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1

S, Baker Gregory, and Jol H. M, eds. Stratigraphic analyses using GPR. Boulder, Colo: Geological Society of America, 2007.

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2

K, Koppenjan Steven, Lee Hua 1952-, University of California, Santa Barbara., Bechtel Nevada/Special Technologies Laboratory, GroundProbe (Australia), and Society of Photo-optical Instrumentation Engineers., eds. GPR 2002: Ninth International Conference on Ground Penetrating Radar : [April 29-May 2, 2002, Santa Barbara, Calif.]. Bellingham, Wash: SPIE, 2002.

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3

Gołębiowski, Tomisław. Zastosowanie metody georadarowej do detekcji i monitoringu obiektów o stochastycznym rozkładzie w ośrodku geologicznym: Application of the GPR method for detection and monitoring of objects with stochastical distribution in the geological medium. Kraków: Wydawnictwa AGH, 2012.

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4

Roth, Michelle L. Sample analysis and modeling to determine GPR capability for mapping fluvial mine tailings in the Coeur d'Alene River channel. [Denver, CO]: U.S. Geological Survey, 1996.

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5

Geological Survey (U.S.), ed. Sample analysis and modeling to determine GPR capability for mapping fluvial mine tailings in the Coeur d'Alene River channel. [Reston, Va.?]: U.S. Dept. of the Interior, U.S. Geological Survey, 1996.

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6

1971-, Crocco Lorenzo, Orlando Luciana, Persico Raffaele 1969-, Pieraccini Massimiliano, and Curran Associates, eds. 2010 13th International Conference on Ground Penetrating Radar, (GPR 2010): Lecce, Italy, 21-25 June 2010. Piscataway, NJ: IEEE, 2010.

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7

Radar, International Conference on Ground Penetrating. GPR '94: Proceedings of the fifth International Conference on Ground Penetrating Radar, June 12-16, 1994, Kitchener, Ontario, Canada. Waterloo, Ont: Waterloo Centre for Groundwater Research, 1994.

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8

International Conference on Ground Penetrating Radar. GPR 2000: Proceedings of the 8th International Conference on Ground Penetrating Radar : [Gold Coast, Australia, 23-26 May, 2000]. Edited by Noon David A, Stickley Glen F, Longstaff Dennis, University of Queensland, Cooperative Research Centre for Sensor Signal and Information Processing., Commonwealth Scientific and Industrial Research Organization (Australia), and Society of Photo-optical Instrumentation Engineers. Bellingham, Washington: SPIE, 2000.

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9

C, Slob Evert, Yarovoy Alex G, and Rhebergen Jan B, eds. Proceedings of the Tenth International Conference on Ground Penetrating Radar, GPR 2004: 21-24 June 2004, Delft University of Technology, Delft, The Netherlands. Piscataway, N.J: IEEE, 2004.

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10

Daniels, D. J. Ground penetrating radar. 2nd ed. London: Institution of Electrical Engineers, 2004.

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11

A, Pilon J., Geological Survey of Canada, and Ground Penetrating Radar Workshop (1988 : Ottawa, Ont.), eds. Ground penetrating radar. Ottawa: Geological Survey of Canada, 1992.

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12

Daniels, D. J. Surface-penetrating radar. London: Institution of Electrical Engineers, 1996.

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13

Conyers, Lawrence B. Ground-Penetrating Radar for Geoarchaeology. Chichester, UK: John Wiley & Sons, Ltd, 2016. http://dx.doi.org/10.1002/9781118949993.

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14

Persico, Raffaele. Introduction to Ground Penetrating Radar. Hoboken, NJ: John Wiley & Sons, Inc, 2014. http://dx.doi.org/10.1002/9781118835647.

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15

Page, S. J. Ground penetrating radar for pavement investigation. Wellington, N.Z: Transfund New Zealand, 1997.

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16

Interpreting ground-penetrating radar for archaeology. Walnut Creek, Calif: Left Coast Press, 2012.

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17

service), ScienceDirect (Online, ed. Ground penetrating radar: Theory and applications. Amsterdam: Elsevier Science, 2009.

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18

Church, Ronald H. Ground-penetrating radar for strata control. Pittsburgh, Pa. (4800 Forbes Ave., Pittsburgh 15213): U.S. Dept. of the Interior, Bureau of Mines, 1985.

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19

Benedetto, Andrea, and Lara Pajewski, eds. Civil Engineering Applications of Ground Penetrating Radar. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-04813-0.

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20

1958-, Goodman Dean, ed. Ground-penetrating radar: An introduction for archaeologists. Walnut Creek, CA: AltaMira Press, 1997.

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21

Yang, Feng. Di zhi lei da tan ce yuan li yu fang fa yan jiu. Beijing: Ke xue chu ban she, 2010.

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22

Conyers, Lawrence B. Ground-penetrating Radar and Magnetometry for Buried Landscape Analysis. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-70890-4.

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23

D, Miller Richard. Advances in near-surface seismology and ground-penetrating radar. Tulsa, Okla: Society of Exploration Geophysicists, 2010.

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24

A, Yarovoy, ed. Proceedings of the 2nd International Workshop on Advanced Ground Penetrating Radar: May 14-16, 2003, AULA, Delft, the Netherlands. Delft, the Netherlands: International Research Centre for Telecommunications-transmissions and Radar, 2003.

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25

Barr, G. L. Application of ground-penetrating radar methods in determining hydrogeologic conditions in a karst area, west-central Florida. Tallahassee, Fla: U.S. Geological Survey, 1993.

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26

International Workshop on Advanced Ground Penetrating Radar (4th 2007 Naples, Italy). 2007 4th International Workshop on Advanced Ground Penetrating Radar: Naples, Italy, 27-29 June 2007. Piscataway, NJ: IEEE, 2007.

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27

Barr, G. L. Application of ground-penetrating radar methods in determining hydrogeologic conditions in a karst area, west-central Florida. Tallahassee, Fla: U.S. Geological Survey, 1993.

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28

Barr, G. L. Application of ground-penetrating radar methods in determining hydrogeologic conditions in a karst area, west-central Florida. Tallahassee, Fla: U.S. Geological Survey, 1993.

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29

Barr, G. L. Application of ground-penetrating radar methods in determining hydrogeologic conditions in a karst area, west-central Florida. Tallahassee, Fla: U.S. Geological Survey, 1993.

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30

Barr, G. L. Application of ground-penetrating radar methods in determining hydrogeologic conditions in a karst area, west-central Florida. Tallahassee, Fla: U.S. Geological Survey, 1993.

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31

Barr, G. L. Application of ground-penetrating radar methods in determining hydrogeologic conditions in a karst area, west-central Florida. Tallahassee, Fla: U.S. Geological Survey, 1993.

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32

Barr, G. L. Application of ground-penetrating radar methods in determining hydrogeologic conditions in a karst area, west-central Florida. Tallahassee, Fla: U.S. Geological Survey, 1993.

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33

Barr, G. L. Application of ground-penetrating radar methods in determining hydrogeologic conditions in a karst area, west-central Florida. Tallahassee, Fla: U.S. Geological Survey, 1993.

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34

Morey, Rexford M. Ground penetrating radar for evaluating subsurface conditions for transportation facilities. Washington, D.C: National Academy Press, 1998.

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35

H, Powers Michael, and Geological Survey (U.S.), eds. GPRMODEL: One-dimensional pull waveform forward modeling of ground penetrating radar data. [Denver, Colo.]: U.S. Geological Survey, 1992.

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36

Ulriksen, C. Peter F. Application of impulse radar to civil engineering. Hudson, New Hampshire: Geophysical Survey Systems, 1985.

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37

Finkelʹshteĭn, M. I. Primenenie radiolokat͡s︡ionnogo podpoverkhnostnogo zondirovanii͡a︡ v inzhenernoĭ geologii. Moskva: "Nedra", 1986.

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38

J, Friedel Michael, ed. Electromagnetic investigation of abandoned mines in the Galena, KS, area. Washington, D.C: Bureau of Mines, U.S. Dept. of the Interior, 1990.

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39

Foss, Maureen M. Coal mine hazard detection using in-seam ground-penetrating-radar transillumination. Pittsburgh, Pa: U.S. Dept. of the Interior, Bureau of Mines, 1987.

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40

Church, Ronald H. Evaluation of a ground penetrating radar system for detecting subsurface anomalies. Pittsburgh, Pa: U.S. Dept. of the Interior, Bureau of Mines, 1985.

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41

United States. Bureau of Mines. Evaluation of A Ground Penetrating Radar System For Detecting Subsurface Anomalies. S.l: s.n, 1986.

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42

Munk, Jens. Detection of underground voids in Ohio by use of geophysical methods. Columbus, Ohio: U.S. Dept. of the Interior, U.S. Geological Survey, 1997.

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43

Munk, Jens. Detection of underground voids in Ohio by use of geophysical methods. Columbus, Ohio: U.S. Dept. of the Interior, U.S. Geological Survey, 1997.

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44

H, Powers Michael, and Geological Survey (U.S.), eds. GPRMODEL: One-dimensional pull waveform forward modeling of ground penetrating radar data. [Denver, Colo.]: U.S. Geological Survey, 1992.

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45

H, Powers Michael, and Geological Survey (U.S.), eds. GPRMODEL: One-dimensional pull waveform forward modeling of ground penetrating radar data. [Denver, Colo.]: U.S. Geological Survey, 1992.

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46

H, Powers Michael, and Geological Survey (U.S.), eds. GPRMODEL: One-dimensional pull waveform forward modeling of ground penetrating radar data. [Denver, Colo.]: U.S. Geological Survey, 1992.

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47

Gpr Remote Sensing In Archaeology. Springer, 2012.

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48

Maser, Kenneth R. Ground Penetrating Radar Surveys to Characterize Pavement Layer Thickness Variations at Gpr Sites. Strategic Highway Research Program (Shrp), 1994.

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49

Sample analysis and modeling to determine GPR capability for mapping fluvial mine tailings in the Coeur d'Alene River channel. [Reston, Va.?]: U.S. Dept. of the Interior, U.S. Geological Survey, 1996.

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50

Geißler, Fabian. Erweiterung eines miniaturisierten FMCW-Radarmoduls. Technische Universität Dresden, 2021. http://dx.doi.org/10.25368/2022.401.

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This thesis presents the design of a miniature frequency modulated continuous wave (FMCW) radar with a frequency range of 50 MHz to 3 GHz using only commercial off the shelf (COTS) components. The system is intended for use as ground penetrating radar (GPR) as part of a lunar lander. State of the art topologies for ultra wideband signal synthesis are presented and compared. The theoretical background of split frequency ramps and the thus required stitching of baseband signals is discussed. The schematic design, layout and software development is described. The characterization of the radar system shows that the specification is met within a temperature range of −40 °C to 75 °C and while exposition to radiation with an accumulated dose of up to 168 Gy. The use of COTS components does not impair the performance. Finally suggestions for hard- and software improvements are given, that resulted from working with the radar system.
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