easy ciphers

Easy Ciphers Tools:
cryptography lectures
popular ciphers:

jingoism

sculping

aminic

micrognathous

hesterna

quadrophonia

podolak

polymictic

calendry

diabolepsy

monarchess

otelo

frenchville

fungererque

hydrodromica

chloritoid

jealousy

fredrickson


Caesar cipher

Caesar cipher, is one of the simplest and most widely known encryption techniques. The transformation can be represented by aligning two alphabets, the cipher alphabet is the plain alphabet rotated left or right by some number of positions.

When encrypting, a person looks up each letter of the message in the 'plain' line and writes down the corresponding letter in the 'cipher' line. Deciphering is done in reverse.
The encryption can also be represented using modular arithmetic by first transforming the letters into numbers, according to the scheme, A = 0, B = 1,..., Z = 25. Encryption of a letter x by a shift n can be described mathematically as

Plaintext: academi
cipher variations:
bdbefnj cecfgok dfdghpl egehiqm fhfijrn
gigjkso hjhkltp ikilmuq jljmnvr kmknows
lnlopxt mompqyu npnqrzv oqorsaw prpstbx
qsqtucy rtruvdz susvwea tvtwxfb uwuxygc
vxvyzhd wywzaie xzxabjf yaybckg zbzcdlh

Decryption is performed similarly,

(There are different definitions for the modulo operation. In the above, the result is in the range 0...25. I.e., if x+n or x-n are not in the range 0...25, we have to subtract or add 26.)
Read more ...
Atbash Cipher

Atbash is an ancient encryption system created in the Middle East. It was originally used in the Hebrew language.
The Atbash cipher is a simple substitution cipher that relies on transposing all the letters in the alphabet such that the resulting alphabet is backwards.
The first letter is replaced with the last letter, the second with the second-last, and so on.
An example plaintext to ciphertext using Atbash:
Plain: academi
Cipher: zxzwvnr

Read more ...

 

Baconian Cipher

To encode a message, each letter of the plaintext is replaced by a group of five of the letters 'A' or 'B'. This replacement is done according to the alphabet of the Baconian cipher, shown below.
a   AAAAA   g    AABBA     m    ABABB   s    BAAAB     y    BABBA
b   AAAAB   h    AABBB     n    ABBAA   t    BAABA     z    BABBB
c   AAABA   i    ABAAA     o    ABBAB   u    BAABB 
d   AAABB   j    BBBAA     p    ABBBA   v    BBBAB
e   AABAA   k    ABAAB     q    ABBBB   w    BABAA
f   AABAB   l    ABABA     r    BAAAA   x    BABAB

Plain: academi
Cipher: AAAAA AAABA AAAAA AAABB AABAA ABABB ABAAA

Read more ...

 

Affine Cipher
In the affine cipher the letters of an alphabet of size m are first mapped to the integers in the range 0..m - 1. It then uses modular arithmetic to transform the integer that each plaintext letter corresponds to into another integer that correspond to a ciphertext letter. The encryption function for a single letter is

where modulus m is the size of the alphabet and a and b are the key of the cipher. The value a must be chosen such that a and m are coprime.
Considering the specific case of encrypting messages in English (i.e. m = 26), there are a total of 286 non-trivial affine ciphers, not counting the 26 trivial Caesar ciphers. This number comes from the fact there are 12 numbers that are coprime with 26 that are less than 26 (these are the possible values of a). Each value of a can have 26 different addition shifts (the b value) ; therefore, there are 12*26 or 312 possible keys.
Plaintext: academi
cipher variations:
bdbefnjbhbknlzblbqvjpbpbwdhfbtbclfvbxbitdlbfbujzrbjbarxh
bnbgzvxbrbmhtnbvbsprdbzbyxptcecfgokciclomacmcrwkqcqcxeig
cucdmgwcycjuemcgcvkasckcbsyicochawycscniuocwctqsecaczyqu
dfdghpldjdmpnbdndsxlrdrdyfjhdvdenhxdzdkvfndhdwlbtdldctzj
dpdibxzdtdojvpdxdurtfdbdazrvegehiqmekenqoceoetymsesezgki
ewefoiyeaelwgoeiexmcuemeduakeqejcyaeuepkwqeyevsugecebasw
fhfijrnflforpdfpfuzntftfahljfxfgpjzfbfmxhpfjfyndvfnfevbl
frfkdzbfvfqlxrfzfwtvhfdfcbtxgigjksogmgpsqegqgvaougugbimk
gyghqkagcgnyiqgkgzoewgogfwcmgsgleacgwgrmysgagxuwigegdcuy
hjhkltphnhqtrfhrhwbpvhvhcjnlhzhirlbhdhozjrhlhapfxhphgxdn
hthmfbdhxhsnzthbhyvxjhfhedvzikilmuqioirusgisixcqwiwidkom
iaijsmcieipaksimibqgyiqihyeoiuingceiyitoauicizwykigifewa
jljmnvrjpjsvthjtjydrxjxjelpnjbjktndjfjqbltjnjcrhzjrjizfp
jvjohdfjzjupbvjdjaxzljhjgfxbkmknowskqktwuikukzesykykfmqo
kckluoekgkrcmukokdsiakskjagqkwkpiegkakvqcwkekbyamkikhgyc
lnlopxtlrluxvjlvlaftzlzlgnrpldlmvpflhlsdnvlpletjbltlkbhr
lxlqjfhlblwrdxlflczbnljlihzdmompqyumsmvywkmwmbguamamhosq
memnwqgmimteowmqmfukcmumlcismymrkgimcmxseymgmdacomkmjiae
npnqrzvntnwzxlnxnchvbnbniptrnfnoxrhnjnufpxnrngvldnvnmdjt
nznslhjndnytfznhnebdpnlnkjbfoqorsawouoxaymoyodiwcocojqus
ogopysiokovgqyosohwmeowonekuoaotmikoeozugaoiofceqomolkcg
prpstbxpvpybznpzpejxdpdpkrvtphpqztjplpwhrzptpixnfpxpoflv
pbpunjlpfpavhbpjpgdfrpnpmldhqsqtucyqwqzcaoqaqfkyeqeqlswu
qiqraukqmqxisaquqjyogqyqpgmwqcqvokmqgqbwicqkqhegsqoqnmei
rtruvdzrxradbprbrglzfrfrmtxvrjrsbvlrnryjtbrvrkzphrzrqhnx
rdrwplnrhrcxjdrlrifhtrpronfjsusvweasysbecqscshmagsgsnuyw
skstcwmsoszkucswslaqisasrioysesxqmosisdykesmsjgiusqspogk
tvtwxfbtztcfdrtdtinbhthtovzxtltudxntptalvdtxtmbrjtbtsjpz
tftyrnptjtezlftntkhjvtrtqphluwuxygcuaudgesueujociuiupway
umuveyouqubmweuyuncskucutkqauguzsoqukufamguoulikwusurqim
vxvyzhdvbvehftvfvkpdjvjvqxbzvnvwfzpvrvcnxfvzvodtlvdvulrb
vhvatprvlvgbnhvpvmjlxvtvsrjnwywzaiewcwfiguwgwlqekwkwryca
wowxgaqwswdoygwawpeumwewvmscwiwbuqswmwhcoiwqwnkmywuwtsko
xzxabjfxdxgjhvxhxmrflxlxszdbxpxyhbrxtxepzhxbxqfvnxfxwntd
xjxcvrtxnxidpjxrxolnzxvxutlpyaybckgyeyhkiwyiynsgmymytaec
yqyzicsyuyfqaiycyrgwoygyxoueykydwsuyoyjeqkysypmoaywyvumq
zbzcdlhzfziljxzjzothnznzubfdzrzajdtzvzgrbjzdzshxpzhzypvf
zlzextvzpzkfrlztzqnpbzxzwvnracademiagajmkyakapuioaoavcge
asabkeuawahsckaeatiyqaiazqwgamafyuwaqalgsmauaroqcayaxwos

The decryption function is

where a - 1 is the modular multiplicative inverse of a modulo m. I.e., it satisfies the equation

The multiplicative inverse of a only exists if a and m are coprime. Hence without the restriction on a decryption might not be possible. It can be shown as follows that decryption function is the inverse of the encryption function,

Read more ...

 

ROT13 Cipher
Applying ROT13 to a piece of text merely requires examining its alphabetic characters and replacing each one by the letter 13 places further along in the alphabet, wrapping back to the beginning if necessary. A becomes N, B becomes O, and so on up to M, which becomes Z, then the sequence continues at the beginning of the alphabet: N becomes A, O becomes B, and so on to Z, which becomes M. Only those letters which occur in the English alphabet are affected; numbers, symbols, whitespace, and all other characters are left unchanged. Because there are 26 letters in the English alphabet and 26 = 2 * 13, the ROT13 function is its own inverse:

ROT13(ROT13(x)) = x for any basic Latin-alphabet text x


An example plaintext to ciphertext using ROT13:

Plain: academi
Cipher: npnqrzv

Read more ...

 

Polybius Square

A Polybius Square is a table that allows someone to translate letters into numbers. To give a small level of encryption, this table can be randomized and shared with the recipient. In order to fit the 26 letters of the alphabet into the 25 spots created by the table, the letters i and j are usually combined.
1 2 3 4 5
1 A B C D E
2 F G H I/J K
3 L M N O P
4 Q R S T U
5 V W X Y Z

Basic Form:
Plain: academi
Cipher: 11311141512342

Extended Methods:
Method #1

Plaintext: academi
method variations:
fhfikrolnlopwtqsqtubyvxvyzgd

Method #2
Bifid cipher
The message is converted to its coordinates in the usual manner, but they are written vertically beneath:
a c a d e m i 
1 3 1 4 5 2 4 
1 1 1 1 1 3 2 
They are then read out in rows:
13145241111132
Then divided up into pairs again, and the pairs turned back into letters using the square:
Plain: academi
Cipher: lqkdaah

Read more ...
Method #3

Plaintext: academi
method variations:
laqvfsb aqvfsbl qvfsbla
vfsblaq fsblaqv sblaqvf
blaqvfs

Read more ...[RUS] , [EN]

 

Permutation Cipher
In classical cryptography, a permutation cipher is a transposition cipher in which the key is a permutation. To apply a cipher, a random permutation of size E is generated (the larger the value of E the more secure the cipher). The plaintext is then broken into segments of size E and the letters within that segment are permuted according to this key.
In theory, any transposition cipher can be viewed as a permutation cipher where E is equal to the length of the plaintext; this is too cumbersome a generalisation to use in actual practice, however.
The idea behind a permutation cipher is to keep the plaintext characters unchanged, butalter their positions by rearrangement using a permutation
This cipher is defined as:
Let m be a positive integer, and K consist of all permutations of {1,...,m}
For a key (permutation) , define:
The encryption function
The decryption function
A small example, assuming m = 6, and the key is the permutation :

The first row is the value of i, and the second row is the corresponding value of (i)
The inverse permutation, is constructed by interchanging the two rows, andrearranging the columns so that the first row is in increasing order, Therefore, is:

Total variation formula:

e = 2,718281828 , n - plaintext length

Plaintext: academi

all 5040 cipher variations:
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eidmcaa eidmcaa eidcama eidcaam eidcmaa eidcmaa eidcama eidcaam eiadamc eiadacm eiadmac
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eiamdac eiamdca eiamcda eiamcad eiacamd eiacadm eiacmad eiacmda eiacdma eiacdam eimdaac
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eimcdaa eicdama eicdaam eicdmaa eicdmaa eicdama eicdaam eicadma eicadam eicamda eicamad
eicaamd eicaadm eicmada eicmaad eicmdaa eicmdaa eicmada eicmaad eicaamd eicaadm eicamad
eicamda eicadma eicadam mcadeai mcadeia mcadaei mcadaie mcadiae mcadiea mcaedai mcaedia
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medcaia medciaa medciaa medacai medacia medaaci medaaic medaiac medaica medicaa medicaa
mediaca mediaac mediaac mediaca mecdaai mecdaia mecdaai mecdaia mecdiaa mecdiaa mecadai
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miaaecd miaadec miaadce miaacde miaaced miacead miaceda miacaed miacade miacdae miacdea
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miecaad miecada miecdaa miecdaa miadeac miadeca miadaec miadace miadcae miadcea miaedac
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miacead miaceda miacaed miacade miacdae miacdea micdeaa micdeaa micdaea micdaae micdaae
micdaea micedaa micedaa miceada miceaad miceaad miceada micaeda micaead micadea micadae
micaade micaaed micaead micaeda micaaed micaade micadae micadea icadema icadeam icadmea
icadmae icadame icadaem icaedma icaedam icaemda icaemad icaeamd icaeadm icameda icamead
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icdaaem icedama icedaam icedmaa icedmaa icedama icedaam iceadma iceadam iceamda iceamad
iceaamd iceaadm icemada icemaad icemdaa icemdaa icemada icemaad iceaamd iceaadm iceamad
iceamda iceadma iceadam icmdeaa icmdeaa icmdaea icmdaae icmdaae icmdaea icmedaa icmedaa
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ieacdma ieacdam ieacmda ieacmad ieacamd ieacadm ieamcda ieamcad ieamdca ieamdac ieamadc
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iaedcma iaedcam iaeadmc iaeadcm iaeamdc iaeamcd iaeacmd iaeacdm iaemadc iaemacd iaemdac
iaemdca iaemcda iaemcad iaecamd iaecadm iaecmad iaecmda iaecdma iaecdam iamdeac iamdeca
iamdaec iamdace iamdcae iamdcea iamedac iamedca iameadc iameacd iamecad iamecda iamaedc
iamaecd iamadec iamadce iamacde iamaced iamcead iamceda iamcaed iamcade iamcdae iamcdea
iacdema iacdeam iacdmea iacdmae iacdame iacdaem iacedma iacedam iacemda iacemad iaceamd
iaceadm iacmeda iacmead iacmdea iacmdae iacmade iacmaed iacaemd iacaedm iacamed iacamde
iacadme iacadem

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History of cryptography
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