rates lower than about $10^{12}$–$10^{13}$ Nm/s, recur on timescales longer than the 3.5-year window, behave differently in waveform or clustering than those in Cascadia or Nankai, or are entirely absent — with cold subduction and limited fluid delivery as a plausible cause.
Load-bearing premise
The entire null result rests on the assumption that any tremor or LFE in northern Chile would resemble the ones in Cascadia and Nankai: strong enough to rise above noise on the onshore network, burst-like enough to survive clustering, repeating at least 100 times per family, and with waveforms a cross-region deep-learning picker would recognize.
Editorial extensions
If this is right
- If the null result holds, Atacama becomes a documented case of a subduction zone with slow slip events but no detectable tremor or LFE activity, so slow slip there is not always accompanied by these seismic signals.
- The same workflows recovered tremor and LFE in Cascadia and Nankai, validating the sensitivity of the methods and making a methodological failure an unlikely explanation.
- The detection threshold implies that any undetected deep tremor or LFE in the region must have moment rate below roughly $10^{12}$–$10^{13}$ Nm/s, or recur less often than once in 3.5 years, or lack the burst and repeat structure assumed.
- The previous single-day tremor report around the Copiapó ridge is reinterpreted as likely non-tectonic, since reprocessing places the sources too deep or off-interface and 3.5 years of denser data show nothing similar.
- The results provide an observational constraint for models of tremor generation, fluid availability, and temperature-dependent slow slip, particularly the idea that cold subduction suppresses tremor.
Reading between the lines
- A natural extension implied by the thermal hypothesis is that running the identical workflow on a warmer segment of the Chilean margin should recover tremors and LFEs if temperature controls tremor genesis; a null result there would weaken that explanation.
- The unexplained 20-minute seafloor signal near 27.5°S resembles a turbidity current; correlating its occurrence with river discharge, sediment supply, or seafloor imagery would identify the source and remove one of the few surviving non-tectonic candidates.
- Because the study window sits between the 2020 and roughly 2025 deep SSE recurrences, an instrumented continuation through the next SSE cycle could distinguish 'absent' from 'not during this window,' which the current data cannot do.
- If tremor and LFE moment rate scales with SSE slip rate as proposed generally, the low moment rates of Atacama SSEs ($6\times10^{11}$–$3\times10^{12}$ Nm/s) predict signals near or below the network's detection floor; borehole or array data could test this scaling by lowering the noise floor.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper reports a systematic 3.5-year search (November 2020 to February 2024) for tectonic tremor and low-frequency earthquakes (LFEs) in the Atacama segment (24–31°S) of the Chilean subduction zone, using up to 193 onshore stations. Tremor is searched with the envelope-correlation method of Wech (2021) followed by DBScan clustering; LFEs are searched with a deep-learning phase picker followed by association, location, template matching, and family clustering. All surviving tremor clusters (562) and LFE template families (581) are manually inspected against three diagnostic criteria (time-of-day signature, number of phase arrivals, recurrence pattern). No candidate satisfies all LFE criteria and no tremor cluster survives verification; the non-tectonic signals that remain are attributed to mine blasting, teleseismic P-wave arrivals, an offshore active-seismic experiment, and an emergent 20-minute seafloor signal of unresolved origin. The identical workflow applied to one-month windows in Cascadia and Nankai recovers abundant tremor and LFE activity with characteristic migration patterns and interface-consistent depths. The authors conclude that tremors and LFEs in Northern Chile are either of lower moment rate than in other regions, have substantially longer recurrence rates, or are absent altogether, potentially because of the cold subduction environment.
Significance. This is a carefully executed, well-hedged null result with genuine value. If correct, the finding that a dense 3.5-year search in a region hosting documented shallow and deep SSEs recovers no tremor or LFE signals constrains the SSE-tremor relationship and the thermal and fluid controls on tremorgenesis, adding to the small set of cases where SSEs may occur without detectable seismic slow-slip signatures. The paper's strengths are real: two orthogonal detection methods with complementary failure modes; complete manual triage of all 562 surviving tremor clusters and 581 LFE template families; explicit positive controls in Cascadia and Nankai that recover known activity with correct migration patterns and interface-consistent depths; an openly inventoried list of the assumptions on which the null result rests (Section 4.3); and a useful reanalysis of the only prior tremor report for the region (Pastén-Araya et al., 2022), whose reprocessed locations are not interface-compatible.
major comments (3)
- [Sections 4.1, 4.4; Appendices A1–A2] This comment is complete above; please disregard this duplicate field.
- [Abstract and Section 4.4] This comment is complete above; please disregard this duplicate field.
- [Section 3.3 and Appendix A2] This comment is complete above; please disregard this duplicate field.
minor comments (6)
- [Figure 9 caption and Section 3.2] The word 'histrograms' should be 'histograms', and the recurrence-panel y-axis units (log interevent time in seconds?) should be stated in the caption.
- [Appendix A2] The word 'expierience' should be 'experience'.
- [Section 2.1] The sentences 'This suggest that seismic swarms' and 'accompanied by seismic warms' contain typos; they should read 'This suggests...' and '...seismic swarms'.
- [Section 3.2] The claim that the detection-rate dynamic range is lower than in Münchmeyer, Giffard-Roisin, et al. (2024) is qualitative; reporting a quantitative metric (for example, percentile ratios of daily counts on days with similar station counts) would improve reproducibility.
- [Open Research] The availability of the deep-learning LFE model weights and the LFE workflow scripts is not stated; the envelope-correlation code availability is given, but the LFE side is the less standard component and should be documented.
- [Section 4.4] The sentence 'we expect to see deep tremors with moment rates above 10^12 Nm/s to 10^13 Nm/s' should cross-reference the derivation in Section 4.1 and state explicitly that the bound rests on a noise-level comparison rather than on recovered detections.
Circularity Check
No significant circularity: the null result is an empirical non-detection, and the main self-cited tool (the deep-learning LFE picker) is revalidated in this paper against known positive controls.
full rationale
The paper's central claim is a null detection after a systematic search, not a quantity derived by fitting. The tremor leg uses the independent envelope-correlation method of Wech (2021), and both legs are applied to Cascadia and Nankai as positive controls within this paper, recovering known tremor and LFE activity (Section 3.3). The LFE leg does rely on the authors' own deep-learning picker (Münchmeyer, Giffard-Roisin, et al., 2024) and the authors' 3D velocity model (Münchmeyer et al., 2025), which are self-citations; however, the picker's cross-region transferability was previously demonstrated and is here re-tested on reference regions, so the citation carries independent evidence rather than reducing the conclusion to its input. The inference that Chilean tremor/LFE are either weaker, less recurrent, or absent is explicitly hedged in Section 4.3, which acknowledges that isolated tremors are removed by DBScan by design, that LFE families with fewer than 100 repeats are rejected, and that different signal character could be missed; the paper also gives quantitative sensitivity estimates (Section 4.1) from noise and station geometry rather than from a fitted model. These are limitations on the strength of the null result, not circular steps: no equation or fitted parameter is reused as a prediction. The reanalysis of Pastén-Araya et al. (2022) is a relocation with an independent 3D model, not a renaming of the prior result. Overall, the derivation is self-contained and the weaknesses are acknowledged, so circularity is minimal.
Assumptions & free parameters
free parameters (5)
- Envelope correlation threshold =
0.7
- DBScan minimum cluster size / epsilon =
5 events / 20 km (1 h = 20 km)
- Template matching detection threshold =
8 x MAD
- Minimum LFE family detections =
100
- Picking probability thresholds =
0.1 / 0.15 / 0.15 (Cascadia/Chile/Nankai)
assumptions (5)
- domain assumption Tremor/LFE waveforms and recurrence statistics in northern Chile, if present, resemble those in training regions (burst-like, repetitive, 1-8 Hz band).
- domain assumption Envelope coherence across stations is comparable between Chile and the reference regions.
- domain assumption The deep learning picker trained on Cascadia, Guerrero, Nankai and San Andreas transfers to Chile.
- domain assumption Tremors and LFEs, if present, occur on or near the plate interface.
- domain assumption The 3D velocity model (Münchmeyer et al., 2025) is accurate enough for envelope-correlation and NonLinLoc locations.
Cite this review
Pith. "Pith review of A systematic search for tectonic tremor and low-frequency earthquakes in the Atacama segment of the Chilean subduction zone (24$^\circ$S-31$^\circ$S) turns up empty." pith.science (2026). https://pith.science/paper/QTSO5DZZ
@misc{pith2026250116934,
author = {Pith},
title = {Pith review of: A systematic search for tectonic tremor and low-frequency earthquakes in the Atacama segment of the Chilean subduction zone (24$^\circ$S-31$^\circ$S) turns up empty},
year = {2026},
howpublished = {\url{https://pith.science/paper/QTSO5DZZ}},
note = {Machine review of arXiv:2501.16934}
}
read the original abstract
Subduction megathrusts release stress not only seismically through earthquakes, but also through creep and transient slow deformation, called slow slip events (SSEs). Understanding the interplay between fast and slow slip is essential for illuminating the deformation processes on the subduction interface. The Chilean subduction margin, while one of the most seismically active regions worldwide, has few reports of SSEs. Furthermore, there are no comprehensive reports of tectonic tremors or low-frequency earthquakes (LFEs), seismic signals typically accompanying SSEs, tracking deformation at small spatial and temporal scales. Here, we perform a systematic search for tectonic tremors and LFEs in the Atacama segment in Northern Chile, a region hosting both shallow and deep SSEs. Using dense seismic networks, we investigate 3.5 years between November 2020 and February 2024. Due to the network geometry, we focus on deep tremor and LFEs. We apply two orthogonal methods, envelope correlation for tremor search and deep learning detection for LFEs, to generate initial catalogs. To validate the potential detections, we use clustering, matched filtering, heuristics, and extensive manual inspection. While our initial search provides numerous candidates, after verification, we find no evidence for tectonic tremor or LFEs in the region. In contrast, our approaches successfully recover tremors and LFEs in two reference regions outside Chile with known tremor and LFE activity. Our observations show that tremors and LFEs in Northern Chile are either of lower moment rate than in other regions, have substantially longer recurrence rates, or are absent altogether, potentially due to the cold subduction.
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Works this paper leans on
-
[1]
abersColdRelativelyDry2017 APACrefauthors Abers, G A. , van Keken , P E. \ Hacker, B R. APACrefauthors \ 2017 05 . The Cold and Relatively Dry Nature of Mantle Forearcs in Subduction Zones The cold and relatively dry nature of mantle forearcs in subduction zones . Nature Geoscience 10 5 333--337 . APACrefDOI doi:10.1038/ngeo2922 APACrefDOI
-
[2]
aden-antoniowLowFrequencyEarthquakesDowndip2024 APACrefauthors Aden-Antoni \'o w , F. , Frank, W B. , Chamberlain, C J. , Townend, J. , Wallace, L M. \ Bannister, S. APACrefauthors \ 2024 . Low- Frequency Earthquakes Downdip of Deep Slow Slip Beneath the North Island of New Zealand Low- Frequency Earthquakes Downdip of Deep Slow Slip Beneath the North Isl...
-
[3]
aguiarMomentReleaseRate2009 APACrefauthors Aguiar, A C. , Melbourne, T I. \ Scrivner, C W. APACrefauthors \ 2009 . Moment Release Rate of Cascadia Tremor Constrained by GPS Moment release rate of Cascadia tremor constrained by GPS . Journal of Geophysical Research: Solid Earth 114 B7 . APACrefDOI doi:10.1029/2008JB005909 APACrefDOI
-
[4]
fdsn_iu APACrefauthors Albuquerque Seismological Laboratory/USGS . APACrefauthors \ 2014 . Global Seismograph Network (GSN - IRIS/USGS). Global seismograph network (gsn - iris/usgs). International Federation of Digital Seismograph Networks . APACrefURL https://www.fdsn.org/networks/detail/IU/ APACrefURL APACrefDOI doi:10.7914/SN/IU APACrefDOI
-
[5]
armbrusterAccurateTremorLocations2014 APACrefauthors Armbruster, J G. , Kim, W Y. \ Rubin, A M. APACrefauthors \ 2014 . Accurate Tremor Locations from Coherent S and P Waves Accurate tremor locations from coherent S and P waves . Journal of Geophysical Research: Solid Earth 119 6 5000--5013 . APACrefDOI doi:10.1002/2014JB011133 APACrefDOI
-
[6]
bakerSeabedSeismographsReveal2024 APACrefauthors Baker, M L. , Talling, P J. , Burnett, R. , Pope, E L. , Ruffell, S C. , Urlaub, M. Parsons, D R. APACrefauthors \ 2024 . Seabed Seismographs Reveal Duration and Structure of Longest Runout Sediment Flows on Earth Seabed Seismographs Reveal Duration and Structure of Longest Runout Sediment Flows on Earth . ...
-
[7]
bangsSlowSlipHikurangi2023 APACrefauthors Bangs, N L. , Morgan, J K. , Bell, R E. , Han, S. , Arai, R. , Kodaira, S. Fry, B. APACrefauthors \ 2023 06 . Slow Slip along the Hikurangi Margin Linked to Fluid-Rich Sediments Trailing Subducting Seamounts Slow slip along the Hikurangi margin linked to fluid-rich sediments trailing subducting seamounts . Nature ...
-
[8]
bartlowSpacetimeCorrelationSlip2011 APACrefauthors Bartlow, N M. , Miyazaki, S. , Bradley, A M. \ Segall, P. APACrefauthors \ 2011 . Space-Time Correlation of Slip and Tremor during the 2009 Cascadia Slow Slip Event Space-time correlation of slip and tremor during the 2009 Cascadia slow slip event . Geophysical Research Letters 38 18 . APACrefDOI doi:10.1...
Show all 108 references
-
[9]
, Frank, W B
beauceFastMatchedFilter2017 APACrefauthors Beauc \'e , E. , Frank, W B. \ Romanenko, A. APACrefauthors \ 2017 12 . Fast Matched Filter ( FMF ): An Efficient Seismic Matched - Filter Search for Both CPU and GPU Architectures Fast Matched Filter ( FMF ): An Efficient Seismic Mat...
2017 doi
-
[10]
\ B \"u rgmann, R
behrWhatThereStructures2021 APACrefauthors Behr, W M. \ B \"u rgmann, R. APACrefauthors \ 2021 02 . What's down There? The Structures, Materials and Environment of Deep-Seated Slow Slip and Tremor What's down there? The structures, materials and environment of deep-seated slow...
2021
-
[11]
APACrefauthors \ 2019
fdsn_2v APACrefauthors Bertrand Potin , Francisco Pastén-Araya \ Sergio Ruiz . APACrefauthors \ 2019 . Along-Dip Segmentation of the Slip Behavior and Rheology of the Copiapó Ridge, Chile. Along-dip segmentation of the slip behavior and rheology of the copiapó ridge, chile. In...
2019 doi
-
[12]
\ Nocquet, J M
bleterySlipBurstsCoalescence2020 APACrefauthors Bletery, Q. \ Nocquet, J M. APACrefauthors \ 2020 05 . Slip Bursts during Coalescence of Slow Slip Events in Cascadia Slip bursts during coalescence of slow slip events in Cascadia . Nature Communications 11 1 2159 . APACrefDOI d...
2020 doi
-
[13]
, Thomas, A M
bleteryCharacteristicsSecondarySlip2017 APACrefauthors Bletery, Q. , Thomas, A M. , Hawthorne, J C. , Skarbek, R M. , Rempel, A W. \ Krogstad, R D. APACrefauthors \ 2017 04 . Characteristics of Secondary Slip Fronts Associated with Slow Earthquakes in Cascadia Characteristics ...
2017 doi
-
[14]
, Thomas, A M
bostockMagnitudesMomentdurationScaling2015 APACrefauthors Bostock, M G. , Thomas, A M. , Savard, G. , Chuang, L. \ Rubin, A M. APACrefauthors \ 2015 . Magnitudes and Moment-Duration Scaling of Low-Frequency Earthquakes beneath Southern Vancouver Island Magnitudes and moment-du...
2015 doi
-
[15]
, Naif, S
chesleyFluidrichSubductingTopography2021 APACrefauthors Chesley, C. , Naif, S. , Key, K. \ Bassett, D. APACrefauthors \ 2021 07 . Fluid-Rich Subducting Topography Generates Anomalous Forearc Porosity Fluid-rich subducting topography generates anomalous forearc porosity . Natur...
2021 doi
-
[16]
, Lintern, G
clareSeismicAcousticMonitoring2024 APACrefauthors Clare, M A. , Lintern, G. , Pope, E. , Baker, M. , Ruffell, S. , Zulkifli, M Z. Talling, P J. APACrefauthors \ 2024 . Seismic and Acoustic Monitoring of Submarine Landslides Seismic and Acoustic Monitoring of Submarine Landslid...
2024 doi
-
[17]
, Haessler, H
comteSeismicityStressDistribution2002 APACrefauthors Comte, D. , Haessler, H. , Dorbath, L. , Pardo, M. , Monfret, T. , Lavenu, A. Hello, Y. APACrefauthors \ 2002 09 . Seismicity and Stress Distribution in the Copiapo , Northern Chile Subduction Zone Using Combined on- and off...
2002
-
[18]
, Guevara, V E
conditSlabDehydrationWarm2020 APACrefauthors Condit, C B. , Guevara, V E. , Delph, J R. \ French, M E. APACrefauthors \ 2020 12 . Slab Dehydration in Warm Subduction Zones at Depths of Episodic Slip and Tremor Slab dehydration in warm subduction zones at depths of episodic sli...
2020
-
[19]
, Rekapalli, R
cookDetectionPotentialEarly2021 APACrefauthors Cook, K L. , Rekapalli, R. , Dietze, M. , Pilz, M. , Cesca, S. , Rao, N P. Hovius, N. APACrefauthors \ 2021 10 . Detection and Potential Early Warning of Catastrophic Flow Events with Regional Seismic Networks Detection and potent...
2021 doi
-
[20]
, De Barros, L
danrePrevalenceAseismicSlip2022 APACrefauthors Danr \'e , P. , De Barros, L. , Cappa, F. \ Ampuero, J P. APACrefauthors \ 2022 . Prevalence of Aseismic Slip Linking Fluid Injection to Natural and Anthropogenic Seismic Swarms Prevalence of Aseismic Slip Linking Fluid Injection ...
2022 doi
-
[21]
, Levander, A
delphFluidControlsHeterogeneous2018 APACrefauthors Delph, J R. , Levander, A. \ Niu, F. APACrefauthors \ 2018 . Fluid Controls on the Heterogeneous Seismic Characteristics of the Cascadia Margin Fluid Controls on the Heterogeneous Seismic Characteristics of the Cascadia Margin...
2018 doi
-
[22]
, Wang, K
dragertSilentSlipEvent2001 APACrefauthors Dragert, H. , Wang, K. \ James, T S. APACrefauthors \ 2001 05 . A Silent Slip Event on the Deeper Cascadia Subduction Interface A Silent Slip Event on the Deeper Cascadia Subduction Interface . Science 292 5521 1525--1528 . APACrefDOI ...
2001 doi
-
[23]
, Jaupart, C
fargeEpisodicityMigrationLow2021 APACrefauthors Farge, G. , Jaupart, C. \ Shapiro, N M. APACrefauthors \ 2021 . Episodicity and Migration of Low Frequency Earthquakes Modeled With Fast Fluid Pressure Transients in the Permeable Subduction Interface Episodicity and Migration of...
2021 doi
-
[24]
APACrefauthors \ 2016
frankSlowSlipHidden2016 APACrefauthors Frank, W B. APACrefauthors \ 2016 . Slow Slip Hidden in the Noise: The Intermittence of Tectonic Release Slow slip hidden in the noise: The intermittence of tectonic release . Geophysical Research Letters 43 19 10,125--10,133 . APACrefDOI...
2016 doi
-
[25]
\ Brodsky, E E
frankDailyMeasurementSlow2019 APACrefauthors Frank, W B. \ Brodsky, E E. APACrefauthors \ 2019 . Daily Measurement of Slow Slip from Low-Frequency Earthquakes Is Consistent with Ordinary Earthquake Scaling Daily measurement of slow slip from low-frequency earthquakes is consis...
2019 doi
-
[26]
, Radiguet, M
frankUncoveringGeodeticSignature2015 APACrefauthors Frank, W B. , Radiguet, M. , Rousset, B. , Shapiro, N M. , Husker, A L. , Kostoglodov, V. Campillo, M. APACrefauthors \ 2015 . Uncovering the Geodetic Signature of Silent Slip through Repeating Earthquakes Uncovering the geod...
2015 doi
-
[27]
, Shapiro, N M
frankAlongfaultPorepressureEvolution2015 APACrefauthors Frank, W B. , Shapiro, N M. , Husker, A L. , Kostoglodov, V. , Bhat, H S. \ Campillo, M. APACrefauthors \ 2015 03 . Along-Fault Pore-Pressure Evolution during a Slow-Slip Event in Guerrero , Mexico Along-fault pore-pressu...
2015 doi
-
[28]
, Shapiro, N M
frankEvolvingInteractionLowfrequency2016 APACrefauthors Frank, W B. , Shapiro, N M. , Husker, A L. , Kostoglodov, V. , Gusev, A A. \ Campillo, M. APACrefauthors \ 2016 04 . The Evolving Interaction of Low-Frequency Earthquakes during Transient Slip The evolving interaction of ...
2016 doi
-
[29]
, Shapiro, N M
frankUsingSystematicallyCharacterized2014 APACrefauthors Frank, W B. , Shapiro, N M. , Husker, A L. , Kostoglodov, V. , Romanenko, A. \ Campillo, M. APACrefauthors \ 2014 . Using Systematically Characterized Low-Frequency Earthquakes as a Fault Probe in Guerrero , Mexico Using...
2014 doi
-
[30]
, Marsan, D
gardonioRevisitingSlowSlip2018 APACrefauthors Gardonio, B. , Marsan, D. , Socquet, A. , Bouchon, M. , Jara, J. , Sun, Q. Campillo, M. APACrefauthors \ 2018 . Revisiting Slow Slip Events Occurrence in Boso Peninsula , Japan , Combining GPS Data and Repeating Earthquakes Analysi...
2018 doi
-
[31]
, Bangs, N L
gaseSubductingVolcaniclasticrichUpper2023 APACrefauthors Gase, A C. , Bangs, N L. , Saffer, D M. , Han, S. , Miller, P K. , Bell, R E. Barker, D H N. APACrefauthors \ 2023 08 . Subducting Volcaniclastic-Rich Upper Crust Supplies Fluids for Shallow Megathrust and Slow Slip Subd...
2023 doi
-
[32]
APACrefauthors \ 1993
fdsn_ge APACrefauthors GEOFON Data Centre . APACrefauthors \ 1993 . GEOFON Seismic Network. Geofon seismic network. Deutsches GeoForschungsZentrum GFZ . APACrefURL http://geofon.gfz-potsdam.de/doi/network/GE APACrefURL APACrefDOI doi:10.14470/TR560404 APACrefDOI
1993 doi
-
[33]
APACrefauthors \ 2006
fdsn_cx APACrefauthors GFZ German Research Centre For Geosciences \ Institut Des Sciences De L’Univers-Centre National De La Recherche CNRS-INSU . APACrefauthors \ 2006 . IPOC Seismic Network. Ipoc seismic network. Integrated Plate boundary Observatory Chile - IPOC . APACrefUR...
2006 doi
-
[34]
, Moreno, M
gonzalez-vidalRelationOceanicPlate2023 APACrefauthors Gonz \'a lez-Vidal , D. , Moreno, M. , Sippl, C. , Baez, J C. , Ortega-Culaciati , F. , Lange, D. Heit, B. APACrefauthors \ 2023 . Relation Between Oceanic Plate Structure , Patterns of Interplate Locking and Microseismicit...
2023
-
[35]
, Moore, G L
hayesSlab2ComprehensiveSubduction2018a APACrefauthors Hayes, G P. , Moore, G L. , Portner, D E. , Hearne, M. , Flamme, H. , Furtney, M. \ Smoczyk, G M. APACrefauthors \ 2018 10 . Slab2, a Comprehensive Subduction Zone Geometry Model Slab2, a comprehensive subduction zone geome...
2018 doi
-
[36]
, Pritchard, M E
holtkampEarthquakeSwarmsSouth2011 APACrefauthors Holtkamp, S G. , Pritchard, M E. \ Lohman, R B. APACrefauthors \ 2011 10 . Earthquake Swarms in South America Earthquake swarms in South America . Geophysical Journal International 187 1 128--146 . APACrefDOI doi:10.1111/j.1365-...
2011 arXiv
-
[37]
\ Beroza, G C
ideSlowEarthquakeScaling2023 APACrefauthors Ide, S. \ Beroza, G C. APACrefauthors \ 2023 08 . Slow Earthquake Scaling Reconsidered as a Boundary between Distinct Modes of Rupture Propagation Slow earthquake scaling reconsidered as a boundary between distinct modes of rupture p...
2023 doi
-
[38]
, Beroza, G C
ideScalingLawSlow2007 APACrefauthors Ide, S. , Beroza, G C. , Shelly, D R. \ Uchide, T. APACrefauthors \ 2007 05 . A Scaling Law for Slow Earthquakes A scaling law for slow earthquakes . Nature 447 7140 76--79 . APACrefDOI doi:10.1038/nature05780 APACrefDOI
2007 doi
-
[39]
, Imanishi, K
ideBridgingGapSeismically2008 APACrefauthors Ide, S. , Imanishi, K. , Yoshida, Y. , Beroza, G C. \ Shelly, D R. APACrefauthors \ 2008 . Bridging the Gap between Seismically and Geodetically Detected Slow Earthquakes Bridging the gap between seismically and geodetically detecte...
2008 doi
-
[40]
, Obara, K
itoSlowEarthquakesCoincident2007 APACrefauthors Ito, Y. , Obara, K. , Shiomi, K. , Sekine, S. \ Hirose, H. APACrefauthors \ 2007 01 . Slow Earthquakes Coincident with Episodic Tremors and Slow Slip Events Slow Earthquakes Coincident with Episodic Tremors and Slow Slip Events ....
2007 doi
-
[41]
, Aoki, Y
itohImagingEvolutionCascadia2022 APACrefauthors Itoh, Y. , Aoki, Y. \ Fukuda, J. APACrefauthors \ 2022 05 . Imaging Evolution of Cascadia Slow-Slip Event Using High-Rate GPS Imaging evolution of Cascadia slow-slip event using high-rate GPS . Scientific Reports 12 1 7179 . APAC...
2022 doi
-
[42]
, Socquet, A
itohLargestAftershockNucleation2023 APACrefauthors Itoh, Y. , Socquet, A. \ Radiguet, M. APACrefauthors \ 2023 . Largest Aftershock Nucleation Driven by Afterslip During the 2014 Iquique Sequence Largest Aftershock Nucleation Driven by Afterslip During the 2014 Iquique Sequenc...
2023 doi
-
[43]
, Socquet, A
itohSliptremorInteractionVery2024 APACrefauthors Itoh, Y. , Socquet, A. \ Radiguet, M. APACrefauthors \ 2024 10 . Slip-Tremor Interaction at the Very Beginning of Episodic Tremor and Slip in Cascadia Slip-tremor interaction at the very beginning of Episodic Tremor and Slip in Cascadia
2024
-
[44]
, Jin, Z
jia2023complex APACrefauthors Jia, Z. , Jin, Z. , Marchandon, M. , Ulrich, T. , Gabriel, A A. , Fan, W. others APACrefauthors \ 2023 . The complex dynamics of the 2023 Kahramanmara s , Turkey, M w 7.8-7.7 earthquake doublet The complex dynamics of the 2023 kahramanmara s , tur...
2023
-
[45]
, Zhan, Z
jia2021SouthSandwich2022 APACrefauthors Jia, Z. , Zhan, Z. \ Kanamori, H. APACrefauthors \ 2022 . The 2021 South Sandwich Island Mw 8.2 Earthquake : A Slow Event Sandwiched Between Regular Ruptures The 2021 South Sandwich Island Mw 8.2 Earthquake : A Slow Event Sandwiched Betw...
2022 doi
-
[46]
\ Frank, W B
jolivetTransientIntermittentNature2020 APACrefauthors Jolivet, R. \ Frank, W B. APACrefauthors \ 2020 . The Transient and Intermittent Nature of Slow Slip The Transient and Intermittent Nature of Slow Slip . AGU Advances 1 1 e2019AV000126 . APACrefDOI doi:10.1029/2019AV000126 ...
2020 doi
-
[47]
, Rivera, L
kanamoriNewConstraints19222019 APACrefauthors Kanamori, H. , Rivera, L. , Ye, L. , Lay, T. , Murotani, S. \ Tsumura, K. APACrefauthors \ 2019 10 . New Constraints on the 1922 Atacama , Chile , Earthquake from Historical Seismograms New constraints on the 1922 Atacama , Chile ,...
2019 doi
-
[48]
, Iidaka, T
katoVariationsFluidPressure2010 APACrefauthors Kato, A. , Iidaka, T. , Ikuta, R. , Yoshida, Y. , Katsumata, K. , Iwasaki, T. Hirata, N. APACrefauthors \ 2010 . Variations of Fluid Pressure within the Subducting Oceanic Crust and Slow Earthquakes Variations of fluid pressure wi...
2010 doi
-
[49]
\ Nakagawa, S
katoDetectionDeepLowfrequency2020 APACrefauthors Kato, A. \ Nakagawa, S. APACrefauthors \ 2020 09 . Detection of Deep Low-Frequency Earthquakes in the Nankai Subduction Zone over 11 Years Using a Matched Filter Technique Detection of deep low-frequency earthquakes in the Nanka...
2020 doi
-
[50]
, Obara, K
katoPropagationSlowSlip2012 APACrefauthors Kato, A. , Obara, K. , Igarashi, T. , Tsuruoka, H. , Nakagawa, S. \ Hirata, N. APACrefauthors \ 2012 02 . Propagation of Slow Slip Leading Up to the 2011 Mw 9.0 Tohoku-Oki Earthquake Propagation of Slow Slip Leading Up to the 2011 Mw ...
2012 doi
-
[51]
\ Kamaya, N
katsumataLowfrequencyContinuousTremor2003 APACrefauthors Katsumata, A. \ Kamaya, N. APACrefauthors \ 2003 . Low-Frequency Continuous Tremor around the Moho Discontinuity Away from Volcanoes in the Southwest Japan Low-frequency continuous tremor around the Moho discontinuity aw...
2003 doi
-
[52]
, Duputel, Z
kleinDeepTransientSlow2018 APACrefauthors Klein, E. , Duputel, Z. , Zigone, D. , Vigny, C. , Boy, J P. , Doubre, C. \ Meneses, G. APACrefauthors \ 2018 . Deep Transient Slow Slip Detected by Survey GPS in the Region of Atacama , Chile Deep Transient Slow Slip Detected by Surve...
2018 doi
-
[53]
, Vigny, C
kleinReturnAtacamaDeep2022 APACrefauthors Klein, E. , Vigny, C. , Duputel, Z. , Zigone, D. , Rivera, L. , Ruiz, S. \ Potin, B. APACrefauthors \ 2022 12 . Return of the Atacama Deep Slow Slip Event : The 5-Year Recurrence Confirmed by Continuous GPS Return of the Atacama deep S...
2022
-
[54]
, Kopp, H
lange2023high APACrefauthors Lange, D. , Kopp, H. , Dannowski, A. , Klaucke, I. , Moreno, M. , Diaz, J. Contreras-Reyes, E. APACrefauthors \ 2023 . A high-resolution controlled-source seismic experiment offshore Taltal to elucidate structural controls on megathrust slip, Cruis...
2023
-
[55]
, Virieux, J
lomaxProbabilisticEarthquakeLocation2000 APACrefauthors Lomax, A. , Virieux, J. , Volant, P. \ Berge-Thierry , C. APACrefauthors \ 2000 . Probabilistic Earthquake Location in 3D and Layered Models Probabilistic Earthquake Location in 3D and Layered Models . C H. Thurber\ N. Ra...
-
[56]
, Reverso, T
marsanEarthquakeSwarmsChilean2023 APACrefauthors Marsan, D. , Reverso, T. \ Socquet, A. APACrefauthors \ 2023 12 . Earthquake Swarms along the Chilean Subduction Zone, 2003--2020 Earthquake swarms along the Chilean subduction zone, 2003--2020 . Geophysical Journal Internationa...
2023 doi
-
[57]
, Vigny, C
metoisInterseismicCouplingMegathrust2016 APACrefauthors M \'e tois, M. , Vigny, C. \ Socquet, A. APACrefauthors \ 2016 05 . Interseismic Coupling , Megathrust Earthquakes and Seismic Swarms Along the Chilean Subduction Zone (38 ^ --18 ^ S ) Interseismic Coupling , Megathrust E...
2016 doi
-
[58]
, Gualandi, A
michelSimilarScalingLaws2019 APACrefauthors Michel, S. , Gualandi, A. \ Avouac, J P. APACrefauthors \ 2019 10 . Similar Scaling Laws for Earthquakes and Cascadia Slow-Slip Events Similar scaling laws for earthquakes and Cascadia slow-slip events . Nature 574 7779 522--526 . AP...
2019 doi
-
[59]
, Radiguet, M
molina2024sse APACrefauthors Molina-Ormazabal, D. , Radiguet, M. , Münchmeyer, J. , Hernandez-Soto, N. , Vezinet, A. , Pousse-Beltran, L. Socquet, A. APACrefauthors \ 2024 . Seismic and aseismic interactions along a structurally-driven earthquake barrier in Chile Seismic and a...
2024
-
[60]
\ Syracuse, E M
montgomery-brownTremorgenicSlowSlip2015 APACrefauthors Montgomery-Brown , E K. \ Syracuse, E M. APACrefauthors \ 2015 . Tremor-Genic Slow Slip Regions May Be Deeper and Warmer and May Slip Slower than Non-Tremor-Genic Regions Tremor-genic slow slip regions may be deeper and wa...
2015 doi
-
[61]
, Lange, D
fdsn_3v APACrefauthors Moreno, M. , Lange, D. , González-Vidal, D. , Diaz-Naveas, J. \ Ulloa, O. APACrefauthors \ 2022 . Onshore seismic network of the Integrated Deep-Ocean Observing System (IDOOS) at the Atacama seismic gap in northern Chile. Onshore seismic network of the i...
2022
-
[62]
, Frank, W B
mouchonSubdailySlowFault2023 APACrefauthors Mouchon, C. , Frank, W B. , Radiguet, M. , Poli, P. \ Cotte, N. APACrefauthors \ 2023 . Subdaily Slow Fault Slip Dynamics Captured by Low-Frequency Earthquakes Subdaily Slow Fault Slip Dynamics Captured by Low-Frequency Earthquakes ....
2023 doi
-
[63]
APACrefauthors \ 2024 01
munchmeyerPyOctoHighthroughputSeismic2024 APACrefauthors M \"u nchmeyer, J. APACrefauthors \ 2024 01 . PyOcto : A High-Throughput Seismic Phase Associator PyOcto : A high-throughput seismic phase associator . Seismica 3 1 . APACrefDOI doi:10.26443/seismica.v3i1.1130 APACrefDOI
2024 doi
-
[64]
, Giffard-Roisin , S
munchmeyerDeepLearningDetects2024 APACrefauthors M \"u nchmeyer, J. , Giffard-Roisin , S. , Malfante, M. , Frank, W. , Poli, P. , Marsan, D. \ Socquet, A. APACrefauthors \ 2024 05 . Deep Learning Detects Uncataloged Low-Frequency Earthquakes across Regions Deep learning detect...
2024 doi
-
[65]
, Molina, D
munchmeyer2024chile_sse APACrefauthors M \"u nchmeyer, J. , Molina, D. , Radiguet, M. , Marsan, D. , Baez, J C. , Ortega-Culaciati, F. Socquet, A. APACrefauthors \ 2024 . Seismic swarms unveil the mechanisms driving shallow slow slip dynamics in the Copiap 'o ridge, Northern C...
2024 arXiv
-
[66]
, Woollam, J
munchmeyerWhichPickerFits2022 APACrefauthors M \"u nchmeyer, J. , Woollam, J. , Rietbrock, A. , Tilmann, F. , Lange, D. , Bornstein, T. Soto, H. APACrefauthors \ 2022 . Which Picker Fits My Data ? A Quantitative Evaluation of Deep Learning Based Seismic Pickers Which Picker Fi...
2022 doi
-
[67]
, Molina, D
munchmeyer2024chile_eqs APACrefauthors Münchmeyer, J. , Molina, D. , Marsan, D. , Langlais, M. , Baez, J C. , Heit, B. Socquet, A. APACrefauthors \ 2025 . Characterising the fine-structure of the Northern Chile subduction zone (24S - 31S) with > 160,000 earthquakes Characteris...
2025 arXiv
-
[68]
APACrefauthors \ 1975
fdsn_cn APACrefauthors Natural Resources Canada . APACrefauthors \ 1975 . Canadian National Seismograph Network. Canadian national seismograph network. International Federation of Digital Seismograph Networks . APACrefURL https://fdsn.org/networks/detail/CN/ APACrefURL APACref...
1975 doi
-
[69]
\ Ide, S
nishikawaRecurringSlowSlip2018 APACrefauthors Nishikawa, T. \ Ide, S. APACrefauthors \ 2018 . Recurring Slow Slip Events and Earthquake Nucleation in the Source Region of the M 7 Ibaraki-Oki Earthquakes Revealed by Earthquake Swarm and Foreshock Activity Recurring Slow Slip Ev...
2018
-
[70]
, Ide, S
nishikawaReviewSlowEarthquakes2023 APACrefauthors Nishikawa, T. , Ide, S. \ Nishimura, T. APACrefauthors \ 2023 01 . A Review on Slow Earthquakes in the Japan Trench A review on slow earthquakes in the Japan Trench . Progress in Earth and Planetary Science 10 1 1 . APACrefDOI ...
2023 doi
-
[71]
, Matsuzawa, T
nishikawaSlowEarthquakeSpectrum2019 APACrefauthors Nishikawa, T. , Matsuzawa, T. , Ohta, K. , Uchida, N. , Nishimura, T. \ Ide, S. APACrefauthors \ 2019 08 . The Slow Earthquake Spectrum in the Japan Trench Illuminated by the S-net Seafloor Observatories The slow earthquake sp...
2019 doi
-
[72]
APACrefauthors \ 2016
nittetsu2016torigatayama APACrefauthors Nittetsu Minig Co., L. APACrefauthors \ 2016 . Torigatayama Quarry Complex. Torigatayama quarry complex. https://www.nittetsukou.co.jp/eng/company/pdf/torigata.pdf . Last accessed 7th August 2024
2016
-
[73]
APACrefauthors \ 2002 05
obaraNonvolcanicDeepTremor2002 APACrefauthors Obara, K. APACrefauthors \ 2002 05 . Nonvolcanic Deep Tremor Associated with Subduction in Southwest Japan Nonvolcanic Deep Tremor Associated with Subduction in Southwest Japan . Science 296 5573 1679--1681 . APACrefDOI doi:10.1126...
2002 doi
-
[74]
\ Kato, A
obaraConnectingSlowEarthquakes2016 APACrefauthors Obara, K. \ Kato, A. APACrefauthors \ 2016 07 . Connecting Slow Earthquakes to Huge Earthquakes Connecting slow earthquakes to huge earthquakes . Science 353 6296 253--257 . APACrefDOI doi:10.1126/science.aaf1512 APACrefDOI
2016 doi
-
[75]
, Morales-Y \'a \ n ez , C
ojedaSeismicAseismicSlip2023 APACrefauthors Ojeda, J. , Morales-Y \'a \ n ez , C. , Ducret, G. , Ruiz, S. , Grandin, R. , Doin, M P. Nocquet, J M. APACrefauthors \ 2023 03 . Seismic and Aseismic Slip during the 2006 Copiap \'o Swarm in North-Central Chile Seismic and aseismic ...
2023
-
[76]
, Potin, B
pasten-arayaAlongDipSegmentationSlip2022 APACrefauthors Past \'e n-Araya , F. , Potin, B. , Az \'u a, K. , S \'a ez, M. , Aden-Antoni \'o w , F. , Ruiz, S. Duputel, Z. APACrefauthors \ 2022 . Along- Dip Segmentation of the Slip Behavior and Rheology of the Copiap \'o Ridge Sub...
2022 doi
-
[77]
, Perfettini, H
radiguetTriggering2014Mw72016 APACrefauthors Radiguet, M. , Perfettini, H. , Cotte, N. , Gualandi, A. , Valette, B. , Kostoglodov, V. Campillo, M. APACrefauthors \ 2016 11 . Triggering of the 2014 Mw7 .3 Papanoa Earthquake by a Slow Slip Event in Guerrero , Mexico Triggering o...
2016 doi
-
[78]
, Bhat, H S
romanetFastSlowSlip2018 APACrefauthors Romanet, P. , Bhat, H S. , Jolivet, R. \ Madariaga, R. APACrefauthors \ 2018 . Fast and Slow Slip Events Emerge Due to Fault Geometrical Complexity Fast and Slow Slip Events Emerge Due to Fault Geometrical Complexity . Geophysical Researc...
2018 doi
-
[79]
\ Madariaga, R
ruizHistoricalRecentLarge2018 APACrefauthors Ruiz, S. \ Madariaga, R. APACrefauthors \ 2018 05 . Historical and Recent Large Megathrust Earthquakes in Chile Historical and recent large megathrust earthquakes in Chile . Tectonophysics 733 37--56 . APACrefDOI doi:10.1016/j.tecto...
2018 doi
-
[80]
\ Wallace, L M
safferFrictionalHydrologicMetamorphic2015 APACrefauthors Saffer, D M. \ Wallace, L M. APACrefauthors \ 2015 08 . The Frictional, Hydrologic, Metamorphic and Thermal Habitat of Shallow Slow Earthquakes The frictional, hydrologic, metamorphic and thermal habitat of shallow slow ...
2015 doi
-
[81]
\ Schwartz, S Y
shaddoxSubductedSeamountDiverts2019 APACrefauthors Shaddox, H R. \ Schwartz, S Y. APACrefauthors \ 2019 03 . Subducted Seamount Diverts Shallow Slow Slip to the Forearc of the Northern Hikurangi Subduction Zone, New Zealand Subducted seamount diverts shallow slow slip to the f...
2019 doi
-
[82]
APACrefauthors \ 2010 06
shellyPeriodicChaoticDoubled2010 APACrefauthors Shelly, D R. APACrefauthors \ 2010 06 . Periodic, Chaotic , and Doubled Earthquake Recurrence Intervals on the Deep San Andreas Fault Periodic, Chaotic , and Doubled Earthquake Recurrence Intervals on the Deep San Andreas Fault ....
2010 doi
-
[83]
APACrefauthors \ 2017
shelly15YearCatalog2017 APACrefauthors Shelly, D R. APACrefauthors \ 2017 . A 15 Year Catalog of More than 1 Million Low-Frequency Earthquakes: Tracking Tremor and Slip along the Deep San Andreas Fault A 15 year catalog of more than 1 million low-frequency earthquakes: Trackin...
2017 doi
-
[84]
, Beroza, G C
shellyNonvolcanicTremorLowfrequency2007 APACrefauthors Shelly, D R. , Beroza, G C. \ Ide, S. APACrefauthors \ 2007 03 . Non-Volcanic Tremor and Low-Frequency Earthquake Swarms Non-volcanic tremor and low-frequency earthquake swarms . Nature 446 7133 305--307 . APACrefDOI doi:1...
2007 doi
-
[85]
, Beroza, G C
shellyLowfrequencyEarthquakesShikoku2006 APACrefauthors Shelly, D R. , Beroza, G C. , Ide, S. \ Nakamula, S. APACrefauthors \ 2006 07 . Low-Frequency Earthquakes in Shikoku , Japan , and Their Relationship to Episodic Tremor and Slip Low-frequency earthquakes in Shikoku , Japa...
2006 doi
-
[86]
, Ellsworth, W L
shellyPreciseLocationSan2009 APACrefauthors Shelly, D R. , Ellsworth, W L. , Ryberg, T. , Haberland, C. , Fuis, G S. , Murphy, J. B \"u rgmann, R. APACrefauthors \ 2009 . Precise Location of San Andreas Fault Tremors near Cholame , California Using Seismometer Clusters: Slip o...
2009
-
[87]
, Baez, J C
fdsn_xz APACrefauthors Socquet, A. , Baez, J C. , Moreno, M. , Langlais, M. , DEEP-Trigger Team , Geophysics Technical Service At ISTerre \ RESIF . APACrefauthors \ 2020 . DEEP\_TRIGGER temporary experiment in the subduction zone Peru/Chile, Chile (RESIF-SISMOB). Deep\_trigger...
2020
-
[88]
, Valdes, J P
socquet8MonthSlow2017 APACrefauthors Socquet, A. , Valdes, J P. , Jara, J. , Cotton, F. , Walpersdorf, A. , Cotte, N. Norabuena, E. APACrefauthors \ 2017 05 . An 8 Month Slow Slip Event Triggers Progressive Nucleation of the 2014 Chile Megathrust An 8 month slow slip event tri...
2017 doi
-
[89]
, Saffer, D
sunMechanicalHydrologicalEffects2020 APACrefauthors Sun, T. , Saffer, D. \ Ellis, S. APACrefauthors \ 2020 03 . Mechanical and Hydrological Effects of Seamount Subduction on Megathrust Stress and Slip Mechanical and hydrological effects of seamount subduction on megathrust str...
2020 doi
-
[90]
, Hamada, Y
takemuraReviewShallowSlow2023 APACrefauthors Takemura, S. , Hamada, Y. , Okuda, H. , Okada, Y. , Okubo, K. , Akuhara, T. Tonegawa, T. APACrefauthors \ 2023 10 . A Review of Shallow Slow Earthquakes along the Nankai Trough A review of shallow slow earthquakes along the Nankai T...
2023 doi
-
[91]
, Heit, B
fdsn_y6 APACrefauthors Tilmann, F. , Heit, B. , Moreno, M. \ González-Vidal, D. APACrefauthors \ 2021 . Anillo. Anillo. GFZ Data Services . APACrefURL https://geofon.gfz-potsdam.de/doi/network/Y6/2020 APACrefURL APACrefDOI doi:10.14470/L17575324477 APACrefDOI
2021 doi
-
[92]
, Iinuma, T
uchidaPeriodicSlowSlip2016 APACrefauthors Uchida, N. , Iinuma, T. , Nadeau, R M. , B \"u rgmann, R. \ Hino, R. APACrefauthors \ 2016 01 . Periodic Slow Slip Triggers Megathrust Zone Earthquakes in Northeastern Japan Periodic slow slip triggers megathrust zone earthquakes in no...
2016 doi
-
[93]
APACrefauthors \ 2012
fdsn_c1 APACrefauthors Universidad de Chile . APACrefauthors \ 2012 . Red Sismologica Nacional. Red sismologica nacional. International Federation of Digital Seismograph Networks . APACrefURL https://www.fdsn.org/networks/detail/C1/ APACrefURL APACrefDOI doi:10.7914/SN/C1 APACrefDOI
2012 doi
-
[94]
, Cesca, S
valenzuela-malebranSourceMechanismsRupture2022 APACrefauthors Valenzuela-Malebr \'a n , C. , Cesca, S. , L \'o pez-Comino , J A. , Zeckra, M. , Kr \"u ger, F. \ Dahm, T. APACrefauthors \ 2022 08 . Source Mechanisms and Rupture Processes of the Jujuy Seismic Nest, Chile-Argenti...
2022
-
[95]
, Hacker, B R
vankekenSubductionFactoryDepthdependent2011 APACrefauthors van Keken , P E. , Hacker, B R. , Syracuse, E M. \ Abers, G A. APACrefauthors \ 2011 . Subduction Factory: 4. Depth-dependent Flux of H2O from Subducting Slabs Worldwide Subduction factory: 4. Depth-dependent flux of H...
2011 doi
-
[96]
, Klein, E
vignySearchLostTruth2024 APACrefauthors Vigny, C. , Klein, E. \ Ojeda, J. APACrefauthors \ 2024 06 . In Search for the Lost Truth about the 1922 & 1918 Atacama Earthquakes in Chile In search for the lost truth about the 1922 & 1918 Atacama earthquakes in Chile . Journal of Sou...
2024
-
[97]
, Dixon, T H
vossSlowSlipEvents2018 APACrefauthors Voss, N. , Dixon, T H. , Liu, Z. , Malservisi, R. , Protti, M. \ Schwartz, S. APACrefauthors \ 2018 10 . Do Slow Slip Events Trigger Large and Great Megathrust Earthquakes? Do slow slip events trigger large and great megathrust earthquakes...
2018 doi
-
[98]
\ Barbot, S
wangPulselikeRupturesSeismic2023 APACrefauthors Wang, B. \ Barbot, S. APACrefauthors \ 2023 02 . Pulse-like Ruptures, Seismic Swarms, and Tremorgenic Slow-Slip Events with Thermally Activated Friction Pulse-like ruptures, seismic swarms, and tremorgenic slow-slip events with t...
2023
-
[99]
, Frank, W B
wangWhatMakesLowfrequency2023 APACrefauthors Wang, Q Y. , Frank, W B. , Abercrombie, R E. , Obara, K. \ Kato, A. APACrefauthors \ 2023 08 . What Makes Low-Frequency Earthquakes Low Frequency What makes low-frequency earthquakes low frequency . Science Advances 9 32 eadh3688 . ...
2023 doi
-
[100]
, Fry, B
warren-smithEpisodicStressFluid2019 APACrefauthors Warren-Smith , E. , Fry, B. , Wallace, L. , Chon, E. , Henrys, S. , Sheehan, A. Lebedev, S. APACrefauthors \ 2019 06 . Episodic Stress and Fluid Pressure Cycling in Subducting Oceanic Crust during Slow Slip Episodic stress and...
2019 doi
-
[101]
, Lange, D
warwelSeismicStructureTectonics2025 APACrefauthors Warwel, A. , Lange, D. , Dannowski, A. , Contreras-Reyes , E. , Klaucke, I. , Diaz-Naveas , J. Kopp, H. APACrefauthors \ 2025 . Seismic Structure and Tectonics of the North-Central Chilean Subduction Zone Along the Copiap \'o ...
2025
-
[102]
APACrefauthors \ 2021
wechCatalogingTectonicTremor2021 APACrefauthors Wech, A G. APACrefauthors \ 2021 . Cataloging Tectonic Tremor Energy Radiation in the Cascadia Subduction Zone Cataloging Tectonic Tremor Energy Radiation in the Cascadia Subduction Zone . Journal of Geophysical Research: Solid E...
2021 doi
-
[103]
\ Bartlow, N M
wechSlipRateTremor2014 APACrefauthors Wech, A G. \ Bartlow, N M. APACrefauthors \ 2014 . Slip Rate and Tremor Genesis in Cascadia Slip rate and tremor genesis in Cascadia . Geophysical Research Letters 41 2 392--398 . APACrefDOI doi:10.1002/2013GL058607 APACrefDOI
2014 doi
-
[104]
\ Creager, K C
wechAutomatedDetectionLocation2008 APACrefauthors Wech, A G. \ Creager, K C. APACrefauthors \ 2008 . Automated Detection and Location of Cascadia Tremor Automated detection and location of Cascadia tremor . Geophysical Research Letters 35 20 . APACrefDOI doi:10.1029/2008GL0354...
2008 doi
-
[105]
\ Creager, K C
wechContinuumStressStrength2011 APACrefauthors Wech, A G. \ Creager, K C. APACrefauthors \ 2011 09 . A Continuum of Stress, Strength and Slip in the Cascadia Subduction Zone A continuum of stress, strength and slip in the Cascadia subduction zone . Nature Geoscience 4 9 624--6...
2011 doi
-
[106]
, M \"u nchmeyer, J
woollamSeisBenchToolboxMachine2022 APACrefauthors Woollam, J. , M \"u nchmeyer, J. , Tilmann, F. , Rietbrock, A. , Lange, D. , Bornstein, T. Soto, H. APACrefauthors \ 2022 03 . SeisBench --- A Toolbox for Machine Learning in Seismology SeisBench --- A Toolbox for Machine Learn...
2022 doi
-
[107]
, Ortega-Culaciati , F
yanez-cuadraInterplateCouplingSeismic2022 APACrefauthors Y \'a \ n ez-Cuadra , V. , Ortega-Culaciati , F. , Moreno, M. , Tassara, A. , Krumm-Nualart , N. , Ruiz, J. Benavente, R. APACrefauthors \ 2022 . Interplate Coupling and Seismic Potential in the Atacama Seismic Gap ( Chi...
2022
-
[108]
, Duputel, Z
fdsn_9c APACrefauthors Zigone, D. , Duputel, Z. , Rivera, L. , Klein, E. , Vigny, C. \ Ruiz, S. APACrefauthors \ 2019 . 2019 Copiapó . 2019 Copiapó . Reseau sismologique et Geodesique Francais (RESIF) . APACrefURL https://www.fdsn.org/networks/detail/9C_2019/ APACrefURL APACre...
2019 doi
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