CN103106515A - Multivariate parameter gradation unitary encryption anti-fake information storage trademark - Google Patents

Multivariate parameter gradation unitary encryption anti-fake information storage trademark Download PDF

Info

Publication number
CN103106515A
CN103106515A CN2013100224309A CN201310022430A CN103106515A CN 103106515 A CN103106515 A CN 103106515A CN 2013100224309 A CN2013100224309 A CN 2013100224309A CN 201310022430 A CN201310022430 A CN 201310022430A CN 103106515 A CN103106515 A CN 103106515A
Authority
CN
China
Prior art keywords
binary
trade mark
counterfeiting information
group
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
CN2013100224309A
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 CN2013100224309A priority Critical patent/CN103106515A/en
Publication of CN103106515A publication Critical patent/CN103106515A/en
Pending legal-status Critical Current

Links

Images

Abstract

Disclosed is a multivariate parameter gradation unitary encryption anti-fake information storage trademark. The multivariate parameter gradation unitary encryption anti-fake information storage trademark can enable binary system anti-fake information to be generated into a binary system modulating signal through unitary encryption and channel encoding, and enables the anti-fake information to be embedded in a whole trademark page table by ordered changing of amplitude modulation website electrical conductivity through a circulation look-up table modulation method. A user can distinguish the anti-fake information from any one of fragments when trademark identification is conducted. The multivariate parameter gradation unitary encryption anti-fake information storage trademark can be used in various anti-fake trademarks.

Description

Multivariate parameter alternation monobasic encryption anti-counterfeiting information storage trade mark
affiliated technical field:
The present invention relates to a kind of anti-false trademark, particularly a kind of multivariate parameter alternation monobasic encryption anti-counterfeiting information is stored trade mark, 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 679226DEST_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 i, i is greater than 0 positive integer, and the eight-digit binary number encryption parameter is denoted as respectively
Figure 2891DEST_PATH_IMAGE002
,
Figure 313787DEST_PATH_IMAGE003
,
Figure 895947DEST_PATH_IMAGE004
, ,
Figure 595098DEST_PATH_IMAGE006
,
Figure 517924DEST_PATH_IMAGE007
,
Figure 654507DEST_PATH_IMAGE008
With
Figure 854544DEST_PATH_IMAGE009
, encryption parameter
Figure 503700DEST_PATH_IMAGE002
, , , ,
Figure 72905DEST_PATH_IMAGE006
, ,
Figure 527337DEST_PATH_IMAGE008
With
Figure 701966DEST_PATH_IMAGE009
It is 0 to 256 binary system positive integer, the eight-digit binary number encryption variables is denoted as respectively j, d, e, f, g, h, r, p and q, the binary system positive integer that encryption variables j, d, e, f, g, h, r, p and q are 0 to 256, 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 473351DEST_PATH_IMAGE010
Figure 886281DEST_PATH_IMAGE012
Figure 915417DEST_PATH_IMAGE013
Figure 624747DEST_PATH_IMAGE014
Figure 231178DEST_PATH_IMAGE015
Figure 644842DEST_PATH_IMAGE016
Figure 403850DEST_PATH_IMAGE017
Adopt+,-, *, four kinds of operators, during binary operator control variables k=0
Figure 877557DEST_PATH_IMAGE010
Figure 971284DEST_PATH_IMAGE011
Figure 802154DEST_PATH_IMAGE013
Figure 446761DEST_PATH_IMAGE014
Figure 27784DEST_PATH_IMAGE015
Figure 783251DEST_PATH_IMAGE016
Figure 251272DEST_PATH_IMAGE017
Be defined as respectively-,+, * ,+, * ,-, * ,+, during binary operator control variables k=1
Figure 66782DEST_PATH_IMAGE010
Figure 135101DEST_PATH_IMAGE011
Figure 694258DEST_PATH_IMAGE012
Figure 282365DEST_PATH_IMAGE013
Figure 658989DEST_PATH_IMAGE014
Figure 89970DEST_PATH_IMAGE015
Figure 62605DEST_PATH_IMAGE016
Figure 895432DEST_PATH_IMAGE017
Be defined as respectively+, * ,+,+,-, * ,+, *, during binary operator control variables k=2
Figure 236601DEST_PATH_IMAGE011
Figure 137561DEST_PATH_IMAGE012
Figure 683948DEST_PATH_IMAGE013
Figure 12162DEST_PATH_IMAGE014
Figure 732173DEST_PATH_IMAGE016
Figure 398647DEST_PATH_IMAGE017
Be defined as respectively-, * ,+,+, * ,-,+,-, during binary operator control variables k=3
Figure 897761DEST_PATH_IMAGE010
Figure 400418DEST_PATH_IMAGE011
Figure 643180DEST_PATH_IMAGE012
Figure 834176DEST_PATH_IMAGE014
Figure 824129DEST_PATH_IMAGE015
Be defined as respectively-, * ,+,-, * ,-,+, *, during binary operator control variables k=4
Figure 86986DEST_PATH_IMAGE010
Figure 564235DEST_PATH_IMAGE011
Figure 175530DEST_PATH_IMAGE013
Figure 62715DEST_PATH_IMAGE014
Figure 886314DEST_PATH_IMAGE015
Be defined as respectively+, * ,-, * ,+,-,+, *, during binary operator control variables k=5
Figure 682735DEST_PATH_IMAGE010
Figure 259210DEST_PATH_IMAGE011
Figure 841370DEST_PATH_IMAGE012
Figure 796688DEST_PATH_IMAGE013
Figure 415888DEST_PATH_IMAGE014
Figure 338713DEST_PATH_IMAGE015
Figure 68772DEST_PATH_IMAGE016
Figure 878596DEST_PATH_IMAGE017
Be defined as respectively * ,+, * ,-,+,+,-, *, during binary operator control variables k=6
Figure 668697DEST_PATH_IMAGE010
Figure 78819DEST_PATH_IMAGE011
Figure 346989DEST_PATH_IMAGE012
Figure 276899DEST_PATH_IMAGE013
Figure 237902DEST_PATH_IMAGE014
Figure 881459DEST_PATH_IMAGE015
Figure 953321DEST_PATH_IMAGE016
Be defined as respectively * ,+,+,-, * ,+,+, *, during binary operator control variables k=7
Figure 869641DEST_PATH_IMAGE010
Figure 254355DEST_PATH_IMAGE011
Figure 864328DEST_PATH_IMAGE012
Figure 299988DEST_PATH_IMAGE013
Figure 461848DEST_PATH_IMAGE014
Figure 209224DEST_PATH_IMAGE015
Figure 498254DEST_PATH_IMAGE016
Figure 381897DEST_PATH_IMAGE017
Be defined as respectively+, *, * ,-,+,-,-, *, during binary operator control variables k=0, the monobasic cryptographic calculation is defined as H i=
Figure 980237DEST_PATH_IMAGE018
Figure 355855DEST_PATH_IMAGE010
Figure 435992DEST_PATH_IMAGE011
Figure 221546DEST_PATH_IMAGE020
Figure 677935DEST_PATH_IMAGE012
Figure 558035DEST_PATH_IMAGE021
Figure 416269DEST_PATH_IMAGE013
Figure 107145DEST_PATH_IMAGE022
Figure 50830DEST_PATH_IMAGE014
Figure 469042DEST_PATH_IMAGE023
Figure 181783DEST_PATH_IMAGE015
Figure 574718DEST_PATH_IMAGE024
Figure 227602DEST_PATH_IMAGE025
, during binary operator control variables k=1, the monobasic cryptographic calculation is defined as H i=
Figure 870439DEST_PATH_IMAGE027
Figure 505820DEST_PATH_IMAGE010
Figure 68520DEST_PATH_IMAGE018
Figure 52525DEST_PATH_IMAGE011
Figure 192519DEST_PATH_IMAGE028
Figure 772536DEST_PATH_IMAGE012
Figure 314376DEST_PATH_IMAGE029
Figure 938124DEST_PATH_IMAGE013
Figure 949123DEST_PATH_IMAGE014
Figure 735682DEST_PATH_IMAGE031
Figure 926809DEST_PATH_IMAGE032
Figure 832317DEST_PATH_IMAGE016
Figure 348749DEST_PATH_IMAGE033
Figure 65032DEST_PATH_IMAGE017
Figure 666915DEST_PATH_IMAGE034
, during binary operator control variables k=2, the monobasic cryptographic calculation is defined as H i=
Figure 376114DEST_PATH_IMAGE035
Figure 747052DEST_PATH_IMAGE010
Figure 821187DEST_PATH_IMAGE036
Figure 789646DEST_PATH_IMAGE012
Figure 378891DEST_PATH_IMAGE037
Figure 955365DEST_PATH_IMAGE013
Figure 18086DEST_PATH_IMAGE038
Figure 559980DEST_PATH_IMAGE039
Figure 764697DEST_PATH_IMAGE015
Figure 353810DEST_PATH_IMAGE040
Figure 553847DEST_PATH_IMAGE016
Figure 219315DEST_PATH_IMAGE041
Figure 239223DEST_PATH_IMAGE017
Figure 897607DEST_PATH_IMAGE042
, during binary operator control variables k=3, the monobasic cryptographic calculation is defined as H i=
Figure 952150DEST_PATH_IMAGE043
Figure 522940DEST_PATH_IMAGE010
Figure 23377DEST_PATH_IMAGE011
Figure 807794DEST_PATH_IMAGE045
Figure 939698DEST_PATH_IMAGE012
Figure 589991DEST_PATH_IMAGE018
Figure 370045DEST_PATH_IMAGE046
Figure 469588DEST_PATH_IMAGE014
Figure 755262DEST_PATH_IMAGE015
Figure 638904DEST_PATH_IMAGE048
Figure 253556DEST_PATH_IMAGE016
Figure 347283DEST_PATH_IMAGE049
Figure 564638DEST_PATH_IMAGE017
Figure 178153DEST_PATH_IMAGE050
, during binary operator control variables k=4, the monobasic cryptographic calculation is defined as H i=
Figure 822761DEST_PATH_IMAGE051
Figure 159250DEST_PATH_IMAGE052
Figure 424010DEST_PATH_IMAGE011
Figure 364153DEST_PATH_IMAGE053
Figure 448783DEST_PATH_IMAGE012
Figure 7941DEST_PATH_IMAGE054
Figure 845315DEST_PATH_IMAGE013
Figure 769409DEST_PATH_IMAGE018
Figure 325024DEST_PATH_IMAGE014
Figure 422293DEST_PATH_IMAGE055
Figure 799551DEST_PATH_IMAGE016
Figure 700511DEST_PATH_IMAGE057
Figure 263210DEST_PATH_IMAGE017
Figure 258934DEST_PATH_IMAGE058
, during binary operator control variables k=5, the monobasic cryptographic calculation is defined as H i=
Figure 428622DEST_PATH_IMAGE059
Figure 534167DEST_PATH_IMAGE060
Figure 33282DEST_PATH_IMAGE011
Figure 535939DEST_PATH_IMAGE061
Figure 778701DEST_PATH_IMAGE012
Figure 565260DEST_PATH_IMAGE062
Figure 235276DEST_PATH_IMAGE013
Figure 6103DEST_PATH_IMAGE014
Figure 647169DEST_PATH_IMAGE018
Figure 488086DEST_PATH_IMAGE015
Figure 230914DEST_PATH_IMAGE064
Figure 940113DEST_PATH_IMAGE016
Figure 311051DEST_PATH_IMAGE065
Figure 385187DEST_PATH_IMAGE017
Figure 474365DEST_PATH_IMAGE066
, during binary operator control variables k=6, the monobasic cryptographic calculation is defined as H i=
Figure 270786DEST_PATH_IMAGE068
Figure 988206DEST_PATH_IMAGE011
Figure 914574DEST_PATH_IMAGE069
Figure 578194DEST_PATH_IMAGE071
Figure 653598DEST_PATH_IMAGE014
Figure 599960DEST_PATH_IMAGE015
Figure 540234DEST_PATH_IMAGE018
Figure 945994DEST_PATH_IMAGE073
Figure 594144DEST_PATH_IMAGE017
Figure 666005DEST_PATH_IMAGE074
, during binary operator control variables k=7, the monobasic cryptographic calculation is defined as H i=
Figure 699689DEST_PATH_IMAGE075
Figure 831593DEST_PATH_IMAGE010
Figure 701460DEST_PATH_IMAGE076
Figure 577012DEST_PATH_IMAGE011
Figure 768008DEST_PATH_IMAGE012
Figure 547111DEST_PATH_IMAGE079
Figure 20818DEST_PATH_IMAGE014
Figure 865277DEST_PATH_IMAGE080
Figure 82632DEST_PATH_IMAGE015
Figure 945414DEST_PATH_IMAGE081
Figure 996547DEST_PATH_IMAGE016
Figure 191271DEST_PATH_IMAGE082
, set encryption parameter
Figure 803518DEST_PATH_IMAGE002
,
Figure 153728DEST_PATH_IMAGE003
, , ,
Figure 536671DEST_PATH_IMAGE006
,
Figure 577439DEST_PATH_IMAGE007
, With
Figure 632168DEST_PATH_IMAGE009
Initial value, set the initial value of encryption variables j, d, e, f, g, h, r, p and q, 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 789480DEST_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 848703DEST_PATH_IMAGE083
Carry out H 1=
Figure 874297DEST_PATH_IMAGE084
Figure 561630DEST_PATH_IMAGE010
Figure 765210DEST_PATH_IMAGE019
Figure 905204DEST_PATH_IMAGE011
Figure 468909DEST_PATH_IMAGE020
Figure 10749DEST_PATH_IMAGE012
Figure 385230DEST_PATH_IMAGE021
Figure 12520DEST_PATH_IMAGE013
Figure 379916DEST_PATH_IMAGE022
Figure 776263DEST_PATH_IMAGE014
Figure 852803DEST_PATH_IMAGE023
Figure 92023DEST_PATH_IMAGE015
Figure 138477DEST_PATH_IMAGE024
Figure 264696DEST_PATH_IMAGE016
Figure 363288DEST_PATH_IMAGE017
Figure 823219DEST_PATH_IMAGE026
Monobasic cryptographic calculation (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 Carry out H 1=
Figure 330610DEST_PATH_IMAGE084
Figure 417831DEST_PATH_IMAGE019
Figure 643276DEST_PATH_IMAGE011
Figure 227928DEST_PATH_IMAGE020
Figure 945348DEST_PATH_IMAGE012
Figure 871716DEST_PATH_IMAGE021
Figure 341880DEST_PATH_IMAGE013
Figure 102026DEST_PATH_IMAGE022
Figure 900218DEST_PATH_IMAGE014
Figure 754910DEST_PATH_IMAGE023
Figure 954947DEST_PATH_IMAGE015
Figure 354836DEST_PATH_IMAGE024
Figure 640323DEST_PATH_IMAGE016
Figure 33128DEST_PATH_IMAGE025
Figure 494196DEST_PATH_IMAGE017
Carry 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 the monobasic cryptographic calculation, make next monobasic cryptographic calculation point to H 2=
Figure 352616DEST_PATH_IMAGE027
Figure 158898DEST_PATH_IMAGE010
Figure 731011DEST_PATH_IMAGE011
Figure 476430DEST_PATH_IMAGE012
Figure 505566DEST_PATH_IMAGE029
Figure 464164DEST_PATH_IMAGE013
Figure 821327DEST_PATH_IMAGE030
Figure 243267DEST_PATH_IMAGE031
Figure 716973DEST_PATH_IMAGE015
Figure 561433DEST_PATH_IMAGE032
Figure 513208DEST_PATH_IMAGE016
Figure 641570DEST_PATH_IMAGE033
Figure 286178DEST_PATH_IMAGE017
Figure 617933DEST_PATH_IMAGE034
(wherein k=1), generate second binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 2, right
Figure 373400DEST_PATH_IMAGE086
Carry out H 2=
Figure 90689DEST_PATH_IMAGE027
Figure 906198DEST_PATH_IMAGE010
Figure 725250DEST_PATH_IMAGE085
Figure 284407DEST_PATH_IMAGE011
Figure 842613DEST_PATH_IMAGE012
Figure 148961DEST_PATH_IMAGE029
Figure 246230DEST_PATH_IMAGE013
Figure 203690DEST_PATH_IMAGE030
Figure 889067DEST_PATH_IMAGE031
Figure 790026DEST_PATH_IMAGE015
Figure 336414DEST_PATH_IMAGE032
Figure 664627DEST_PATH_IMAGE016
Figure 384639DEST_PATH_IMAGE017
Figure 51112DEST_PATH_IMAGE034
Carry 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 the monobasic cryptographic calculation, make next monobasic cryptographic calculation point to H 3=
Figure 295646DEST_PATH_IMAGE036
Figure 816626DEST_PATH_IMAGE011
Figure 893166DEST_PATH_IMAGE087
Figure 7753DEST_PATH_IMAGE012
Figure 913261DEST_PATH_IMAGE037
Figure 429693DEST_PATH_IMAGE013
Figure 145976DEST_PATH_IMAGE038
Figure 747859DEST_PATH_IMAGE014
Figure 281276DEST_PATH_IMAGE039
Figure 652215DEST_PATH_IMAGE015
Figure 975618DEST_PATH_IMAGE040
Figure 799217DEST_PATH_IMAGE016
Figure 62840DEST_PATH_IMAGE041
Figure 288284DEST_PATH_IMAGE017
Figure 595638DEST_PATH_IMAGE042
(wherein k=2), generate the 3rd binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 3, this monobasic 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 carry out the monobasic cryptographic calculation, 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 the monobasic cryptographic calculation, 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, set encryption parameter
Figure 505005DEST_PATH_IMAGE002
, ,
Figure 328791DEST_PATH_IMAGE004
,
Figure 2348DEST_PATH_IMAGE005
,
Figure 732407DEST_PATH_IMAGE006
,
Figure 791499DEST_PATH_IMAGE007
,
Figure 581600DEST_PATH_IMAGE008
With
Figure 742454DEST_PATH_IMAGE009
The initial value of initial value when encrypting, the initial value when initial value of setting encryption variables j, d, e, f, g, h, r, p and q is encryption, the initial value design of binary operator control variables k is k=0, known by the monobasic ciphering process, and during binary operator control variables k=0, decrypt operation is M i=
Figure 10625DEST_PATH_IMAGE018
Figure 720961DEST_PATH_IMAGE010
Figure 557330DEST_PATH_IMAGE019
Figure 64534DEST_PATH_IMAGE011
Figure 261029DEST_PATH_IMAGE020
Figure 435659DEST_PATH_IMAGE012
Figure 177350DEST_PATH_IMAGE021
Figure 437430DEST_PATH_IMAGE013
Figure 172036DEST_PATH_IMAGE022
Figure 201172DEST_PATH_IMAGE014
Figure 113765DEST_PATH_IMAGE023
Figure 861141DEST_PATH_IMAGE015
Figure 399438DEST_PATH_IMAGE024
Figure 283081DEST_PATH_IMAGE016
Figure 632154DEST_PATH_IMAGE025
Figure 601247DEST_PATH_IMAGE017
Figure 677656DEST_PATH_IMAGE026
, during binary operator control variables k=1, decrypt operation is M i=
Figure 935779DEST_PATH_IMAGE010
Figure 392168DEST_PATH_IMAGE018
Figure 272268DEST_PATH_IMAGE011
Figure 130503DEST_PATH_IMAGE028
Figure 352537DEST_PATH_IMAGE012
Figure 420856DEST_PATH_IMAGE029
Figure 302541DEST_PATH_IMAGE030
Figure 288952DEST_PATH_IMAGE014
Figure 844567DEST_PATH_IMAGE031
Figure 941836DEST_PATH_IMAGE015
Figure 915608DEST_PATH_IMAGE032
Figure 135237DEST_PATH_IMAGE016
Figure 825248DEST_PATH_IMAGE017
Figure 512581DEST_PATH_IMAGE034
, during binary operator control variables k=2, decrypt operation is M i=
Figure 716160DEST_PATH_IMAGE035
Figure 856155DEST_PATH_IMAGE010
Figure 685439DEST_PATH_IMAGE036
Figure 227279DEST_PATH_IMAGE011
Figure 913344DEST_PATH_IMAGE018
Figure 580135DEST_PATH_IMAGE037
Figure 242060DEST_PATH_IMAGE013
Figure 912076DEST_PATH_IMAGE038
Figure 682455DEST_PATH_IMAGE014
Figure 463329DEST_PATH_IMAGE039
Figure 855127DEST_PATH_IMAGE015
Figure 696044DEST_PATH_IMAGE040
Figure 422561DEST_PATH_IMAGE016
Figure 7126DEST_PATH_IMAGE041
Figure 921041DEST_PATH_IMAGE042
, during binary operator control variables k=3, decrypt operation is M i=
Figure 744640DEST_PATH_IMAGE043
Figure 8263DEST_PATH_IMAGE010
Figure 72219DEST_PATH_IMAGE011
Figure 524061DEST_PATH_IMAGE045
Figure 450428DEST_PATH_IMAGE012
Figure 655014DEST_PATH_IMAGE018
Figure 398847DEST_PATH_IMAGE013
Figure 536885DEST_PATH_IMAGE014
Figure 861556DEST_PATH_IMAGE047
Figure 245133DEST_PATH_IMAGE015
Figure 265041DEST_PATH_IMAGE048
Figure 674157DEST_PATH_IMAGE016
Figure 728701DEST_PATH_IMAGE049
Figure 79916DEST_PATH_IMAGE017
Figure 728067DEST_PATH_IMAGE050
, during binary operator control variables k=4, decrypt operation is M i=
Figure 799928DEST_PATH_IMAGE051
Figure 833612DEST_PATH_IMAGE010
Figure 965516DEST_PATH_IMAGE052
Figure 710935DEST_PATH_IMAGE053
Figure 876423DEST_PATH_IMAGE012
Figure 225234DEST_PATH_IMAGE054
Figure 510908DEST_PATH_IMAGE018
Figure 269916DEST_PATH_IMAGE014
Figure 478044DEST_PATH_IMAGE055
Figure 571770DEST_PATH_IMAGE015
Figure 789125DEST_PATH_IMAGE056
Figure 402640DEST_PATH_IMAGE016
Figure 47248DEST_PATH_IMAGE057
Figure 628271DEST_PATH_IMAGE017
Figure 383738DEST_PATH_IMAGE058
, during binary operator control variables k=5, decrypt operation is M i=
Figure 117338DEST_PATH_IMAGE059
Figure 932848DEST_PATH_IMAGE010
Figure 735587DEST_PATH_IMAGE060
Figure 294745DEST_PATH_IMAGE011
Figure 869263DEST_PATH_IMAGE012
Figure 424878DEST_PATH_IMAGE062
Figure 522147DEST_PATH_IMAGE013
Figure 964760DEST_PATH_IMAGE063
Figure 122072DEST_PATH_IMAGE014
Figure 899404DEST_PATH_IMAGE018
Figure 800364DEST_PATH_IMAGE015
Figure 363064DEST_PATH_IMAGE064
Figure 691277DEST_PATH_IMAGE016
Figure 394977DEST_PATH_IMAGE017
Figure 812183DEST_PATH_IMAGE066
, during binary operator control variables k=6, decrypt operation is M i=
Figure 311297DEST_PATH_IMAGE067
Figure 63221DEST_PATH_IMAGE010
Figure 843275DEST_PATH_IMAGE011
Figure 169083DEST_PATH_IMAGE069
Figure 18091DEST_PATH_IMAGE012
Figure 456342DEST_PATH_IMAGE013
Figure 758197DEST_PATH_IMAGE014
Figure 218128DEST_PATH_IMAGE072
Figure 589066DEST_PATH_IMAGE015
Figure 725519DEST_PATH_IMAGE018
Figure 814697DEST_PATH_IMAGE016
Figure 812740DEST_PATH_IMAGE073
Figure 303765DEST_PATH_IMAGE017
, during binary operator control variables k=7, decrypt operation is M i=
Figure 922014DEST_PATH_IMAGE075
Figure 723747DEST_PATH_IMAGE010
Figure 69278DEST_PATH_IMAGE076
Figure 90410DEST_PATH_IMAGE011
Figure 930245DEST_PATH_IMAGE012
Figure 5648DEST_PATH_IMAGE078
Figure 530171DEST_PATH_IMAGE013
Figure 940292DEST_PATH_IMAGE079
Figure 474042DEST_PATH_IMAGE014
Figure 403952DEST_PATH_IMAGE080
Figure 99375DEST_PATH_IMAGE015
Figure 996793DEST_PATH_IMAGE081
Figure 68654DEST_PATH_IMAGE016
Figure 853070DEST_PATH_IMAGE018
Figure 984975DEST_PATH_IMAGE017
, 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 979661DEST_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 618584DEST_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 921389DEST_PATH_IMAGE083
start, to each 32 the scale-of-two anti-counterfeiting information in 32 one group scale-of-two anti-counterfeiting information table
Figure 527820DEST_PATH_IMAGE001
carry out the monobasic cryptographic calculation, 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 is encryption, the initial value when initial value of setting encryption variables 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 941484DEST_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 multivariate parameter alternation monobasic encryption anti-counterfeiting information storage trade mark 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 i, i is greater than 0 positive integer, and the eight-digit binary number encryption parameter is denoted as respectively
Figure 216743DEST_PATH_IMAGE002
,
Figure 527639DEST_PATH_IMAGE003
,
Figure 329373DEST_PATH_IMAGE004
,
Figure 674903DEST_PATH_IMAGE005
,
Figure 153158DEST_PATH_IMAGE006
,
Figure 357874DEST_PATH_IMAGE007
,
Figure 743725DEST_PATH_IMAGE008
With
Figure 943762DEST_PATH_IMAGE009
, encryption parameter
Figure 343651DEST_PATH_IMAGE002
,
Figure 629139DEST_PATH_IMAGE003
, ,
Figure 76487DEST_PATH_IMAGE005
, ,
Figure 341432DEST_PATH_IMAGE007
, With
Figure 197709DEST_PATH_IMAGE009
It is 0 to 256 binary system positive integer, the eight-digit binary number encryption variables is denoted as respectively j, d, e, f, g, h, r, p and q, the binary system positive integer that encryption variables j, d, e, f, g, h, r, p and q are 0 to 256, 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 719826DEST_PATH_IMAGE010
Figure 979906DEST_PATH_IMAGE011
Figure 465245DEST_PATH_IMAGE012
Figure 494381DEST_PATH_IMAGE013
Figure 232082DEST_PATH_IMAGE017
Adopt+,-, *, four kinds of operators, during binary operator control variables k=0
Figure 81406DEST_PATH_IMAGE011
Figure 157816DEST_PATH_IMAGE012
Figure 161544DEST_PATH_IMAGE013
Figure 681518DEST_PATH_IMAGE014
Figure 798433DEST_PATH_IMAGE016
Figure 266455DEST_PATH_IMAGE017
Be defined as respectively-,+, * ,+, * ,-, * ,+, during binary operator control variables k=1
Figure 749475DEST_PATH_IMAGE010
Figure 127684DEST_PATH_IMAGE012
Figure 840425DEST_PATH_IMAGE013
Figure 217049DEST_PATH_IMAGE014
Figure 523396DEST_PATH_IMAGE015
Figure 620665DEST_PATH_IMAGE016
Figure 578126DEST_PATH_IMAGE017
Be defined as respectively+, * ,+,+,-, * ,+, *, during binary operator control variables k=2
Figure 469858DEST_PATH_IMAGE010
Figure 263502DEST_PATH_IMAGE011
Figure 820254DEST_PATH_IMAGE012
Figure 242008DEST_PATH_IMAGE013
Figure 445588DEST_PATH_IMAGE014
Figure 585582DEST_PATH_IMAGE015
Figure 414866DEST_PATH_IMAGE016
Be defined as respectively-, * ,+,+, * ,-,+,-, during binary operator control variables k=3
Figure 331187DEST_PATH_IMAGE010
Figure 614270DEST_PATH_IMAGE011
Figure 857032DEST_PATH_IMAGE012
Figure 128745DEST_PATH_IMAGE013
Figure 37981DEST_PATH_IMAGE015
Figure 818855DEST_PATH_IMAGE016
Be defined as respectively-, * ,+,-, * ,-,+, *, during binary operator control variables k=4
Figure 778086DEST_PATH_IMAGE011
Figure 362652DEST_PATH_IMAGE012
Figure 608956DEST_PATH_IMAGE013
Figure 818276DEST_PATH_IMAGE015
Figure 613056DEST_PATH_IMAGE016
Figure 838501DEST_PATH_IMAGE017
Be defined as respectively+, * ,-, * ,+,-,+, *, during binary operator control variables k=5
Figure 145855DEST_PATH_IMAGE010
Figure 722329DEST_PATH_IMAGE011
Figure 524063DEST_PATH_IMAGE012
Figure 604015DEST_PATH_IMAGE013
Figure 347849DEST_PATH_IMAGE014
Figure 146040DEST_PATH_IMAGE015
Figure 751465DEST_PATH_IMAGE016
Figure 685923DEST_PATH_IMAGE017
Be defined as respectively * ,+, * ,-,+,+,-, *, during binary operator control variables k=6
Figure 600659DEST_PATH_IMAGE010
Figure 886146DEST_PATH_IMAGE011
Figure 29683DEST_PATH_IMAGE012
Figure 84227DEST_PATH_IMAGE013
Figure 169863DEST_PATH_IMAGE014
Figure 155454DEST_PATH_IMAGE016
Figure 454717DEST_PATH_IMAGE017
Be defined as respectively * ,+,+,-, * ,+,+, *, during binary operator control variables k=7
Figure 321042DEST_PATH_IMAGE010
Figure 456488DEST_PATH_IMAGE011
Figure 66461DEST_PATH_IMAGE012
Figure 231949DEST_PATH_IMAGE013
Figure 269175DEST_PATH_IMAGE014
Figure 78868DEST_PATH_IMAGE015
Figure 492532DEST_PATH_IMAGE016
Figure 251541DEST_PATH_IMAGE017
Be defined as respectively+, *, * ,-,+,-,-, *, during binary operator control variables k=0, the monobasic cryptographic calculation is defined as H i=
Figure 725248DEST_PATH_IMAGE018
Figure 818974DEST_PATH_IMAGE010
Figure 770750DEST_PATH_IMAGE019
Figure 649844DEST_PATH_IMAGE011
Figure 28873DEST_PATH_IMAGE020
Figure 609896DEST_PATH_IMAGE012
Figure 365362DEST_PATH_IMAGE021
Figure 98963DEST_PATH_IMAGE013
Figure 914472DEST_PATH_IMAGE022
Figure 982791DEST_PATH_IMAGE014
Figure 850887DEST_PATH_IMAGE024
Figure 406502DEST_PATH_IMAGE016
Figure 503771DEST_PATH_IMAGE025
Figure 946385DEST_PATH_IMAGE017
Figure 103697DEST_PATH_IMAGE026
, during binary operator control variables k=1, the monobasic cryptographic calculation is defined as H i=
Figure 146608DEST_PATH_IMAGE027
Figure 344688DEST_PATH_IMAGE018
Figure 672902DEST_PATH_IMAGE011
Figure 937530DEST_PATH_IMAGE028
Figure 642180DEST_PATH_IMAGE012
Figure 214293DEST_PATH_IMAGE013
Figure 779267DEST_PATH_IMAGE030
Figure 881084DEST_PATH_IMAGE014
Figure 543009DEST_PATH_IMAGE031
Figure 88391DEST_PATH_IMAGE015
Figure 858770DEST_PATH_IMAGE032
Figure 639644DEST_PATH_IMAGE016
Figure 872359DEST_PATH_IMAGE017
Figure 598876DEST_PATH_IMAGE034
, during binary operator control variables k=2, the monobasic cryptographic calculation is defined as H i=
Figure 183441DEST_PATH_IMAGE035
Figure 97356DEST_PATH_IMAGE036
Figure 920956DEST_PATH_IMAGE011
Figure 184578DEST_PATH_IMAGE018
Figure 717376DEST_PATH_IMAGE037
Figure 293851DEST_PATH_IMAGE013
Figure 95585DEST_PATH_IMAGE038
Figure 919371DEST_PATH_IMAGE039
Figure 57408DEST_PATH_IMAGE040
Figure 703339DEST_PATH_IMAGE041
Figure 129772DEST_PATH_IMAGE017
Figure 799874DEST_PATH_IMAGE042
, during binary operator control variables k=3, the monobasic cryptographic calculation is defined as H i=
Figure 854418DEST_PATH_IMAGE043
Figure 425207DEST_PATH_IMAGE010
Figure 394486DEST_PATH_IMAGE011
Figure 303537DEST_PATH_IMAGE045
Figure 310807DEST_PATH_IMAGE012
Figure 961100DEST_PATH_IMAGE018
Figure 741154DEST_PATH_IMAGE046
Figure 181549DEST_PATH_IMAGE047
Figure 354221DEST_PATH_IMAGE048
Figure 656075DEST_PATH_IMAGE049
Figure 748796DEST_PATH_IMAGE017
Figure 486945DEST_PATH_IMAGE050
, during binary operator control variables k=4, the monobasic cryptographic calculation is defined as H i=
Figure 256187DEST_PATH_IMAGE051
Figure 712576DEST_PATH_IMAGE010
Figure 857435DEST_PATH_IMAGE011
Figure 141786DEST_PATH_IMAGE053
Figure 757575DEST_PATH_IMAGE012
Figure 972525DEST_PATH_IMAGE054
Figure 560632DEST_PATH_IMAGE013
Figure 202835DEST_PATH_IMAGE018
Figure 40341DEST_PATH_IMAGE014
Figure 137610DEST_PATH_IMAGE055
Figure 986803DEST_PATH_IMAGE056
Figure 514868DEST_PATH_IMAGE016
Figure 415828DEST_PATH_IMAGE057
Figure 227795DEST_PATH_IMAGE017
Figure 556008DEST_PATH_IMAGE058
, during binary operator control variables k=5, the monobasic cryptographic calculation is defined as H i=
Figure 676913DEST_PATH_IMAGE060
Figure 176028DEST_PATH_IMAGE011
Figure 678685DEST_PATH_IMAGE061
Figure 921447DEST_PATH_IMAGE012
Figure 708006DEST_PATH_IMAGE062
Figure 289346DEST_PATH_IMAGE063
Figure 335800DEST_PATH_IMAGE014
Figure 727598DEST_PATH_IMAGE018
Figure 568515DEST_PATH_IMAGE015
Figure 29452DEST_PATH_IMAGE064
Figure 614017DEST_PATH_IMAGE016
Figure 85953DEST_PATH_IMAGE066
, during binary operator control variables k=6, the monobasic cryptographic calculation is defined as H i=
Figure 208630DEST_PATH_IMAGE067
Figure 736146DEST_PATH_IMAGE011
Figure 537880DEST_PATH_IMAGE069
Figure 883411DEST_PATH_IMAGE012
Figure 361666DEST_PATH_IMAGE070
Figure 159857DEST_PATH_IMAGE013
Figure 765282DEST_PATH_IMAGE071
Figure 614475DEST_PATH_IMAGE072
Figure 306488DEST_PATH_IMAGE015
Figure 840237DEST_PATH_IMAGE018
Figure 363623DEST_PATH_IMAGE016
Figure 714838DEST_PATH_IMAGE073
Figure 362989DEST_PATH_IMAGE017
Figure 434850DEST_PATH_IMAGE074
, during binary operator control variables k=7, the monobasic cryptographic calculation is defined as H i=
Figure 468534DEST_PATH_IMAGE075
Figure 600438DEST_PATH_IMAGE010
Figure 470305DEST_PATH_IMAGE076
Figure 425174DEST_PATH_IMAGE078
Figure 963472DEST_PATH_IMAGE013
Figure 440590DEST_PATH_IMAGE079
Figure 914296DEST_PATH_IMAGE014
Figure 945706DEST_PATH_IMAGE080
Figure 743953DEST_PATH_IMAGE081
Figure 450878DEST_PATH_IMAGE016
Figure 662733DEST_PATH_IMAGE017
Figure 707918DEST_PATH_IMAGE082
, set encryption parameter
Figure 133215DEST_PATH_IMAGE002
, ,
Figure 291849DEST_PATH_IMAGE004
, ,
Figure 866367DEST_PATH_IMAGE006
, ,
Figure 265391DEST_PATH_IMAGE008
With
Figure 973584DEST_PATH_IMAGE009
Initial value, set the initial value of encryption variables j, d, e, f, g, h, r, p and q, 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 130896DEST_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 564020DEST_PATH_IMAGE083
Carry out H 1=
Figure 527297DEST_PATH_IMAGE084
Figure 214630DEST_PATH_IMAGE010
Figure 418209DEST_PATH_IMAGE019
Figure 558204DEST_PATH_IMAGE011
Figure 121909DEST_PATH_IMAGE020
Figure 38230DEST_PATH_IMAGE021
Figure 852471DEST_PATH_IMAGE013
Figure 970599DEST_PATH_IMAGE022
Figure 161595DEST_PATH_IMAGE023
Figure 276182DEST_PATH_IMAGE015
Figure 448854DEST_PATH_IMAGE016
Figure 414405DEST_PATH_IMAGE025
Figure 16288DEST_PATH_IMAGE017
Monobasic cryptographic calculation (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 627583DEST_PATH_IMAGE083
Carry out H 1=
Figure 639402DEST_PATH_IMAGE084
Figure 603947DEST_PATH_IMAGE010
Figure 726624DEST_PATH_IMAGE019
Figure 76702DEST_PATH_IMAGE011
Figure 525001DEST_PATH_IMAGE020
Figure 711263DEST_PATH_IMAGE012
Figure 107795DEST_PATH_IMAGE013
Figure 461416DEST_PATH_IMAGE022
Figure 666133DEST_PATH_IMAGE014
Figure 520825DEST_PATH_IMAGE023
Figure 720862DEST_PATH_IMAGE015
Figure 120751DEST_PATH_IMAGE024
Figure 406238DEST_PATH_IMAGE016
Figure 853586DEST_PATH_IMAGE017
Figure 689955DEST_PATH_IMAGE026
Carry 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 the monobasic cryptographic calculation, make next monobasic cryptographic calculation point to H 2=
Figure 393655DEST_PATH_IMAGE010
Figure 568284DEST_PATH_IMAGE085
Figure 309975DEST_PATH_IMAGE011
Figure 225848DEST_PATH_IMAGE028
Figure 835820DEST_PATH_IMAGE012
Figure 661277DEST_PATH_IMAGE030
Figure 307656DEST_PATH_IMAGE015
Figure 401383DEST_PATH_IMAGE032
Figure 353159DEST_PATH_IMAGE016
Figure 232253DEST_PATH_IMAGE033
Figure 876861DEST_PATH_IMAGE017
Figure 457884DEST_PATH_IMAGE034
(wherein k=1), generate second binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 2, right
Figure 213350DEST_PATH_IMAGE086
Carry out H 2=
Figure 681372DEST_PATH_IMAGE027
Figure 496881DEST_PATH_IMAGE010
Figure 96359DEST_PATH_IMAGE085
Figure 89088DEST_PATH_IMAGE012
Figure 520070DEST_PATH_IMAGE029
Figure 492705DEST_PATH_IMAGE013
Figure 325532DEST_PATH_IMAGE030
Figure 341898DEST_PATH_IMAGE014
Figure 458256DEST_PATH_IMAGE032
Figure 911103DEST_PATH_IMAGE016
Figure 51097DEST_PATH_IMAGE033
Figure 631114DEST_PATH_IMAGE017
Figure 172954DEST_PATH_IMAGE034
Carry 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 the monobasic cryptographic calculation, make next monobasic cryptographic calculation point to H 3=
Figure 796702DEST_PATH_IMAGE035
Figure 423992DEST_PATH_IMAGE010
Figure 542121DEST_PATH_IMAGE036
Figure 575860DEST_PATH_IMAGE087
Figure 595954DEST_PATH_IMAGE037
Figure 987753DEST_PATH_IMAGE013
Figure 828670DEST_PATH_IMAGE038
Figure 555186DEST_PATH_IMAGE014
Figure 139751DEST_PATH_IMAGE039
Figure 386056DEST_PATH_IMAGE015
Figure 346108DEST_PATH_IMAGE016
Figure 734364DEST_PATH_IMAGE041
Figure 835175DEST_PATH_IMAGE017
(wherein k=2), generate the 3rd binary add tight defense fake information H in the binary add tight defense fake information table of 32 group 3, this monobasic 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 719003DEST_PATH_IMAGE001
carry out the monobasic cryptographic calculation, 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.
CN2013100224309A 2013-01-22 2013-01-22 Multivariate parameter gradation unitary encryption anti-fake information storage trademark Pending CN103106515A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN2013100224309A CN103106515A (en) 2013-01-22 2013-01-22 Multivariate parameter gradation unitary encryption anti-fake information storage trademark

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN2013100224309A CN103106515A (en) 2013-01-22 2013-01-22 Multivariate parameter gradation unitary encryption anti-fake information storage trademark

Publications (1)

Publication Number Publication Date
CN103106515A true CN103106515A (en) 2013-05-15

Family

ID=48314361

Family Applications (1)

Application Number Title Priority Date Filing Date
CN2013100224309A Pending CN103106515A (en) 2013-01-22 2013-01-22 Multivariate parameter gradation unitary encryption anti-fake information storage trademark

Country Status (1)

Country Link
CN (1) CN103106515A (en)

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1780933A1 (en) * 2005-10-25 2007-05-02 Cryptara Limited A method of generating a random key
CN101163007A (en) * 2007-09-17 2008-04-16 吴建明 Credit sign accidental streakline generating method
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
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

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1780933A1 (en) * 2005-10-25 2007-05-02 Cryptara Limited A method of generating a random key
CN101163007A (en) * 2007-09-17 2008-04-16 吴建明 Credit sign accidental streakline generating method
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
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

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
冯登国,裴定一: "《密码学导引》", 30 April 1999, article "AES候选算法简介", pages: 271-273 *

Similar Documents

Publication Publication Date Title
CN103106427A (en) Single parameter multiple-encryption anti-counterfeiting information storage trademark
CN103106515A (en) Multivariate parameter gradation unitary encryption anti-fake information storage trademark
CN103106506A (en) Multi-parametric-variable gradient ternary encryption anti-fake information storage trademark
CN103106474A (en) Multivariate multi-parameter gradient unitary encryption anti-fake information storage trademark
CN103106524A (en) Multi-parametric-variable gradient polynary encryption anti-fake information storage trademark
CN103106495A (en) Multi-parametric-variable gradient ternary circulating encryption anti-fake information storage trademark
CN103106454A (en) Multi-parametric-variable gradient polynary variable circulating encryption anti-fake information storage trademark
CN103106431A (en) Multi-parametric-variable gradient binary circulating encryption anti-fake information storage trademark
CN103106470A (en) Multivariate multi-parameter gradient binary variable circulating encryption anti-fake information storage trademark
CN103106511A (en) Multivariate multi-parameter gradient unitary circulating encryption anti-fake information storage trademark
CN103106465A (en) Multivariate multi-parameter gradient ternary encryption anti-fake information storage trademark
CN103106472A (en) Multivariate multi-parameter gradient polynary circulating encryption anti-fake storage trademark
CN103106475A (en) Multi-parametric-variable gradient ternary variable circulating encryption anti-fake information storage trademark
CN103106461A (en) Multiparameter multivariable unitary encryption anti-fake information storage trademark
CN103106469A (en) Single parameter multivariable unitary encryption anti-counterfeiting information storage trademark
CN103106434A (en) Multi-parameter univariate polynary variable circulating encryption anti-fake information storage trademark
CN103106445A (en) Single parameter multivariable binary encryption anti-counterfeiting information storage trademark
CN103116785A (en) Multi-parameter multivariable unitary circulation encryption anti-fake information storage trademark
CN103106456A (en) Single parameter polymtized variable circulation encryption anti-counterfeiting information storage trademark
CN103106466A (en) Single parameter variable transmutation binary variable circulation encryption anti-counterfeiting information storage trademark
CN103116783A (en) Parameter transmutation binary variable circulation encryption anti-fake information storage trademark
CN103106526A (en) Multiparameter multivariable ternary cycle encryption anti-fake information storage trademark
CN103116778A (en) One-parameter multivariate binary variable circulation encryption anti-fake information storage trademark
CN103106468A (en) Parameter transmutation multi-element encryption anti-fake information storage trademark
CN103106520A (en) Multiparameter multivariable binary 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