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Michael Elad

Michael Elad (born December 10, 1963) is a professor of Computer Science at the Technion - Israel Institute of Technology. His work includes fundamental contributions in the field of sparse representations, and deployment of these ideas to algorithms and applications in signal processing, image processing and machine learning.

Michael Elad
Michael Elad (2017)
Born (1963-12-10) 10 December 1963 (age 60)
NationalityIsraeli
Alma materTechnion
Known forSparse Representations, K-SVD, Image Super-Resolution
Scientific career
FieldsEngineering, Computer Science, Mathematics, Statistics
InstitutionsTechnion
Stanford University
Doctoral advisorArie Feuer
Doctoral studentsMichal Aharon

Academic career edit

Elad holds a B.Sc. (1986), M.Sc. (1988) and D.Sc. (1997) in electrical engineering from the Technion - Israel Institute of Technology. His M.Sc., under the guidance of Prof. David Malah, focused on video compression algorithms; and his D.Sc. on super-resolution algorithms for image sequences, guided by Prof. Arie Feuer.

After several years (1997–2001) in industrial research in Hewlett-Packard Lab Israel and in Jigami, Michael took a research associate position at Stanford University from 2001 to 2003, working closely with Prof. Gene Golub (CS-Stanford), Prof. Peyman Milanfar (EE-UCSC) and Prof. David L. Donoho (Statistics-Stanford).

In 2003, Elad assumed a tenure-track faculty position in the Technion's computer science department. He was tenured and promoted to associate professorship in 2007, and promoted to full-professorship in 2010.

  • Associate editor for IEEE-Transactions on Image Processing (2007–2011).
  • Associate editor for IEEE-Transactions on Information Theory (2011–2014).
  • Associate editor for Applied Computational Harmonic Analysis (2012–2015).
  • Associate editor for SIAM Imaging Sciences – SIIMS (2010–2015).
  • Senior editor for IEEE Signal Processing Letters (2012–2014).
  • Since January 2016, he is serving as the Editor-in-Chief for SIAM Imaging Sciences – SIIMS, the prime venue for journal publications in the field of image processing.

Research edit

Michael Elad works in the fields of signal processing and image processing, specializing in particular on inverse problems and sparse representations. The field of sparse representations introduces a universal dimensionality reduction model for data sources and signals based on "sparsity", along with various theoretical and practical tools for implementing it. In recent years this field has been shown to be intimately connected to deep-learning architectures and algorithms. Prof. Elad has authored hundreds of technical publications in this field, many of which have led to exceptional impact. Among these, he is the creator of the K-SVD algorithm,[1] together with Michal Aharon and Bruckstein, and he is also the author of the 2010 book[2] "Sparse and Redundant Representations: From Theory to Applications in Signal and Image Processing".

In 2017, Prof. Elad and Yaniv Romano (his PhD student) created a specialized MOOC on sparse representation theory, given under edX.

In 2015-2018 Prof. Elad headed the Rothschild-Technion Program for Excellence. This is a flagship undergraduate program at the Technion, meant for exceptional students with emphasis on tailored and challenging study tracks for each of the ~50 students enrolled, along with an exposure to research.

Awards and recognition edit

Elad was the recipient of the 2008 and 2015 Henri Taub Prize for academic excellence, the 2010 Hershel-Rich prize for innovation, and the 2017 Yanai prize for excellence in teaching. His 2009 SIAM Review paper[3] with Donoho and Bruckstein received the SIAG Imaging-Science Prize in 2014. Michael is an IEEE Fellow since 2012 (for contributions to sparsity and redundancy in image processing) and he was named a SIAM Fellow in 2018[4] (for contributions to the theory and development of sparse representations and their applications to signal and image processing). He was awarded the prestigious ERC advanced grant during the years 2013-2018. Prof. Elad is the recipient of three IEEE awards in 2018: (i) The IEEE Signal Processing Society (SPS) Technical Achievement Award for contributions to sparsity-based signal processing; (ii) The IEEE SPS Sustained Impact Paper Award for his K-SVD paper mentioned above; and (iii) The SPS best paper award for his paper on the Analysis K-SVD.[5]

Prof. Elad appeared in the for the years 2015, 2016, 2017, and 2018, published by Clarivate Analytics (formerly Thompson-Reuters). These lists include the ~3500 world’s most influential minds in science, covering various disciplines, from Immunology and Agriculture, through Chemistry and Physics, all the way to Computer Sciences and Engineering.

Received the Rothschild Prize in Engineering for 2024[6]

References edit

  1. ^ Aharon, M.; Elad, M.; Bruckstein, A.M. (2006), "The K-SVD: An Algorithm for Designing of Overcomplete Dictionaries for Sparse Representation" (PDF), IEEE Transactions on Signal Processing, 11 (54): 4311–4322, Bibcode:2006ITSP...54.4311A, doi:10.1109/TSP.2006.881199, S2CID 7477309.
  2. ^ Elad, Michael (2010), Sparse and Redundant Representations: From Theory to Applications in Signal and Image Processing, ISBN 978-1441970107.
  3. ^ Bruckstein, A.M.; Donoho, D.L.; Elad, M. (2009), "From Sparse Solutions of Systems of Equations to Sparse Modeling of Signals and Images" (PDF), SIAM Review, 2 (51): 34–81, Bibcode:2009SIAMR..51...34B, CiteSeerX 10.1.1.102.4697, doi:10.1137/060657704.
  4. ^ "SIAM Announces Class of 2018 Fellows", SIAM News, March 29, 2018
  5. ^ Rubinstein, R.; peleg, T.; Elad, M. (2013), "Analysis K-SVD: A Dictionary-Learning Algorithm for the Analysis Sparse Model" (PDF), IEEE Transactions on Signal Processing, 61 (3): 661, Bibcode:2013ITSP...61..661R, CiteSeerX 10.1.1.295.4488, doi:10.1109/TSP.2012.2226445, S2CID 15495804.
  6. ^ The Rothschild Prize

External links edit

  • Michael Elad's Webpage
  • Michael Elad on Google-Scholar
  • Michael Elad on the Mathematics Genealogy Project
  • Michael Elad's edX Course

michael, elad, born, december, 1963, professor, computer, science, technion, israel, institute, technology, work, includes, fundamental, contributions, field, sparse, representations, deployment, these, ideas, algorithms, applications, signal, processing, imag. Michael Elad born December 10 1963 is a professor of Computer Science at the Technion Israel Institute of Technology His work includes fundamental contributions in the field of sparse representations and deployment of these ideas to algorithms and applications in signal processing image processing and machine learning Michael EladMichael Elad 2017 Born 1963 12 10 10 December 1963 age 60 Haifa IsraelNationalityIsraeliAlma materTechnionKnown forSparse Representations K SVD Image Super ResolutionScientific careerFieldsEngineering Computer Science Mathematics StatisticsInstitutionsTechnion Stanford UniversityDoctoral advisorArie FeuerDoctoral studentsMichal Aharon Contents 1 Academic career 2 Research 3 Awards and recognition 4 References 5 External linksAcademic career editElad holds a B Sc 1986 M Sc 1988 and D Sc 1997 in electrical engineering from the Technion Israel Institute of Technology His M Sc under the guidance of Prof David Malah focused on video compression algorithms and his D Sc on super resolution algorithms for image sequences guided by Prof Arie Feuer After several years 1997 2001 in industrial research in Hewlett Packard Lab Israel and in Jigami Michael took a research associate position at Stanford University from 2001 to 2003 working closely with Prof Gene Golub CS Stanford Prof Peyman Milanfar EE UCSC and Prof David L Donoho Statistics Stanford In 2003 Elad assumed a tenure track faculty position in the Technion s computer science department He was tenured and promoted to associate professorship in 2007 and promoted to full professorship in 2010 Associate editor for IEEE Transactions on Image Processing 2007 2011 Associate editor for IEEE Transactions on Information Theory 2011 2014 Associate editor for Applied Computational Harmonic Analysis 2012 2015 Associate editor for SIAM Imaging Sciences SIIMS 2010 2015 Senior editor for IEEE Signal Processing Letters 2012 2014 Since January 2016 he is serving as the Editor in Chief for SIAM Imaging Sciences SIIMS the prime venue for journal publications in the field of image processing Research editMichael Elad works in the fields of signal processing and image processing specializing in particular on inverse problems and sparse representations The field of sparse representations introduces a universal dimensionality reduction model for data sources and signals based on sparsity along with various theoretical and practical tools for implementing it In recent years this field has been shown to be intimately connected to deep learning architectures and algorithms Prof Elad has authored hundreds of technical publications in this field many of which have led to exceptional impact Among these he is the creator of the K SVD algorithm 1 together with Michal Aharon and Bruckstein and he is also the author of the 2010 book 2 Sparse and Redundant Representations From Theory to Applications in Signal and Image Processing In 2017 Prof Elad and Yaniv Romano his PhD student created a specialized MOOC on sparse representation theory given under edX In 2015 2018 Prof Elad headed the Rothschild Technion Program for Excellence This is a flagship undergraduate program at the Technion meant for exceptional students with emphasis on tailored and challenging study tracks for each of the 50 students enrolled along with an exposure to research Awards and recognition editElad was the recipient of the 2008 and 2015 Henri Taub Prize for academic excellence the 2010 Hershel Rich prize for innovation and the 2017 Yanai prize for excellence in teaching His 2009 SIAM Review paper 3 with Donoho and Bruckstein received the SIAG Imaging Science Prize in 2014 Michael is an IEEE Fellow since 2012 for contributions to sparsity and redundancy in image processing and he was named a SIAM Fellow in 2018 4 for contributions to the theory and development of sparse representations and their applications to signal and image processing He was awarded the prestigious ERC advanced grant during the years 2013 2018 Prof Elad is the recipient of three IEEE awards in 2018 i The IEEE Signal Processing Society SPS Technical Achievement Award for contributions to sparsity based signal processing ii The IEEE SPS Sustained Impact Paper Award for his K SVD paper mentioned above and iii The SPS best paper award for his paper on the Analysis K SVD 5 Prof Elad appeared in the 1 for the years 2015 2016 2017 and 2018 published by Clarivate Analytics formerly Thompson Reuters These lists include the 3500 world s most influential minds in science covering various disciplines from Immunology and Agriculture through Chemistry and Physics all the way to Computer Sciences and Engineering Received the Rothschild Prize in Engineering for 2024 6 References edit Aharon M Elad M Bruckstein A M 2006 The K SVD An Algorithm for Designing of Overcomplete Dictionaries for Sparse Representation PDF IEEE Transactions on Signal Processing 11 54 4311 4322 Bibcode 2006ITSP 54 4311A doi 10 1109 TSP 2006 881199 S2CID 7477309 Elad Michael 2010 Sparse and Redundant Representations From Theory to Applications in Signal and Image Processing ISBN 978 1441970107 Bruckstein A M Donoho D L Elad M 2009 From Sparse Solutions of Systems of Equations to Sparse Modeling of Signals and Images PDF SIAM Review 2 51 34 81 Bibcode 2009SIAMR 51 34B CiteSeerX 10 1 1 102 4697 doi 10 1137 060657704 SIAM Announces Class of 2018 Fellows SIAM News March 29 2018 Rubinstein R peleg T Elad M 2013 Analysis K SVD A Dictionary Learning Algorithm for the Analysis Sparse Model PDF IEEE Transactions on Signal Processing 61 3 661 Bibcode 2013ITSP 61 661R CiteSeerX 10 1 1 295 4488 doi 10 1109 TSP 2012 2226445 S2CID 15495804 The Rothschild PrizeExternal links editMichael Elad s Webpage Michael Elad on Google Scholar Michael Elad on the Mathematics Genealogy Project Michael Elad s edX Course Retrieved from https en wikipedia org w index php title Michael Elad amp oldid 1221781690, wikipedia, wiki, book, books, library,

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