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f16 | f16 | ge | ge | viper | viper | usaf | usaf | gd | gd | usairforce | usairforce | generalelectric | generalelectric | aam | aam | ecm | ecm | lockheedmartin | lockheedmartin | unitedstatesairforce | unitedstatesairforce | generaldynamics | generaldynamics | missilelaunch | missilelaunch | f16fightingfalcon | f16fightingfalcon | fightingfalcon | fightingfalcon | f16c | f16c | f110 | f110 | amraam | amraam | aim120 | aim120 | radarjammer | radarjammer | 77fs | 77fs | lockheedmartinf16 | lockheedmartinf16 | generaldynamicsf16 | generaldynamicsf16 | lockheedmartinf16fightingfalcon | lockheedmartinf16fightingfalcon | electroniccountermeasures | electroniccountermeasures | lockmart | lockmart | f16cfightingfalcon | f16cfightingfalcon | generaldynamicsf16c | generaldynamicsf16c | block50 | block50 | generaldynamicsf16fightingfalcon | generaldynamicsf16fightingfalcon | analq184 | analq184 | airtoairmissile | airtoairmissile | generaldynamicsf16cfightingfalcon | generaldynamicsf16cfightingfalcon | lockheedmartinf16c | lockheedmartinf16c | gef110 | gef110 | ecmpod | ecmpod | 77thfightersquadron | 77thfightersquadron | aim120amraam | aim120amraam | lockheedmartinf16cfightingfalcon | lockheedmartinf16cfightingfalcon | generalelectricf110 | generalelectricf110 | f16cblock50 | f16cblock50 | 900815 | 900815 | f110ge129 | f110ge129 | 77thfs | 77thfs | block50b | block50b | generalelectricf110ge129 | generalelectricf110ge129 | gef110ge129 | gef110ge129 | f16cblock50b | f16cblock50bLicense
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This course is the second of a two-term sequence with 6.450. The focus is on coding techniques for approaching the Shannon limit of additive white Gaussian noise (AWGN) channels, their performance analysis, and design principles. After a review of 6.450 and the Shannon limit for AWGN channels, the course begins by discussing small signal constellations, performance analysis and coding gain, and hard-decision and soft-decision decoding. It continues with binary linear block codes, Reed-Muller codes, finite fields, Reed-Solomon and BCH codes, binary linear convolutional codes, and the Viterbi algorithm.More advanced topics include trellis representations of binary linear block codes and trellis-based decoding; codes on graphs; the sum-product and min-sum algorithms This course is the second of a two-term sequence with 6.450. The focus is on coding techniques for approaching the Shannon limit of additive white Gaussian noise (AWGN) channels, their performance analysis, and design principles. After a review of 6.450 and the Shannon limit for AWGN channels, the course begins by discussing small signal constellations, performance analysis and coding gain, and hard-decision and soft-decision decoding. It continues with binary linear block codes, Reed-Muller codes, finite fields, Reed-Solomon and BCH codes, binary linear convolutional codes, and the Viterbi algorithm.More advanced topics include trellis representations of binary linear block codes and trellis-based decoding; codes on graphs; the sum-product and min-sum algorithmsSubjects
coding techniques | coding techniques | the Shannon limit of additive white Gaussian noise channels | the Shannon limit of additive white Gaussian noise channels | performance analysis | performance analysis | Small signal constellations | Small signal constellations | coding gain | coding gain | Hard-decision and soft-decision decoding | Hard-decision and soft-decision decoding | Introduction to binary linear block codes | Introduction to binary linear block codes | Reed-Muller codes | Reed-Muller codes | finite fields | finite fields | Reed-Solomon and BCH codes | Reed-Solomon and BCH codes | binary linear convolutional codes | binary linear convolutional codes | Viterbi and BCJR algorithms | Viterbi and BCJR algorithms | Trellis representations of binary linear block codes | Trellis representations of binary linear block codes | trellis-based ML decoding | trellis-based ML decoding | Codes on graphs | Codes on graphs | sum-product | sum-product | max-product | max-product | decoding algorithms | decoding algorithms | Turbo codes | Turbo codes | LDPC codes and RA codes | LDPC codes and RA codes | Coding for the bandwidth-limited regime | Coding for the bandwidth-limited regime | Lattice codes | Lattice codes | Trellis-coded modulation | Trellis-coded modulation | Multilevel coding | Multilevel coding | Shaping | ShapingLicense
Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htmSite sourced from
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See all metadataSt Oran's Chapel, Iona St Oran's Chapel, Iona
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detail | detail | stone | stone | wall | wall | scotland | scotland | ancient | ancient | gate | gate | arch | arch | roman | roman | stonework | stonework | masonry | masonry | chapel | chapel | doorway | doorway | iona | iona | keystone | keystone | block | block | cornerstone | cornerstone | isleofiona | isleofiona | columba | columba | stcolumba | stcolumba | blockwork | blockwork | nationalgalleriesofscotland | nationalgalleriesofscotland | storanschapel | storanschapel | thomaskeith | thomaskeithLicense
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Includes audio/video content: AV lectures. This course is the second of a two-term sequence with 6.450. The focus is on coding techniques for approaching the Shannon limit of additive white Gaussian noise (AWGN) channels, their performance analysis, and design principles. After a review of 6.450 and the Shannon limit for AWGN channels, the course begins by discussing small signal constellations, performance analysis and coding gain, and hard-decision and soft-decision decoding. It continues with binary linear block codes, Reed-Muller codes, finite fields, Reed-Solomon and BCH codes, binary linear convolutional codes, and the Viterbi algorithm. More advanced topics include trellis representations of binary linear block codes and trellis-based decoding; codes on graphs; the sum-product and Includes audio/video content: AV lectures. This course is the second of a two-term sequence with 6.450. The focus is on coding techniques for approaching the Shannon limit of additive white Gaussian noise (AWGN) channels, their performance analysis, and design principles. After a review of 6.450 and the Shannon limit for AWGN channels, the course begins by discussing small signal constellations, performance analysis and coding gain, and hard-decision and soft-decision decoding. It continues with binary linear block codes, Reed-Muller codes, finite fields, Reed-Solomon and BCH codes, binary linear convolutional codes, and the Viterbi algorithm. More advanced topics include trellis representations of binary linear block codes and trellis-based decoding; codes on graphs; the sum-product andSubjects
coding techniques | coding techniques | the Shannon limit of additive white Gaussian noise channels | the Shannon limit of additive white Gaussian noise channels | performance analysis | performance analysis | Small signal constellations | Small signal constellations | coding gain | coding gain | Hard-decision and soft-decision decoding | Hard-decision and soft-decision decoding | Introduction to binary linear block codes | Introduction to binary linear block codes | Reed-Muller codes | Reed-Muller codes | finite fields | finite fields | Reed-Solomon and BCH codes | Reed-Solomon and BCH codes | binary linear convolutional codes | binary linear convolutional codes | Viterbi and BCJR algorithms | Viterbi and BCJR algorithms | Trellis representations of binary linear block codes | Trellis representations of binary linear block codes | trellis-based ML decoding | trellis-based ML decoding | Codes on graphs | Codes on graphs | sum-product | sum-product | max-product | max-product | decoding algorithms | decoding algorithms | Turbo codes | Turbo codes | LDPC codes and RA codes | LDPC codes and RA codes | Coding for the bandwidth-limited regime | Coding for the bandwidth-limited regime | Lattice codes. | Lattice codes. | Trellis-coded modulation | Trellis-coded modulation | Multilevel coding | Multilevel coding | Shaping | Shaping | Lattice codes | Lattice codesLicense
Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htmSite sourced from
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See all metadata5.05 Principles of Inorganic Chemistry III (MIT) 5.05 Principles of Inorganic Chemistry III (MIT)
Description
This course covers the principles of main group (s and p block) element chemistry with an emphasis on synthesis, structure, bonding, and reaction mechanisms. This course covers the principles of main group (s and p block) element chemistry with an emphasis on synthesis, structure, bonding, and reaction mechanisms.Subjects
inorganic chemistry | inorganic chemistry | main group element chemistry | main group element chemistry | chemical synthesis | chemical synthesis | chemical structure | chemical structure | bonding | bonding | reaction mechanisms | reaction mechanisms | aluminum chemistry | aluminum chemistry | s block | s block | p block | p block | interatomic distance | interatomic distance | lewis structure | lewis structure | partitions space | partitions space | Density Functional Theory | Density Functional Theory | NMR spectroscopy | NMR spectroscopy | spin-orbit coupling | spin-orbit coupling | spin-spin coupling | spin-spin coupling | relativistic effects | relativistic effects | spin-orbit effects | spin-orbit effects | noble gas chemistry | noble gas chemistry | chemical reaction products | chemical reaction productsLicense
Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htmSite sourced from
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Wavelets are localized basis functions, good for representing short-time events. The coefficients at each scale are filtered and subsampled to give coefficients at the next scale. This is Mallat's pyramid algorithm for multiresolution, connecting wavelets to filter banks. Wavelets and multiscale algorithms for compression and signal/image processing are developed. Subject is project-based for engineering and scientific applications. Wavelets are localized basis functions, good for representing short-time events. The coefficients at each scale are filtered and subsampled to give coefficients at the next scale. This is Mallat's pyramid algorithm for multiresolution, connecting wavelets to filter banks. Wavelets and multiscale algorithms for compression and signal/image processing are developed. Subject is project-based for engineering and scientific applications.Subjects
Discrete-time filters | Discrete-time filters | convolution | convolution | Fourier transform | Fourier transform | owpass and highpass filters | owpass and highpass filters | Sampling rate change operations | Sampling rate change operations | upsampling and downsampling | upsampling and downsampling | ractional sampling | ractional sampling | interpolation | interpolation | Filter Banks | Filter Banks | time domain (Haar example) and frequency domain | time domain (Haar example) and frequency domain | conditions for alias cancellation and no distortion | conditions for alias cancellation and no distortion | perfect reconstruction | perfect reconstruction | halfband filters and possible factorizations | halfband filters and possible factorizations | Modulation and polyphase representations | Modulation and polyphase representations | Noble identities | Noble identities | block Toeplitz matrices and block z-transforms | block Toeplitz matrices and block z-transforms | polyphase examples | polyphase examples | Matlab wavelet toolbox | Matlab wavelet toolbox | Orthogonal filter banks | Orthogonal filter banks | paraunitary matrices | paraunitary matrices | orthogonality condition (Condition O) in the time domain | orthogonality condition (Condition O) in the time domain | modulation domain and polyphase domain | modulation domain and polyphase domain | Maxflat filters | Maxflat filters | Daubechies and Meyer formulas | Daubechies and Meyer formulas | Spectral factorization | Spectral factorization | Multiresolution Analysis (MRA) | Multiresolution Analysis (MRA) | requirements for MRA | requirements for MRA | nested spaces and complementary spaces; scaling functions and wavelets | nested spaces and complementary spaces; scaling functions and wavelets | Refinement equation | Refinement equation | iterative and recursive solution techniques | iterative and recursive solution techniques | infinite product formula | infinite product formula | filter bank approach for computing scaling functions and wavelets | filter bank approach for computing scaling functions and wavelets | Orthogonal wavelet bases | Orthogonal wavelet bases | connection to orthogonal filters | connection to orthogonal filters | orthogonality in the frequency domain | orthogonality in the frequency domain | Biorthogonal wavelet bases | Biorthogonal wavelet bases | Mallat pyramid algorithm | Mallat pyramid algorithm | Accuracy of wavelet approximations (Condition A) | Accuracy of wavelet approximations (Condition A) | vanishing moments | vanishing moments | polynomial cancellation in filter banks | polynomial cancellation in filter banks | Smoothness of wavelet bases | Smoothness of wavelet bases | convergence of the cascade algorithm (Condition E) | convergence of the cascade algorithm (Condition E) | splines | splines | Bases vs. frames | Bases vs. frames | Signal and image processing | Signal and image processing | finite length signals | finite length signals | boundary filters and boundary wavelets | boundary filters and boundary wavelets | wavelet compression algorithms | wavelet compression algorithms | Lifting | Lifting | ladder structure for filter banks | ladder structure for filter banks | factorization of polyphase matrix into lifting steps | factorization of polyphase matrix into lifting steps | lifting form of refinement equationSec | lifting form of refinement equationSec | Wavelets and subdivision | Wavelets and subdivision | nonuniform grids | nonuniform grids | multiresolution for triangular meshes | multiresolution for triangular meshes | representation and compression of surfaces | representation and compression of surfaces | Numerical solution of PDEs | Numerical solution of PDEs | Galerkin approximation | Galerkin approximation | wavelet integrals (projection coefficients | moments and connection coefficients) | wavelet integrals (projection coefficients | moments and connection coefficients) | convergence | convergence | Subdivision wavelets for integral equations | Subdivision wavelets for integral equations | Compression and convergence estimates | Compression and convergence estimates | M-band wavelets | M-band wavelets | DFT filter banks and cosine modulated filter banks | DFT filter banks and cosine modulated filter banks | Multiwavelets | MultiwaveletsLicense
Content within individual OCW courses is (c) by the individual authors unless otherwise noted. MIT OpenCourseWare materials are licensed by the Massachusetts Institute of Technology under a Creative Commons License (Attribution-NonCommercial-ShareAlike). For further information see http://ocw.mit.edu/terms/index.htmSite sourced from
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A blocked cat in a kennelSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | catheter | urinarycatheter | felineurinarycatheter | catheterisation | urethralcatheter | caturinarycatheter | haematuria | urine | urinecollection | cystitisLicense
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Urine collected via urinary catheter from a blocked catSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | catheter | urinarycatheter | felineurinarycatheter | catheterisation | urethralcatheter | caturinarycatheter | haematuria | urine | urinecollection | cystitisLicense
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A blocked cat in a kennel. The urinary catheter is attached to a drip bag outside the kennelSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | catheter | urinarycatheter | felineurinarycatheter | catheterisation | urethralcatheter | caturinarycatheter | haematuria | urine | urinecollectionLicense
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A blocked cat in a kennel. The urinary catheter is attached to a drip bag outside the kennelSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | catheter | urinarycatheter | felineurinarycatheter | catheterisation | urethralcatheter | caturinarycatheter | haematuria | urine | urinecollectionLicense
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A blocked cat in a kennelSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | catheter | urinarycatheter | felineurinarycatheter | catheterisation | urethralcatheter | caturinarycatheter | urine | haematuria | sedatedcat | sedationLicense
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A blocked cat in a kennelSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007License
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Urine collected via urinary catheter from a blocked catSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | catheter | urinarycatheter | felineurinarycatheter | catheterisation | urethralcatheter | caturinarycatheter | haematuria | cystitis | urineLicense
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A blocked cat in a kennel. The urinary catheter is attached to a drip bag outside the kennelSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | urinary | catheter | urineLicense
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A blocked cat in a kennelSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007License
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Urine collected via urinary catheter from a blocked catSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | catheter | urinarycatheter | felineurinarycatheter | catheterisation | urethralcatheter | caturinarycatheter | urine | haematuria | cystitisLicense
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A cat recovering from anaesthesiaSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | anaesthesia | anaesthetic | recovery | anaestheticrecovery | catanaesthesia | garecoveryLicense
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A cat recovering from anaesthesiaSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | anaesthesia | anaesthetic | recovery | anaestheticrecovery | catanaesthesia | garecoveryLicense
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A cat recovering from anaesthesiaSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | anaesthesia | anaesthetic | recovery | anaestheticrecovery | catanaesthesia | garecoveryLicense
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A urinary catheter in a blocked catSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | catheter | urinarycatheter | felineurinarycatheter | catheterisation | urethralcatheter | caturinarycatheterLicense
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A vet attaches a urinary catheter to a blocked male catSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007 | catheter | urinarycatheter | felineurinarycatheter | catheterisation | urethralcatheter | caturinarycatheterLicense
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Handling a blocked catSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007License
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Handling a blocked catSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007License
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Handling a blocked catSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007License
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Handling a blocked catSubjects
svmsvet | cat | blocked | cats | feline | felines | blockedcat | urolithiasis | flutd | felinelowerurinarytractdisease | urolith | uroliths | blockedurethra | urethralspasm | anuria | blockedbladder | a0007License
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