CN106218262A - One-parameter univariable ternary layered encryption binary system RMB anti-counterfeiting printing process - Google Patents

One-parameter univariable ternary layered encryption binary system RMB anti-counterfeiting printing process Download PDF

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CN106218262A
CN106218262A CN201610849182.9A CN201610849182A CN106218262A CN 106218262 A CN106218262 A CN 106218262A CN 201610849182 A CN201610849182 A CN 201610849182A CN 106218262 A CN106218262 A CN 106218262A
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binary
counterfeiting information
control variable
group
operator control
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董智红
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Beijing Institute of Graphic Communication
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Beijing Institute of Graphic Communication
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B42BOOKBINDING; ALBUMS; FILES; SPECIAL PRINTED MATTER
    • B42DBOOKS; BOOK COVERS; LOOSE LEAVES; PRINTED MATTER CHARACTERISED BY IDENTIFICATION OR SECURITY FEATURES; PRINTED MATTER OF SPECIAL FORMAT OR STYLE NOT OTHERWISE PROVIDED FOR; DEVICES FOR USE THEREWITH AND NOT OTHERWISE PROVIDED FOR; MOVABLE-STRIP WRITING OR READING APPARATUS
    • B42D25/00Information-bearing cards or sheet-like structures characterised by identification or security features; Manufacture thereof
    • B42D25/30Identification or security features, e.g. for preventing forgery
    • B42D25/305Associated digital information

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Abstract

A kind of one-parameter univariable ternary layered encryption binary system RMB anti-counterfeiting printing process, binary system anti-counterfeiting information can be generated binary modulated signal by ternary layered encryption and chnnel coding by the method, and by circulation look-up table modulation system, anti-counterfeiting information is embedded in the whole RMB page with the changing in order of shape of amplitude, anti-counterfeiting information can be identified from any one fragment when RMB identification, may be used in the anti-counterfeit printing of RMB.

Description

One-parameter univariable ternary layered encryption binary system RMB anti-counterfeiting printing process
Technical field:
The present invention relates to a kind of RMB anti-counterfeiting printing technology, particularly a kind of one-parameter univariable ternary layered encryption binary system RMB anti-counterfeiting printing process, in the anti-counterfeit printing of the RMB that this RMB anti-counterfeiting printing technology may be used for various face amount.
Background technology:
Currency security is related to a national financial security, produces beginning struggle that is false proof and that fake from currency and does not the most stop Breath, the RMB of China has carried out innovating audaciously, have employed watermark anti-counterfeiting technology, safety line anti-counterfeiting technology, carved intaglio print Brush and gravure wiring anti-counterfeiting technology, red blue color fiber and colorless fluorescent fibre false-proof technology, stealthy denomination digital anti-counterfeiting technology, Photochromatic printing ink printing surface specified number word anti-counterfeiting technology, yin yang complementarity are to being patterned anti-counterfeiting technology, number convex print anti-counterfeiting technology, miniature literary composition The multinomial anti-counterfeiting technologies such as word anti-counterfeiting technology, colorless fluorescent pattern anti-fake technology, colored fluorescent pattern anti-fake technology and docking coincide, But struggle that is false proof and that fake is high-tech trial of strength, more advanced anti-counterfeiting technology has certain ageing, therefore it is necessary to not Disconnected lifting RMB anti-counterfeiting technology so that it is being forever in the leading position of anti-counterfeiting technology, this also maintains financial security of the country Basic assurance.
Summary of the invention:
In order to improve reliability and the safety of RMB anti-counterfeiting, the present invention is directed to the deficiency of existing RMB anti-counterfeiting existence to existing RMB anti-counterfeiting technology is had to be improved, it is proposed that the RMB of a kind of binary system coded signal modulation amplitude shape is prevented Pseudo-technology, anti-counterfeiting information, by the change of amplitude shape in printing RMB, is entered by this RMB anti-counterfeiting technology with two Coded signal form processed is embedded in the whole RMB page, can identify false proof from any one fragment when RMB identification Information, therefore has very strong disguised and crush resistance.
The technical solution adopted for the present invention to solve the technical problems is: first to image and character anti-counterfeiting information number Wordization processes, and utilizes the binary system anti-counterfeiting information table that image and character anti-counterfeiting information generate 8 group, for preventing in ciphering process Produce information spillover, 8 one group of binary system anti-counterfeiting information in binary system anti-counterfeiting information table are expanded to 16 one group of binary systems Anti-counterfeiting information, generates most-significant byte and is all 16 the one group binary system anti-counterfeiting information table of 0, by 16 one group binary system anti-counterfeiting information table In i-th group of 16 binary system anti-counterfeiting information be denoted as Ni, i is the positive integer more than 0, and eight-digit binary number encryption parameter is denoted as C, adds Close parameter C is the bigit of 0 C 255, and binary operator control variable is denoted as k, and binary operator control variable k is 0 The integer of k 7, binary system control variable is denoted as j, and control variable j is the integer of 0 j 7, operatorUse+,-, ×, tetra-kinds of operators of ÷, during binary operator control variable k=0 Be defined as+, during binary operator control variable k=1Be respectively defined as+, ÷, during binary operator control variable k=2Be respectively defined as-, ÷ ,+, during binary operator control variable k=3Be respectively defined as+ , × ,+, ÷, during binary operator control variable k=4Be respectively defined as+, × ,+, ÷ ,-, two enter During operator control variable k=5 processedBe respectively defined as+, × ,+, ÷ ,-, ÷, binary operator During control variable k=6Be respectively defined as+, × ,+, ÷ ,-, ÷ ,+, binary system calculate During symbol control variable k=7Be respectively defined as+, × ,+, ÷ ,-, ÷ ,+, ×, I-th group of 16 binary system encryption anti-fake information in 16 one group binary system encryption anti-fake information table are denoted as Ni, binary operator control During variable k=0 processed, ternary layered encryption operational formula is defined as, ternary layering during binary operator control variable k=1 Cryptographic calculation formula is defined as, during binary operator control variable k=2, ternary layered encryption operational formula is fixed Justice is, during binary operator control variable k=3, ternary layered encryption operational formula is defined as, during binary operator control variable k=4, ternary layered encryption operational formula is defined as, during binary operator control variable k=5, ternary layered encryption operational formula is defined as, during binary operator control variable k=6, ternary layered encryption operational formula is fixed Justice is, during binary operator control variable k=7 three Unit's layered encryption operational formula is defined as, Set the initial value of encryption parameter C, set initial value k=0 and j=0 of j and k, set in 16 one group binary system anti-counterfeiting information table 16 Position binary system anti-counterfeiting information NiPosition control variable i=1, from 16 one group binary system anti-counterfeiting information table first group 16 two System anti-counterfeiting information N1Starting, circulation uses above-mentioned eight kinds of different cryptographic calculation formula to 16 one group of binary system anti-counterfeiting information In table, 16 binary system anti-counterfeiting information are encrypted computing, and carry out i+1, j+1 and k+ while cryptographic calculation each time 1 computing, along with the value of i, k and j changes, by entering each group 16 two in 16 one group binary system anti-counterfeiting information table Anti-counterfeiting information processed is encrypted computing, generates 16 the one group binary system encryptions corresponding with 16 one group binary system anti-counterfeiting information table Anti-counterfeiting information table, is digitized the shape of amplitude in RMB printing processing, is shaped to by amplitudeWithTwo kinds, whereinBe defined as numeral 0,It is defined as numeral 1, RMB printing process utilizes the 16 of generation The binary system encryption anti-fake information of one group, position, by the amplitude on the circulation look-up table modulation RMB page, makes RMB page Amplitude on face is regular to be changed according to the shape of above two amplitude, phase on the RMB page after modulation Adjacent 16 amplitudes constitute one group of 16 binary system anti-counterfeiting information so that by the change of amplitude shape on the RMB page Change and carry anti-counterfeiting information, and make this anti-counterfeiting information be embedded in whole RMB page site, it is achieved RMB anti-counterfeiting.By Non-in the RMB page embed extractible anti-counterfeiting information, it is possible to provide valid certificates for real Renminbi, have simultaneously obviously Stronger anti-forgery ability, and do not increase extra false proof cost.
For solving above-mentioned technical problem, first it is digitized anti-counterfeiting information processing, generates the binary system of 8 group Anti-counterfeiting information table, anti-counterfeiting information can be image information and Word message information, by 8 one group in binary system anti-counterfeiting information table Binary system anti-counterfeiting information expands to 16 one group of binary system anti-counterfeiting information, and 16 one group of binary systems that generation most-significant byte is all 0 are false proof Each 16 binary system anti-counterfeiting information in 16 one group binary system anti-counterfeiting information table are carried out layered encryption fortune by information table Calculate, generate the binary system encryption anti-fake information table of 16 group, utilize 16 binary systems in binary system encryption anti-fake information table Encryption anti-fake information, through chnnel coding, generates the binary modulated signal of 16 group with error detecting and error correcting function, letter Road coding can use loop coding, convolutional encoding or Turbo to encode various ways, picture of RMB page original continuous being changed the line map Signal processes (RIP) and hybrid screening output halftoning hybrid screening picture signal through rasterizing, including amplitude With FM screened image signal, 16 the one group of binary modulated signals generated are utilized to use circulation look-up table modulation system modulation The shape of amplitude in halftoning hybrid screening picture signal, make the shape of amplitude according toWithRegular Raw change, makes adjacent 16 amplitudes in halftoning hybrid screening picture signal carry 16 binary systems by the change of shape Encryption anti-fake information, thus generate the halftoning hybrid screening image letter embedding anti-counterfeiting information in whole RMB page site Number, it is achieved the anti-counterfeit printing of RMB.
When extracting anti-counterfeiting information, first gather RMB page halftone dot image signal, through the shape to amplitude Fuzzy diagnosis, differentiate the shape of amplitude, extract the edge signal of amplitude and shape information, demodulate the RMB page The shape information of amplitude, exports the binary modulated signal of 16 group, the binary system to 16 group of demodulation output Modulated signal carries out channel-decoding, recovers to generate binary system deciphering anti-counterfeiting information table after channel-decoding.
Binary system is deciphered in anti-counterfeiting information table 16 binary informations and is denoted as Hi, by ciphering process, recovering generation Binary system deciphering anti-counterfeiting information table in, during binary operator control variable k=0 ternary layering deciphering computing be, During binary operator control variable k=1, ternary layering deciphering computing is, binary operator controls to become During amount k=2, ternary layering deciphering computing is, during binary operator control variable k=3 three Unit's layering deciphering computing is, ternary layering during binary operator control variable k=4 Deciphering computing is, ternary layering during binary operator control variable k=5 Deciphering computing is, during binary operator control variable k=6 three Unit's layering deciphering computing is, binary operator controls During variable k=7, ternary layering deciphering computing is, The binary system recovering after decoding to generate is deciphered 16 binary informations H in anti-counterfeiting information tableiPosition control initial guess set Being set to i=1, binary operator control variable initial value design is k=0, from recovering the binary system deciphering anti-counterfeiting information table that generates the One group of H1Starting, each group of 16 binary informations deciphered the binary system recovering to generate in anti-counterfeiting information table are carried out accordingly Ternary layering deciphering computing, solves binary system anti-counterfeiting information Ni, generate most-significant byte and be all 16 one group of binary system anti-counterfeiting information of 0 Table, removes most-significant byte, recovers to generate the binary system anti-counterfeiting information table of 8 group, recovers anti-counterfeiting signal and export anti-counterfeiting information.
Accompanying drawing explanation
The present invention is further described below in conjunction with the accompanying drawings.
Fig. 1 loads anti-counterfeiting information flow chart.
Fig. 2 extracts anti-counterfeiting information flow chart.
Detailed description of the invention
Loading in anti-counterfeiting information flow chart 1, original anti-counterfeiting information (image, word) is encrypted, generates the two of 8 one group and enters 8 one group of binary informations in binary system anti-counterfeiting information table are expanded to 16 one group of binary informations by anti-counterfeiting information table processed, raw Most-significant byte is become to be all 16 the one group binary system anti-counterfeiting information table of 0, i-th group 16 two in 16 one group binary system anti-counterfeiting information table Binary information is denoted as Ni, i is the positive integer more than 0, and it is 0 C 255 that eight-digit binary number encryption parameter is denoted as C, encryption parameter C Bigit, binary operator control variable is denoted as k, and binary operator control variable k is the integer of 0 k 7, and two enter Control variable processed is denoted as j, and control variable j is the integer of 0 j 7, operator Use+,-, ×, tetra-kinds of operators of ÷, during binary operator control variable k=0Be defined as+, binary operator control variable k When=1Be respectively defined as+, ÷, during binary operator control variable k=2Be respectively defined as-, ÷ ,+, during binary operator control variable k=3Be respectively defined as+, × ,+, ÷, binary operator control During variable k=4 processedBe respectively defined as+, × ,+, ÷ ,-, during binary operator control variable k=5Be respectively defined as+, × ,+, ÷ ,-, ÷, during binary operator control variable k=6Be respectively defined as+, × ,+, ÷ ,-, ÷ ,+, during binary operator control variable k=7Be respectively defined as+, × ,+, ÷ ,-, ÷ ,+, ×, binary operator control During variable k=0, ternary layered encryption operational formula is defined as, during binary operator control variable k=1, ternary layering adds Close operational formula is defined as, during binary operator control variable k=2, ternary layered encryption operational formula is defined as, during binary operator control variable k=3, ternary layered encryption operational formula is defined as, during binary operator control variable k=4, ternary layered encryption operational formula is fixed Justice is, ternary layered encryption computing during binary operator control variable k=5 Formula is defined as, ternary layering during binary operator control variable k=6 Cryptographic calculation formula is defined as, binary operator control variable During k=7, ternary layered encryption operational formula is defined as, Set the initial value of encryption parameter C, set initial value k=0 and j=0 of j and k, set in 16 one group binary system anti-counterfeiting information table 16 Position binary system anti-counterfeiting information NiPosition control variable i=1, from 16 one group binary system anti-counterfeiting information table first group 16 two Binary information N1Starting, circulation uses above-mentioned eight kinds of different cryptographic calculation formula in 16 one group binary system anti-counterfeiting information table 16 binary system anti-counterfeiting information are encrypted computing, and carry out i+1, j+1 and k+1 fortune while cryptographic calculation each time Calculate, along with the value of i, k and j changes, by each group of 16 binary systems in 16 one group binary system anti-counterfeiting information table are prevented Fake information is encrypted computing, generates 16 one group binary system encryption anti-counterfeitings corresponding with 16 one group binary system anti-counterfeiting information table Information table, is digitized the shape of amplitude in RMB printing processing, is shaped to by amplitudeWithTwo kinds, whereinBe defined as numeral 0,It is defined as numeral 1, RMB printing process utilizes 16 one of generation The binary system encryption anti-fake information of group, by the amplitude on the circulation look-up table modulation RMB page, makes on the RMB page Amplitude regular be changed according to the shape of above two amplitude, after modulation on the RMB page adjacent 16 Individual amplitude constitutes one group of 16 binary system anti-counterfeiting information so that taken by the change of amplitude shape on the RMB page Band anti-counterfeiting information, and make this anti-counterfeiting information be embedded in whole RMB page site, it is achieved RMB anti-counterfeiting printing.
In extracting anti-counterfeiting information flow chart 2, when extracting anti-counterfeiting information, first gather RMB page halftone dot image letter Number, through the fuzzy diagnosis to the shape of amplitude, differentiate the shape of amplitude, extract amplitude edge signal and Shape information, the shape information of demodulation RMB page amplitude, export the binary modulated signal of 16 group, to demodulation The binary modulated signal of 16 group of output carries out channel-decoding, recovers to generate binary system deciphering false proof after channel-decoding Information table.
Binary system is deciphered in anti-counterfeiting information table 16 binary informations and is denoted as Hi, by ciphering process, recovering generation Binary system deciphering anti-counterfeiting information table in, during binary operator control variable k=0 ternary layering deciphering computing be, During binary operator control variable k=1, ternary layering deciphering computing is, binary operator control variable k When=2, ternary layering deciphering computing is, during binary operator control variable k=3, ternary is divided Layer deciphering computing is, ternary layering deciphering during binary operator control variable k=4 Computing is, ternary layering during binary operator control variable k=5 Deciphering computing is, during binary operator control variable k=6 Ternary layering deciphering computing is, binary operator controls During variable k=7, ternary layering deciphering computing is, The binary system recovering after decoding to generate is deciphered 16 binary informations H in anti-counterfeiting information tableiPosition control initial guess set Being set to i=1, binary operator control variable initial value design is k=0, from recovering the binary system deciphering anti-counterfeiting information table that generates the One group of H1Start, each group of 16 binary informations in the binary system group anti-counterfeiting information table recovering generation are carried out corresponding three Unit's layering deciphering computing, solves binary system anti-counterfeiting information Ni, generate most-significant byte and be all 16 the one group binary system anti-counterfeiting information table of 0, Remove most-significant byte, recover to generate the binary system anti-counterfeiting information table of 8 group, recover anti-counterfeiting signal and export anti-counterfeiting information.

Claims (1)

1. anti-counterfeiting information is generated a binary modulated signal by cryptographic calculation and chnnel coding, and tabled look-up tune by circulation The one-parameter univariable ternary layered encryption binary system RMB anti-counterfeiting print that anti-counterfeiting information is embedded in full page by mode processed Brush method, is characterized in that: be digitized anti-counterfeiting information, generates the binary system anti-counterfeiting information table of 8 group, and anti-counterfeiting information is Image information and Word message, for preventing from producing in ciphering process information spillover, by 8 one group in binary system anti-counterfeiting information table Binary system anti-counterfeiting information expands to 16 one group of binary system anti-counterfeiting information, and 16 one group of binary systems that generation most-significant byte is all 0 are false proof I-th group of 16 binary system anti-counterfeiting information in 16 one group binary system anti-counterfeiting information table are denoted as N by information tablei, i is more than 0 Positive integer, eight-digit binary number encryption parameter is denoted as the bigit that C, encryption parameter C are 0 C 255, binary operator control Variable processed is denoted as k, and binary operator control variable k is the integer of 0 k 7, and binary system control variable is denoted as j, control variable j It is the integer of 0 j 7, operatorUse+,-, ×, tetra-kinds of operators of ÷, two During system operator control variable k=0Be defined as+, during binary operator control variable k=1Be respectively defined as+, ÷, during binary operator control variable k=2Be respectively defined as-, ÷ ,+, binary operator control variable k=3 TimeBe respectively defined as+, × ,+, ÷, during binary operator control variable k=4Be respectively defined as+, × ,+, ÷ ,-, during binary operator control variable k=5Be respectively defined as+, × ,+, ÷ ,-, ÷, during binary operator control variable k=6Be respectively defined as+, × ,+, ÷ ,-, ÷ ,+, binary operator control variable k=7 TimeBe respectively defined as+, × ,+, ÷ ,-, ÷ ,+, ×, by 16 one group two I-th group of 16 binary system encryption anti-fake information in system encryption anti-fake information table are denoted as Ni, binary operator control variable k=0 Shi Sanyuan layered encryption operational formula is defined as, ternary layered encryption fortune during binary operator control variable k=1 Calculation formula is defined as, during binary operator control variable k=2, ternary layered encryption operational formula is fixed Justice is, during binary operator control variable k=3, ternary layered encryption operational formula is defined as, ternary layered encryption operational formula definition during binary operator control variable k=4 For, during binary operator control variable k=5, the computing of ternary layered encryption is public Formula is defined as, ternary layering during binary operator control variable k=6 Cryptographic calculation formula is defined as, binary operator control During variable k=7 processed, ternary layered encryption operational formula is defined as , set the initial value of encryption parameter C, set initial value k=0 and j=0 of j and k, set in 16 one group binary system anti-counterfeiting information table 16 Position binary system anti-counterfeiting information NiPosition control variable i=1, from 16 one group binary system anti-counterfeiting information table first group 16 two System anti-counterfeiting information N1Starting, circulation uses above-mentioned eight kinds of different cryptographic calculation formula to 16 one group of binary system anti-counterfeiting information In table, 16 binary system anti-counterfeiting information are encrypted computing, and carry out i+1, j+1 and k+ while cryptographic calculation each time 1 computing, along with the value of i, k and j changes, by entering each group 16 two in 16 one group binary system anti-counterfeiting information table Anti-counterfeiting information processed is encrypted computing, generates 16 the one group binary system encryptions corresponding with 16 one group binary system anti-counterfeiting information table Anti-counterfeiting information table, is digitized the shape of amplitude in RMB printing processing, is shaped to by amplitudeWithTwo kinds, whereinBe defined as numeral 0,It is defined as numeral 1, RMB printing process utilizes the 16 of generation The binary system encryption anti-fake information of one group, position, by the amplitude on the circulation look-up table modulation RMB page, makes RMB page Amplitude on face is regular to be changed according to the shape of above two amplitude, phase on the RMB page after modulation Adjacent 16 amplitudes constitute one group of 16 binary system anti-counterfeiting information so that by the change of amplitude shape on the RMB page Change and carry anti-counterfeiting information, and make this anti-counterfeiting information be embedded in whole RMB page site, it is achieved RMB anti-counterfeiting.
CN201610849182.9A 2016-09-25 2016-09-25 One-parameter univariable ternary layered encryption binary system RMB anti-counterfeiting printing process Pending CN106218262A (en)

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CN101699845A (en) * 2009-10-20 2010-04-28 北京印刷学院 Encryption counterfeit printing technology of frequency modulated halftone dot space position for pseudo random signal modulation printed matter
CN101777134A (en) * 2010-03-01 2010-07-14 北京印刷学院 Presswork encryption security printing technology based on multi-system quadrature amplitude modulation
CN102225671A (en) * 2011-04-14 2011-10-26 北京印刷学院 Encrypted anti-counterfeit printing technology for modulating shape of printed matter amplitude-modulation screen dot by dual-encrypted signal
CN102402696A (en) * 2011-04-25 2012-04-04 北京印刷学院 Multi-dimensional encryption anti-counterfeiting printing technology based on binary signals

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1424690A (en) * 2003-01-20 2003-06-18 天津市阿波罗信息技术有限公司 Network screen encoded anti-fakery method
CN101219614A (en) * 2007-01-08 2008-07-16 郑阿奇 Method for setting false proof making in printed matter
CN101699845A (en) * 2009-10-20 2010-04-28 北京印刷学院 Encryption counterfeit printing technology of frequency modulated halftone dot space position for pseudo random signal modulation printed matter
CN101777134A (en) * 2010-03-01 2010-07-14 北京印刷学院 Presswork encryption security printing technology based on multi-system quadrature amplitude modulation
CN102225671A (en) * 2011-04-14 2011-10-26 北京印刷学院 Encrypted anti-counterfeit printing technology for modulating shape of printed matter amplitude-modulation screen dot by dual-encrypted signal
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Application publication date: 20161214