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Data-Driven Handwriting Synthesis in a Conjoined Manner Hsin-I Chen, Tse-Ju Lin, Xiao-Feng Jian, I-Chao Shen, Bing-Yu Chen National Taiwan University,

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Presentation on theme: "Data-Driven Handwriting Synthesis in a Conjoined Manner Hsin-I Chen, Tse-Ju Lin, Xiao-Feng Jian, I-Chao Shen, Bing-Yu Chen National Taiwan University,"— Presentation transcript:

1 Data-Driven Handwriting Synthesis in a Conjoined Manner Hsin-I Chen, Tse-Ju Lin, Xiao-Feng Jian, I-Chao Shen, Bing-Yu Chen National Taiwan University, University of British Columbia 1 1 1 2 1 1 2

2 Handwriting Font is Popular Personal Website Invitation letter Personal Decoration

3 Handwriting Synthesis “The grown-ups are certainly very, very old”, he said to himself, as he continued on his journey. “The grown-ups are certainly very, very old”, he said to himself, as he continued on his journey Segoe print Lucida Handwriting

4 Different shape of the same character he little prince he tippler

5 Previous work - Handwriting Style From forensic science viewpoint, Important factors of handwriting style: Elements of styles Elements of execution Natural variance between each writing Other effects Alcohol, emotion, etc.

6 Previous work - Handwriting Synthesis Handwriting Synthesized HandwritingSynthesized Handwriting Synthesized Wang et al., IJDAR 2005Chang and Shin, IJDAR 2012 Lin and Wang, PR 2007

7 Contribution A statistical learning approach to synthesize non- existent paragraph: A data-analysis stage A character grouping method A data-driven optimization framework

8 Approach pipeline Data CollectionParameterizationShape Model Paragraph Synthesis Word Synthesis Character Synthesis

9 Approach pipeline Data CollectionParameterization Shape Model Paragraph Synthesis Word SynthesisCharacter Synthesis

10 Data Collection  We should collect at least two instances for each letter.  We should cover more commonly used letter pairs(“aa”, “ab”, “ac”,…).  The collection sheet should not over be constrained. 10

11 Data Collection

12 Approach pipeline – Parameterization Data collectionParameterizationShape Model Paragraph Synthesis Word SynthesisCharacter Synthesis

13 Character Parameterization HandwrittenReconstructed Control points

14 Approach pipeline – Shape Model Data collectionParameterizationShape Model Paragraph Synthesis Word SynthesisCharacter Synthesis

15 Shape Model Shape coefficientDisplacement

16 Approach pipeline – Character Synthesis Data collectionParameterizationShape Model Paragraph Synthesis Word SynthesisCharacter Synthesis

17 Collected dataSynthesized data

18 Approach pipeline – Word Synthesis Data collectionParameterizationShape Model Paragraph Synthesis Word SynthesisCharacter Synthesis

19 Character Grouping  We group letters to obtain more conjoining information  Example: Criteria Synthesis target: Data set: How to connect ‘r’ and ‘i’ ?

20 Character Grouping  The probability we connect two neighboring letters Ending group Starting group

21 Word Synthesis Smoothness term Data term Boundary constraint

22 Word Synthesis Synthesized Result Connected

23 Approach pipeline – Paragraph synthesis Data collectionParameterizationShape Model Paragraph Synthesis Word SynthesisCharacter Synthesis

24 Paragraph Synthesis  Line angle, word height and word angle

25 User Study : Visual discrimination

26

27 65 Subjects

28 User Study : Similarity test Handwritten sample Our result

29 User Study : Similarity test Handwritten paragraph Synthesized paragraph without layout info Synthesized paragraph with layout info

30 Visual Result Handwritten paragraph Our synthesized paragraph

31 Visual Result Style 1 Style 2 Style 3

32 Comparison II Handwritten samples Synthesized result by Lin et al., PR2007 Handwritten samples Our result

33 Comparison I Original writingWang et al., IJDAR 2005Ours

34 Conclusion We present a data-driven optimization approach to synthesize non-existed paragraph : We analyzing cursiveness property in the data. A novel trajectory optimization for synthesizing conjoining character. The user study and comparison results show that our approach successfully imitate one’s handwriting style.

35 Q & A Thank you http://graphics.csie.ntu.edu.tw/~fensi/


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