Prof. Dr.-Ing. Johann F. Böhme

Emeritierter Professor

Signaltheorie

Adresse:
Ruhr-Universität Bochum
Fakultät für Elektrotechnik und Informationstechnik
Signaltheorie
Universitätsstraße 150
D-44801 Bochum

Raum:
ID 1/145

Telefon:
(+49)(0)234 / 32 - 28996

E-Mail:
johann.boehme(at)rub.de

Lebenslauf

Johann F. Böhme wurde am 26. Januar 1940 in Senftenberg, Deutschland, geboren. Er erhielt 1966 das Diplom in Mathematik, 1970 den Dr.-Ing. und 1977 die Habilitation, beide in Informatik, entsprechend von der Technischen Universität Hannover, der Universität Erlangen-Nürnberg und der Universität Bonn.

Von 1967 bis 1970 war er wissenschaftlicher Mitarbeiter bei Krupp Atlas Elektronik, Bremen, und an der Universität Erlangen-Nürnberg. Von 1970 bis 1974 leitete er eine Sonar-Forschungsgruppe bei Krupp Atlas Elektronik, Bremen. Danach wechselte er bis 1978 als Leiter einer Forschungsgruppe für Signalverarbeitung an die Universität Bonn und später an das Forschungsinstitut für Hochfrequenzphysik der FGAN, Wachtberg-Werthhoven.

Seit 1980 ist er Professor an der Fakultät für Elektrotechnik und Informationstechnik der Ruhr-Universität Bochum, wo er bis 2005 den Lehrstuhl für Signaltheorie leitete. Seitdem ist er Professor im Ruhestand. Er hat rund 35 Doktorarbeiten betreut. Zehn seiner ehemaligen Studenten sind inzwischen ordentliche Professoren an renommierten Universitäten in Österreich, Kanada, Deutschland, Norwegen, Spanien und den USA. Mindestens acht weitere Ehemalige sind mittlerweile Professoren an Fachhochschulen oder entsprechenden Institutionen.

Neben seiner Gutachtertätigkeit für international anerkannte Fachzeitschriften und wissenschaftliche Stiftungen hat er Unternehmen wie Volkswagen, Ford, Bosch und Atlas Elektronik umfassend beraten.

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Forschung

Seine Forschungsinteressen liegen auf dem Gebiet der statistischen Signalverarbeitung. Dazu gehört nicht nur die Signalverarbeitung von Sensorarrays mit Anwendungen in den Bereichen Sonar, Unterwasserkommunikation, seismische Überwachung und seismische Exploration, sondern auch die Signalverarbeitung in Kraftfahrzeugen mit Anwendungen in den Bereichen Verbrennungsüberwachung und Motormanagement. Er ist Autor oder Mitautor von 4 Büchern oder Akademischen Schriften, 10 Buchkapiteln, über 60 begutachteten Zeitschriftenbeiträgen und mehr als 200 begutachteten Konferenzbeiträgen.

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Ämter und Mitgliedschaften

Er ist Ehrenmitglied des Redaktionsausschusses des International Journal of Electronics and Communications (AEÜ) und von Elsevier's Digital Signal Processing. Er wurde 1990 zum Fellow des Institute of Electrical and Electronics Engineers, 1998 zum Mitglied der Nordrhein-Westfälischen Akademie der Wissenschaften, 2001 zum ordentlichen Mitglied von acatech, der Deutschen Akademie der Technikwissenschaften, 2005 zum Sekretar der Klasse für Ingenieurwissenschaften und Wirtschaftswissenschaften der Nordrhein-Westfälischen Akademie der Wissenschaften und 2006 zum Korrespondierenden Mitglied der Königlichen Spanischen Akademie der Ingenieurwissenschaften gewählt.

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Ehrungen und Auszeichnungen

Im Jahr 2003 erhielt er den IEEE Signal Processing Society Technical Achievement Award, 2008 die Ehrendoktorwürde der Universität von Montenegro und den Titel eines Ehrenprofessors der East China University of Science and Technology in Shanghai. Im Jahr 2013 wurde er zum ersten deutschen Fellow der European Association for Signal Processing gewählt.

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2016

[1]
E. J. Powers u. a., „Time-frequency diagnosis, condition monitoring, and fault detection“, in Time frequency signal analysis and processing, B. Boashash, Hrsg. Amsterdam: Acad.emic Pr., 2016, S. 857–913. doi: 10.1016/b978-0-12-398499-9.00015-7.

2012

[1]
P.-J. Chung und J. F. Böhme, „The methodology of the maximum likelihood approach: Estimation, detection, and exploration of seismic events“, IEEE signal processing magazine / Institute of Electrical and Electronics Engineers, Bd. 29, Nr. 3, S. 40–46, 2012, doi: 10.1109/msp.2012.2182949.

2005

[1]
M. Pesavento, S. Shahbazpanahi, J. F. Böhme, und A. Gershman, „Exploiting Multiple Shift Invariances in Multidimensional Harmonic Retrieval of Damped Exponentials“, in Proceedings / 2005 IEEE International Conference on Acoustics, Speech, and Signal Processing, Philadelphia, 2005, S. 1017–1020. doi: 10.1109/icassp.2005.1416184.
[2]
P.-J. Chung, W. J. J. Roberts, und J. F. Böhme, „Recursive K-distribution parameter estimation“, IEEE transactions on signal processing / Institute of Electrical and Electronics Engineers, Bd. 53, Nr. 2, S. 397–402, 2005, doi: 10.1109/tsp.2004.840811.

2004

[1]
M. Pesavento, C. F. Mecklenbräuker, und J. F. Böhme, „Multidimensional Rank Reduction Estimator for Parametric MIMO Channel Models“, EURASIP journal on advances in signal processing, Bd. 2004, Nr. 9, Art. Nr. 839148, 2004, doi: 10.1155/s1110865704401036.

2003

[1]
S. Carstens-Behrens und J. F. Böhme, „Combustion Diagnosis by Time-Frequency Analysis of Pressure and Structure-Borne Sound Signals“, in Time frequency signal analysis and processing, B. Boashash, Hrsg. Amsterdam: Elsevier, 2003, S. 635–642.
[2]
R. Villarino und J. F. Böhme, „Misfire detection in spark-ignition engines with the EM algorithm“, in Proceedings of the 3rd IEEE International Symposium on Signal Processing and Information Technology, Darmstadt, 2003, S. 142–145. doi: 10.1109/isspit.2003.1341080.
[3]
R. Villarino und J. F. Böhme, „Fast in-cylinder pressure reconstruction from structure-borne sound using the EM algorithm“, in Proceedings / 2003 IEEE International Conference on Acoustics, Speech, and Signal Processing, Hong Kong, 2003, S. 597–600. doi: 10.1109/icassp.2003.1201752.
[4]
M. Pesavento, C. F. Mecklenbrauker, und J. F. Böhme, „Multi-dimensional harmonic estimation using K-D RARE in application to MIMO channel estimation“, in Proceedings / 2003 IEEE International Conference on Acoustics, Speech, and Signal Processing, Hong Kong, 2003, S. 644–647. doi: 10.1109/icassp.2003.1202725.
[5]
M. Buhren, M. Pesavento, und J. F. Böhme, „A new approach to array interpolation by generation of artificial shift invariances: interpolated ESPRIT“, in Proceedings / 2003 IEEE International Conference on Acoustics, Speech, and Signal Processing, Hong Kong, 2003, S. 205–208. doi: 10.1109/icassp.2003.1199904.
[6]
F. Schulz, R. Weber, und J. F. Böhme, „Model-based multi spike initialization of blind adaptive equalizers“, in Proceedings of the 3rd IEEE International Symposium on Signal Processing and Information Technology, Darmstadt, 2003, S. 506–509. doi: 10.1109/isspit.2003.1341169.
[7]
M. Pesavento, K. Gulati, und J. F. Böhme, „Estimating parameters of two-dimensional damped exponential mixtures“, in Proceedings of the 3rd IEEE International Symposium on Signal Processing and Information Technology, Darmstadt, 2003, S. 455–458. doi: 10.1109/isspit.2003.1341156.
[8]
M. Pesavento, C. F. Mecklenbrauker, und J. F. Böhme, „New results on almost-sure identifiability of 2d-harmonic retrieval“, in Proceedings of the 2003 IEEE Workshop on Statistical Signal Processing, St. Louis, 2003, S. 133–136. doi: 10.1109/ssp.2003.1289358.
[9]
M. Pesavento, C. Mecklenbrauker, und J. F. Böhme, „MD-harmonic retrieval: exploiting algebraic structure in parameter estimation and association“, in Proceedings of the 2003 IEEE Workshop on Statistical Signal Processing, St. Louis, 2003, S. 129–132. doi: 10.1109/ssp.2003.1289357.
[10]
J. F. Böhme und R. Weber, „Underwater communication with vertical receiver arrays“, in Applications of space-time adaptive processing, R. Klemm, Hrsg. London: Institution of Engineering and Technology, 2003, S. 827–856. doi: 10.1049/pbra014e_ch23.
[11]
I. Djurovic, L. Stankovic, und J. F. Böhme, „Robust L-estimation based forms of signal transforms and time-frequency representations“, IEEE transactions on signal processing / Institute of Electrical and Electronics Engineers, Bd. 51, Nr. 7, S. 1753–1761, 2003, doi: 10.1109/tsp.2003.812739.
[12]
P.-J. Chung und J. F. Böhme, „EM and SAGE algorithms for towed array data“, in Applications of Space-Time Adaptive Processing, R. Klemm, Hrsg. London: Institution of Engineering and Technology, 2003, S. 733–754. doi: 10.1049/pbra014e_ch20.
[13]
P.-J. Chung und J. F. Böhme, „Recursive EM and SAGE-inspired algorithms with application to DOA estimation“, IEEE transactions on signal processing / Institute of Electrical and Electronics Engineers, Bd. 53, Nr. 8, S. 2664–2677, 2003, doi: 10.1109/tsp.2005.850339.

2002

[1]
S. Carstens-Behrens, M. Urlaub, J. F. Böhme, J. Förster, und F. Raichle, „FEM Approximation of Internal Combustion Chambers for Knock Investigations“, SAE technical papers / Society of Automotive Engineers, Bd. 2002, Art. Nr. 2002-01–0237, 2002, doi: 10.4271/2002-01-0237.
[2]
M. Pesavento, C. F. Mecklenbrauker, und J. F. Böhme, „Double-directional radio channel estimation using mD-RARE“, in Conference Record of the Thirty-Sixth Asilomar Conference on Signals, Systems and Computers, Pacific Grove, 2002, S. 594–598. doi: 10.1109/acssc.2002.1197250.
[3]
P.-J. Chung und J. F. Böhme, „Recursive EM algorithm for stochastic ML DOA estimation“, in Proceedings / 2002 IEEE International Conference on Acoustics, Speech, and Signal Processing, Orlando, 2002, S. III-3029-III–3032. doi: 10.1109/icassp.2002.5745287.
[4]
A. Waldhorst, R. Weber, F. Schulz, und J. F. Böhme, „Initializing Blind Adaptive Equalizers Using A-Priori Environmental Knowledge“, in Proceedings of the sixth European Conference on Underwater Acoustics ECUA 2002, Gdańsk, 2002, S. 555–560.
[5]
R. Weber, F. Schulz, A. Waldhorst, und J. F. Böhme, „Blind Decision-Feedback Equalization of Shallow Water Acoustic Channels“, in Proceedings of the sixth European Conference on Underwater Acoustics ECUA 2002, Gdańsk, 2002, S. 549–554.
[6]
M. Pesavento und J. F. Böhme, „Eigenstructure-based azimuth and elevation estimation in sparse uniform rectangular arrays“, in Sensor Array and Multichannel Signal Processing Workshop Proceedings, Rosslyn, 2002, S. 327–331. doi: 10.1109/sam.2002.1191054.
[7]
M. Pesavento und J. F. Böhme, „Direction of arrival estimation in uniform circular arrays composed of directional elements“, in Sensor Array and Multichannel Signal Processing Workshop Proceedings, Rosslyn, 2002, S. 503–507. doi: 10.1109/sam.2002.1191091.
[8]
P.-J. Chung und J. F. Böhme, „Experimental study of the EM and SAGE algorithms with application to sonar data“, in Sensor Array and Multichannel Signal Processing Workshop Proceedings, Rosslyn, 2002, S. 77–81. doi: 10.1109/sam.2002.1191003.
[9]
P.-J. Chung und J. F. Böhme, „DOA estimation of multiple moving sources using recursive EM algorithms“, in Sensor Array and Multichannel Signal Processing Workshop Proceedings, Rosslyn, 2002, S. 323–326. doi: 10.1109/sam.2002.1191053.
[10]
R. Weber und J. F. Böhme, „Adaptive super-exponential methods for blind multichannel equalization“, in Sensor Array and Multichannel Signal Processing Workshop Proceedings, Rosslyn, 2002, S. 585–589. doi: 10.1109/sam.2002.1191108.
[11]
R. Weber, F. Schulz, und J. F. Böhme, „Blind adaptive equalization of underwater acoustic channels using second-order statistics“, in OCEANS ’02 MTS/IEEE, Biloxi, 2002, S. 2444–2452. doi: 10.1109/oceans.2002.1192010.
[12]
R. Weber, F. Schulz, A. Waldhorst, und J. F. Böhme, „Adaptive multichannel super-exponential blind equalization of underwater acoustic channels“, in OCEANS ’02 MTS/IEEE, Biloxi, 2002, S. 2429–2437. doi: 10.1109/oceans.2002.1192008.
[13]
P.-J. Chung und J. F. Böhme, „DOA estimation using fast EM and SAGE algorithms“, Signal processing, Bd. 82, Nr. 11, S. 1753–1762, 2002, doi: 10.1016/s0165-1684(02)00337-7.
[14]
I. Djurović, Lj. Stanković, und J. F. Böhme, „Estimates of the Wigner Distribution in Gaussian Noise Environment“, AEÜ : International journal of electronics and communications, Bd. 56, Nr. 5, S. 337–340, 2002, doi: 10.1078/1434-8411-54100110.
[15]
I. Djurovic, L. Stankovic, und J. F. Böhme, „Myriad filter based form of the DFT“, in EUSIPCO 2002, 2002, S. 433–436.

2001

[1]
P.-J. Chung, M. L. Jost, und J. F. Böhme, „Estimation of seismic-wave parameters and signal detection using maximum-likelihood methods“, Computers & geosciences, Bd. 27, Nr. 2, S. 147–156, 2001, doi: 10.1016/s0098-3004(00)00088-1.
[2]
C. Mecklenbräuker, J. F. Böhme, und A. Gershman, „Broadband ML-approach to environmental parameter estimation in shallow ocean at low SNR“, Signal processing, Bd. 81, Nr. 2, S. 389–401, 2001, doi: 10.1016/s0165-1684(00)00215-2.
[3]
P.-J. Chung und J. F. Böhme, „Comparative convergence analysis of EM and SAGE algorithms in DOA estimation“, in Proceedings / 2001 IEEE International Conference on Acoustics, Speech, and Signal Processing, Salt Lake City, 2001, S. 2993–2996. doi: 10.1109/icassp.2001.940279.
[4]
P.-J. Chung und J. F. Böhme, „Comparative convergence analysis of EM and SAGE algorithms in DOA estimation“, IEEE transactions on signal processing / Institute of Electrical and Electronics Engineers, Bd. 49, Nr. 12, S. 2940–2949, 2001, doi: 10.1109/78.969503.
[5]
A. Waldhorst, R. Weber, und J. F. Böhme, „Blind multichannel decision-feedback equalization of precoded OQPSK signals“, The journal of the Acoustical Society of America, Bd. 109, Nr. Supplement 5, S. 2477, 2001, doi: 10.1121/1.4744803.
[6]
J. Ringelstein, L. Schmitt, und J. F. Böhme, „Decoupled estimation of DOA and coherence loss for multiple sources in uncertain propagation environments“, in Proceedings / 2001 IEEE International Conference on Acoustics, Speech, and Signal Processing, Salt Lake City, 2001, S. 2997–3000. doi: 10.1109/icassp.2001.940280.
[7]
S. Carstens-Behrens und J. F. Böhme, „Fast knock detection using pattern signals“, in Proceedings / 2001 IEEE International Conference on Acoustics, Speech, and Signal Processing, Salt Lake City, 2001, S. 3145–3148. doi: 10.1109/icassp.2001.940325.
[8]
P.-J. Chung und J. F. Böhme, „DOA estimation using fast EM algorithm“, in ISSPA 2001 : Sixth International Symposium on Signal Processing and its Applications, Kuala Lumpur, 2001, S. 128–131. doi: 10.1109/isspa.2001.949792.
[9]
P.-J. Chung und J. F. Böhme, „Recursive EM and SAGE algorithms“, in Proceedings of the 11th IEEE Signal Processing Workshop on Statistical Signal Processing, Singapore, 2001, S. 540–543. doi: 10.1109/ssp.2001.955342.
[10]
S. Carstens-Behrens und J. F. Böhme, „Applying time-frequency methods to pressure and structure-borne sound for combustion diagnosis“, in ISSPA 2001 : Sixth International Symposium on Signal Processing and its Applications, Kuala Lumpur, 2001, S. 256–259. doi: 10.1109/isspa.2001.949826.
[11]
R. Weber, A. Waldhorst, F. Schulz, und J. F. Böhme, „Channel Order Estimation: A Comparative Study“, in Algorithms and software for mobile communications, Berlin, 2001, S. 263–268.
[12]
A. Waldhorst, R. Weber, und J. F. Böhme, „A blind multichannel DFE receiver for precoded OQPSK signal transmission in shallow water“, in Oceans 2001 MTS/IEEE : an ocean odyssey, Honolulu, 2001, S. 2209–2215. doi: 10.1109/oceans.2001.968340.
[13]
R. Weber, A. Waldhorst, F. Schulz, und J. F. Böhme, „Blind receivers for MSK signals transmitted through shallow water“, in Oceans 2001 MTS/IEEE : an ocean odyssey, Honolulu, 2001, S. 2183–2190. doi: 10.1109/oceans.2001.968337.

2000

[1]
A. Gershman und J. F. Böhme, „Comparative study of two-dimensional maximum likelihood and interpolated root-MUSIC with application to teleseismic source localization“, in Proceedings of the Tenth IEEE Workshop on Statistical Signal and Array Processing, Pocono Manor, 2000, S. 68–72. doi: 10.1109/ssap.2000.870083.
[2]
A. Waldhorst, R. Weber, und J. F. Böhme, „A blind receiver for digital communications in shallow water“, in OCEANS 2000 MTS/IEEE, 2000, S. 1839–1846. doi: 10.1109/oceans.2000.882205.
[3]
M. Wagner, J. F. Böhme, und J. Förster, „In-Cylinder Pressure Estimation from Structure-Borne Sound“, SAE technical papers / Society of Automotive Engineers, Bd. 2000, Art. Nr. 2000-01–0930, 2000, doi: 10.4271/2000-01-0930.
[4]
P.-J. Chung, M. L. Jost, und J. F. Böhme, „Multiple phase detection and parameter estimation for processing seismic array data“, in Proceedings / 2000 IEEE International Conference on Acoustics, Speech, and Signal Processing, Istanbul, 2000, S. 3176–3179. doi: 10.1109/icassp.2000.861212.
[5]
J. Ringelstein, A. Gershman, und J. F. Böhme, „Direction finding in random inhomogeneous media in the presence of multiplicative noise“, IEEE signal processing letters / Institute of Electrical and Electronics Engineers, Bd. 7, Nr. 10, S. 269–272, 2000, doi: 10.1109/97.870675.

1999

[1]
C. F. Mecklenbräuker, P. Gerstoft, J. F. Böhme, und P.-J. Chung, „Hypothesis testing for geoacoustic environmental models using likelihood ratio“, The journal of the Acoustical Society of America, Bd. 105, Nr. 3, S. 1738–1748, 1999, doi: 10.1121/1.426712.
[2]
S. Carstens-Behrens, M. Wagner, und J. F. Böhme, „Improved knock detection by time variant filtered structure-borne sound“, in 1999 IEEE International Conference on Acoustics, Speech, and Signal Processing, Phoenix, 1999, S. 2255–2258. doi: 10.1109/icassp.1999.758386.
[3]
M. Westebbe, J. F. Böhme, und H. Krummel, „Application of Geo-Acoustic Inversion Techniques to Subsurface Imaging of Seismic Near Field Scenarios“, in Experimental Acoustic Inversion Methods for Exploration of the Shallow Water Environment, Carvoeiro, 1999, S. 249–261. doi: 10.1007/978-94-011-4112-3_16.
[4]
M. Wagner, S. Carstens-Behrens, und J. F. Böhme, „In-cylinder pressure estimation using structural vibration measurements of spark ignition engines“, in Proceedings of the IEEE Signal Processing Workshop on Higher-Order Statistics. SPW-HOS ’99, Caesarea, 1999, S. 174–177. doi: 10.1109/host.1999.778719.
[5]
J. Ringelstein, A. Gershman, und J. F. Böhme, „Sensor array processing for random inhomogeneous media“, in Advanced signal processing algorithms, architectures, and implementations IX, Denver, 1999, Bd. 3807, S. 267–276. doi: 10.1117/12.367643.

1998

[1]
A. Gershman, E. Németh, und J. F. Böhme, „Robust adaptive beamforming: Experimental results“, in Signal processing IX, 1998, Publiziert.
[2]
D. V. Sidorovich, A. Gershman, und J. F. Böhme, „Processing of experimental seismic array data using 2-D wideband interpolated root-MUSIC“, in Proceedings of the 1998 IEEE International Conference on Acoustics, Speech and Signal Processing, ICASSP ’98 (Cat. No.98CH36181), Seattle, 1998, S. 1985–1988. doi: 10.1109/icassp.1998.681530.
[3]
A. Gershman und J. F. Böhme, „Eigenstructure beamspace root estimator bank with interpolated array“, in Proceedings of the 1998 IEEE International Conference on Acoustics, Speech and Signal Processing, ICASSP ’98 (Cat. No.98CH36181), Seattle, 1998, S. 2017–2020. doi: 10.1109/icassp.1998.681538.
[4]
A. Gershman und J. F. Böhme, „A pseudo-noise approach to direction finding“, Signal processing, Bd. 71, Nr. 1, S. 1–13, 1998, doi: 10.1016/s0165-1684(98)00130-3.
[5]
P.-J. Chung, M. L. Jost, und J. F. Böhme, „Detection of weak Eastern Medditeranean and Middle East Seismic Events using GERESS data“, in Papers : XXVI General Assembly of the European Seismological Commission (ESC), Tel Aviv, 1998, Publiziert.
[6]
A. Gershman und J. F. Böhme, „A pseudo-noise resampling approach to direction of arrival estimation using estimator banks“, in Proceedings: Ninth IEEE SP Workshop on Statistical Signal and Array Processing, Portland, 1998, S. 244–247. doi: 10.1109/ssap.1998.739380.
[7]
M. Westebbe, J. F. Böhme, und H. Krummel, „Model fitting and testing in near surface seismics using maximum likelihood in frequency domain“, in Conference record of the Thirty-Second Asilomar Conference on Signals, Systems & Computers, Pacific Grove, 1998, S. 1311–1315. doi: 10.1109/acssc.1998.751538.
[8]
S. Carstens-Behrens, M. Wagner, und J. F. Böhme, „Detection of Multiple Resonances in Noise“, AEÜ : International journal of electronics and communications, Bd. 52, Nr. 5, S. 285–292, 1998.

1997

[1]
A. Gershman und J. F. Böhme, „Estimator banks: a new tool for direction-of-arrival estimation“, in Advanced signal processing: algorithms, architectures, and implementations VII, San Diego, 1997, Bd. 3162, S. 449–460. doi: 10.1117/12.279503.
[2]
A. Gershman und J. F. Böhme, „Pseudorandomly generated estimator banks: A new resampling scheme for improving the threshold performance of second and higher-order direction finding methods “, in 1997: ICATT’97 - Proc. of II Int. Conf. on Antenna Theory and Techniques, Kyiv, 1997, S. 43–50.
[3]
A. Gershman und J. F. Böhme, „Improved DOA estimation via pseudorandom resampling of spatial spectrum“, IEEE signal processing letters / Institute of Electrical and Electronics Engineers, Bd. 4, Nr. 2, S. 54–57, 1997, doi: 10.1109/97.554472.
[4]
C. F. Meeklenbräuker, P. Gerstoft, und J. F. Böhme, „Generalized likelihood ratio test for selecting a geo-acoustic environmental model“, in 1997 IEEE International Conference on Acoustics, Speech, and Signal Processing, München, 1997, S. 463–466. doi: 10.1109/icassp.1997.599675.
[5]
A. Gershman, C. F. Mecklenbräuker, und J. F. Böhme, „Direction finding with imperfect wavefront coherence: A matrix fitting approach using genetic algorithm“, in 1997 IEEE International Conference on Acoustics, Speech, and Signal Processing, München, 1997, S. 519–522. doi: 10.1109/icassp.1997.599689.
[6]
A. Gershman und J. F. Böhme, „Improving the threshold performance of higher-order direction finding methods via pseudorandomly generated estimator banks“, in Proceedings of the IEEE Signal Processing Workshop on Higher-Order Statistics, Banff, 1997, S. 285–289. doi: 10.1109/host.1997.613532.
[7]
A. Gershman, C. F. Mecklenbräuker, und J. F. Böhme, „Matrix fitting approach to direction of arrival estimation with imperfect spatial coherence of wavefronts“, IEEE transactions on signal processing / Institute of Electrical and Electronics Engineers, Bd. 45, Nr. 7, S. 1894–1899, 1997, doi: 10.1109/78.599968.
[8]
A. Gershman, U. Nickel, und J. F. Böhme, „Adaptive beamforming algorithms with robustness against jammer motion“, IEEE transactions on signal processing / Institute of Electrical and Electronics Engineers, Bd. 45, Nr. 7, S. 1878–1885, 1997, doi: 10.1109/78.599965.
[9]
A. Gershman, J. Ringelstein, und J. F. Böhme, „Removing the outliers in root-MUSIC via conventional beamformer“, Signal processing, Bd. 60, Nr. 2, S. 251–254, 1997, doi: 10.1016/s0165-1684(97)80010-2.
[10]
A. Gershman und J. F. Böhme, „A note on most favorable array geometries for DOA estimation and array interpolation“, IEEE signal processing letters / Institute of Electrical and Electronics Engineers, Bd. 4, Nr. 8, S. 232–235, 1997, doi: 10.1109/97.611287.

1996

[1]
D. V. Sidorovich, C. F. Mecklenbräuker, und J. F. Böhme, „Sequential test and parameter estimation for array processing of seismic data“, in Proceedings of 8th Workshop on Statistical Signal and Array Processing, Corfu, 1996, S. 256–259. doi: 10.1109/ssap.1996.534865.
[2]
A. Gershman, G. V. Serebryakov, und J. F. Böhme, „Constrained Hung-Turner adaptive beam-forming algorithm with additional robustness to wideband and moving jammers“, IEEE transactions on antennas and propagation / Institute of Electrical and Electronics Engineers, Bd. 44, Nr. 3, S. 361–367, 1996, doi: 10.1109/8.486305.
[3]
C. F. Mecklenbräuker, M. Geravanchizadeh, und J. F. Böhme, „Broadband matched field processing using robust prewhitening and multiple window techniques“, in 1996 IEEE International Conference on Acoustics, Speech, and Signal Processing Conference Proceedings, Atlanta, 1996, S. 3081–3084. doi: 10.1109/icassp.1996.550527.
[4]
A. Gershman und J. F. Böhme, „Joint estimation strategy with application to eigenstructure methods“, in Proceedings of 8th Workshop on Statistical Signal and Array Processing, Corfu, 1996, S. 530–533. doi: 10.1109/ssap.1996.534931.
[5]
M. Wagner, B. Yang, und J. F. Böhme, „Error propagation in the PASTd algorithm“, in ISSPA-96: The Fourth International Symposium on Signal Processing and Its Applications, Gold Coast, 1996, S. 204–207.
[6]
A. Gershman, U. Nickel, und J. F. Böhme, „A unified approach to robust adaptive beamforming in non-stationary jammer environments“, in Signal processing VIII, Trieste, 1996, Publiziert.

1995

[1]
J. F. Böhme, „Retrieving Signals from Array Data“, in Monitoring a Comprehensive Test Ban Treaty, Bd. 303, E. S. Husebye und A. M. Dainty, Hrsg. Dordrecht: Springer Netherlands, 1995, S. 587–610. doi: 10.1007/978-94-011-0419-7_31.
[2]
J. F. Böhme, „Statistical array signal processing of measured sonar and seismic data“, in Advanced signal processing algorithms, San Diego, 1995, Bd. 2563, S. 2–20. doi: 10.1117/12.211389.
[3]
C. F. Mecklenbräuker, D. Maiwald, und J. F. Böhme, „F-test in matched field processing: Identifying multimode propagation“, in 1995 International Conference on Acoustics, Speech, and Signal Processing, Detroit, 1995, S. 3123–3126. doi: 10.1109/icassp.1995.479546.
[4]
A. Gershman, A. Matveyev, und J. F. Böhme, „ML estimation of signal power in the presence of unknown noise field-simple approximate estimator and explicit Cramer-Rao bound“, in 1995 International Conference on Acoustics, Speech, and Signal Processing, Detroit, 1995, S. 1824–1827. doi: 10.1109/icassp.1995.480178.
[5]
C. F. Mecklenbräuker, M. Clasen, und J. F. Böhme, „Parametric Approach to Environmental Noise Classification in Shallow Ocean“, in Proceedings of the World Congress on Ultrasonics, Berlin, 1995, Publiziert.
[6]
A. Gershman, A. Matveyev, und J. F. Böhme, „On potential accuracy of source localization in sensor array in the presence of unknown noise field“, in Proceedings of International Conference on Electromagnetics in Advanced Applications, Torino, 1995, S. 275–277.
[7]
A. Gershman, A. Matveyev, und J. F. Böhme, „Stochastic and deterministic Cramer-Rao bounds on direction-of-arrival estimation accuracy in the presence of unknown noise field“, in Quinzième Colloque sur le traitement du signal et des images, Juan-Les-Pins, 1995, S. 245–247.
[8]
A. Gershman, A. Matveyev, und J. F. Böhme, „Maximum likelihood estimation of signal power in sensor array in the presence of unknown noise field“, IEE proceedings Radar, Sonar and Navigation, Bd. 142, Nr. 5, S. 218–224, 1995, doi: 10.1049/ip-rsn:19952141.
[9]
A. Gershman, G. V. Serebryakov, und J. F. Böhme, „Adaptive beamforming projection-type algorithm robust to wideband and moving jammers in narrowband array“, in ICNNSP’95, Nanjing, 1995, S. 1182–1185.
[10]
A. Gershman, U. Nickel, und J. F. Böhme, „Adaptive beamforming robust to moving jammers“, in Institute of Acoustics : Proceedings, Loughborough, 1995, Bd. 17, Nr. 8. doi: 10.25144/20146.
[11]
C. F. Mecklenbräuker, A. Gershman, und J. F. Böhme, „ML-Estimation of Environmental Parameters in Shallow Ocean Using Unknown Broadband Sources“, in ICNNSP’95, Nanjing, 1995, S. 1091–1094.

1994

[1]
D. Z. Arov, Y. I. Abramovich, J. F. Böhme, und D. Maiwald, „Spectral Analysis via the Analytic Continuation Problem“, in Mathematics in signal processing III, Warwick, 1994, Bd. 49, S. 367–374.
[2]
D. Maiwald, J. F. Böhme, und A. Perez Neira, „Non-Stationary Seismic Data Analysis“, in Mathematics in signal processing III, Warwick, 1994, Bd. 49, S. 397–406.
[3]
F. Gersemsky, B. Yang, und J. F. Böhme, „A robust and efficient MUSIC-based algorithm for tracking weak and closely spaced sinusoids“, in Signal processing VII, Edinburgh, 1994, S. 641–644.
[4]
C. F. Mecklenbräuker und J. F. Böhme, „Matched Field Processing in Shallow Ocean: Identification of Multimode Propagation“, in 2nd European Conference on Underwater Acoustics, Lyngby, 1994, Bd. 15445, S. 611–616.
[5]
C. F. Mecklenbräuker und J. F. Böhme, „Matched Field Processing in Shallow Ocean: Signal Arrival Identification using EM Algorithm“, in ICASSP 94 Proceedings, Adelaide, 1994, S. 337–340. doi: 10.1109/icassp.1994.389651.
[6]
D. Maiwald und J. F. Böhme, „Multiple Testing for Seismic Data using Bootstrap“, in ICASSP 94 Proceedings, Adelaide, 1994, S. 89–92. doi: 10.1109/icassp.1994.389900.
[7]
A. Gershman, A. Matveyev, und J. F. Böhme, „Signal power estimation in sensor array: ML estimator and CRB in the case of nonidentical unknown sensor noise powers“, in Conférences / Journées Internationales de Nice sur les Antennes, Nice, 8 - 10 novembre 1994, Nizza, 1994, S. 630–633.

1993

[1]
Y. I. Abramovich, J. F. Böhme, A. Y. Gorokhov, und D. Maiwald, „GEM-algorithm for sea echo Doppler analysis with data corrupted by sparkling interference“, in Advanced signal-processing algorithms, architectures, and implementations, 4, San Diego, 1993, Bd. 2027, S. 194–203. doi: 10.1117/12.160434.
[2]
D. Maiwald, J. W. Dalle Molle, und J. F. Böhme, „Parametric methods for nonstationary seismic data analysis“, in Advanced signal-processing algorithms, architectures, and implementations, 4, San Diego, 1993, Bd. 2027, S. 278–288. doi: 10.1117/12.160442.
[3]
D. Maiwald, J. W. Dalle Molle, und J. F. Böhme, „Model identification and validation of nonstationary seismic signals“, in Signal Processing Workshop on Higher-Order Statistics, South Lake Tahoe, 1993, S. 319–322. doi: 10.1109/host.1993.264544.
[4]
D. Kraus, A. Dhaouadi, und J. F. Böhme, „EM dual maximum likelihood estimation for wideband source location“, in ICASSP-93, Minneapolis, 1993, S. 257–260. doi: 10.1109/icassp.1993.319104.
[5]
D. Maiwald, D. V. Sidorovitch, und J. F. Böhme, „Broadband maximum likelihood wave parameter estimation using polarization sensitive arrays“, in ICASSP-93, Minneapolis, 1993, S. 356–359. doi: 10.1109/icassp.1993.319668.
[6]
J. F. Böhme, Stochastische Signale: eine Einführung in Modelle, Systemtheorie und Statistik. Stuttgart: Teubner, 1993.

1992

[1]
B. Yang und J. F. Böhme, „Rotation-based RLS algorithms: unified derivations, numerical properties, and parallel implementations“, IEEE transactions on signal processing / Institute of Electrical and Electronics Engineers, Bd. 40, Nr. 5, S. 1151–1167, Mai 1992, doi: 10.1109/78.134478.
[2]
B. Yang und J. F. Böhme, „Über parallele und numerisch robuste Algorithmen zur adaptiven Störunterdrückung“, in Kleinheubacher Berichte, Kleinheubach, 1992, Bd. 35.
[3]
D. Maiwald und J. F. Böhme, „Estimation of seismic wave parameters by nonlinear regression“, in IEEE Sixth SP Workshop on Statistical Signal and Array Processing, Victoria, 1992, S. 512–515. doi: 10.1109/ssap.1992.246897.
[4]
J. F. Böhme und D. Maiwald, „ASIC solution for real time inverse kinematic and Jacobien computations“, in Signal processing VI, Brüssel, 1992, S. 1545–1548.
[5]
J. F. Böhme, D. Kraus, und D. Maiwald, „Maximum Likelihood Source Location Estimation via EM Algorithm“, in Signal processing VI, Brüssel, 1992, S. 649–652.
[6]
D. Kraus und J. F. Böhme, „EM Algorithm for Wideband Source Location Estimation“, in Acoustic Signal Processing for Ocean Exploration, Madeira, 1992, Bd. 388, S. 315–320. doi: 10.1007/978-94-011-1604-6_31.
[7]
D. Kraus und J. F. Böhme, „Maximum Likelihood Location Estimation of Wideband Sources Using the EM Algorithm“, in Adaptive systems in control and signal processing 1992, Grenoble, 1992, Bd. 25, S. 487–491. doi: 10.1016/s1474-6670(17)50780-6.
[8]
J. F. Böhme und D. Maiwald, „Wave Parameters Estimation for Seismic Data“, in Proceedings / ISSPA 92, The Third International Symposium on Signal Processing and Its Applications, Gold Coast, 1992, S. 517–520.
[9]
D. Maiwald, G. Bugla, und J. F. Böhme, „Wave Parameters Estimation for Transient Data“, in Acoustic Signal Processing for Ocean Exploration, Madeira, 1992, Bd. 388, S. 321–326. doi: 10.1007/978-94-011-1604-6_32.
[10]
D. Maiwald, D. Kraus, und J. F. Böhme, „Signal Parameter Estimation for Seismic Data“, in Signal processing VI, Brüssel, 1992, S. 1801–1804.
[11]
A. M. Zoubir, T. Grewing, und J. F. Böhme, „Tests for Optimizing Sensor Positions Using Linear Regression“, in Signal processing VI, Brüssel, 1992, S. 641–644.
[12]
J. F. Böhme und A. M. Zoubir, „Application of Higher Order Spectra to Knock Detection in Combustion Engines“, in Proceedings / ISSPA 92, The Third International Symposium on Signal Processing and Its Applications, Gold Coast, 1992, Publiziert.
[13]
J. F. Böhme und A. M. Zoubir, „Identification of Optimum Sensor Locations Using Rank Tests in Linear Models“, in Proceedings / ISSPA 92, The Third International Symposium on Signal Processing and Its Applications, Gold Coast, 1992, S. 590–593.
[14]
F. Kocsis und J. F. Böhme, „Fast algorithms and parallel structures for form factor evaluation“, The visual computer, Bd. 8, Nr. 4, S. 205–216, 1992, doi: 10.1007/bf01900656.

1991

[1]
J. F. Böhme und F. Kocsis, „Reduced complexity algorithms and VLSI structures for the form factor computation“, in Vol. B., Proceedings, Pont-à-Mousson, 1991, Bd. B.
[2]
B. Yang und J. F. Böhme, „A Linear Systolic Array for the Adaptive MVDR Beamformer“, in Numerical Linear Algebra, Digital Signal Processing and Parallel Algorithms, Leuven, 1991, Bd. 70, S. 705–712. doi: 10.1007/978-3-642-75536-1_60.
[3]
D. Maiwald, D. Kraus, G. Bugla, und J. F. Böhme, „A Weighted Least Squares Criterion for Estimation of Signal Parameters in Wavefields“, in   Sonar signal processing, Loughborough, 1991, Bd. 13, S. 95–101. doi: 10.25144/21191.
[4]
J. F. Böhme, D. Timmermann, H. Hahn, und B. J. Hosticka, „CORDIC processor architectures“, in Advanced signal processing algorithms, architectures, and implementations II, San Diego, 1991, Bd. 1566, S. 208–219. doi: 10.1117/12.49829.
[5]
J. F. Böhme und D. Kraus, „Parametric methods for source location estimation“, in Identification and system parameter estimation 1991, Budapest, 1991, Bd. 1992,3, S. 386.
[6]
J. F. Böhme und B. Yang, „Highly parallel and pipelined computing using CORDIC processors and applications to computer graphics, signal processing, and linear algebra“, in Proceedings of congress: innovative developments and applications of microelectronics and information technology, Shanghai, 1991, S. 65–73.
[7]
B. Yang und J. F. Böhme, „Reducing the Computations of the Singular Value Decomposition Array Given by Brent and Luk“, SIAM journal on matrix analysis and applications, Bd. 12, Nr. 4, S. 713–725, 1991, doi: 10.1137/0612055.
[8]
J. F. Böhme, „Array processing“, in Advances in spectrum analysis and array processing, S. S. Haykin, Hrsg. Englewood Cliffs: Prentice-Hall, 1991, S. 1–63.
[9]
J. F. Böhme, A. M. Zoubir, und R. Maschewski, „On the Applicability of Higher Order Spectra for Optimizing Sensor Positions in Knock Detection“, in Higher order statistics, Chamrousse, 1991, S. 343–346.
[10]
J. F. Böhme und A. M. Zoubir, „Bootstrap Multiple Hypotheses Tests for Optimizing Sensor Positions in Knock Detection“, in Proceedings IMA Conference Mathematics and Signal Processing, Dublin, 1991, S. 955–958.

1990

[1]
D. Kraus, G. Schmitz, und J. F. Böhme, „Least squares estimates for source locations and asymptotic behaviours“, in Signal processing V, Barcelona, 1990, S. 649–652.
[2]
B. Yang und J. F. Böhme, „A new orthogonal adaptive algorithm and its systolic implementation for the RLS problem without a desired signal“, in Signal processing V, Barcelona, 1990, S. 677–680.
[3]
B. Yang und J. F. Böhme, „Linear systolic arrays for constrained least-squares problems“, in Mathematics in signal processing II, Warwick, 1990, S. 689–712.
[4]
D. Kraus, C. H. Gierull, und J. F. Böhme, „Maximum Likelihood Estimation of Source Locations Using the EM-Algorithm“, in ASST ’90 7. Aachener Symposium für Signaltheorie, Aachen, 1990, Bd. 253, S. 198–203. doi: 10.1007/978-3-642-76062-4_33.
[5]
T. M. Bossmeyer und J. F. Böhme, „Parametric Detectors for Knock in Spark Ignition Engines“, in ASST ’90 7. Aachener Symposium für Signaltheorie, Aachen, 1990, Bd. 253, S. 48–51. doi: 10.1007/978-3-642-76062-4_8.
[6]
J. F. Böhme und N. Härle, „Ein neuer Klopfdetektor für Ottomotoren“, Automobil-Industrie, Bd. 37, 1990.
[7]
J. F. Böhme und A. M. Zoubir, „Simultaneous tests for optimizing sensor positions in knock detection“, in Signal processing V, Barcelona, 1990, S. 285–288.
[8]
B. Yang und J. F. Böhme, „CORDIC processor arrays for adaptive least squares algorithms“, in Parallel processing in neural systems and computers, 1990, S. 43–46.
[9]
J. F. Böhme und D. König, „Optimizing the CORDIC Algorithm for Processors with Pipeline Architecture“, in Signal processing V, Barcelona, 1990, S. 1391–1394.
[10]
J. F. Böhme und F. Kocsis, „Reduced complexity CORDIC-based metric processor for all digital MLSE CPM receivers“, in Conference proceedings, Budapest, 1990, Publiziert.
[11]
F. Kocsis und J. F. Böhme, „Some Possible Applications of CORDIC Processors in Computer Graphics“, in Proceedings of the European Computer Graphics Conference and Exhibition: Montreux, Switzerland, 4 - 7 September 1990 , Montreux, 1990, Publiziert. doi: 10.2312/egtp.19901001.
[12]
J. F. Böhme und F. Kocsis, „A simple Doppler-corrector and metric processor for a MDPSK receiver using CORDIC elements“, in Signal processing V, Barcelona, 1990, S. 1851–1854.
[13]
D. Kraus und J. F. Böhme, „Asymptotic and empirical results on approximate maximum likelihood and least squares estimates for sensor array processing“, in ICASSP 90, 5: EU, Spectral estimation, Underwater signal processing, Albuquerque, 1990, Bd. 5, S. 2795–2798. doi: 10.1109/icassp.1990.116206.
[14]
A. M. Zoubir und J. F. Böhme, „Optimization of sensor positions in knock detection using relevancy tests of sensor output signals“, in ICASSP 90, 5: EU, Spectral estimation, Underwater signal processing, Albuquerque, 1990, Bd. 5, S. 2627–2630. doi: 10.1109/icassp.1990.116154.
[15]
B. Yang und J. F. Böhme, „Parallel implementations of adaptive multichannel least squares lattice filters“, in 1990 IEEE International Symposium on Circuits and Systems, 2, New Orleans, 1990, Bd. 2, S. 1434–1437. doi: 10.1109/iscas.1990.112401.
[16]
J. F. Böhme und B. Yang, „Parallel and pipelined computing using CORDIC processors and signal processing applications“, in Latvian signal processing international conference, Riga, 1990, S. 277–281.

1989

[1]
D. Kraus und J. F. Böhme, „On least squares criteria for estimation of signal parameters and noise parameters in wavefields“, in Institute of Acoustics : Proceedings, Loughborough, 1989, Bd. 11, Nr. 8. doi: 10.25144/21677.
[2]
J. F. Böhme, G. Schmidt, H. Hahn, D. Timmermann, B. Hosticka, und G. Zimmer, „CMOS-implementation of optimized 16-bit cordic-processors and evaluation tools “, in Proceedings / URSI International Symposion on Signals, Systems, and Electronics, Erlangen, 1989, S. 760–763.
[3]
B. Yang und J. F. Böhme, „On a parallel implementation of the multichannel adaptive least-squares lattice filter“, in Proceedings / URSI International Symposion on Signals, Systems, and Electronics, Erlangen, 1989, S. 236–239.
[4]
J. F. Böhme, D. Kraus, und D. Maiwald, „Least squares methods for estimation of source locations, signal spectral matrices and noise spectral matrices“, in Proceedings / URSI International Symposion on Signals, Systems, and Electronics, Erlangen, 1989, S. 228–231.
[5]
J. F. Böhme, „Signal detection and parameter estimation using least squares“, in Proceedings / URSI International Symposion on Signals, Systems, and Electronics, Erlangen, 1989, S. 213–216.
[6]
B. Yang und J. F. Böhme, „Reducing The Computations Of The SVD Array Given By Brent And Luk“, in Advanced algorithms and architectures for signal processing IV, San Diego, 1989, Bd. 1152, S. 92–102. doi: 10.1117/12.962268.
[7]
J. F. Böhme, „Location And Spectrum Estimation By Approximate Maximum Likelihood“, in Advanced algorithms and architectures for signal processing IV, San Diego, Nov. 1989, Bd. 1152, S. 326–337. doi: 10.1117/12.962289.
[8]
J. F. Böhme und B. Yang, „Systolic arrays for adaptive least squares algorithms“, in Signal processing, scattering and operator theory, and numerical methods, Amsterdem, 1989, S. 197–205.
[9]
B. Yang und J. F. Böhme, „On a systolic implementation and the numerical properties of a multiple constrained adaptive beamformer“, in Proceedings ICASSP 89, 4: Spectral Estimation. VLSI. Underwater Signal Processing, Glasgow, 1989, Bd. 4, S. 2819–2822. doi: 10.1109/icassp.1989.267055.

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Ruhr-Universität Bochum
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