00876cam0-2200301---450-99000401723040332120111102132249.0000401723FED01000401723(Aleph)000401723FED0100040172319990604d1968----km-y0itay50------barumRO----e---000yyDictionar de cuvinte, expresii, citate celebreI. BergBucurestiEditura stiintifica1968477 p.21 cmAforismi e sentenzeLingua rumenaDizionari808.88Berg,I.<1907- >325081ITUNINAREICATUNIMARCBK990004017230403321808.88 BER 1Ist.f.m. s.i.FLFBCFLFBCDictionar de cuvinte, expresii, citate celebre472768UNINA05615nam 2200661 450 991056830140332120201005171529.01-281-84044-097866118404400-470-68001-60-470-68002-410.1002/9780470680018(CKB)1000000000556280(EBL)366874(OCoLC)476202146(SSID)ssj0000138995(PQKBManifestationID)11136685(PQKBTitleCode)TC0000138995(PQKBWorkID)10106919(PQKB)11191205(MiAaPQ)EBC366874(CaBNVSL)mat08040388(IDAMS)0b00006485f0ec9f(IEEE)8040388(CaSebORM)9780470997857(PPN)252901169(EXLCZ)99100000000055628020171024d2008 uy engur|n|---|||||txtccrDigital audio signal processing /Udo Zölzer2nd ed.Chichester, U.K. :Wiley,2008.[Piscataqay, New Jersey] :IEEE Xplore,[2008]1 online resource (XII, 320 p.)Description based upon print version of record.0-470-99785-0 Includes bibliographical references (p. 311-316) and index.Preface to the Second Edition. -- Preface to the First Edition. -- 1. Introduction. -- 1.1. Studio Technology. -- 1.2. Digital Transmission Systems. -- 1.3. Storage Media. -- 1.4. Audio Components at Home. -- 2. Quantization. -- 2.1. Signal Quantization. -- 2.2. Dither. -- 2.3. Spectrum Shaping of Quantization - Noise Shaping. -- 2.4. Number Representation. -- 2.5. Java Applet - Quantization, Dither, and Noise Shaping. -- 2.6. Exercises. -- 3. AD/DA Conversion. -- 3.1. Methods. -- 3.2. AD Converters. -- 3.3. DA Converters. -- 3.4. Java Applet - Oversampling and Quantization. -- 3.5. Exercises. -- 4. Audio Processing Systems. -- 4.1. Digital Signal Processors. -- 4.2. Digital Audio Interfaces. -- 4.3. Single-processor Systems. -- 4.4. Multi-processor Systems. -- 5. Equalizers. -- 5.1. Basics. -- 5.2. Recursive Audio Filters. -- 5.3. Nonrecursive Audio Filters. -- 5.4. Multi-complementary Filter Bank. -- 5.5. Java Applet - Audio Filters. -- 5.6. Exercises. -- 6. Room Simulation. -- 6.1. Basics. -- 6.2. Early Reflections. -- 6.3. Subsequent Reverberation. -- 6.4. Approximation of Room Impulse Responses. -- 6.5. Java Applet - Fast Convolution. -- 6.6. Exercises. -- 7. Dynamic Range Control. -- 7.1. Basics. -- 7.2. Statics Curve. -- 7.3. Dynamic Behavior. -- 7.4. Implementation. -- 7.5. Realization Aspects. -- 7.6. Java Applet - Dynamic Range Control. -- 7.7. Exercises. -- 8. Sampling Rate Conversion. -- 8.1. Basics. -- 8.2. Synchronous Conversion. -- 8.3. Asynchronous Conversion. -- 8.4. Interpolation Methods. -- 8.5. Exercises. -- 9. Audio Coding. -- 9.1. Lossless Audio Coding. -- 9.2. Lossy Audio Coding. -- 9.3. Psychoacoustics. -- 9.4. ISO-MPEG-1 Audio Coding. -- 9.5. MPEG-2 Audio Coding. -- 9.6. MPEG-2 Advanced Audio Coding. -- 9.7. MPEG-4 Audio Coding. -- 9.8. Spectral Band Replication. -- 9.9. Java Applet - Psychoacoustics. -- 9.10. Exercises. -- References. -- Index.A fully updated second edition of the excellent Digital Audio Signal Processing. Well established in the consumer electronics industry, Digital Audio Signal Processing (DASP) techniques are use din audio CD, computer music and multimedia components. In addition, the applications afforded by this versatile technology now range from real-time signal processing to room simulation. Digital Audio Signal Processing covers the latest signal processing algorithms for audio processing. Every chapter has been completely revised with an easy to understand introduction, and exercises have been provided on an accompanying website, which support the book by easy to access application examples. Key features include: . A thoroughly updated and revised second edition of the popular Digital Audio Signal Processing, a comprehensive coverage of the topic as a whole . Provides basic principles and fundamentals for quantization, filters, dynamic range control, room simulation, sampling rate conversion, and audio coding . Includes detailed accounts of studio technology, digital transmission systems, storage media and audio component for home entertainment . Contains precise algorithm description and applications . Provides a full account of the techniques of DASP showing their theoretical foundations and practical solutions . Includes updated computer-based exercises and an accompanying website featuring Web-based interactive JAVA-Applets for audio processing This essential guide to DASP will serve as an invaluable reference to audio engineering professionals, R&D engineers, researchers in industries and academia, and developers in IT companies. Advanced students studying multimedia courses will also find this book of interest.SoundRecording and reproducingDigital techniquesSignal processingDigital techniquesElectronic books.SoundRecording and reproducingDigital techniques.Signal processingDigital techniques.621.382/2621.3822Zölzer Udo49613CaBNVSLCaBNVSLCaBNVSLBOOK9910568301403321Digital Audio Signal Processing375026UNINA07166nam 22022573a 450 991034666610332120250203235435.09783039210633303921063710.3390/books978-3-03921-063-3(CKB)4920000000095006(oapen)https://directory.doabooks.org/handle/20.500.12854/56353(ScCtBLL)2e85e085-e0ff-4332-b5aa-a9cdb90f6c69(OCoLC)1117886294(oapen)doab56353(oapen)56353(EXLCZ)99492000000009500620250203i20192019 uu engurmn|---annantxtrdacontentcrdamediacrrdacarrierPlant Proteomic Research 2.0Setsuko KomatsuMDPI - Multidisciplinary Digital Publishing Institute2019Basel, Switzerland :MDPI,2019.1 electronic resource (594 p.)9783039210626 3039210629 Advancements in high-throughput "Omics" techniques have revolutionized plant molecular biology research. Proteomics offers one of the best options for the functional analysis of translated regions of the genome, generating a wealth of detailed information regarding the intrinsic mechanisms of plant stress responses. Various proteomic approaches are being exploited extensively for elucidating master regulator proteins which play key roles in stress perception and signaling, and these approaches largely involve gel-based and gel-free techniques, including both label-based and label-free protein quantification. Furthermore, post-translational modifications, subcellular localization, and protein-protein interactions provide deeper insight into protein molecular function. Their diverse applications contribute to the revelation of new insights into plant molecular responses to various biotic and abiotic stressors.14-3-3 proteinstargeted two-dimensional electrophoresissomatic embryogenesisnitrogen metabolismsubtilaseSporisorium scitamineumnon-orthodox seedantioxidant activitysweet potato plants infected by SPFMVphotosynthesisB. acuminata petalschlorophyll deficiencyseed proteomicsimbibitionpollinationSarpo MiraqRT-PCRholm oaktuber phosphoproteomeisobaric tags for relative and absolute quantitation (iTRAQ)Quercus ilexnucleotide pyrophosphatase/phosphodiesteraselettuce?-subunitprotein phosphatasegerminationdrought stresspyruvate biosynthesisweakening of carbon metabolismdifferential proteinsheterotrimeric G proteinorganLC-MS-based proteomicspotato proteomicssmutgel-free/label-free proteomics? subunitshotgun proteomics2Dchloroplastproteome functional annotationPhalaenopsisClematis terniflora DC.wheatDn1-1carbon metabolismphysiological responsesZea maysphenylpropanoid biosynthesisISRmass spectrometric analysispatatinleafpea (Pisum sativum L.)maizeergosterolCamellia sinensisseed storage proteinssilver nanoparticleselevated CO2metacaspaseSPV2 and SPVGSnRK1MALDI-TOF/TOF(phospho)-proteomicsleaf spotrice isogenic linewheat leaf rustpathway analysisphosphoproteomesugarcanesenescenceOryza sativa L.Arabidopsis thalianaheat stressgene ontologyinnate immunityPseudomonas syringaeboltingchlorophyllsshootSimmondsia chinensisRT-qPCRstresses responsesSolanum tuberosumseedsGC-TOF-MSsucroseproteomePuccinia reconditacultivarZea mays L.secondary metabolismROSRicinus communis L.after-ripeningcadmiumStagonospora nodorumvirus induced gene silencingquantitative proteomicssweet potato plants non-infected by SPFMVaffinity chromatographypopulation variabilityGS3fungal perceptionammoniumtranscriptome profilingmass spectrometry analysispapain-like cysteine protease (PLCP)cold stressnitratelate blight diseaseearly and late disease stagesseed imbibitionlesion mimic mutantproteaseproteome mapseed dormancypetal2-DE proteomics2D DIGErootPhytophthora infestansdifferentially abundant proteins (DAPs)polyphenol oxidasedegradomeflavonoid14-3-3caspase-likeproteomicsRGG4co-infectionplasma membranechlorotic mutationMedicago sativaRGG3glycolysisbarley2-DEprotein phosphorylationwestern blottingN utilization efficiencyriceplant pathogenesis responseshigh temperaturedata-independent acquisitionpattern recognition receptorsvegetative storage proteinsleaf cell wall proteomeplant-derived smokeiTRAQstarchproteome profilingMorusKomatsu Setsuko1284061ScCtBLLScCtBLLBOOK9910346666103321Plant Proteomic Research 2.03019248UNINA