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  <front>
    <journal-meta><journal-id journal-id-type="publisher">SE</journal-id><journal-title-group>
    <journal-title>Solid Earth</journal-title>
    <abbrev-journal-title abbrev-type="publisher">SE</abbrev-journal-title><abbrev-journal-title abbrev-type="nlm-ta">Solid Earth</abbrev-journal-title>
  </journal-title-group><issn pub-type="epub">1869-9529</issn><publisher>
    <publisher-name>Copernicus Publications</publisher-name>
    <publisher-loc>Göttingen, Germany</publisher-loc>
  </publisher></journal-meta>
    <article-meta>
      <article-id pub-id-type="doi">10.5194/se-16-1493-2025</article-id><title-group><article-title>Seismic data acquisition to combine high-resolution seismic reflection and full-waveform inversion – a case study for overdeepened valleys</article-title><alt-title>Seismic data acquisition to combine HRSR and FWI</alt-title>
      </title-group>
      <contrib-group>
        <contrib contrib-type="author" corresp="yes" rid="aff1">
          <name><surname>Burschil</surname><given-names>Thomas</given-names></name>
          <email>thomas.burschil@bgr.de</email>
        <ext-link>https://orcid.org/0000-0002-9323-699X</ext-link></contrib>
        <contrib contrib-type="author" corresp="no" rid="aff2">
          <name><surname>Köhn</surname><given-names>Daniel</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff3">
          <name><surname>Körbe</surname><given-names>Matthias</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff3 aff4">
          <name><surname>Gabriel</surname><given-names>Gerald</given-names></name>
          
        <ext-link>https://orcid.org/0000-0001-9404-882X</ext-link></contrib>
        <contrib contrib-type="author" corresp="no" rid="aff5">
          <name><surname>Großmann</surname><given-names>Johannes</given-names></name>
          
        </contrib>
        <contrib contrib-type="author" corresp="no" rid="aff6">
          <name><surname>Firla</surname><given-names>Gustav</given-names></name>
          
        <ext-link>https://orcid.org/0000-0003-4217-6699</ext-link></contrib>
        <contrib contrib-type="author" corresp="no" rid="aff6">
          <name><surname>Fiebig</surname><given-names>Markus</given-names></name>
          
        </contrib>
        <aff id="aff1"><label>1</label><institution>Federal Institute for Geosciences and Natural Resources (BGR), Hannover, 30655, Germany</institution>
        </aff>
        <aff id="aff2"><label>2</label><institution>Kiel University, Kiel, 24118, Germany</institution>
        </aff>
        <aff id="aff3"><label>3</label><institution>LIAG Institute for Applied Geophysics, Hannover, 30655, Germany</institution>
        </aff>
        <aff id="aff4"><label>4</label><institution>Institute of Earth System Sciences, Section Geology, Leibniz University, Hannover, 30655, Germany</institution>
        </aff>
        <aff id="aff5"><label>5</label><institution>Bavarian Environment Agency (LfU), Hof, 95030, Germany</institution>
        </aff>
        <aff id="aff6"><label>6</label><institution>Department of Landscape, Water and Infrastructure, BOKU University, Vienna, 1190, Austria</institution>
        </aff>
      </contrib-group>
      <author-notes><corresp id="corr1">Thomas Burschil (thomas.burschil@bgr.de)</corresp></author-notes><pub-date><day>12</day><month>December</month><year>2025</year></pub-date>
      
      <volume>16</volume>
      <issue>12</issue>
      <fpage>1493</fpage><lpage>1507</lpage>
      <history>
        <date date-type="received"><day>21</day><month>May</month><year>2025</year></date>
           <date date-type="accepted"><day>17</day><month>November</month><year>2025</year></date>
           <date date-type="rev-recd"><day>4</day><month>November</month><year>2025</year></date>
           <date date-type="rev-request"><day>6</day><month>June</month><year>2025</year></date>
      </history>
      <permissions>
        <copyright-statement>Copyright: © 2025 Thomas Burschil et al.</copyright-statement>
        <copyright-year>2025</copyright-year>
      <license license-type="open-access"><license-p>This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this licence, visit <ext-link ext-link-type="uri" xlink:href="https://creativecommons.org/licenses/by/4.0/">https://creativecommons.org/licenses/by/4.0/</ext-link></license-p></license></permissions><self-uri xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025.html">This article is available from https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025.html</self-uri><self-uri xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025.pdf">The full text article is available as a PDF file from https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025.pdf</self-uri>
      <abstract><title>Abstract</title>

      <p id="d2e170">In the context of the ICDP-project “Drilling Overdeepened Alpine Valleys”, the integration of high-resolution seismic reflection (HRSR) and full waveform inversion (FWI) is used to enhance detailed near-surface imaging in heterogeneous glacial and post-glacial environments. To meet the specific requirements of both methods, dense P-wave and S-wave datasets were acquired over an overdeepened basin in the northern Alpine foreland, using a combination of vibratory and explosive seismic sources, as well as different receivers. Analysis of the datasets, as well as separate application of HRSR and FWI demonstrates the suitability of the acquired data. The FWI workflow applied to the P-wave data fits the recorded waveforms and converged successfully, yielding a consistent and physically reasonable model that correlates well with the HRSR images. These datasets are the basis for future methodological development of combining HRSR and FWI.</p>

      <p id="d2e173">The HRSR images reveal important information about the geology of the overdeepened basin near the town Schäftlarn (Germany). Using standard processing workflows, P-wave HRSR delineates detailed subsurface structures, including the base of the basin, intra-basin discontinuities, and subtle stratigraphic variations. Additional S-wave data provides superior resolution in imaging Quaternary basin sediments down to 200 <inline-formula><mml:math id="M1" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> depth compared to P-waves and thus offers complementary information.</p>
  </abstract>
    
<funding-group>
<award-group id="gs1">
<funding-source>Deutsche Forschungsgemeinschaft</funding-source>
<award-id>497340281</award-id>
</award-group>
</funding-group>
</article-meta>
  </front>
<body>
      

<sec id="Ch1.S1" sec-type="intro">
  <label>1</label><title>Introduction</title>
      <p id="d2e193">Near-surface seismic methods are highly effective in subsurface imaging, particular for detecting stratigraphic features and geological discontinuities (Wang et al., 2025). However, seismic imaging in heterogeneous near-surface environments, such as glacial and post-glacial deposits, remains challenging (Maraio et al., 2018). Even in such complex settings, high-resolution seismic reflection method (HRSR) can provide detailed structural information through the analysis of the reflected wavefield (e.g., Dehnert et al., 2012; Malehmir et al., 2013; Maries et al., 2017). Depending on survey parameters, HRSR is capable of resolving subsurface structure from depths of only a few metres – with sub-metre resolution – to several kilometres, albeit with decreasing resolution. The use of S-waves, instead of conventional P-waves, can further enhance resolution (Pugin et al., 2009; Burschil and Buness, 2020; Pertuz and Malehmir, 2023). The degree of subsurface complexity largely determines the extent of seismic data processing required to achieve optimal imaging quality. In geologically complex settings, advanced processing approaches – such as true-amplitude processing using common reflection surfaces or prestack-depth migration – may be superior to simpler workflows and reveal geological features that remain undetected after standard processing. Examples in the context of the overdeepened structures include allochthonous Molasse blocks at the base of the sedimentary succession (Burschil et al., 2018) and cuspate-lobate folding of shallow diamict (Buness et al., 2022).</p>
      <p id="d2e196">Full-waveform inversion (FWI) further enhances seismic imaging (Tarantola, 1986; Virieux and Operto, 2009) by enabling a detailed and quantitative reconstruction of subsurface properties (e.g., Operto et al., 2013; Mecking et al., 2021; Singh et al., 2022; Beraus et al., 2024). In addition, elastic FWI is able to estimate S-wave velocities from P-wave data (Pan et al., 2019; Roodaki et al., 2024). Both methods, however, have their limitations. HRSR relies on impedance contrasts and shallow reflections may be masked by near-surface scattering (Frei et al., 2015; Sloan et al., 2016). In contrast, FWI is computationally demanding (Ren and Liu, 2015) and its success depends strongly on high-quality field data and accurate initial models, including both P- and S-wave velocity distributions (Vigh et al., 2018; Zhang et al., 2025). Despite these challenges, combining HRSR and FWI has the potential to significantly improve near-surface imaging, yielding higher resolution, accuracy, and interpretational reliability. The two approaches impose different requirements on the acquired data. HRSR benefits from a broad bandwidth of the source signal to produce sharp reflections (Brodic et al., 2021), whereas state-of-the-art FWI workflows iteratively invert the data in multiple stages, starting from a low frequency band to avoid cycle skipping (Dokter et al., 2017; Vigh et al., 2018; Köhn et al., 2019). These complementary demands make the design of field-data acquisition challenging, when aiming for an integrated application of both methods.</p>
      <p id="d2e199">To overcome these challenges, a variety of land seismic sources can be used, each with distinct advantages and disadvantages in generating seismic waves. Vibratory sources are frequently used because they provide highly repeatable signals and emit energy over an extended time period. While the total emitted energy accumulates, the instantaneous emitted energy released at any moment remains low, minimizing ground impact and preventing damage to land or infrastructure. The high repeatability of signals with identical frequency content is particularly beneficial for vertical stacking, as it improves signal coherency and reduces random noise (Brodic et al., 2021). The peak force of a seismic vibrator refers to the maximum force exerted on the ground during operation (Sallas, 1984). The emitted sweep signal, defined by its frequency band, is correlated with the recorded traces, producing a zero-phase Klauder-wavelet through self-correlation (Lines and Clayton, 1977). In addition to these technical benefits, vibrators are often preferred for economic reasons, fewer regulatory constraints, and ease of approval. However, they are technically limited in that they cannot generate low-frequency signals (Wei and Phillips, 2011). In contrast, impulsive sources release seismic energy instantaneously and often contain low frequency components. Yet, the achievable imaging depth depends on the total emitted energy. Commonly-used impulsive sources are sledgehammers, drop weights, and explosives with variable charge sizes. While sledgehammers and drop weights result in limited penetration depth, explosives, deployed in boreholes, can be used for shallow and deep imaging (Denny and Johnson, 1991). Nevertheless, the use of explosive sources is restricted in certain environments, such as urban areas.</p>
      <p id="d2e202">On the receiver side, geophones have been used since the early 20th Century to record ground motion (Dragoset, 2005). Their sensitivity decreases toward lower frequencies, depending on the damping and resonance frequency of the sensor (Krohn, 1984). Cabled systems allow a direct monitoring of ground motion and, consequently, immediate quality control during acquisition. In recent years, autonomous recording systems have become increasingly affordable and reliable, making it possible to maintain a high fold, even if a few percent of receivers fail or are lost (e.g., Manning et al., 2019; Ourabah and Chatenay, 2022).</p>
      <p id="d2e206">To obtain suitable datasets for the methodological development of combining HRSR and FWI, we acquired field data using various source-receiver combinations. Explosive sources were employed to generate low frequencies, whereas vertical vibrators provided signals with a broad bandwidth. Densely-spaced vertical geophones recorded the ground motion, while additional autonomous three-component geophones with lower resonance frequencies and sparser spacing captured the low-frequency content. Horizontally-oriented vibrators and receivers complement the dataset, supplying the initial S-wave velocity model for FWI.</p>
      <p id="d2e209">The first objective of this study is to present the acquired field datasets and demonstrate that they meet the requirements for both HRSR and FWI. The results obtained from separately processed datasets – HRSR using P- and S-wave, and FWI – provide insights into the data quality and confirm their suitability for future methodological development, combining both approaches for imaging overdeepened valleys. The second objective is to image the structure of an overdeepened basin near the town Schäftlarn (Germany). The study area lies in the Alpine foreland, approximately 30 <inline-formula><mml:math id="M2" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">km</mml:mi></mml:mrow></mml:math></inline-formula> south of Munich, and is part of a complex system of overdeepened valleys and basins that are widespread across the European Alps (Preusser et al., 2010). It is also one of the study sites of the ICDP project, <italic>Drilling Overdeepened Alpine Valleys</italic> (DOVE).</p>
</sec>
<sec id="Ch1.S2">
  <label>2</label><title>The DOVE project and study site Schäftlarn</title>
      <p id="d2e232">The ICDP project <italic>Drilling Overdeepened Alpine Valleys</italic> (Anselmetti et al., 2022) investigates glacially-overdeepened structures on a pan-Alpine basis using drill cores and geophysical surveys. The pinpoint information gained by the cores is extrapolated by the geophysical surveys into 2-D and 3-D. Previous investigations focused on overdeepened structures were limited to local/regional scope. DOVE aims to gather a comprehensive picture of overdeepened structures on the scale of a whole mountain range. The core research questions to be investigated revolve around the timing and extent of Middle Pleistocene glaciations and the sedimentary dynamics associated with them.</p>

      <fig id="F1" specific-use="star"><label>Figure 1</label><caption><p id="d2e240">Study area. <bold>(a)</bold> Overview map showing the location at the margin of the LGM ice extent (hashed area; Ehlers et al., 2011) and <bold>(b)</bold> location map with borehole ICDP 5068_3_A (orange) and seismic P-wave (blue) and S-wave (red) profiles. <bold>(c)</bold> Core description of borehole 5068_3_A after Firla et al. (2024). Source: Agency for Digitisation, High-Speed Internet and Surveying – <uri>https://www.geodaten.bayern.de</uri> (last access: 31 October 2025).</p></caption>
        <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f01.jpg"/>

      </fig>

      <p id="d2e261">Glacial erosion sculpted not only the high Alpine regions but also the foreland. The study site is located in the northern Alpine foreland that was influenced by repeated Pleistocene glaciations (Preusser et al., 2010). About 30 <inline-formula><mml:math id="M3" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">km</mml:mi></mml:mrow></mml:math></inline-formula> south of Munich (Germany), the former Isar–Loisach glacier lobe excavated an overdeepened basin, which Jerz (1979) described as a branch basin of the Wolfratshausen Basin to the south. The overdeepened basin is located at the morphologically defined ice-marginal position of the Last Glacial Maximum (LGM; Fig. <xref ref-type="fig" rid="F1"/>a). The local bedrock consists of Upper-Freshwater Molasse sediments and the basin is filled with Quaternary sediments. To the west of the study site, Lake Starnberg and Lake Ammersee provide examples of overdeepened basins that are not entirely filled by sediments. The study site is located on the southern margin of the Munich gravel plain (“Münchner Schotterebene”; Jerz, 1993). The western area of the study site is elevated approximately 100 <inline-formula><mml:math id="M4" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> above the recent incision of the Isar valley to the east (Fig. <xref ref-type="fig" rid="F1"/>b). The Molasse bedrock has been identified in outcrops at the base of the Isar valley slope (Jerz, 1987).</p>
      <p id="d2e285">At the DOVE site Schäftlarn (ICDP site 5068_3), the Bavarian Environment Agency drilled a research borehole (5068_3_A) in 2017 and conducted a seismic refraction survey in 2018. The 198.8 <inline-formula><mml:math id="M5" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> long drill-core (Fig. <xref ref-type="fig" rid="F1"/>c) shows the sedimentary sequence from bottom to top: (A<sub>1</sub>/A<sub>2</sub>) <inline-formula><mml:math id="M8" display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 83 <inline-formula><mml:math id="M9" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> of fine-grained sediments, (B) <inline-formula><mml:math id="M10" display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 111 <inline-formula><mml:math id="M11" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> of coarse-grained sediments, and (C) <inline-formula><mml:math id="M12" display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 4 <inline-formula><mml:math id="M13" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> of diamictic sediments. Remnants of a basal diamict were recovered, but the bedrock was not reached (Firla et al., 2024). The refraction survey did not image beneath the coarse-grained sediments.</p>

<table-wrap id="T1" specific-use="star"><label>Table 1</label><caption><p id="d2e365">Specifications of seismic profiles, including the number of vibrator (VP) and explosive (SP) shot points, and receiver points (RP).</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="12">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="center" colsep="1"/>
     <oasis:colspec colnum="3" colname="col3" align="center" colsep="1"/>
     <oasis:colspec colnum="4" colname="col4" align="center" colsep="1"/>
     <oasis:colspec colnum="5" colname="col5" align="right" colsep="1"/>
     <oasis:colspec colnum="6" colname="col6" align="center" colsep="1"/>
     <oasis:colspec colnum="7" colname="col7" align="center" colsep="1"/>
     <oasis:colspec colnum="8" colname="col8" align="center" colsep="1"/>
     <oasis:colspec colnum="9" colname="col9" align="right" colsep="1"/>
     <oasis:colspec colnum="10" colname="col10" align="center" colsep="1"/>
     <oasis:colspec colnum="11" colname="col11" align="center" colsep="1"/>
     <oasis:colspec colnum="12" colname="col12" align="center"/>
     <oasis:thead>
       <oasis:row>
         <oasis:entry colname="col1">Profile</oasis:entry>
         <oasis:entry rowsep="1" namest="col2" nameend="col7" colsep="1">P-wave </oasis:entry>
         <oasis:entry rowsep="1" namest="col8" nameend="col12" colsep="0">S-wave </oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">length</oasis:entry>
         <oasis:entry colname="col3"># of VP</oasis:entry>
         <oasis:entry colname="col4">VP spac-</oasis:entry>
         <oasis:entry colname="col5"># of SP</oasis:entry>
         <oasis:entry colname="col6"># of RP</oasis:entry>
         <oasis:entry colname="col7">RP spac-</oasis:entry>
         <oasis:entry colname="col8">length</oasis:entry>
         <oasis:entry colname="col9"># of VP</oasis:entry>
         <oasis:entry colname="col10">VP spac-</oasis:entry>
         <oasis:entry colname="col11"># of RP</oasis:entry>
         <oasis:entry colname="col12">RP spac-</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">(<inline-formula><mml:math id="M14" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>)</oasis:entry>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4">ing (m)</oasis:entry>
         <oasis:entry colname="col5"/>
         <oasis:entry colname="col6"/>
         <oasis:entry colname="col7">ing (m)</oasis:entry>
         <oasis:entry colname="col8">(<inline-formula><mml:math id="M15" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>)</oasis:entry>
         <oasis:entry colname="col9"/>
         <oasis:entry colname="col10">ing (m)</oasis:entry>
         <oasis:entry colname="col11"/>
         <oasis:entry colname="col12">ing (m)</oasis:entry>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>
         <oasis:entry rowsep="1" colname="col1">SL-1</oasis:entry>
         <oasis:entry rowsep="1" colname="col2">1020</oasis:entry>
         <oasis:entry rowsep="1" colname="col3">211</oasis:entry>
         <oasis:entry colname="col4">5</oasis:entry>
         <oasis:entry rowsep="1" colname="col5">9</oasis:entry>
         <oasis:entry rowsep="1" colname="col6">408</oasis:entry>
         <oasis:entry colname="col7">2.5</oasis:entry>
         <oasis:entry colname="col8">960</oasis:entry>
         <oasis:entry colname="col9">250</oasis:entry>
         <oasis:entry colname="col10">4</oasis:entry>
         <oasis:entry colname="col11">408</oasis:entry>
         <oasis:entry colname="col12">1</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">SL-2</oasis:entry>
         <oasis:entry colname="col2">1835</oasis:entry>
         <oasis:entry colname="col3">331</oasis:entry>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5">11</oasis:entry>
         <oasis:entry colname="col6">468</oasis:entry>
         <oasis:entry colname="col7"/>
         <oasis:entry rowsep="1" colname="col8">580</oasis:entry>
         <oasis:entry rowsep="1" colname="col9">149</oasis:entry>
         <oasis:entry colname="col10"/>
         <oasis:entry rowsep="1" colname="col11">579</oasis:entry>
         <oasis:entry colname="col12"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry rowsep="1" colname="col1"/>
         <oasis:entry rowsep="1" colname="col2"/>
         <oasis:entry rowsep="1" colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry rowsep="1" colname="col5"/>
         <oasis:entry rowsep="1" colname="col6"/>
         <oasis:entry colname="col7"/>
         <oasis:entry rowsep="1" colname="col8">300</oasis:entry>
         <oasis:entry rowsep="1" colname="col9">81</oasis:entry>
         <oasis:entry colname="col10"/>
         <oasis:entry rowsep="1" colname="col11">299</oasis:entry>
         <oasis:entry colname="col12"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">SL-3</oasis:entry>
         <oasis:entry colname="col2">1020</oasis:entry>
         <oasis:entry colname="col3">210</oasis:entry>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5">5</oasis:entry>
         <oasis:entry colname="col6">408</oasis:entry>
         <oasis:entry colname="col7"/>
         <oasis:entry colname="col8">800</oasis:entry>
         <oasis:entry colname="col9">208</oasis:entry>
         <oasis:entry colname="col10"/>
         <oasis:entry colname="col11">408</oasis:entry>
         <oasis:entry colname="col12"/>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

</sec>
<sec id="Ch1.S3">
  <label>3</label><title>Data acquisition</title>
      <p id="d2e663">At the study site, three seismic profiles (SL-1 to SL-3) were acquired using both P-  and S-waves (Table <xref ref-type="table" rid="T1"/>; Fig. <xref ref-type="fig" rid="F1"/>b). The layout was designed to image the internal basin structure as well as its base, which is estimated to lie approximately 200 <inline-formula><mml:math id="M16" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> below the surface. For each seismic line, an additional suffix indicates the wave type: “P” for P-waves and “S” for S-waves (e.g. SL-1P and SL-1S). Profile SL-2S consists of two parts, because the central section of SL-2 was inaccessible for the S-wave survey.</p>

      <fig id="F2" specific-use="star"><label>Figure 2</label><caption><p id="d2e680">Seismic sources. <bold>(a)</bold> Vibrators MHV4P, <bold>(b)</bold> ELVIS-7, <bold>(c)</bold> explosive charge, and <bold>(d)</bold> boreholes prepared for charging.</p></caption>
        <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f02.jpg"/>

      </fig>


<sec id="Ch1.S3.SS1">
  <label>3.1</label><title>Seismic sources</title>
      <p id="d2e711">To generate P-waves, we employed the 4 <inline-formula><mml:math id="M17" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">t</mml:mi></mml:mrow></mml:math></inline-formula> hydraulically driven vibrator MHV4P (Fig. <xref ref-type="fig" rid="F2"/>a) from the LIAG Institute for Applied Geophysics, which has a vertical shaking unit (Burschil et al., 2021). This vibrator has a peak force of 30 <inline-formula><mml:math id="M18" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">kN</mml:mi></mml:mrow></mml:math></inline-formula> and is limited to a minimum frequency of 20 <inline-formula><mml:math id="M19" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>. In areas inaccessible to vehicles, such as the central part of SL-2P, the electrodynamic vibrator ELVIS-7 (Wadas et al., 2016) with a vertical shaking unit was used (Fig. <xref ref-type="fig" rid="F2"/>b). This wheelbarrow-mounted source, with a 1 <inline-formula><mml:math id="M20" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">kN</mml:mi></mml:mrow></mml:math></inline-formula> peak force, can also be deployed along challenging paths. For both sources, a dense vibrator point spacing of 5 <inline-formula><mml:math id="M21" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> was applied, which corresponds to twice the receiver spacing of 2.5 <inline-formula><mml:math id="M22" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>. This configuration has been shown to be effective for shallow investigations in previous studies (e.g., Tanner et al., 2015; Wadas et al., 2016; Burschil et al., 2018). A 12 <inline-formula><mml:math id="M23" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">s</mml:mi></mml:mrow></mml:math></inline-formula> sweep with linearly increasing frequencies of 20–200 <inline-formula><mml:math id="M24" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> was used. In addition, explosive sources with 1 <inline-formula><mml:math id="M25" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">kg</mml:mi></mml:mrow></mml:math></inline-formula> charge per shot point were deployed in four 2 <inline-formula><mml:math id="M26" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> deep boreholes per location (Fig. <xref ref-type="fig" rid="F2"/>c and d). Boreholes were created by pushing a 2 <inline-formula><mml:math id="M27" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>-long metal rod into the ground with a hydraulic breaker mounted on a mid-sized excavator. A 1 <inline-formula><mml:math id="M28" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> <inline-formula><mml:math id="M29" display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 1 <inline-formula><mml:math id="M30" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> metal plate jig was used for positioning. Due to logistical and financial constraints, only 26 explosive shot points were feasible. For S-wave excitation, the ELVIS-7 vibrator with a horizontally oriented shaking unit, positioned perpendicular to the profile, was used. The nominal vibrator point spacing was 4 <inline-formula><mml:math id="M31" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> (4 times the receiver spacing of 1 <inline-formula><mml:math id="M32" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>), which represents a compromise between fold and measuring efficiency. A 12 <inline-formula><mml:math id="M33" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">s</mml:mi></mml:mrow></mml:math></inline-formula> linear sweep with frequencies of 20–120 <inline-formula><mml:math id="M34" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> was applied for the S-wave surveys.</p>

<table-wrap id="T2" specific-use="star"><label>Table 2</label><caption><p id="d2e869">Specifications of seismic receivers.</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="7">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="left"/>
     <oasis:colspec colnum="3" colname="col3" align="left"/>
     <oasis:colspec colnum="4" colname="col4" align="left"/>
     <oasis:colspec colnum="5" colname="col5" align="left"/>
     <oasis:colspec colnum="6" colname="col6" align="left"/>
     <oasis:colspec colnum="7" colname="col7" align="left"/>
     <oasis:thead>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">Recording</oasis:entry>
         <oasis:entry colname="col3">Geophones</oasis:entry>
         <oasis:entry colname="col4">Orientation</oasis:entry>
         <oasis:entry colname="col5"># of channels</oasis:entry>
         <oasis:entry colname="col6">Nominal spacing (<inline-formula><mml:math id="M35" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>)</oasis:entry>
         <oasis:entry colname="col7">Mode</oasis:entry>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>
         <oasis:entry colname="col1">geode-data</oasis:entry>
         <oasis:entry colname="col2">Geometrics Geode</oasis:entry>
         <oasis:entry colname="col3">Sensor SM-6, 20 <inline-formula><mml:math id="M36" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4">vertical</oasis:entry>
         <oasis:entry colname="col5">408</oasis:entry>
         <oasis:entry colname="col6">2.5</oasis:entry>
         <oasis:entry colname="col7">triggered</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">cube-data</oasis:entry>
         <oasis:entry colname="col2">DATA-<inline-formula><mml:math id="M37" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">CUBE</mml:mi><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col3">HL-6B, 4.5 <inline-formula><mml:math id="M38" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4">3-component</oasis:entry>
         <oasis:entry colname="col5">3<inline-formula><mml:math id="M39" display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> 28</oasis:entry>
         <oasis:entry colname="col6"><inline-formula><mml:math id="M40" display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 40–60</oasis:entry>
         <oasis:entry colname="col7">autonomous</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">landstreamer-data</oasis:entry>
         <oasis:entry colname="col2">Geometrics Geode</oasis:entry>
         <oasis:entry colname="col3">Sensor SM-6, 10 <inline-formula><mml:math id="M41" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
         <oasis:entry colname="col4">horizontal</oasis:entry>
         <oasis:entry colname="col5">240</oasis:entry>
         <oasis:entry colname="col6">1</oasis:entry>
         <oasis:entry colname="col7">triggered</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

      <fig id="F3" specific-use="star"><label>Figure 3</label><caption><p id="d2e1051">Seismic receivers. <bold>(a)</bold> Planted vertical geophones connected by cable, <bold>(b)</bold> 3-component geophone and DATA-<inline-formula><mml:math id="M42" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">CUBE</mml:mi><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula> , and <bold>(c)</bold> landstreamer with horizontal geophones.</p></caption>
          <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f03.jpg"/>

        </fig>

</sec>
<sec id="Ch1.S3.SS2">
  <label>3.2</label><title>Recording, receivers, and layout</title>
      <p id="d2e1088">For the P-wave surveys, 17 Geometric Geodes with 24 channels each were used for recording (Table <xref ref-type="table" rid="T2"/>). As receivers, 408 vertical single-component 20 <inline-formula><mml:math id="M43" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones were deployed and connected via cable to the Geodes (Fig. <xref ref-type="fig" rid="F3"/>a). Each Geode correlated the signal using a pilot sweep and transferred the digitized data to the recording vehicle via a wired network. The nominal receiver spacing was 2.5 <inline-formula><mml:math id="M44" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>, ensuring dense coverage and a CMP bin size of <inline-formula><mml:math id="M45" display="inline"><mml:mo>&lt;</mml:mo></mml:math></inline-formula> 2.5 <inline-formula><mml:math id="M46" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> to avoid spatial aliasing (cf. Buness et al., 2022). A single spread layout was applied for SL-1P and SL-3P, whereas a split-spread layout with roll-along geometry was used for SL-2P. The roll-along distance was chosen such that the maximum offset was sufficient to image the expected basin depth of approximately 200 <inline-formula><mml:math id="M47" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> (cf. Burschil, 2024 for more details).</p>
      <p id="d2e1135">In addition, 28 autonomous Omnirecs DATA-<inline-formula><mml:math id="M48" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">CUBE</mml:mi><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula> units were deployed along the P-wave profiles (Fig. <xref ref-type="fig" rid="F3"/>b). Each unit was connected to a three-component 4.5 <inline-formula><mml:math id="M49" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophone to record lower frequencies more efficiently than the 20 <inline-formula><mml:math id="M50" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones. The DATA-<inline-formula><mml:math id="M51" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">CUBE</mml:mi><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula> receivers were placed at 40–60 <inline-formula><mml:math id="M52" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> intervals in a single-spread configuration.</p>
      <p id="d2e1187">For the S-wave survey, 10 Geometric Geodes were connected to two landstreamers for recording (Fig. <xref ref-type="fig" rid="F3"/>c). Each landstreamer consisted of 120 horizontal 10 <inline-formula><mml:math id="M53" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones with 1 <inline-formula><mml:math id="M54" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> spacing, oriented perpendicular to the profile direction. A split-spread roll-along geometry, as used in previous surveys (Burschil and Buness, 2020), was applied.</p>
      <p id="d2e1208">We refer to these datasets on the receiver side as geode-data, cube-data, and landstreamer-data, respectively.</p>
</sec>
</sec>
<sec id="Ch1.S4">
  <label>4</label><title>Data processing</title>
      <p id="d2e1220">To date, HRSR processing and FWI were performed for different datasets (Table <xref ref-type="table" rid="T3"/>). In a future step, the cube-data will contribute to combining HRSR and FWI.</p>

<table-wrap id="T3"><label>Table 3</label><caption><p id="d2e1228">Processing of different datasets. The cube-data are not processed yet.</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="5">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="left"/>
     <oasis:colspec colnum="3" colname="col3" align="left"/>
     <oasis:colspec colnum="4" colname="col4" align="left"/>
     <oasis:colspec colnum="5" colname="col5" align="left"/>
     <oasis:thead>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry rowsep="1" namest="col3" nameend="col5" align="center">Source </oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3">Explosives</oasis:entry>
         <oasis:entry colname="col4">Vertical</oasis:entry>
         <oasis:entry colname="col5">Horizontal</oasis:entry>
       </oasis:row>
       <oasis:row rowsep="1">
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2"/>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4">vibrators</oasis:entry>
         <oasis:entry colname="col5">vibrator</oasis:entry>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>
         <oasis:entry colname="col1">Receiver</oasis:entry>
         <oasis:entry colname="col2">geode-data</oasis:entry>
         <oasis:entry colname="col3">FWI</oasis:entry>
         <oasis:entry colname="col4">HRSR</oasis:entry>
         <oasis:entry colname="col5"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">cube-data</oasis:entry>
         <oasis:entry colname="col3">X</oasis:entry>
         <oasis:entry colname="col4">X</oasis:entry>
         <oasis:entry colname="col5"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1"/>
         <oasis:entry colname="col2">landstreamer-data</oasis:entry>
         <oasis:entry colname="col3"/>
         <oasis:entry colname="col4"/>
         <oasis:entry colname="col5">HRSR</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

<table-wrap id="T4" specific-use="star"><label>Table 4</label><caption><p id="d2e1345">Seismic P-wave processing steps.</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="3">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="left"/>
     <oasis:colspec colnum="3" colname="col3" align="left"/>
     <oasis:thead>
       <oasis:row rowsep="1">
         <oasis:entry namest="col1" nameend="col2">Processing step </oasis:entry>
         <oasis:entry colname="col3">Parameter</oasis:entry>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>
         <oasis:entry colname="col1">P1</oasis:entry>
         <oasis:entry colname="col2">Trace editing</oasis:entry>
         <oasis:entry colname="col3"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P2</oasis:entry>
         <oasis:entry colname="col2">Vertical stacking for noise suppression</oasis:entry>
         <oasis:entry colname="col3"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P3</oasis:entry>
         <oasis:entry colname="col2">Geometry assignment</oasis:entry>
         <oasis:entry colname="col3">CMP spacing 1.25 <inline-formula><mml:math id="M55" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P4</oasis:entry>
         <oasis:entry colname="col2">True amplitude recovery</oasis:entry>
         <oasis:entry colname="col3">spherical divergence correction with 1-D velocity distribution</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P5</oasis:entry>
         <oasis:entry colname="col2">Minimum phase transformation</oasis:entry>
         <oasis:entry colname="col3">with adapted wavelet</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P5a</oasis:entry>
         <oasis:entry colname="col2">Match filtering between MHV4P and ELVIS-7 source</oasis:entry>
         <oasis:entry colname="col3">for SL-2P only</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P6</oasis:entry>
         <oasis:entry colname="col2">Surface consistent spike deconvolution</oasis:entry>
         <oasis:entry colname="col3">type: spike, operator length 140 <inline-formula><mml:math id="M56" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P7</oasis:entry>
         <oasis:entry colname="col2">Adaptive deconvolution (L2 norm spiking)</oasis:entry>
         <oasis:entry colname="col3">type: spike, operator length 80 <inline-formula><mml:math id="M57" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P8</oasis:entry>
         <oasis:entry colname="col2">F-K filtering for near offsets</oasis:entry>
         <oasis:entry colname="col3"><inline-formula><mml:math id="M58" display="inline"><mml:mo>-</mml:mo></mml:math></inline-formula>100–100 <inline-formula><mml:math id="M59" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>, to eliminate chevron patterns</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P9</oasis:entry>
         <oasis:entry colname="col2">Elevation static correction</oasis:entry>
         <oasis:entry colname="col3">datum 680 <inline-formula><mml:math id="M60" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>, correction velocity 1400 <inline-formula><mml:math id="M61" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi><mml:mspace linebreak="nobreak" width="0.125em"/><mml:msup><mml:mi mathvariant="normal">s</mml:mi><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:mrow></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P10</oasis:entry>
         <oasis:entry colname="col2">Two iterations of velocity analysis in combination with residual statics</oasis:entry>
         <oasis:entry colname="col3">Every 25th CMP</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P11</oasis:entry>
         <oasis:entry colname="col2">Automatic gain control</oasis:entry>
         <oasis:entry colname="col3">250 <inline-formula><mml:math id="M62" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula> window length</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P12</oasis:entry>
         <oasis:entry colname="col2">Normal moveout correction</oasis:entry>
         <oasis:entry colname="col3">40 % stretch mute</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P13</oasis:entry>
         <oasis:entry colname="col2">Common-midpoint stacking</oasis:entry>
         <oasis:entry colname="col3">shift to final datum</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P14</oasis:entry>
         <oasis:entry colname="col2">Bandpass filtering</oasis:entry>
         <oasis:entry colname="col3">Ormsby filter, 50–60–170–190 <inline-formula><mml:math id="M63" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P15</oasis:entry>
         <oasis:entry colname="col2">F-X deconvolution</oasis:entry>
         <oasis:entry colname="col3">80 <inline-formula><mml:math id="M64" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula> window length, 40–450 <inline-formula><mml:math id="M65" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P16</oasis:entry>
         <oasis:entry colname="col2">Automatic gain control</oasis:entry>
         <oasis:entry colname="col3">500 <inline-formula><mml:math id="M66" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula> window length</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P17</oasis:entry>
         <oasis:entry colname="col2">Poststack FD time migration</oasis:entry>
         <oasis:entry colname="col3">angle <inline-formula><mml:math id="M67" display="inline"><mml:mo>&lt;</mml:mo></mml:math></inline-formula> 45°</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P18</oasis:entry>
         <oasis:entry colname="col2">Bandpass filtering</oasis:entry>
         <oasis:entry colname="col3">Ormsby filter, 50–60–170–190 <inline-formula><mml:math id="M68" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P19</oasis:entry>
         <oasis:entry colname="col2">Automatic gain control</oasis:entry>
         <oasis:entry colname="col3">500 <inline-formula><mml:math id="M69" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula> window length</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">P20</oasis:entry>
         <oasis:entry colname="col2">Time-to-depth conversion</oasis:entry>
         <oasis:entry colname="col3">smoothed velocity field</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

<sec id="Ch1.S4.SS1">
  <label>4.1</label><title>HRSR processing</title>
      <p id="d2e1754">P-wave data were processed using Landmark ProMAX/SeisSpace. The same processing workflow and parameters were applied to all profiles, comprising several processing steps, as summarized in Table <xref ref-type="table" rid="T4"/>. Step P5a was applied only to profile SL-2P. The combination of elevation static correction and residual statics proved sufficient so that no refraction static correction was required. Step P10 yielded a stacking velocity field every 25th CMP, which was subsequently converted and adapted for migration (step P17) and time-to-depth conversion (step P20).</p>

<table-wrap id="T5" specific-use="star"><label>Table 5</label><caption><p id="d2e1762">Seismic S-wave processing steps.</p></caption><oasis:table frame="topbot"><oasis:tgroup cols="3">
     <oasis:colspec colnum="1" colname="col1" align="left"/>
     <oasis:colspec colnum="2" colname="col2" align="left"/>
     <oasis:colspec colnum="3" colname="col3" align="justify" colwidth="60mm"/>
     <oasis:thead>
       <oasis:row rowsep="1">
         <oasis:entry namest="col1" nameend="col2">Processing step </oasis:entry>
         <oasis:entry colname="col3" align="left">Parameter</oasis:entry>
       </oasis:row>
     </oasis:thead>
     <oasis:tbody>
       <oasis:row>
         <oasis:entry colname="col1">S1</oasis:entry>
         <oasis:entry colname="col2">Trace editing</oasis:entry>
         <oasis:entry colname="col3" align="left"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S2</oasis:entry>
         <oasis:entry colname="col2">Vertical stacking</oasis:entry>
         <oasis:entry colname="col3" align="left"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S3</oasis:entry>
         <oasis:entry colname="col2">Geometry assignment</oasis:entry>
         <oasis:entry colname="col3" align="left">CMP spacing 0.5 <inline-formula><mml:math id="M70" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S4</oasis:entry>
         <oasis:entry colname="col2">Surface-consistent corrections</oasis:entry>
         <oasis:entry colname="col3" align="left">in the source and receiver domains</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S5</oasis:entry>
         <oasis:entry colname="col2">Surface-consistent deconvolution</oasis:entry>
         <oasis:entry colname="col3" align="left">for sources and receivers</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S6</oasis:entry>
         <oasis:entry colname="col2">Bandpass filtering</oasis:entry>
         <oasis:entry colname="col3" align="left">time-variant Butterworth filter <inline-formula><mml:math id="M71" display="inline"><mml:mo>&lt;</mml:mo></mml:math></inline-formula> 400 <inline-formula><mml:math id="M72" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula>: 50–60–100–120 <inline-formula><mml:math id="M73" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> <inline-formula><mml:math id="M74" display="inline"><mml:mo>&gt;</mml:mo></mml:math></inline-formula> 400 <inline-formula><mml:math id="M75" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula>: 30–40–100–120 <inline-formula><mml:math id="M76" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula></oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S7</oasis:entry>
         <oasis:entry colname="col2">Automatic gain control</oasis:entry>
         <oasis:entry colname="col3" align="left">200 <inline-formula><mml:math id="M77" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula> window length</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S8</oasis:entry>
         <oasis:entry colname="col2">Apply residual statics using brute stack</oasis:entry>
         <oasis:entry colname="col3" align="left"/>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S9</oasis:entry>
         <oasis:entry colname="col2">Several iterations of velocity analysis at a floating datum</oasis:entry>
         <oasis:entry colname="col3" align="left">guided by reflectors in the stacked section</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S10</oasis:entry>
         <oasis:entry colname="col2">Normal moveout correction at floating datum</oasis:entry>
         <oasis:entry colname="col3" align="left">200 % stretch mute</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S11</oasis:entry>
         <oasis:entry colname="col2">Common midpoint stacking</oasis:entry>
         <oasis:entry colname="col3" align="left">shift to final datum</oasis:entry>
       </oasis:row>
       <oasis:row>
         <oasis:entry colname="col1">S12</oasis:entry>
         <oasis:entry colname="col2">Automatic gain control</oasis:entry>
         <oasis:entry colname="col3" align="left">200 <inline-formula><mml:math id="M78" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula> window length</oasis:entry>
       </oasis:row>
     </oasis:tbody>
   </oasis:tgroup></oasis:table></table-wrap>

      <p id="d2e2006">S-wave processing of horizontal-vibrator and landstreamer-data was adapted from the workflow described in Burschil and Buness (2020) and carried out using Shearwater Reveal. The same processing sequence was applied to all profiles, the individual steps are summarized in Table <xref ref-type="table" rid="T5"/>. Step S9 provided the stacking velocities, which were analyzed at intervals of at least 50 <inline-formula><mml:math id="M79" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>, then smoothed and converted to interval velocities using the Dix equation (Sheriff and Geldart, 1995). For step S10, a 200 % stretch mute was applied during NMO correction to account for the low velocities of the S-waves. Migration was omitted to avoid migration artifacts.</p>
</sec>
<sec id="Ch1.S4.SS2">
  <label>4.2</label><title>Full waveform-inversion</title>
      <p id="d2e2027">For FWI, the latest version of DENISE Black Edition (Köhn et al., 2012, 2025) was used. This multiparameter FWI simultaneously optimizes the P- and S-wave velocities as well as the density, employing adjoint state gradients within the L-BFGS optimization method (Liu and Nocedal, 1989). As input data for the first FWI, we used the geode-data from the explosive sources. The raw data were preprocessed with a 30 <inline-formula><mml:math id="M80" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> high-cut filter. The initial P-wave model was constructed as a 1-D gradient model based on first-arrival analysis. The initial S-wave velocity model <inline-formula><mml:math id="M81" display="inline"><mml:mrow><mml:msub><mml:mi>v</mml:mi><mml:mi mathvariant="normal">S</mml:mi></mml:msub></mml:mrow></mml:math></inline-formula> was estimated from the P-wave velocities <inline-formula><mml:math id="M82" display="inline"><mml:mrow><mml:msub><mml:mi>v</mml:mi><mml:mi mathvariant="normal">P</mml:mi></mml:msub></mml:mrow></mml:math></inline-formula> using the relation:

            <disp-formula id="Ch1.E1" content-type="numbered"><label>1</label><mml:math id="M83" display="block"><mml:mrow><mml:msub><mml:mi>v</mml:mi><mml:mi mathvariant="normal">S</mml:mi></mml:msub><mml:mo>=</mml:mo><mml:mstyle displaystyle="true"><mml:mfrac style="display"><mml:mrow><mml:msub><mml:mi>v</mml:mi><mml:mi mathvariant="normal">P</mml:mi></mml:msub></mml:mrow><mml:msqrt><mml:mn mathvariant="normal">3</mml:mn></mml:msqrt></mml:mfrac></mml:mstyle><mml:mo>.</mml:mo></mml:mrow></mml:math></disp-formula></p>
      <p id="d2e2085">The initial density model <inline-formula><mml:math id="M84" display="inline"><mml:mi mathvariant="italic">ρ</mml:mi></mml:math></inline-formula> is derived from the empirical relation by Ulugergerli and Uyanik (2007):

            <disp-formula id="Ch1.E2" content-type="numbered"><label>2</label><mml:math id="M85" display="block"><mml:mrow><mml:mi mathvariant="italic">ρ</mml:mi><mml:mo>=</mml:mo><mml:mn mathvariant="normal">1000</mml:mn><mml:mo>×</mml:mo><mml:mo>(</mml:mo><mml:mn mathvariant="normal">0.1055</mml:mn><mml:mo>×</mml:mo><mml:mtext>log</mml:mtext><mml:mo>(</mml:mo><mml:msub><mml:mi>v</mml:mi><mml:mi mathvariant="normal">S</mml:mi></mml:msub><mml:mo>)</mml:mo><mml:mo>+</mml:mo><mml:mn mathvariant="normal">1.3871</mml:mn><mml:mo>)</mml:mo><mml:mo>.</mml:mo></mml:mrow></mml:math></disp-formula></p>
      <p id="d2e2134">Analysis of the Rayleigh surface waves, compared to the P-wave first arrivals, revealed a significant influence of damping, so that a visco-elastic modelling approach was adopted. To mitigate the non-linearity of the inverse problem, a sequential inversion was performed, inverting field data in frequency bands up to 7, 10, 15, 20, 25, and 30 <inline-formula><mml:math id="M86" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>, in this order. The source wavelet for each source gather was estimated by a stabilized Wiener deconvolution. An anisotropic, spatial 2-D Gaussian filter imposed smoothness constraints on the adjoint state gradients; its length was scaled to the local P- and S-wavelengths, applied 1<inline-formula><mml:math id="M87" display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> the local wavelength in the <inline-formula><mml:math id="M88" display="inline"><mml:mi>x</mml:mi></mml:math></inline-formula>-direction and 0.5<inline-formula><mml:math id="M89" display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> in the <inline-formula><mml:math id="M90" display="inline"><mml:mi>y</mml:mi></mml:math></inline-formula>-direction. Parameter cross-talk was mitigated by using quasi-Newton L-BFGS optimization with parameter scaling, where density updates were reduced by a factor of 0.5 compared to the velocity updates. Finally, a global correlation norm was employed as an objective function to minimize source-receiver coupling effects.</p>

      <fig id="F4" specific-use="star"><label>Figure 4</label><caption><p id="d2e2176">Records for one source location (corresponding power spectral density in Fig. <xref ref-type="fig" rid="F5"/>). <bold>(a)</bold> Explosive source and geode-data (20 <inline-formula><mml:math id="M91" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones), <bold>(b)</bold> vibratory source and geode-data (20 <inline-formula><mml:math id="M92" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones), <bold>(c)</bold> explosive source and cube-data (3-component 4.5 <inline-formula><mml:math id="M93" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones), <bold>(d)</bold> vibratory source and cube-data (3-component 4.5 <inline-formula><mml:math id="M94" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones). Note the strong surface waves (blue arrows) and the clear first arrivals (red arrows) in the explosive data, the high frequency reflections (orange arrows) in the vibratory data, as well as the air blast (green arrows).</p></caption>
          <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f04.png"/>

        </fig>

</sec>
</sec>
<sec id="Ch1.S5">
  <label>5</label><title>Results</title>
<sec id="Ch1.S5.SS1">
  <label>5.1</label><title>Field data and spectral composition</title>
      <p id="d2e2249">The acquired data exhibit excellent quality across all source and receiver configurations (Fig. <xref ref-type="fig" rid="F4"/>). Explosive sources provided strong ground coupling and sufficient penetration depth. The dense receiver spacing of the geode-data ensures distinct first P-wave arrival (red arrows in Fig. <xref ref-type="fig" rid="F4"/>), which is essential to construct the initial P-wave model for FWI. In contrast, the explosive data show strong surface waves, which appear aliased in the sparsely spaced cube-data (blue arrows). The MHV4P vibrator source produced high-quality reflections (orange arrows) and generated less surface waves than the explosive source data. Air wave noise is also visible in the data (green arrow).</p>

      <fig id="F5" specific-use="star"><label>Figure 5</label><caption><p id="d2e2258">Power spectral density for one record at profile SL-1P (corresponding record in Fig. <xref ref-type="fig" rid="F4"/>). Explosive source and 20 <inline-formula><mml:math id="M95" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones (blue solid line), vibratory source MHV4P and 20 <inline-formula><mml:math id="M96" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones (orange dashed line), explosive source and vertical component of 4.5 <inline-formula><mml:math id="M97" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones (green dash-dotted line), vibratory source and vertical component of 4.5 <inline-formula><mml:math id="M98" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones (red dotted line). The sweep frequency range is shaded (gray).</p></caption>
          <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f05.png"/>

        </fig>

      <fig id="F6" specific-use="star"><label>Figure 6</label><caption><p id="d2e2303">Records of geode data for neighbouring source locations for vibrators: <bold>(a)</bold> MHV4P and <bold>(b)</bold> ELVIS-7, and <bold>(c)</bold> corresponding power spectral density for vibrators MHV4P (blue) and ELVIS-7 (orange); the sweep frequency range is shaded (gray). The different source strength can be observed by first arrivals that are visible along the entire profile for MHV4P (blue arrows), but not for ELVIS-7 (orange arrows).</p></caption>
          <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f06.png"/>

        </fig>

      <p id="d2e2322">The frequency content of the P-wave data varies among the different source-receiver configurations (Fig. <xref ref-type="fig" rid="F5"/>). The vibrator-source geode-data (20 <inline-formula><mml:math id="M99" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones) display the full sweep frequency range of 20–200 <inline-formula><mml:math id="M100" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>. The corresponding cube-data (4.5 <inline-formula><mml:math id="M101" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones) reproduce the same lower frequency ramp but exhibit a high-frequency cut-off near 160 <inline-formula><mml:math id="M102" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>. This limitation arises from a built-in anti-alias filter of the DATA-<inline-formula><mml:math id="M103" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">CUBE</mml:mi><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula>, which operates at approximately 80 % of the Nyquist frequency (160 <inline-formula><mml:math id="M104" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>; T. Ryberg, private communication, 2025), given by the maximum sampling interval of 2.5 <inline-formula><mml:math id="M105" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula> (400 <inline-formula><mml:math id="M106" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>). For the explosive sources, frequencies below 20 <inline-formula><mml:math id="M107" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> are clearly observed in all datasets. Even the geode-data with 20 <inline-formula><mml:math id="M108" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones contain a significant amount of energy below their nominal resonance frequency, showing a low-frequency spectrum similar to the cube-data. However, the baseline level at these frequencies is considerably lower for the cubed data than for the geode-data.</p>

      <fig id="F7" specific-use="star"><label>Figure 7</label><caption><p id="d2e2413">Migrated stacks of <bold>(a)</bold> SL-1P and <bold>(b)</bold> SL-2P and close-up of the first 500 <inline-formula><mml:math id="M109" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> in the same profiles with 1.6 <inline-formula><mml:math id="M110" display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> vertical exaggeration <bold>(c, d)</bold>. Highlighted by arrows are horizontal Molasse reflectors (red), shallow Molasse reflectors (pink), basin base (green), unconformity of bipartitioning (blue), basin internal reflectors (purple), shallow reflectors (orange), and areas with less penetration (yellow). The ELVIS-7 source was deployed on SL-2P only, between SL-1P and SL-3P. The log of borehole 5068_3_A (cf. Fig. <xref ref-type="fig" rid="F1"/>c) shows the generalized dominant lithology: organic soil (orange), gravel (blue), fines (green), and sand (yellow).</p></caption>
          <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f07.png"/>

        </fig>

      <p id="d2e2449">In the central part of profile SL-2P, we used ELVIS-7 vibrator source (peak force of <inline-formula><mml:math id="M111" display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 1 <inline-formula><mml:math id="M112" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">kN</mml:mi></mml:mrow></mml:math></inline-formula>) that emitted substantially less energy than the 4 <inline-formula><mml:math id="M113" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">t</mml:mi></mml:mrow></mml:math></inline-formula> hydraulic vibrator MHV4P (peak force of 30 <inline-formula><mml:math id="M114" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">kN</mml:mi></mml:mrow></mml:math></inline-formula>), which can be observed clearly in the data (Fig. <xref ref-type="fig" rid="F6"/>). While first arrivals from the MHV4P can be clearly traced across the entire receiver spread (blue arrows in Fig. <xref ref-type="fig" rid="F6"/>), those from ELVIS-7 are only visible at offsets below 250 <inline-formula><mml:math id="M115" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> (orange arrows). The emitted energy of the ELVIS-7 source is less than the energy of the MHV4P, as we directly observe in the data. Nevertheless, both sources produced a frequency content for the entire sweep from 20–200 <inline-formula><mml:math id="M116" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> above the background noise level (Fig. <xref ref-type="fig" rid="F6"/>c).</p>
      <p id="d2e2506">Similar to the presented P-wave data, S-wave data show a good data quality (not shown). First arrivals and reflections can be observed on most records.</p>
</sec>
<sec id="Ch1.S5.SS2">
  <label>5.2</label><title>HRSR P-wave stacks</title>
      <p id="d2e2517">The newly-acquired data utilizing the vibrator sources and geode-data are able to image the basin base and internal reflectors (Fig. <xref ref-type="fig" rid="F7"/>). The eastern profile SL-3P shows only horizontal reflectors, similar to the eastern end of SL-2P, and is therefore not shown. On all profiles, we observe horizontal reflectors below 300 <inline-formula><mml:math id="M117" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> final datum that we interpret as Molasse units (red arrows). These reflectors can also be found at a shallower depth of the eastern part of SL-2P (pink arrows) and on the entire profile SL-3P (not shown). Thus, we infer that in the eastern part of the study site no basin is present, but that it is dominated by Molasse units. We interpret strong reflectors (green arrow) as basal till at the basin base. A dipping reflector within the basin (blue arrows) separates two generations of basin fill, which was previously unknown. Further internal reflectors are visible as well (purple arrows). The log of borehole 5068_3_A fits the reflectors and supports the interpretation. Unfortunately, the borehole can only support the interpretation for one part of the bipartitioned basin. In the part of SL-2P where we deployed the weaker ELVIS-7 source (between SL-1P and SL-3P in Fig. <xref ref-type="fig" rid="F7"/>b and d), we observe shallow reflections (orange arrow), but cannot trace the deeper reflectors (yellow arrows) due to less penetration. Therefore, the eastern rim of the basin, that is the transition of the basal basin (green arrows) towards the shallow Molasse reflectors (pink arrows), is not imaged.</p>

      <fig id="F8" specific-use="star"><label>Figure 8</label><caption><p id="d2e2534">Stacks of <bold>(a)</bold> SL-1S and <bold>(b)</bold> the western part of SL-2S and S-wave interval velocities of <bold>(c)</bold> SL-1S and <bold>(d)</bold> the western part of SL-2S. Highlighted by arrows are: basin base (green), basin-internal reflectors (purple), intra-basin discontinuity (blue), shallow reflections (red), and shallow discontinuity (pink).</p></caption>
          <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f08.png"/>

        </fig>

</sec>
<sec id="Ch1.S5.SS3">
  <label>5.3</label><title>S-wave stacks and velocities</title>
      <p id="d2e2563">Stacks of the S-wave data show reflections from a few ms to about 700 <inline-formula><mml:math id="M118" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">ms</mml:mi></mml:mrow></mml:math></inline-formula> two-way traveltime, generated by a small-scale ELVIS-7 source. The sections show a similar structural image of the subsurface but with some differences (Fig. <xref ref-type="fig" rid="F8"/>a and b) compared to the P-wave images (Fig. <xref ref-type="fig" rid="F7"/>): <list list-type="custom"><list-item><label>1.</label>
      <p id="d2e2580">The reflections are less continuous compared to the P-wave data.</p></list-item><list-item><label>2.</label>
      <p id="d2e2584">S-wave data have less penetration depth than P-wave data.</p></list-item><list-item><label>3.</label>
      <p id="d2e2588">S-wave data show a much higher resolution than the P-wave data.</p></list-item></list></p>
      <p id="d2e2591">In detail, we interpret a strong reflection (green arrows) as basal till at the basin base. This reflection shows an undulation that cannot be seen in the P-wave data. A reflection separates the bipartioned basin infills, as seen in the P-wave data (blue arrows). This also exhibits more details than the P-wave data, but is also less continuous. A basin-internal reflection is visible in the S-wave data (purple arrows) that is not present in the P-wave data. In the very shallow part, we observe a continuous reflection (red arrows) with a second reflection directly underneath (pink arrows). Both can be seen in the P-wave data as well, but S-wave data clearly show an overlap of this reflection (pink arrows) that is not visible in the P-wave data. The high resolution of the S-wave data enables detailed interactive velocity picking. S-wave interval velocities (Fig. <xref ref-type="fig" rid="F8"/>c and d), calculated from the stacking velocities, show lateral variations that match the overall geology.</p>
</sec>
<sec id="Ch1.S5.SS4">
  <label>5.4</label><title>Full-waveform inversion</title>
      <p id="d2e2604">The different stages of inversion of the explosive source and geode-data show a successful updating of the velocity and density distributions from the initial 1-D gradient models to the most detailed model of the last stage, inverting frequencies from 7 to 30 <inline-formula><mml:math id="M119" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> (Fig. <xref ref-type="fig" rid="F9"/>). Distributions of changes of the last stage compared to the initial model reveal the potential of FWI. The P-wave velocity distribution (Fig. <xref ref-type="fig" rid="F10"/>a) reveals an undulation in the velocities, which represents small-scale lateral variations in the velocity distribution (red arrows). The velocities fit the reflectors of the stacked section (Fig. <xref ref-type="fig" rid="F10"/>b; purple arrow). However, the FWI results contain details up to 30 <inline-formula><mml:math id="M120" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>, while the stacked section contains data up to 170 <inline-formula><mml:math id="M121" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>. The P-wave velocities of the FWI are in the similar range of the P-wave migration velocity field, derived from HRSR processing (Fig. <xref ref-type="fig" rid="F10"/>c).</p>

      <fig id="F9" specific-use="star"><label>Figure 9</label><caption><p id="d2e2642">Initial models and changes of the FWI of SL-1P to the initial model for <bold>(a, b)</bold> P-wave velocity, <bold>(c, d)</bold> S-wave velocity, and <bold>(e, f)</bold> density.</p></caption>
          <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f09.png"/>

        </fig>

      <fig id="F10"><label>Figure 10</label><caption><p id="d2e2662">Distributions from <bold>(a)</bold> the last stage of FWI of SL-1P for P-wave velocity, <bold>(b)</bold> FWI P-wave velocity with superimposed seismic section, and <bold>(c)</bold> P-wave velocity from HRSR processing. Highlighted by arrows are: undulations (red arrows) and matching with reflectors in the seismic P-wave section (purple arrow).</p></caption>
          <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f10.png"/>

        </fig>


</sec>
</sec>
<sec id="Ch1.S6">
  <label>6</label><title>Discussion</title>
      <p id="d2e2691">The datasets provide a valuable basis to develop the combination of HRSR and FWI for near-surface seismic imaging. The survey parameters were chosen to cover both requirements for HRSR as well as FWI analysis. For HRSR, we used parameters that worked well in Quaternary environments in the past (e.g., Burschil et al., 2018; Buness et al., 2022). The lower sweep frequency of the vibrator data was determined from the technical limits of the available MHV4P vibrator. We chose the upper sweep frequency (200 <inline-formula><mml:math id="M122" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>) due to damping and thus limited benefit of higher frequencies. The charge of the explosives was specified by the blaster. The previous refraction survey of the Bavarian Environment Agency in 2018 used charges of 250 <inline-formula><mml:math id="M123" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">g</mml:mi></mml:mrow></mml:math></inline-formula>, but they were not able to penetrate through the coarse-grained sediments. For this reason, we increased the charge to 1 <inline-formula><mml:math id="M124" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">kg</mml:mi></mml:mrow></mml:math></inline-formula>. The blaster split the 1 <inline-formula><mml:math id="M125" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">kg</mml:mi></mml:mrow></mml:math></inline-formula> charge into four 250 <inline-formula><mml:math id="M126" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">g</mml:mi></mml:mrow></mml:math></inline-formula> charges per borehole to avoid blowouts.</p>
      <p id="d2e2734">The lower frequency content of the cube-data is a valuable contribution to the further development of combining HRSR and FWI for the explosive sources. However, the geode-data (20 <inline-formula><mml:math id="M127" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones) show a similar frequency content for the vibrator source as the cube-data (4.5 <inline-formula><mml:math id="M128" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones). Therefore, the effort for this setup is questionable if only vibrator sources are available.</p>

      <fig id="F11" specific-use="star"><label>Figure 11</label><caption><p id="d2e2755">Example of field data (black lines) and forward modelled data of the last stage (red lines) of one record. Modelled traces match the field data.</p></caption>
        <graphic xlink:href="https://se.copernicus.org/articles/16/1493/2025/se-16-1493-2025-f11.png"/>

      </fig>

      <p id="d2e2765">A first attempt with explosive sources and the geode-data (20 <inline-formula><mml:math id="M129" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> geophones) shows the potential of FWI to image sedimentary deposits in these environments. The forward-modelled data of the last stage match the field data without cycle skipping (Fig. <xref ref-type="fig" rid="F11"/>), so that the FWI works sufficiently for the acquired data. However, FWI is often applied to marine data, which often have a better signal-to-noise ratio. Land studies sporadically show the successful application of FWI (e.g., Köhn et al., 2012). On land, horizontally-polarized S-wave data are often inverted to simplify the inversion problem (e.g., Schwardt et al., 2020; Köhn et al., 2019; Mecking et al., 2021). The penetration depth of the Rayleigh wave is ca. one local S-wavelength (Sheriff and Geldart, 1995). For an average S-wave velocity of 1300 <inline-formula><mml:math id="M130" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi><mml:mspace width="0.125em" linebreak="nobreak"/><mml:msup><mml:mi mathvariant="normal">s</mml:mi><mml:mrow><mml:mo>-</mml:mo><mml:mn mathvariant="normal">1</mml:mn></mml:mrow></mml:msup></mml:mrow></mml:math></inline-formula>, we get a maximum penetration depth of <inline-formula><mml:math id="M131" display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 43 <inline-formula><mml:math id="M132" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> at 30 <inline-formula><mml:math id="M133" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula> and <inline-formula><mml:math id="M134" display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 185 <inline-formula><mml:math id="M135" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula> at 7 <inline-formula><mml:math id="M136" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">Hz</mml:mi></mml:mrow></mml:math></inline-formula>. However, as can be seen in the waveform comparison of the records (Fig. <xref ref-type="fig" rid="F11"/>), the waveforms of first arrival refraction and diving waves can also be fitted, so the maximum resolution depth extends to <inline-formula><mml:math id="M137" display="inline"><mml:mo>∼</mml:mo></mml:math></inline-formula> 0.5 <inline-formula><mml:math id="M138" display="inline"><mml:mo>×</mml:mo></mml:math></inline-formula> maximum offset of the acquisition geometry (<inline-formula><mml:math id="M139" display="inline"><mml:mo lspace="0mm">∼</mml:mo></mml:math></inline-formula> 400–500 <inline-formula><mml:math id="M140" display="inline"><mml:mrow class="unit"><mml:mi mathvariant="normal">m</mml:mi></mml:mrow></mml:math></inline-formula>). The applied staged FWI workflow of this study converges successfully, provides a consistent and physically reasonable solution, and matches the HRSR results.</p>
      <p id="d2e2874">A preliminary interpretation of the P-wave data shows detailed structure within the basin fill. Our interpretation fits the interpretation of the seismic sections, boreholes, and luminescence data by Firla et al. (2024) at the same site. In general, the sedimentary sequence of glacial and post-glacial deposits is typical for these environments (e.g., Schaller et al., 2023; Schuster et al., 2024). The interpretation suits the reflection pattern that is similar to the seismic facies interpretation of the Tannwald Basin (Burschil et al., 2018), consisting of different lithological units. The S-wave data show very detailed results, imaging the entire basin fill in very good quality, even using the small-scale source. The images show a much higher resolution than those derived from the P-wave data and reveal reflectors that were not observed in the P-wave data. This is in accordance with results from other studies (e.g., Pugin et al., 2009; Brodic et al., 2018; Burschil and Buness, 2020; Pertuz and Malehmir, 2023), even though P-waves have been commonly used to image Quaternary sediments for decades (e.g., Hunter et al., 1984; Büker et al., 1998; Maries et al., 2017).</p>
</sec>
<sec id="Ch1.S7" sec-type="conclusions">
  <label>7</label><title>Conclusions</title>
      <p id="d2e2885">The acquired datasets demonstrate that they meet the requirements for the methodical development of combining HRSR and FWI. Careful integration of complementary source-receiver configurations is essential, with vibrator sources providing broad-bandwidth data for HRSR imaging and explosive sources generating low-frequency signals necessary for FWI. The dense receiver spacing enhances both reflection imaging and inversion stability, while autonomous low-frequency receivers can supplement, but may not significantly improve, the vibrator-based surveys under certain conditions. Separate analyses of HRSR as well as FWI of different datasets exhibit that each method provides detailed images in the complex glacially-influenced environment of the overdeepened basin.</p>
      <p id="d2e2888">The HRSR results highlight the potential to resolve both basin structures and internal reflectors in complex, glacially overdeepened settings, such as the study site near Schäftlarn. The identification of a previously unknown bipartioning of the basin demonstrates the need for HRSR in obtaining a detailed structural characterization. Furthermore, S-wave data provide higher resolution within the basin infill than P-wave data, emphasizing the value of integration both wave types for imaging heterogeneous geological settings.</p>
</sec>

      
      </body>
    <back><notes notes-type="codedataavailability"><title>Code and data availability</title>

      <p id="d2e2896">Acquired data are available under DOI: <ext-link xlink:href="https://doi.org/10.25928/960y-8w55" ext-link-type="DOI">10.25928/960y-8w55</ext-link> (Burschil, 2023). DENISE Black edition is available at <ext-link xlink:href="https://doi.org/10.5281/zenodo.17791223" ext-link-type="DOI">10.5281/zenodo.17791223</ext-link> (Köhn et al., 2025).</p>
  </notes><notes notes-type="authorcontribution"><title>Author contributions</title>

      <p id="d2e2908">TB managed the project Chatseis, including fieldwork organization, data acquisition, processing of S-waves, seismic interpretation, and preparation of the manuscript. DK organized the DATA-<inline-formula><mml:math id="M141" display="inline"><mml:mrow class="chem"><mml:msup><mml:mi mathvariant="normal">CUBE</mml:mi><mml:mn mathvariant="normal">3</mml:mn></mml:msup></mml:mrow></mml:math></inline-formula> and performed FWI. MK processed the P-wave data. GG organized LIAG fieldwork, and JG organized LfU fieldwork and explosive sources. GF and MF conducted the geological interpretation. All authors contributed to the manuscript.</p>
  </notes><notes notes-type="competinginterests"><title>Competing interests</title>

      <p id="d2e2925">The contact author has declared that none of the authors has any competing interests.</p>
  </notes><notes notes-type="disclaimer"><title>Disclaimer</title>

      <p id="d2e2931">Publisher's note: Copernicus Publications remains neutral with regard to jurisdictional claims made in the text, published maps, institutional affiliations, or any other geographical representation in this paper. While Copernicus Publications makes every effort to include appropriate place names, the final responsibility lies with the authors. Views expressed in the text are those of the authors and do not necessarily reflect the views of the publisher.</p>
  </notes><notes notes-type="sistatement"><title>Special issue statement</title>

      <p id="d2e2937">This article is part of the special issue “Seismic imaging from the lithosphere to the near surface”. It is a result of the Seismix 2024 conference, Uppsala, Sweden, 24 to 28 June 2024.</p>
  </notes><ack><title>Acknowledgements</title><p id="d2e2944">The project Chatseis is affiliated with the ICDP project Drilling Overdeepened Alpine Valleys (DOVE) and funded by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) – 497340281. Particular thanks go to our team at BGR, LIAG, and LfU, especially the blasters Christian Veress and Brian Kröner, during the surveys, as well as the support of the municipality of Schäftlarn and the Schäftlarn Monastery.</p></ack><notes notes-type="financialsupport"><title>Financial support</title>

      <p id="d2e2949">This research has been supported by the Deutsche Forschungsgemeinschaft (grant no. 497340281).</p>
  </notes><notes notes-type="reviewstatement"><title>Review statement</title>

      <p id="d2e2955">This paper was edited by Christopher Juhlin and reviewed by Samuel Zappalá and Marta Cyz.</p>
  </notes><ref-list>
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