CN103106508A - Single parameter ternary variable circulation encryption anti-counterfeiting information storage trademark - Google Patents

Single parameter ternary variable circulation encryption anti-counterfeiting information storage trademark Download PDF

Info

Publication number
CN103106508A
CN103106508A CN2013100221673A CN201310022167A CN103106508A CN 103106508 A CN103106508 A CN 103106508A CN 2013100221673 A CN2013100221673 A CN 2013100221673A CN 201310022167 A CN201310022167 A CN 201310022167A CN 103106508 A CN103106508 A CN 103106508A
Authority
CN
China
Prior art keywords
binary
counterfeiting information
group
trade mark
operator control
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
CN2013100221673A
Other languages
Chinese (zh)
Inventor
张立君
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Beijing Institute of Graphic Communication
Original Assignee
Beijing Institute of Graphic Communication
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Beijing Institute of Graphic Communication filed Critical Beijing Institute of Graphic Communication
Priority to CN2013100221673A priority Critical patent/CN103106508A/en
Publication of CN103106508A publication Critical patent/CN103106508A/en
Pending legal-status Critical Current

Links

Images

Landscapes

  • Printing Methods (AREA)

Abstract

A single parameter ternary variable circulation encryption anti-counterfeiting information storage trademark can enable binary anti-counterfeiting information to be generated into binary modulation signals through ternary variable circulation and channel coding, and enable the anti-counterfeiting information to be embedded into a whole trademark page through ordered changing of conductivity of amplitude modulation dots in a circulation table look-up method mode. The anti-counterfeiting information can be identified from any fragment during trademark identification, and the single parameter ternary variable circulation encryption anti-counterfeiting information storage trademark can be applied to all kinds of anti-counterfeiting trademarks.

Description

One-parameter three metavariable circulation encryption anti-counterfeiting information storage trade marks
affiliated technical field:
The present invention relates to a kind of anti-false trademark, particularly a kind of one-parameter three metavariable circulation encryption anti-counterfeiting information are stored trade marks, this trade mark can be kept at binary add tight defense fake information on the trade mark page and realize the false proof of trade mark, and what this trade mark can be for extensive stock is false proof.
background technology:
Anti-false trademark, claim again antifalsification label, anti-counterfeiting mark, anti-false sign, anti-fake label, is a kind of proof label of discerning the false from the genuine, preventing personation, be in the commodity process of circulation people for distinguishing true and false, the sign of distinguishing the commercial quality quality of merchandise resources.Trademark anti-counterfeit is related to businessman, client and market safety, is related to protection businessman and client's interests.The trade mark of China has carried out innovation audaciously; adopted laser anti-counterfeit, the core micropore is false proof, invisible graph is false proof, magnetic ink is false proof, microfilm of characters is false proof, indicia distribution is false proof, light carving is false proof etc.; but the false proof struggle with fraud is high-tech trial of strength; advanced anti-counterfeiting technology has certain ageing again; so; must constantly promote trade mark anti-fake technique; could false proof with fake in forever maintain the leading position, this is also that protection businessman and client's interests are maintained the commodity safe basic assurance that circulates.
summary of the invention:
For reliability and the security that improves trademark anti-counterfeit, the deficiency that the present invention is directed to existing trademark anti-counterfeit existence is improved existing trade mark anti-fake technique, a kind of anti-counterfeiting information storage trade mark has been proposed, this trade mark is by the change to amplitude electric conductivity in brand printing, encryption anti-counterfeiting information is embedded on the whole trade mark page with scale-of-two coded signal form, can identify encryption anti-counterfeiting information when brand recognition from any one fragment, therefore there is very strong disguise and crush resistance.
The technical solution adopted for the present invention to solve the technical problems is:
Anti-counterfeiting information storage trade mark, by trade mark page paper, be printed on amplitude on trade mark page paper, be printed on the horizontal scanning line on trade mark page paper, the column scan line be printed on trade mark page paper forms, image and word on trade mark page paper consist of amplitude,
Binary add tight defense fake information according to storage, a part of amplitude on trade mark page paper is printed and is formed by electrically conductive ink, another part amplitude on trade mark page paper is printed and is formed by dielectric ink, and the horizontal scanning line on trade mark page paper and column scan line are printed and formed by electrically conducting transparent printing ink
The horizontal scanning line be printed on trade mark page paper has the N bar, the column scan line be printed on trade mark page paper has the M bar, the amplitude be printed on trade mark page paper is divided into the capable M row of N on the trade mark paper, amplitude neatly is matrix and arranges on trade mark page paper paper, allow i get 1 to N, allow j get 1 to M, j bar column scan line on trade mark page paper is electrically connected to the basal surface of each amplitude of the row of the j on trade mark page paper, the upper surface of each amplitude that the i bar horizontal scanning line on trade mark page paper is capable with i on trade mark page paper is electrically connected to
In the time the binary message of trade mark page stores need to being read, be set to successively high level to N bar horizontal scanning line by the 1st on trade mark page paper,
When the 1st horizontal scanning line on trade mark page paper is set to high level, the binary message of the 1st row storage on trade mark page paper is exported from the 1st column scan line to M bar column scan line with 0,1 code form, the 1st row on trade mark page paper is printed the amplitude output binary message 1 formed by electrically conductive ink, the 1st row on trade mark page paper is printed the amplitude output binary message 0 formed by dielectric ink, can repeat above-mentioned readout to other row on trade mark page paper
In order to realize the encryption storage of trademark anti-counterfeit information, at first image false-proof information and character anti-counterfeiting information are carried out to digitized processing, utilize the binary system anti-counterfeiting information table of 8 one group of image false-proof information and character anti-counterfeiting Information generation, for preventing from ciphering process producing information spillover, each 8 one group of binary system anti-counterfeiting information in binary system anti-counterfeiting information table are expanded to 32 one group of binary system anti-counterfeiting information, generating high 24 is 0 32 one group binary system anti-counterfeiting information table entirely, 32 binary system anti-counterfeiting information of i in 32 one group binary system anti-counterfeiting information table group are denoted as
Figure 925595DEST_PATH_IMAGE001
, 32 binary add tight defense fake informations of the group of the i in 32 one group binary add tight defense fake information table are denoted as to H ii is greater than 0 positive integer, binary system is encrypted parameter and is denoted as C, the binary system positive integer that encryption parameter C is 0<=C<=256, binary system is encrypted variable and is denoted as q, j, d, e, f, g, h, r and p, the binary system positive integer that encryption variables q, j, d, e, f, g, h, r and p are 0 to 256, and the binary operator control variables is denoted as k, the binary system positive integer that binary operator control variables k is 0<=k<=7, operator
Figure 29686DEST_PATH_IMAGE002
Figure 142315DEST_PATH_IMAGE004
Figure 143638DEST_PATH_IMAGE005
Figure 903784DEST_PATH_IMAGE006
Figure 494351DEST_PATH_IMAGE008
Figure 350180DEST_PATH_IMAGE009
adopt+,-, *, four kinds of operators, during binary operator control variables k=0
Figure 222507DEST_PATH_IMAGE003
Figure 420587DEST_PATH_IMAGE005
Figure 37382DEST_PATH_IMAGE006
Figure 678765DEST_PATH_IMAGE008
Figure 322236DEST_PATH_IMAGE009
be defined as respectively-,+, * ,+, * ,-, * ,+, during binary operator control variables k=1
Figure 595086DEST_PATH_IMAGE002
Figure 212384DEST_PATH_IMAGE005
Figure 984031DEST_PATH_IMAGE006
Figure 872352DEST_PATH_IMAGE007
Figure 941808DEST_PATH_IMAGE008
be defined as respectively+, * ,+,+,-, * ,+, *, during binary operator control variables k=2
Figure 174523DEST_PATH_IMAGE002
Figure 817229DEST_PATH_IMAGE005
Figure 868362DEST_PATH_IMAGE006
Figure 980543DEST_PATH_IMAGE007
Figure 142534DEST_PATH_IMAGE008
Figure 204031DEST_PATH_IMAGE009
be defined as respectively-, * ,+,+, * ,-,+,-, during binary operator control variables k=3
Figure 25543DEST_PATH_IMAGE003
Figure 240492DEST_PATH_IMAGE004
Figure 359758DEST_PATH_IMAGE005
Figure 736381DEST_PATH_IMAGE006
Figure 573887DEST_PATH_IMAGE007
Figure 326949DEST_PATH_IMAGE008
Figure 566300DEST_PATH_IMAGE009
be defined as respectively-, * ,+,-, * ,-,+, *, during binary operator control variables k=4
Figure 113825DEST_PATH_IMAGE002
Figure 438627DEST_PATH_IMAGE003
Figure 808429DEST_PATH_IMAGE004
Figure 885975DEST_PATH_IMAGE005
Figure 620713DEST_PATH_IMAGE006
Figure 416499DEST_PATH_IMAGE007
Figure 527675DEST_PATH_IMAGE008
Figure 538356DEST_PATH_IMAGE009
be defined as respectively+, * ,-, * ,+,-,+, *, during binary operator control variables k=5
Figure 693263DEST_PATH_IMAGE002
Figure 727078DEST_PATH_IMAGE003
Figure 625633DEST_PATH_IMAGE004
Figure 490820DEST_PATH_IMAGE005
Figure 567361DEST_PATH_IMAGE006
Figure 337740DEST_PATH_IMAGE007
Figure 525138DEST_PATH_IMAGE008
Figure 697363DEST_PATH_IMAGE009
be defined as respectively * ,+, * ,-,+,+,-, *, during binary operator control variables k=6
Figure 7121DEST_PATH_IMAGE002
Figure 15529DEST_PATH_IMAGE003
Figure 279323DEST_PATH_IMAGE004
Figure 56786DEST_PATH_IMAGE005
Figure 537446DEST_PATH_IMAGE006
Figure 16838DEST_PATH_IMAGE007
Figure 692856DEST_PATH_IMAGE009
be defined as respectively * ,+,+,-, * ,+,+, *, during binary operator control variables k=7
Figure 282100DEST_PATH_IMAGE002
Figure 514367DEST_PATH_IMAGE003
Figure 847260DEST_PATH_IMAGE004
Figure 608728DEST_PATH_IMAGE006
Figure 261612DEST_PATH_IMAGE008
Figure 602595DEST_PATH_IMAGE009
be defined as respectively+, *, * ,-,+,-,-, *, during binary operator control variables k=0, three metavariable circulation cryptographic calculations are defined as H i=
Figure 48489DEST_PATH_IMAGE010
Figure 740501DEST_PATH_IMAGE002
C
Figure 664464DEST_PATH_IMAGE003
Figure 125532DEST_PATH_IMAGE011
Figure 742327DEST_PATH_IMAGE004
C
Figure 718373DEST_PATH_IMAGE005
Figure 27181DEST_PATH_IMAGE006
C
Figure 300030DEST_PATH_IMAGE007
C
Figure 215903DEST_PATH_IMAGE008
C
Figure 294717DEST_PATH_IMAGE009
C, during binary operator control variables k=1, three metavariable circulation cryptographic calculations are defined as H i=C
Figure 423396DEST_PATH_IMAGE011
Figure 577297DEST_PATH_IMAGE003
C
Figure 646753DEST_PATH_IMAGE004
Figure 999237DEST_PATH_IMAGE012
Figure 879468DEST_PATH_IMAGE005
C
Figure 504353DEST_PATH_IMAGE006
Figure 862653DEST_PATH_IMAGE013
Figure 522174DEST_PATH_IMAGE007
C
Figure 307727DEST_PATH_IMAGE008
C
Figure 232958DEST_PATH_IMAGE009
C, during binary operator control variables k=2, three metavariable circulation cryptographic calculations are defined as H i=C
Figure 581900DEST_PATH_IMAGE002
C
Figure 908976DEST_PATH_IMAGE003
Figure 380277DEST_PATH_IMAGE012
C
Figure 679857DEST_PATH_IMAGE005
Figure 799123DEST_PATH_IMAGE013
Figure 441326DEST_PATH_IMAGE006
C
Figure 278832DEST_PATH_IMAGE007
C
Figure 631819DEST_PATH_IMAGE009
C, during binary operator control variables k=3, three metavariable circulation cryptographic calculations are defined as H i=C
Figure 205889DEST_PATH_IMAGE002
C
Figure 247794DEST_PATH_IMAGE003
C
Figure 590919DEST_PATH_IMAGE004
Figure 387974DEST_PATH_IMAGE013
C
Figure 294936DEST_PATH_IMAGE006
Figure 243301DEST_PATH_IMAGE014
Figure 522841DEST_PATH_IMAGE007
C
Figure 556656DEST_PATH_IMAGE008
Figure 189632DEST_PATH_IMAGE015
Figure 320399DEST_PATH_IMAGE009
C, during binary operator control variables k=4, three metavariable circulation cryptographic calculations are defined as H i=C
Figure 396939DEST_PATH_IMAGE002
C
Figure 167318DEST_PATH_IMAGE003
C C
Figure 526941DEST_PATH_IMAGE005
Figure 774383DEST_PATH_IMAGE014
Figure 32058DEST_PATH_IMAGE006
C
Figure 23147DEST_PATH_IMAGE007
Figure 862927DEST_PATH_IMAGE015
Figure 530538DEST_PATH_IMAGE008
C
Figure 760662DEST_PATH_IMAGE009
, during binary operator control variables k=5, three metavariable circulation cryptographic calculations are defined as H i=
Figure 742393DEST_PATH_IMAGE017
Figure 623631DEST_PATH_IMAGE002
C
Figure 212875DEST_PATH_IMAGE003
C
Figure 468580DEST_PATH_IMAGE004
C
Figure 801472DEST_PATH_IMAGE005
C
Figure 829974DEST_PATH_IMAGE007
C
Figure 950245DEST_PATH_IMAGE008
Figure 619124DEST_PATH_IMAGE016
Figure 815750DEST_PATH_IMAGE009
C, during binary operator control variables k=6, three metavariable circulation cryptographic calculations are defined as H i=C
Figure 491451DEST_PATH_IMAGE002
Figure 2013100221673100002DEST_PATH_IMAGE018
Figure 618676DEST_PATH_IMAGE003
C
Figure 142061DEST_PATH_IMAGE004
C
Figure 244009DEST_PATH_IMAGE005
C C
Figure 150971DEST_PATH_IMAGE007
Figure 528863DEST_PATH_IMAGE016
Figure 316559DEST_PATH_IMAGE008
C
Figure 717585DEST_PATH_IMAGE009
Figure 248929DEST_PATH_IMAGE017
, during binary operator control variables k=7, three metavariable circulation cryptographic calculations are defined as H i=
Figure 684590DEST_PATH_IMAGE018
Figure 377608DEST_PATH_IMAGE002
C
Figure 414014DEST_PATH_IMAGE010
Figure 953449DEST_PATH_IMAGE004
C
Figure 568101DEST_PATH_IMAGE005
C
Figure 192986DEST_PATH_IMAGE006
C
Figure 816866DEST_PATH_IMAGE007
C
Figure 210807DEST_PATH_IMAGE008
Figure 374121DEST_PATH_IMAGE009
C, the initial value of setting encryption parameter C, the initial value of setting encryption variables q, j, d, e, f, g, h, r and p, the initial value of setting binary operator control variables k is k=0, sets 32 binary system anti-counterfeiting information in 32 one group binary system anti-counterfeiting information table
Figure 536112DEST_PATH_IMAGE001
Position Control variable i=1, set 32 binary add tight defense fake information H in 32 one group binary add tight defense fake information table iPosition Control variable i=1, right
Figure 863188DEST_PATH_IMAGE019
carry out H 1=
Figure 2013100221673100002DEST_PATH_IMAGE020
Figure 272173DEST_PATH_IMAGE002
C
Figure 606071DEST_PATH_IMAGE003
Figure 571753DEST_PATH_IMAGE021
Figure 940286DEST_PATH_IMAGE004
C
Figure 233044DEST_PATH_IMAGE023
Figure 986105DEST_PATH_IMAGE006
C
Figure 959878DEST_PATH_IMAGE007
C
Figure 586031DEST_PATH_IMAGE008
C
Figure 894522DEST_PATH_IMAGE009
C tri-metavariable circulation cryptographic calculations (wherein k=0), generate first binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 1, right
Figure 202006DEST_PATH_IMAGE019
carry out H 1=
Figure 545132DEST_PATH_IMAGE020
C
Figure 75656DEST_PATH_IMAGE003
Figure 931934DEST_PATH_IMAGE004
C
Figure 120655DEST_PATH_IMAGE023
Figure 19210DEST_PATH_IMAGE006
C
Figure 87660DEST_PATH_IMAGE007
C
Figure 226518DEST_PATH_IMAGE008
C
Figure 731317DEST_PATH_IMAGE009
C carries out i+1, q+1, j+1, d+1, e+1, f+1, g+1, h+1, r+1, p+1 and k+1 computing in the time of tri-metavariable circulation cryptographic calculations, makes next three metavariable circulation cryptographic calculations point to H 2=C
Figure 371246DEST_PATH_IMAGE002
Figure DEST_PATH_IMAGE024
Figure 481153DEST_PATH_IMAGE003
C
Figure 790912DEST_PATH_IMAGE004
Figure DEST_PATH_IMAGE025
C
Figure 521900DEST_PATH_IMAGE006
Figure 299363DEST_PATH_IMAGE027
Figure 990411DEST_PATH_IMAGE007
C
Figure 548431DEST_PATH_IMAGE008
C
Figure 77633DEST_PATH_IMAGE009
C(is k=1 wherein), generate second binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 2, right
Figure 2013100221673100002DEST_PATH_IMAGE028
carry out H 2=C
Figure 162132DEST_PATH_IMAGE002
Figure 644DEST_PATH_IMAGE024
Figure 718065DEST_PATH_IMAGE003
C
Figure 300225DEST_PATH_IMAGE004
Figure 874742DEST_PATH_IMAGE005
C
Figure 134188DEST_PATH_IMAGE007
C
Figure 314503DEST_PATH_IMAGE008
C
Figure 6515DEST_PATH_IMAGE009
C carries out i+1, q+1, j+1, d+1, e+1, f+1, g+1, h+1, r+1, p+1 and k+1 computing in the time of tri-metavariable circulation cryptographic calculations, makes next three metavariable circulation cryptographic calculations point to H 3=C
Figure 196057DEST_PATH_IMAGE002
C
Figure 2013100221673100002DEST_PATH_IMAGE029
Figure 946024DEST_PATH_IMAGE004
C
Figure 374600DEST_PATH_IMAGE005
Figure 915303DEST_PATH_IMAGE030
Figure 230878DEST_PATH_IMAGE006
C
Figure 419600DEST_PATH_IMAGE008
C
Figure 950944DEST_PATH_IMAGE009
C(is k=2 wherein), generate the 3rd binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 3, this three metavariables circulation cryptographic calculation goes on always until 32 binary system anti-counterfeiting information of last in binary system anti-counterfeiting information table, by each 32 the binary system anti-counterfeiting information in 32 one group binary system anti-counterfeiting information table
Figure 121026DEST_PATH_IMAGE001
carry out three metavariable circulation cryptographic calculations, generate and 32 one group 32 the one group binary add tight defense fake information table that binary system anti-counterfeiting information table is corresponding, amplitude in label printing is carried out to digitized processing, amplitude is set to two kinds, wherein by dielectric ink, print the amplitude formed and be defined as numeral 0, print by electrically conductive ink the amplitude formed and be defined as numeral 1, in the label printing process, utilize the binary add tight defense fake information of 32 group generated by the printing process of the amplitude on the circulation look-up table modulation trade mark page, by selecting dielectric ink and electrically conductive ink to print amplitude, the regular electric conductivity according to above-mentioned two kinds of amplitudes of amplitude on the trade mark page is changed, on the rear trade mark page of modulation, adjacent 32 amplitudes form one group of 32 binary message, make on the trade mark page and carry anti-counterfeiting information by the variation of amplitude electric conductivity, and this anti-counterfeiting information is embedded in whole trade mark page site, realize trademark anti-counterfeit, by non-obvious the extractible anti-counterfeiting information that embeds in the trade mark page, can provide valid certificates for true trade mark, there is stronger anti-forgery ability simultaneously.
For solving above-mentioned technical matters, at first image false-proof information and character anti-counterfeiting information are carried out to digitized processing, generate the scale-of-two anti-counterfeiting information table of 8 group, each 8 one group of scale-of-two anti-counterfeiting information in scale-of-two anti-counterfeiting information table are expanded to 32 one group of scale-of-two anti-counterfeiting information, generating high 24 is 0 32 one group scale-of-two anti-counterfeiting information table entirely, each 32 scale-of-two anti-counterfeiting information in 32 one group scale-of-two anti-counterfeiting information table are carried out to three metavariable circulation cryptographic calculations, generate the binary add tight defense fake information table of 32 group, utilize 32 binary add tight defense fake informations process chnnel codings in binary add tight defense fake information table, generation has the binary modulated signal of 32 group of error detecting and error correcting function, chnnel coding can adopt loop coding, convolutional encoding or Turbo coding various ways, trade mark page original continuous is changed the line map, and image signal is processed (RIP) through rasterizing and hybrid screening is exported shadow tone hybrid screening picture signal, comprising amplitude and FM screened image signal, utilize 32 one group of binary modulated signals that generate to adopt the electric conductivity of amplitude in circulation look-up table modulation system modulation hybrid screening picture signal, the electric conductivity that makes amplitude is according to the dielectric ink amplitude and the electrically conductive ink amplitude is regular changes, make adjacent 32 amplitudes in the hybrid screening picture signal carry 32 scale-of-two anti-counterfeiting information by the change of electric conductivity, thereby be created on the hybrid screening picture signal that embeds anti-counterfeiting information in whole trade mark page site, realize the false proof of trade mark.
When extracting anti-counterfeiting information, at first gather trade mark page site electric conductivity signal, identification through the electric conductivity to amplitude, differentiate the electric conductivity of amplitude, extract the electric conductivity information of amplitude, the electric conductivity information of demodulation trade mark page amplitude, export the binary modulated signal of 32 group, the binary modulated signal of 32 one group to demodulation output carries out channel-decoding, generate scale-of-two deciphering anti-counterfeiting information table after channel-decoding, 32 binary messages of i group that scale-of-two is deciphered in the anti-counterfeiting information table are denoted as M i.
Binary system is deciphered to 32 binary message M in the anti-counterfeiting information table iThe initial value design of Position Control variable i be i=1, the initial value when initial value of setting encryption parameter C is encryption, the initial value when initial value of setting encryption variables q, j, d, e, f, g, h, r and p is encryption, the initial value design of binary operator control variables k is k=0, known by three metavariable circulation ciphering process, during binary operator control variables k=0, decrypt operation is M i=
Figure 79623DEST_PATH_IMAGE010
Figure 967945DEST_PATH_IMAGE002
C
Figure 850450DEST_PATH_IMAGE003
Figure 389885DEST_PATH_IMAGE011
Figure 270116DEST_PATH_IMAGE004
C
Figure 895001DEST_PATH_IMAGE005
C
Figure 26271DEST_PATH_IMAGE007
C
Figure 889185DEST_PATH_IMAGE008
C C, during binary operator control variables k=1, decrypt operation is M i=C
Figure 565203DEST_PATH_IMAGE002
Figure 770925DEST_PATH_IMAGE011
Figure 121135DEST_PATH_IMAGE003
C
Figure 149134DEST_PATH_IMAGE004
Figure 910602DEST_PATH_IMAGE005
C
Figure 731797DEST_PATH_IMAGE006
Figure 235590DEST_PATH_IMAGE013
Figure 724209DEST_PATH_IMAGE007
C
Figure 288046DEST_PATH_IMAGE008
C
Figure 596536DEST_PATH_IMAGE009
C, during binary operator control variables k=2, decrypt operation is M i=C
Figure 904021DEST_PATH_IMAGE002
C
Figure 60196DEST_PATH_IMAGE003
Figure 590720DEST_PATH_IMAGE004
C
Figure 685584DEST_PATH_IMAGE005
Figure 633949DEST_PATH_IMAGE013
Figure 788855DEST_PATH_IMAGE006
C
Figure 793871DEST_PATH_IMAGE008
C
Figure 119679DEST_PATH_IMAGE009
C, during binary operator control variables k=3, decrypt operation is M i=C
Figure 952375DEST_PATH_IMAGE002
C
Figure 405353DEST_PATH_IMAGE003
C
Figure 125047DEST_PATH_IMAGE004
Figure 621757DEST_PATH_IMAGE013
Figure 630164DEST_PATH_IMAGE005
C
Figure 870521DEST_PATH_IMAGE006
Figure 647984DEST_PATH_IMAGE014
Figure 128644DEST_PATH_IMAGE007
C
Figure 873615DEST_PATH_IMAGE008
Figure 402817DEST_PATH_IMAGE015
Figure 284054DEST_PATH_IMAGE009
C, during binary operator control variables k=4, decrypt operation is M i=C
Figure 138878DEST_PATH_IMAGE002
C
Figure 105565DEST_PATH_IMAGE003
C
Figure 500775DEST_PATH_IMAGE004
C
Figure 252830DEST_PATH_IMAGE005
Figure 262243DEST_PATH_IMAGE014
C
Figure 665860DEST_PATH_IMAGE007
Figure 521689DEST_PATH_IMAGE015
C
Figure 394016DEST_PATH_IMAGE009
Figure 68711DEST_PATH_IMAGE016
, during binary operator control variables k=5, decrypt operation is M i=
Figure 592096DEST_PATH_IMAGE017
Figure 208891DEST_PATH_IMAGE002
C
Figure 388200DEST_PATH_IMAGE003
C
Figure 850274DEST_PATH_IMAGE004
C
Figure 431428DEST_PATH_IMAGE005
C
Figure 766595DEST_PATH_IMAGE006
Figure 698964DEST_PATH_IMAGE007
C
Figure 383892DEST_PATH_IMAGE008
Figure 155539DEST_PATH_IMAGE016
Figure 43861DEST_PATH_IMAGE009
C, during binary operator control variables k=6, decrypt operation is M i=C
Figure 113317DEST_PATH_IMAGE002
Figure 532983DEST_PATH_IMAGE003
C
Figure 970918DEST_PATH_IMAGE004
C
Figure 329218DEST_PATH_IMAGE005
C
Figure 988738DEST_PATH_IMAGE006
C
Figure 39871DEST_PATH_IMAGE007
Figure 152052DEST_PATH_IMAGE016
C
Figure 375540DEST_PATH_IMAGE009
, during binary operator control variables k=7, decrypt operation is M i=
Figure 633270DEST_PATH_IMAGE018
C
Figure 967485DEST_PATH_IMAGE003
Figure 994664DEST_PATH_IMAGE004
C C
Figure 987076DEST_PATH_IMAGE006
C
Figure 534601DEST_PATH_IMAGE007
C
Figure 859403DEST_PATH_IMAGE008
Figure 229205DEST_PATH_IMAGE017
Figure 306751DEST_PATH_IMAGE009
C, first M from binary system deciphering anti-counterfeiting information table 1Start, to each 32 the binary message M in binary system deciphering anti-counterfeiting information table iCarry out corresponding decrypt operation, solve the binary system anti-counterfeiting information
Figure 228440DEST_PATH_IMAGE001
, generating high 24 is 0 32 one group binary system anti-counterfeiting information table entirely, removes highly 24, recovers to generate the binary system anti-counterfeiting information table of 8 group, recovers anti-counterfeiting signal and also exports anti-counterfeiting information.
The accompanying drawing explanation
Below in conjunction with accompanying drawing, the present invention is further described.
Fig. 1 is one-piece construction figure of the present invention.
Fig. 2 is A of the present invention-A cut-open view.
Fig. 3 loads the anti-counterfeiting information process flow diagram.
Fig. 4 extracts the anti-counterfeiting information process flow diagram.
Embodiment
In Fig. 1 and Fig. 2, encryption anti-counterfeiting information storage trade mark, by trade mark page paper 7-1, be printed on amplitude 6-1 on trade mark page paper 7-1 to 6-150, be printed on horizontal scanning line 1-1 on trade mark page paper 7-1 and form to 2-10 to 1-15, the column scan line 2-1 that is printed on trade mark page paper 7-1, image and word on trade mark page paper 7-1 consist of to 6-150 amplitude 6-1
According to storage binary add tight defense fake information, a part of amplitude on trade mark page paper 7-1 is printed and is formed by electrically conductive ink, another part amplitude on trade mark page paper 7-1 is printed and is formed by dielectric ink, horizontal scanning line 1-1 on trade mark page paper 7-1 is printed and is formed by electrically conducting transparent printing ink to 2-10 to 1-15 and column scan line 2-1
In Fig. 1, the dark amplitude on trade mark page paper 7-1 is printed and is formed by electrically conductive ink, and the light amplitude on trade mark page paper 7-1 is printed and formed by dielectric ink,
The amplitude be printed on trade mark page paper 7-1 is divided into 15 row 10 row on the trade mark paper, amplitude 6-1 neatly is matrix and arranges on trade mark page paper 7-1 to 6-150, allow i get 1 to 15, allow j get 1 to 10, j bar column scan line on trade mark page paper 7-1 is electrically connected to the basal surface of each amplitude of j on trade mark page paper 7-1 row, the upper surface of each amplitude that the i bar horizontal scanning line on trade mark page paper 7-1 is capable with i on trade mark page paper 7-1 is electrically connected to
In the time the binary add tight defense fake information of trade mark page stores need to being read, 15 horizontal scanning lines of the 1st horizontal scanning line to the on trade mark page paper 7-1 are set to high level successively,
When the 1st horizontal scanning line 1-1 on trade mark page paper 7-1 is set to high level, the binary add tight defense fake information of the 1st row storage on trade mark page paper 7-1 is with 0, 1 code form is from 10 column scan line outputs of the 1st column scan line to the, the 1st row on trade mark page paper 7-1 is printed and is formed amplitude output binary message 1 by electrically conductive ink, the 1st row on trade mark page paper 7-1 is printed and is formed amplitude output binary message 0 by dielectric ink, therefore the binary add tight defense fake information 1100001000 that the 1st row is read, can repeat above-mentioned readout to other row on trade mark page paper 7-1.
In loading anti-counterfeiting information process flow diagram 3, original anti-counterfeiting information (image, word) is through digitized processing, generate the scale-of-two anti-counterfeiting information table of 8 group, 8 one group of binary messages in scale-of-two anti-counterfeiting information table are expanded to 32 one group of binary messages, generating high 24 is 0 32 one group scale-of-two anti-counterfeiting information table entirely, and 32 binary messages of i group in 32 one group scale-of-two anti-counterfeiting information table are denoted as
Figure 172298DEST_PATH_IMAGE001
, i is greater than 0 positive integer, 32 binary add tight defense fake informations of first from 32 one group scale-of-two anti-counterfeiting information table
Figure 532741DEST_PATH_IMAGE019
start, to each 32 the scale-of-two anti-counterfeiting information in 32 one group scale-of-two anti-counterfeiting information table
Figure 543422DEST_PATH_IMAGE001
carry out three metavariable circulation cryptographic calculations, generate and 32 one group 32 the one group binary add tight defense fake information table that scale-of-two anti-counterfeiting information table is corresponding, amplitude in label printing is carried out to digitized processing, amplitude is set to two kinds, wherein by dielectric ink, print the amplitude formed and be defined as numeral 0, print by electrically conductive ink the amplitude formed and be defined as numeral 1, in the label printing process, utilize the binary add tight defense fake information of 32 group generated by the printing process of the amplitude on the circulation look-up table modulation trade mark page, by selecting dielectric ink and electrically conductive ink to print amplitude, the regular electric conductivity according to above-mentioned two kinds of amplitudes of amplitude on the trade mark page is changed, on the rear trade mark page of modulation, adjacent 32 amplitudes form one group of 32 binary message, make on the trade mark page and carry anti-counterfeiting information by the variation of amplitude electric conductivity, and this anti-counterfeiting information is embedded in whole trade mark page site, realize the trademark anti-counterfeit printing, by non-obvious the extractible anti-counterfeiting information that embeds in the trade mark page, realize trademark anti-counterfeit.
In extracting anti-counterfeiting information process flow diagram 4, when extracting anti-counterfeiting information, at first gather the electric conductivity signal of trade mark page halftone dot image, through the identification of the electric conductivity to amplitude, differentiate the electric conductivity of amplitude, extract the electric conductivity information of amplitude, the electric conductivity information of demodulation trade mark page amplitude, export the binary modulated signal of 32 group, the binary modulated signal of 32 one group to demodulation output carries out channel-decoding, generates scale-of-two deciphering anti-counterfeiting information table after channel-decoding.
By 32 binary message M in the scale-of-two deciphering anti-counterfeiting information table generated after decoding ithe initial value design of position control variable i be i=1, the initial value when initial value of setting encryption parameter C is encryption, the initial value when initial value of setting encryption variables q is encryption, the initial value design of binary operator control variable k is k=0, first M from the scale-of-two deciphering anti-counterfeiting information table generated 1start, to each 32 the binary message M in scale-of-two deciphering anti-counterfeiting information table ibe decrypted computing, solve the scale-of-two anti-counterfeiting information
Figure 449061DEST_PATH_IMAGE001
, generating high 24 is 0 32 one group scale-of-two anti-counterfeiting information table entirely, removes highly 24, recovers to generate the scale-of-two anti-counterfeiting information table of 8 group, recovers anti-counterfeiting signal and also exports anti-counterfeiting information.

Claims (1)

1. one kind generates the binary modulated signal by anti-counterfeiting information by cryptographic calculation and chnnel coding, and by the circulation modulation system of tabling look-up, anti-counterfeiting information is embedded in to the one-parameter three metavariable circulation encryption anti-counterfeiting information storage trade marks in full page, it is characterized in that:anti-counterfeiting information storage trade mark, by trade mark page paper, be printed on amplitude on trade mark page paper, be printed on the horizontal scanning line on trade mark page paper, the column scan line be printed on trade mark page paper forms, binary add tight defense fake information according to storage, a part of amplitude on trade mark page paper is printed and is formed by electrically conductive ink, another part amplitude on trade mark page paper is printed and is formed by dielectric ink, horizontal scanning line on trade mark page paper and column scan line are printed and are formed by electrically conducting transparent printing ink
In order to realize the encryption storage of trademark anti-counterfeit information, at first image false-proof information and character anti-counterfeiting information are carried out to digitized processing, utilize the binary system anti-counterfeiting information table of 8 one group of image false-proof information and character anti-counterfeiting Information generation, for preventing from ciphering process producing information spillover, each 8 one group of binary system anti-counterfeiting information in binary system anti-counterfeiting information table are expanded to 32 one group of binary system anti-counterfeiting information, generating high 24 is 0 32 one group binary system anti-counterfeiting information table entirely, 32 binary system anti-counterfeiting information of i in 32 one group binary system anti-counterfeiting information table group are denoted as , 32 binary add tight defense fake informations of the group of the i in 32 one group binary add tight defense fake information table are denoted as to H ii is greater than 0 positive integer, binary system is encrypted parameter and is denoted as C, the binary system positive integer that encryption parameter C is 0<=C<=256, binary system is encrypted variable and is denoted as q, j, d, e, f, g, h, r and p, the binary system positive integer that encryption variables q, j, d, e, f, g, h, r and p are 0 to 256, and the binary operator control variables is denoted as k, the binary system positive integer that binary operator control variables k is 0<=k<=7, operator
Figure 870582DEST_PATH_IMAGE002
Figure 673453DEST_PATH_IMAGE003
Figure 999261DEST_PATH_IMAGE004
Figure 957038DEST_PATH_IMAGE006
Figure 879995DEST_PATH_IMAGE007
Figure 376704DEST_PATH_IMAGE008
adopt+,-, *, four kinds of operators, during binary operator control variables k=0
Figure 625469DEST_PATH_IMAGE002
Figure 402932DEST_PATH_IMAGE003
Figure 300667DEST_PATH_IMAGE005
Figure 344715DEST_PATH_IMAGE006
Figure 976685DEST_PATH_IMAGE007
Figure 628246DEST_PATH_IMAGE008
Figure 860513DEST_PATH_IMAGE009
be defined as respectively-,+, * ,+, * ,-, * ,+, during binary operator control variables k=1
Figure 193405DEST_PATH_IMAGE002
Figure 929149DEST_PATH_IMAGE003
Figure 408858DEST_PATH_IMAGE005
Figure 545441DEST_PATH_IMAGE006
Figure 86647DEST_PATH_IMAGE009
be defined as respectively+, * ,+,+,-, * ,+, *, during binary operator control variables k=2
Figure 10609DEST_PATH_IMAGE002
Figure 88473DEST_PATH_IMAGE004
Figure 2202DEST_PATH_IMAGE005
Figure 311010DEST_PATH_IMAGE007
be defined as respectively-, * ,+,+, * ,-,+,-, during binary operator control variables k=3
Figure 201157DEST_PATH_IMAGE003
Figure 894175DEST_PATH_IMAGE004
Figure 48076DEST_PATH_IMAGE005
Figure 930582DEST_PATH_IMAGE006
Figure 470016DEST_PATH_IMAGE007
Figure 350248DEST_PATH_IMAGE008
Figure 975133DEST_PATH_IMAGE009
be defined as respectively-, * ,+,-, * ,-,+, *, during binary operator control variables k=4
Figure 333433DEST_PATH_IMAGE002
Figure 806003DEST_PATH_IMAGE003
Figure 840824DEST_PATH_IMAGE004
Figure 703737DEST_PATH_IMAGE005
Figure 114996DEST_PATH_IMAGE006
Figure 664106DEST_PATH_IMAGE008
Figure 263583DEST_PATH_IMAGE009
be defined as respectively+, * ,-, * ,+,-,+, *, during binary operator control variables k=5
Figure 963686DEST_PATH_IMAGE002
Figure 332220DEST_PATH_IMAGE003
Figure 725155DEST_PATH_IMAGE004
Figure 378039DEST_PATH_IMAGE006
Figure 351811DEST_PATH_IMAGE007
Figure 489717DEST_PATH_IMAGE009
be defined as respectively * ,+, * ,-,+,+,-, *, during binary operator control variables k=6
Figure 780890DEST_PATH_IMAGE002
Figure 671803DEST_PATH_IMAGE004
Figure 467589DEST_PATH_IMAGE005
Figure 578765DEST_PATH_IMAGE006
Figure 744353DEST_PATH_IMAGE008
Figure 778168DEST_PATH_IMAGE009
be defined as respectively * ,+,+,-, * ,+,+, *, during binary operator control variables k=7
Figure 411144DEST_PATH_IMAGE002
Figure 479594DEST_PATH_IMAGE003
Figure 618451DEST_PATH_IMAGE004
Figure 388830DEST_PATH_IMAGE005
Figure 576229DEST_PATH_IMAGE006
Figure 748453DEST_PATH_IMAGE007
Figure 995895DEST_PATH_IMAGE008
Figure 66619DEST_PATH_IMAGE009
be defined as respectively+, *, * ,-,+,-,-, *, during binary operator control variables k=0, three metavariable circulation cryptographic calculations are defined as H i=
Figure 306976DEST_PATH_IMAGE010
Figure 84439DEST_PATH_IMAGE002
C
Figure 775487DEST_PATH_IMAGE003
Figure 5611DEST_PATH_IMAGE011
Figure 862709DEST_PATH_IMAGE004
C
Figure 333191DEST_PATH_IMAGE012
Figure 565458DEST_PATH_IMAGE006
C
Figure 898350DEST_PATH_IMAGE007
C
Figure 447143DEST_PATH_IMAGE008
C
Figure 722135DEST_PATH_IMAGE009
C, during binary operator control variables k=1, three metavariable circulation cryptographic calculations are defined as H i=C
Figure 47123DEST_PATH_IMAGE011
Figure 716002DEST_PATH_IMAGE003
C
Figure 588329DEST_PATH_IMAGE012
Figure 528603DEST_PATH_IMAGE005
C
Figure 238939DEST_PATH_IMAGE006
Figure 403204DEST_PATH_IMAGE013
Figure 582513DEST_PATH_IMAGE007
C C
Figure 625741DEST_PATH_IMAGE009
C, during binary operator control variables k=2, three metavariable circulation cryptographic calculations are defined as H i=C
Figure 413437DEST_PATH_IMAGE002
C
Figure 876780DEST_PATH_IMAGE003
Figure 843785DEST_PATH_IMAGE004
C
Figure 690704DEST_PATH_IMAGE013
Figure 573209DEST_PATH_IMAGE006
C
Figure 727296DEST_PATH_IMAGE014
Figure 102914DEST_PATH_IMAGE008
C
Figure 976061DEST_PATH_IMAGE009
C, during binary operator control variables k=3, three metavariable circulation cryptographic calculations are defined as H i=C C
Figure 234184DEST_PATH_IMAGE003
C
Figure 346365DEST_PATH_IMAGE004
Figure 508356DEST_PATH_IMAGE013
Figure 835432DEST_PATH_IMAGE005
C
Figure 306734DEST_PATH_IMAGE006
Figure 391364DEST_PATH_IMAGE014
Figure 606314DEST_PATH_IMAGE007
C
Figure 725580DEST_PATH_IMAGE008
Figure 180832DEST_PATH_IMAGE015
Figure 267605DEST_PATH_IMAGE009
C, during binary operator control variables k=4, three metavariable circulation cryptographic calculations are defined as H i=C
Figure 771399DEST_PATH_IMAGE002
C
Figure 994439DEST_PATH_IMAGE003
C
Figure 558275DEST_PATH_IMAGE004
C
Figure 679815DEST_PATH_IMAGE005
Figure 236567DEST_PATH_IMAGE014
Figure 330425DEST_PATH_IMAGE006
C
Figure 768863DEST_PATH_IMAGE008
C
Figure 966495DEST_PATH_IMAGE009
Figure DEST_PATH_IMAGE016
, during binary operator control variables k=5, three metavariable circulation cryptographic calculations are defined as H i=
Figure DEST_PATH_IMAGE017
Figure 996768DEST_PATH_IMAGE002
C
Figure 92900DEST_PATH_IMAGE003
C
Figure 991454DEST_PATH_IMAGE004
C C
Figure 15146DEST_PATH_IMAGE015
C
Figure 137057DEST_PATH_IMAGE016
Figure 879885DEST_PATH_IMAGE009
C, during binary operator control variables k=6, three metavariable circulation cryptographic calculations are defined as H i=C
Figure 120243DEST_PATH_IMAGE002
Figure DEST_PATH_IMAGE018
Figure 84657DEST_PATH_IMAGE003
C
Figure 689950DEST_PATH_IMAGE004
C
Figure 185654DEST_PATH_IMAGE005
C
Figure 987560DEST_PATH_IMAGE006
C
Figure 885109DEST_PATH_IMAGE007
Figure 441041DEST_PATH_IMAGE008
C
Figure 960884DEST_PATH_IMAGE009
, during binary operator control variables k=7, three metavariable circulation cryptographic calculations are defined as H i=
Figure 784670DEST_PATH_IMAGE018
Figure 989386DEST_PATH_IMAGE002
C
Figure 375237DEST_PATH_IMAGE003
Figure 168750DEST_PATH_IMAGE010
Figure 99796DEST_PATH_IMAGE004
C
Figure 41076DEST_PATH_IMAGE005
C
Figure 981351DEST_PATH_IMAGE006
C
Figure 691687DEST_PATH_IMAGE007
C
Figure 222211DEST_PATH_IMAGE017
Figure 762914DEST_PATH_IMAGE009
C, the initial value of setting encryption parameter C, the initial value of setting encryption variables q, j, d, e, f, g, h, r and p, the initial value of setting binary operator control variables k is k=0, sets 32 binary system anti-counterfeiting information in 32 one group binary system anti-counterfeiting information table Position Control variable i=1, set 32 binary add tight defense fake information H in 32 one group binary add tight defense fake information table iPosition Control variable i=1, right
Figure DEST_PATH_IMAGE019
carry out H 1=
Figure DEST_PATH_IMAGE020
Figure 990819DEST_PATH_IMAGE002
C
Figure 454161DEST_PATH_IMAGE003
Figure 923188DEST_PATH_IMAGE004
C
Figure 93270DEST_PATH_IMAGE005
Figure DEST_PATH_IMAGE022
Figure 51867DEST_PATH_IMAGE006
C
Figure 940189DEST_PATH_IMAGE007
C
Figure 9645DEST_PATH_IMAGE008
C
Figure 299812DEST_PATH_IMAGE009
C tri-metavariable circulation cryptographic calculations (wherein k=0), generate first binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 1, right
Figure 242360DEST_PATH_IMAGE019
carry out H 1=
Figure 867245DEST_PATH_IMAGE020
C
Figure 936199DEST_PATH_IMAGE021
Figure 48380DEST_PATH_IMAGE004
C
Figure 272688DEST_PATH_IMAGE005
Figure 537447DEST_PATH_IMAGE022
Figure 743169DEST_PATH_IMAGE006
C
Figure 93379DEST_PATH_IMAGE007
C
Figure 308329DEST_PATH_IMAGE008
C C carries out i+1, q+1, j+1, d+1, e+1, f+1, g+1, h+1, r+1, p+1 and k+1 computing in the time of tri-metavariable circulation cryptographic calculations, makes next three metavariable circulation cryptographic calculations point to H 2=C
Figure 882847DEST_PATH_IMAGE002
?
Figure 704041DEST_PATH_IMAGE023
C
Figure 322607DEST_PATH_IMAGE024
Figure 381830DEST_PATH_IMAGE005
C
Figure 938582DEST_PATH_IMAGE006
Figure 32440DEST_PATH_IMAGE025
Figure 16446DEST_PATH_IMAGE007
C
Figure 684669DEST_PATH_IMAGE008
C
Figure 802970DEST_PATH_IMAGE009
C(is k=1 wherein), generate second binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 2, right carry out H 2=C
Figure 906241DEST_PATH_IMAGE002
Figure 2373DEST_PATH_IMAGE023
Figure 651660DEST_PATH_IMAGE003
C
Figure 703799DEST_PATH_IMAGE004
Figure 780339DEST_PATH_IMAGE024
Figure 550718DEST_PATH_IMAGE005
C
Figure 66013DEST_PATH_IMAGE006
Figure 723390DEST_PATH_IMAGE025
Figure 220100DEST_PATH_IMAGE007
C
Figure 228507DEST_PATH_IMAGE008
C
Figure 468864DEST_PATH_IMAGE009
C carries out i+1, q+1, j+1, d+1, e+1, f+1, g+1, h+1, r+1, p+1 and k+1 computing in the time of tri-metavariable circulation cryptographic calculations, makes next three metavariable circulation cryptographic calculations point to H 3=C
Figure 308644DEST_PATH_IMAGE002
C
Figure DEST_PATH_IMAGE027
Figure 409641DEST_PATH_IMAGE004
C
Figure 188110DEST_PATH_IMAGE005
Figure DEST_PATH_IMAGE028
Figure 820080DEST_PATH_IMAGE006
C
Figure 924171DEST_PATH_IMAGE007
Figure DEST_PATH_IMAGE029
Figure 828542DEST_PATH_IMAGE008
C
Figure 223751DEST_PATH_IMAGE009
C(is k=2 wherein), generate the 3rd binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 3, this three metavariables circulation cryptographic calculation goes on always until 32 binary system anti-counterfeiting information of last in binary system anti-counterfeiting information table, by each 32 the binary system anti-counterfeiting information in 32 one group binary system anti-counterfeiting information table
Figure 975807DEST_PATH_IMAGE001
carry out three metavariable circulation cryptographic calculations, generate and 32 one group 32 the one group binary add tight defense fake information table that binary system anti-counterfeiting information table is corresponding, amplitude in label printing is carried out to digitized processing, amplitude is set to two kinds, wherein by dielectric ink, print the amplitude formed and be defined as numeral 0, print by electrically conductive ink the amplitude formed and be defined as numeral 1, in the label printing process, utilize the binary add tight defense fake information of 32 group generated by the printing process of the amplitude on the circulation look-up table modulation trade mark page, by selecting dielectric ink and electrically conductive ink to print amplitude, the regular electric conductivity according to above-mentioned two kinds of amplitudes of amplitude on the trade mark page is changed, on the rear trade mark page of modulation, adjacent 32 amplitudes form one group of 32 binary message, make on the trade mark page and carry anti-counterfeiting information by the variation of amplitude electric conductivity, and this anti-counterfeiting information is embedded in whole trade mark page site, realize trademark anti-counterfeit.
CN2013100221673A 2013-01-22 2013-01-22 Single parameter ternary variable circulation encryption anti-counterfeiting information storage trademark Pending CN103106508A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN2013100221673A CN103106508A (en) 2013-01-22 2013-01-22 Single parameter ternary variable circulation encryption anti-counterfeiting information storage trademark

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN2013100221673A CN103106508A (en) 2013-01-22 2013-01-22 Single parameter ternary variable circulation encryption anti-counterfeiting information storage trademark

Publications (1)

Publication Number Publication Date
CN103106508A true CN103106508A (en) 2013-05-15

Family

ID=48314354

Family Applications (1)

Application Number Title Priority Date Filing Date
CN2013100221673A Pending CN103106508A (en) 2013-01-22 2013-01-22 Single parameter ternary variable circulation encryption anti-counterfeiting information storage trademark

Country Status (1)

Country Link
CN (1) CN103106508A (en)

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
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
CN102184428A (en) * 2011-04-14 2011-09-14 北京印刷学院 Encrypting anti-counterfeiting printing technology for modulating shapes of amplitude modulation dots of printed work through binary-system encrypting signal
CN102194137A (en) * 2011-04-25 2011-09-21 北京印刷学院 Multi-dimensional encryption anti-counterfeiting printing technology based on shape of amplitude modified screen
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
CN102831453A (en) * 2011-06-14 2012-12-19 北京印刷学院 Page storage for printing electronic book pages
CN102831835A (en) * 2011-06-14 2012-12-19 张晋 Inkless printing book paper

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
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
CN102184428A (en) * 2011-04-14 2011-09-14 北京印刷学院 Encrypting anti-counterfeiting printing technology for modulating shapes of amplitude modulation dots of printed work through binary-system encrypting signal
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
CN102194137A (en) * 2011-04-25 2011-09-21 北京印刷学院 Multi-dimensional encryption anti-counterfeiting printing technology based on shape of amplitude modified screen
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
CN102831453A (en) * 2011-06-14 2012-12-19 北京印刷学院 Page storage for printing electronic book pages
CN102831835A (en) * 2011-06-14 2012-12-19 张晋 Inkless printing book paper

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
冯登国等: "《密码学导引》", 30 April 1999, 科学出版社 *

Similar Documents

Publication Publication Date Title
CN103106427A (en) Single parameter multiple-encryption anti-counterfeiting information storage trademark
CN103106508A (en) Single parameter ternary variable circulation encryption anti-counterfeiting information storage trademark
CN103106456A (en) Single parameter polymtized variable circulation encryption anti-counterfeiting information storage trademark
CN103106491A (en) Single parameter variable transmutation ternary encryption anti-counterfeiting information storage trademark
CN103106464A (en) Single parameter variable transmutation ternary variable circulation encryption anti-counterfeiting information storage trademark
CN103106486A (en) Single parameter multivariable ternary circulation encryption anti-counterfeiting information storage trademark
CN103106489A (en) Single parameter ternary encryption anti-counterfeiting information storage trademark
CN103116792A (en) One-parameter double variant ternary variable circulation encryption anti-fake information storage trademark
CN103106487A (en) Single parameter variable transmutation unitary circulation encryption anti-counterfeiting information storage trademark
CN103116773A (en) Parameter transmutation ternary variable circulation encryption anti-fake information storage trademark
CN103106466A (en) Single parameter variable transmutation binary variable circulation encryption anti-counterfeiting information storage trademark
CN103106463A (en) Single parameter variable transmutation polytomized variable circulation encryption anti-counterfeiting information storage trademark
CN103116789A (en) One-parameter double variant ternary circulation encryption anti-fake information storage trademark
CN103116777A (en) One-parameter multivariate multivariable circulation encryption anti-fake information storage trademark
CN103106445A (en) Single parameter multivariable binary encryption anti-counterfeiting information storage trademark
CN103106471A (en) Single parameter variable transmutation ternary encryption anti-counterfeiting information storage trademark
CN103116778A (en) One-parameter multivariate binary variable circulation encryption anti-fake information storage trademark
CN103116775A (en) One-parameter double variant binary variable circulation encryption anti-fake information storage trademark
CN103106469A (en) Single parameter multivariable unitary encryption anti-counterfeiting information storage trademark
CN103106433A (en) Single parameter multivariable multiple-encryption anti-counterfeiting information storage trademark
CN103106467A (en) Single parameter variable transmutation binary circulation encryption anti-counterfeiting information storage trademark
CN103116776A (en) One-parameter double variant multivariable circulation encryption anti-fake information storage trademark
CN103116794A (en) Multi-parameter variable gradient binary variable circulation encryption anti-fake information storage trademark
CN103116798A (en) Multi-parameter ternary cycle encryption anti-counterfeiting information storage trademark
CN103106490A (en) Multiparameter polytomy variable cycle encryption anti-fake information storage trademark

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C02 Deemed withdrawal of patent application after publication (patent law 2001)
WD01 Invention patent application deemed withdrawn after publication

Application publication date: 20130515