首页
网站开发
桌面应用
管理软件
微信开发
App开发
嵌入式软件
工具软件
数据采集与分析
其他
首页
>
> 详细
COMP 250程序讲解、辅导Java程序、Java编程调试 辅导留学生Prolog|讲解SPSS
项目预算:
开发周期:
发布时间:
要求地区:
Assignment 2
COMP 250 Winter 2021
posted: Saturday, Feb. 20, 2021
due: Sunday, Mar. 14, 2021 at 23:59
General Instructions
• Submission instructions
– Late assignments will be accepted up to 2 days late and will be penalized by 10 points per
day. Note that submitting one minute late is the same as submitting 23 hours late. We
will deduct 10 points for any student who has to resubmit after the due date (i.e. late)
irrespective of the reason, be it wrong file submitted, wrong file format was submitted
or any other reason. This policy will hold regardless of whether or not the student can
provide proof that the assignment was indeed “done” on time.
– Don’t worry if you realize that you made a mistake after you submitted : you can submit
multiple times but only the latest submission will be kept. We encourage you to submit
a first version a few days before the deadline (computer crashes do happen and codePost
may be overloaded during rush hours).
– These are the files you should be submitting on codePost:
∗ Deck.java
∗ SolitaireCipher.java
Do not submit any other files, especially .class files. Any deviation from these
requirements may lead to lost marks
• Please note that the classes you submit should be part of a package called assignment2.
• Do not change any of the starter code that is given to you. Add code only where
instructed, namely in the “ADD CODE HERE” block. You may add helper methods
as long as you keep them private.
• The assignment shall be graded automatically. Requests to evaluate the assignment manually
shall not be entertained, so please make sure that you follow the instructions closely or your
code may fail to pass the automatic tests. Note that for this assignment, you are NOT allowed
to import any other class, beside those already imported for you in the starter code. Any
failure to comply with these rules will give you an automatic 0.
• Whenever you submit your files to codepost, you will see the results of some exposed tests.
These tests are a mini version of the tests we will be using to grade your work. If your code
fails those tests, it means that there is a mistake somewhere. Even if your code passes those
tests, it may still contain some errors. We will test your code on a much more challenging set
1
of examples. We highly encourage you to test your code thoroughly before submitting your
final version.
• Later next week we will also post a Minitester class that you can run to test if your methods
are correct. This class will be equivalent to the exposed tests on codePost. Please note that
these tests are only a subset of what we will be running on your submissions. We encourage
you modify and expand this class. You are welcome to share your tester code with other
students on Piazza. Try to identify tricky cases. Do not hand in your tester code. Note that
your code will be tested on valid inputs only.
• Later next week we will also provide a table indicating how many points will be assigned to
each method.
• You will automatically get 0 if your code does not compile.
• Failure to comply with any of these rules will be penalized. If anything is unclear, it is up to
you to clarify it by asking either directly a TA during office hours, or on the discussion board
on Piazza.
Learning Objectives
There are several learning goals for this assignment.
First, you will get some exposure to some simple cryptography. We’ll introduce the idea behind
one-time pad and you will implement an example of a stream cipher.
Second, in this assignment you will also get some experience working with linked lists. You will
implement a data structure to represent a deck of cards. This data structure is implemented as a
circular doubly linked list.
Third, in this assignment we will start to focus also on the efficiency of your algorithms. You will
learn to look at code with a more critical eye, without only focusing on the correctness of your
methods.
Lastly, this assignment will also give you more practice programming in Java! Although COMP
250 is not a course about how to program, programming is a core part of computer science and the
more practice you get, the better you will become at it.
Introduction
In 1917, Vernam patented a cipher now called one-time pad encryption scheme. The point of an
encryption scheme is to transform a message so that only those authorized will be able to read it.
One-time pad was later (in 1949) proved to be perfectly secret. The idea behind one-time pad is
that given a plaintext message of length n, a uniformly random stream of digits of length n (which
is the key) is generated and then used to encode the message. The message is concealed by replacing
each character in the plaintext, with a character obtained combining the original one with one of the
digits in the given key. Of course the message can be retrieved by performing the inverse operation
2
on the characters of the encoded message (the ciphertext). Only those with access to the key can
encode and decode a message. One-time pad is perfectly secret, but it has a number of drawbacks:
for it to be secure, the key is required to be as long as the message, and it can only be used once!
This clearly makes the cipher not a convenient one to use. Unfortunately, it was also proven that
the limitations of one-time-pad are inherent to the definition of perfect secrecy. This means that to
overcome those limitations the security requirements have to be relaxed.
Stream ciphers use the same idea of one-time pad encryption scheme except that a pseudorandom
sequence of digits is used as the pad instead of a random one. The idea is to use what are
called ‘pseudorandom generators’ which given a smaller key can generate streams of pseudorandom
digits.
In Neal Stephenson’s novel Cryptonomicon, two of the main characters are able to covertly communicate
with one another with a deck of playing cards and knowledge of the Solitaire encryption
algorithm, which was created (in real life) by Bruce Schneier. The novel includes the description of
the algorithm, but you can also find a revised version on the web1
.
The Solitaire encryption algorithm is an example of a stream cipher. The key in this case is the deck
of cards in its initial configuration. If two parties, Alice and Bob, share the same deck, following
the Solitaire encryption algorithm they will be able to communicate by encoding and decoding
messages. Of course, the deck and its configuration (i.e. the key) has to be kept secret to achieve
secrecy. To encode and decode messages, Alice and Bob use the deck to generate a pseudorandom
keystream which is then used as the “pad”.
Encode/Decode with Solitaire
Given a message to encode, we need to first remove all non–letters and convert any lower–case letters
to upper–case. We then use the keystream of values and convert each letter to the letter obtained
by shifting the original one a certain number of positions to the right on the alphabet. This number
is the one found in the keystream in the same position as the character we are encoding.
Decryption is just the reverse of encryption. Using the same keystream that was used to generate
the ciphertext, convert each letter to the letter obtained by shifting the original one the given
number of positions to the left on the alphabet.
For example, let’s say that Alice wants to send the following message:
Is that you, Bob?
Then she will first remove all the non-letters and capitalize all the remaining ones obtaining the
following:
ISTHATYOUBOB
She will then generate a keystream of 12 values. We’ll talk about the keystream generation in the
next section, so let’s assume that the keystream is the following:
11 9 23 7 10 25 11 11 7 8 9 3
1See https://en.wikipedia.org/wiki/Solitaire (cipher), or https://www.schneier.com/academic/solitaire/
3
Finally, she can generate the ciphertext by shifting each letter the appropriate number of positions
to the right in the alphabet. For example, the ‘I’ shifted 11 positions to the right, becomes a ‘T’.
The ‘S’ shifted 9 positions to the right becomes a ‘B’. And so on! The final ciphertext will be:
TBQOKSJZBJXE
Bob, upon receiving the message, will need to generate the keystream. If Alice and Bob shared the
same key and used it to generate the same number of pseudorandom values, then the keystream
generated in this moment by Bob will be equal to that used by Alice to encrypt the message. All
there’s left for Bob to do is convert all the letters by shifting them the appropriate number of
position to the left.
Generating a Keystream Using a Deck of Cards
The harder part of the Solitaire encryption algorithm is generating the keystream. The idea is to
use a deck of playing cards plus two jokers (a red one and a black one). Each card is associated with
a value which depends on its rank and its suit. Cards in order from Ace to King have value 1 to 13
respectively. This value can increase by a multiple of 13 depending on the suit of the card. For this
section let’s assume we’ll use the Bridge ranking for suits: clubs (lowest), followed by diamonds,
hearts, and spades (highest). So, for instance, the Ace of clubs has value 1, while the 5 of diamonds
has value 18, and the Queen of spades has value 51. The jokers have a value that depends on the
number of cards in the deck. If the deck has a total of 54 cards (the 52 playing cards plus the two
jokers), then the jokers have value 53. If the deck has total of 28 cards, then the jokers have value
27. That is, the jokers have both the same value and this value is equal to the total number of
cards in the deck minus one.
The keystream values depend solely on the deck’s initial configuration. We will implement the deck
as a circular doubly linked list with the cards as nodes. This means that the first card (the one on
the top of the deck) is linked to the last card (the one at the bottom of the deck) and the last card
is linked to the first one. As an example, let’s consider a deck with 28 cards: the 13 of both clubs
and diamonds, plus the two jokers. Let’s also consider the following initial configuration2
:
AC 4C 7C 10C KC 3D 6D 9D QD BJ 3C 6C 9C QC 2D 5D 8D JD RJ 2C 5C 8C JC AD 4D 7D 10D KD
The cards are represented with their rank, followed by their suit. For example, 6C denotes the 6 of
clubs, JD the Jack of diamonds, and RJ the red joker.
Here are the steps to take to generate one value of the keystream:
1. Locate the red joker and move it one card down. (That is, swap it with the card beneath it.)
If the joker is the bottom card of the deck, move it just below the top card. There is no way
for it to become the first card. After this step, the deck above will look as follows:
AC 4C 7C 10C KC 3D 6D 9D QD BJ 3C 6C 9C QC 2D 5D 8D JD 2C RJ 5C 8C JC AD 4D 7D 10D KD
2Note that this is the same example you find on the wikipedia page
https://en.wikipedia.org/wiki/Solitaire (cipher) where instead of the cards, they list the values.
4
2. Locate the black joker and move it two cards down. If the joker is the bottom card of the
deck, move it just below the second card. If the joker is one up from the bottom card, move
it just below the top card. There is no way for it to become the first card. After this step,
the deck above will look as follows:
AC 4C 7C 10C KC 3D 6D 9D QD 3C 6C BJ 9C QC 2D 5D 8D JD 2C RJ 5C 8C JC AD 4D 7D 10D KD
3. Perform a “triple cut”: that is, swap the cards above the first joker with the cards below the
second joker. Note that here we use “first” and “second” joker to refer to whatever joker is
nearest to, and furthest from, the top of the deck. Their colors do not matter. Note that the
jokers and the cards between them do not move! If there are no cards in one of the three
sections (either the jokers are adjacent, or one is on top or the bottom), just treat that section
as empty and move it anyway. The deck will now look as follows:
5C 8C JC AD 4D 7D 10D KD BJ 9C QC 2D 5D 8D JD 2C RJ AC 4C 7C 10C KC 3D 6D 9D QD 3C 6C
4. Perform a “count cut”: look at the value of the bottom card. Remove that number of cards
from the top of the deck and insert them just above the last card in the deck. The deck will
now look as follows:
10D KD BJ 9C QC 2D 5D 8D JD 2C RJ AC 4C 7C 10C KC 3D 6D 9D QD 3C 5C 8C JC AD 4D 7D 6C
5. Finally, look at the value of the card on the top of the deck. Count down that many cards.
(Count the top card as number one.) If you hit a joker, ignore it and repeat the keystream
algorithm. Otherwise, use the value of the card you counted to as the next keystream value.
Note that this step does not modify the state of the deck. In our example, the top card is
a 10 of diamonds which has value 23. By counting down to the 24th card we find the Jack
of clubs which has value 11. Hence, 11 would be the first keystream value generated by our
deck.
Instructions and Starter Code
As mentioned in the section before we will use a circular doubly linked list to represent a deck of
cards. The starter code contains two files with five classes which are as follows:
• Deck - This class defines a deck of cards. Most of your work goes into this file. This class
contains three nested classes: Card, PlayingCard, and Joker.
• SolitaireCipher – This class represents a stream cipher that uses the Solitaire algorithm to
generate the keystream and then encode/decode messages.
Please note that we defined all the members of the classes public for testing purposes. In reality, for
better coding style, most of those methods and all of the fields should have been kept private.
Methods you need to implement
For this assignment you need to implement all of the methods listed below. See the starter code
for the full method signatures. Your implementations must be efficient. For each method below,
we indicate the worst case run time using O() notation.
5
• Deck.Deck(int numOfCardsPerSuit, int numOfSuits) : creates a deck with cards from
Ace to numOfCardsPerSuit for the first numOfSuits in the class field suitsInOrder. The
cards should be ordered first by suit, and then by rank. In addition to these cards, a red joker
and a black joker are added to the bottom of the deck in this order. For example, with input
4 and 3, and suitsInOrder as specified in the file, the deck contains the following cards in
this specific order:
AC 2C 3C 4C AD 2D 3D 4D AH 2H 3H 4H RJ BJ
The constructor should raise an IllegalArgumentException if the first input is not a number
between 1 and 13 (both included) or the second input is not a number between 1 and the size
of the class field suitsInOrder. Remember that a deck is a circular doubly linked list so
make sure to set up all the pointers correctly, as well as the instance fields.
• Deck.Deck(Deck d) : creates a deck by making a deep copy of the input deck. Hint: use
the method getCopy from the class Card. Disclaimer: this is not the correct way of making
a deep copy of objects that contain circular references, but it is a simple one and good enough
for our purposes.
• Deck.addCard(Card c) : adds the input card to the bottom of the deck. This method runs
in O(1).
• Deck.shuffle() : shuffles the deck. There are different ways of doing this, but for this assignment
you will need to implement an algorithm that uses the Fisher–Yates shuffle algorithm.
The algorithm runs in O(n) using O(n) space, where n is the number of cards in the deck.
To perform a shuffle of the deck follow the steps:
– Copy all the cards inside an array
– Shuffle the array using the following algorithm:
for i from n-1 to 1 do
j <-- random integer such that 0 <= j <= i
swap a[j] and a[i]
To generate a random integer use the Random object stored in the class field called gen.
– Use the array to rebuild the shuffled deck.
• Deck.locateJoker(String color) : returns a reference to the joker in the deck with the
specified color. This method runs in O(n).
• Deck.moveCard(Card c, int p) : moves the card c by p positions down the deck. You can
assume that the input card belongs to the deck (which implies that the deck is not empty).
This method runs in O(p).
• Deck.tripleCut(Card firstCard, Card secondCard) : performs a triple cut on the deck
using the two input cards. You can assume that the input cards belong to the deck and the
first one is nearest to the top of the deck. This method runs in O(1).
6
• Deck.countCut() : performs a count cut on the deck. The number used for the cut is the
value of the bottom card modulo the total number of cards in the deck. Note that this means
that if the value of the bottom card is equal to a multiple of the number of cards in the deck,
then the method should not do anything. This method runs in O(n).
• Deck.lookUpCard() : returns a reference to the card that can be found by looking at the
value of the card on the top of the deck, and counting down that many cards. If the card
found is a Joker, then the method returns null, otherwise it returns the card found. This
method runs in O(n).
• Deck.generateNextKeystreamValue() : uses the Solitaire algorithm to generate one value
for the keystream using this deck. This method runs in O(n).
• SolitaireCipher.getKeystream(int size) : generates a keystream of the given size.
• SolitaireCipher.encode(String msg) : encodes the input message by generating a keystream
of the correct size and using it to encode the message as described earlier in the pdf.
• SolitaireCipher.decode(String msg) : decodes the input message by generating a keystream
of the correct size and using it to decode the message as described earlier in the pdf.
Small example
Generate a deck of 12 cards as follows:
AC 2C 3C 4C 5C AD 2D 3D 4D 5D RJ BJ
If you seed the random generator using 10 as the seed, then after shuffling the deck once you will
get the following configuration:
3C 3D AD 5C BJ 2C 2D 4D AC RJ 4C 5D
If you were to use this deck to create a Solitaire cipher and you would try to encode the message
"Is that you, Bob?" you would get the ciphertext MWIKDVZCKSFP obtained using the following
keystream:
4 4 15 3 3 2 1 14 16 17 17 14
Finally, note that the keystream used in the section describing how to encode/decode is the
keystream you would obtain using the deck from the example used on how to generate keystream
values.
7
软件开发、广告设计客服
QQ:99515681
邮箱:99515681@qq.com
工作时间:8:00-23:00
微信:codinghelp
热点项目
更多
urba6006代写、java/c++编程语...
2024-12-26
代做program、代写python编程语...
2024-12-26
代写dts207tc、sql编程语言代做
2024-12-25
cs209a代做、java程序设计代写
2024-12-25
cs305程序代做、代写python程序...
2024-12-25
代写csc1001、代做python设计程...
2024-12-24
代写practice test preparatio...
2024-12-24
代写bre2031 – environmental...
2024-12-24
代写ece5550: applied kalman ...
2024-12-24
代做conmgnt 7049 – measurem...
2024-12-24
代写ece3700j introduction to...
2024-12-24
代做adad9311 designing the e...
2024-12-24
代做comp5618 - applied cyber...
2024-12-24
热点标签
mktg2509
csci 2600
38170
lng302
csse3010
phas3226
77938
arch1162
engn4536/engn6536
acx5903
comp151101
phl245
cse12
comp9312
stat3016/6016
phas0038
comp2140
6qqmb312
xjco3011
rest0005
ematm0051
5qqmn219
lubs5062m
eee8155
cege0100
eap033
artd1109
mat246
etc3430
ecmm462
mis102
inft6800
ddes9903
comp6521
comp9517
comp3331/9331
comp4337
comp6008
comp9414
bu.231.790.81
man00150m
csb352h
math1041
eengm4100
isys1002
08
6057cem
mktg3504
mthm036
mtrx1701
mth3241
eeee3086
cmp-7038b
cmp-7000a
ints4010
econ2151
infs5710
fins5516
fin3309
fins5510
gsoe9340
math2007
math2036
soee5010
mark3088
infs3605
elec9714
comp2271
ma214
comp2211
infs3604
600426
sit254
acct3091
bbt405
msin0116
com107/com113
mark5826
sit120
comp9021
eco2101
eeen40700
cs253
ece3114
ecmm447
chns3000
math377
itd102
comp9444
comp(2041|9044)
econ0060
econ7230
mgt001371
ecs-323
cs6250
mgdi60012
mdia2012
comm221001
comm5000
ma1008
engl642
econ241
com333
math367
mis201
nbs-7041x
meek16104
econ2003
comm1190
mbas902
comp-1027
dpst1091
comp7315
eppd1033
m06
ee3025
msci231
bb113/bbs1063
fc709
comp3425
comp9417
econ42915
cb9101
math1102e
chme0017
fc307
mkt60104
5522usst
litr1-uc6201.200
ee1102
cosc2803
math39512
omp9727
int2067/int5051
bsb151
mgt253
fc021
babs2202
mis2002s
phya21
18-213
cege0012
mdia1002
math38032
mech5125
07
cisc102
mgx3110
cs240
11175
fin3020s
eco3420
ictten622
comp9727
cpt111
de114102d
mgm320h5s
bafi1019
math21112
efim20036
mn-3503
fins5568
110.807
bcpm000028
info6030
bma0092
bcpm0054
math20212
ce335
cs365
cenv6141
ftec5580
math2010
ec3450
comm1170
ecmt1010
csci-ua.0480-003
econ12-200
ib3960
ectb60h3f
cs247—assignment
tk3163
ics3u
ib3j80
comp20008
comp9334
eppd1063
acct2343
cct109
isys1055/3412
math350-real
math2014
eec180
stat141b
econ2101
msinm014/msing014/msing014b
fit2004
comp643
bu1002
cm2030
联系我们
- QQ: 9951568
© 2021
www.rj363.com
软件定制开发网!