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Document Image Processing
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J. Imaging 2018,4, 39 scripts likeManipuri,GujaratiandUrdu, thusprovingtobe themodel tobeusedwhere thesescripts arewidelyused. Inorder tounderstandwhytheresults fromtheElliptical featuresetcombinesowellwith the twoother featuresets, correlationanalysis isperformedontheconfidencescoreoutputs. Spearman rankcorrelation isdoneontherank level informationprovidedbytheclassifiers toarriveatmean values for themeasureof thecorrelation.HOGandMLGshowanindexof0.619which isalmost the doubleof thescoresobtainedbycomparingtheElliptical featureswith these two.Withvaluesof0.32 and0.27, the lowcorrelation index isan indicationofbetterpossibilities for thecombinationprocesses. Thus, complementary information isprovidedbytheoutputofElliptical featuresetwhichhelps in the improvement theoverall combinedaccuracy. Secondaryclassifiersareapplied to learn thepatterns fromtheprimaryclassifieroutputsand developawaytocombinethem.Theconfidencescoresfromthethreesourcesareconcatenatedtoform alarger trainingsetwith its correct label. This set is thenewfeaturesetwhichundergoesclassification usingwell-knownalgorithms.Classifiers likek-NN,LogisticRegression,MLPandRandomForestare appliedtoreportfinal resultswhichare tabulated inTables14–17respectively. Theresultsarereported after3-foldcrossvalidationandtuningof theparameters involved. Thisprocess iscomputationally costlyandtakesaprocessingstepalongwithmuchhighercomplexitybut is compensatedbythehigh accuracyresults thatareobtained. 3-NNprovidesanaccuracyof98.30%,RandomForest classified 98.33%of the7200samplescorrectlyandLogisticRegressionattained98.48%accuracy.UsingMLP againas thesecondaryclassifier,98.36%accuracy isobtained.Devanagari is themostconfusedscript in all thecasesbutstillhasaccuracyover95%.Theotherscriptsarepredictedtoalmostcertainty. Table4.ClassificationresultsaftercombinationusingMajorityvotingprocedure. Class Class A B C D E F G H I J K L A 534 2 3 10 3 2 16 7 13 0 5 5 B 1 590 0 3 0 0 0 0 0 0 0 6 C 0 0 597 0 0 2 0 0 1 0 0 0 D 2 3 0 590 0 0 0 0 0 0 2 3 E 0 1 0 0 591 2 0 0 0 1 0 5 F 12 0 5 0 13 561 1 7 1 0 0 0 G 2 0 6 4 5 1 554 14 7 3 4 0 H 4 0 4 3 1 6 0 567 7 2 5 1 I 9 1 1 2 0 1 7 2 572 0 5 0 J 0 0 1 0 2 0 0 3 0 594 0 0 K 4 0 2 5 4 1 10 4 1 0 567 2 L 0 2 10 3 6 2 1 1 1 5 3 566 Table5.ClassificationresultsaftercombinationusingBordacountprocedurewithoutweight. Class Class A B C D E F G H I J K L A 567 0 5 7 0 0 5 4 7 0 3 2 B 16 580 0 4 0 0 0 0 0 0 0 0 C 1 0 586 0 0 5 0 4 3 0 0 1 D 25 1 0 572 0 0 0 0 0 0 1 1 E 6 0 0 0 466 108 0 11 1 0 0 8 F 16 0 2 0 7 571 0 1 1 1 0 1 G 25 0 4 2 0 2 548 3 1 0 15 0 H 30 0 5 0 0 21 0 533 6 0 1 4 I 39 0 2 1 0 2 6 6 540 0 4 0 J 0 0 2 0 2 0 0 7 0 589 0 0 K 5 0 0 3 0 0 12 0 1 0 579 0 L 4 0 10 2 2 4 0 1 3 3 3 568 162
zurück zum  Buch Document Image Processing"
Document Image Processing
Titel
Document Image Processing
Autoren
Ergina Kavallieratou
Laurence Likforman-Sulem
Herausgeber
MDPI
Ort
Basel
Datum
2018
Sprache
deutsch
Lizenz
CC BY-NC-ND 4.0
ISBN
978-3-03897-106-1
Abmessungen
17.0 x 24.4 cm
Seiten
216
Schlagwörter
document image processing, preprocessing, binarizationl, text-line segmentation, handwriting recognition, indic/arabic/asian script, OCR, Video OCR, word spotting, retrieval, document datasets, performance evaluation, document annotation tools
Kategorie
Informatik
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Austria-Forum
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Document Image Processing