chapter 2 analysis of algorithms
DESCRIPTION
CHAPTER 2 Analysis of Algorithms. Input. Algorithm. Output. An algorithm is a step-by-step procedure for solving a problem in a finite amount of time. Algorithm Analysis: Do NOT worry !!!. Math you need to Review. Series summations Logarithms and Exponents Proof techniques - PowerPoint PPT PresentationTRANSCRIPT
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Dr. AlagozCHAPTER 2Analysis of Algorithms
AlgorithmInput Output
An algorithm is a step-by-step procedure forsolving a problem in a finite amount of time.
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Analysis of Algorithms 2
Dr. AlagozAlgorithm Analysis: Do NOT worry !!!
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properties of logarithms:logb(xy) = logbx + logbylogb (x/y) = logbx - logbylogbxa = alogbxlogba = logxa/logxb
properties of exponentials:a(b+c) = aba c
abc = (ab)c
ab /ac = a(b-c)
b = a logab
bc = a c*logab
Series summationsLogarithms and Exponents
Proof techniquesBasic probability
Math you need to Review
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Sum series-examples
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Recurrence Relations
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Analysis of Algorithms 13
Dr. AlagozAssumptions for the computational model
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Running Time Most algorithms transform input objects into output objects.The running time of an algorithm typically grows with the input size.Average case time is often difficult to determine.We focus on the worst case running time.
Easier to analyze Crucial to applications
such as games, finance, image,robotics, AI, etc.
0
20
40
60
80
100
120
Runn
ing
Tim
e1000 2000 3000 4000
Input Size
best caseaverage caseworst case
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Experimental StudiesWrite a program implementing the algorithmRun the program with inputs of varying size and compositionAssume a subprogram is written to get an accurate measure of the actual running timePlot the results 0
1000
2000
3000
4000
5000
6000
7000
8000
9000
0 50 100Input Size
Tim
e (m
s)
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Limitations of ExperimentsIt is necessary to implement the algorithm, which may be difficultResults may not be indicative of the running time on other inputs not included in the experiment. In order to compare two algorithms, the same hardware and software environments must be used
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Theoretical AnalysisUses a high-level description of the algorithm instead of an implementationCharacterizes running time as a function of the input size, n.Takes into account all possible inputsAllows us to evaluate the speed of an algorithm independent of the hardware/software environment
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Pseudocode High-level description of an algorithmMore structured than English proseLess detailed than a programPreferred notation for describing algorithmsHides program design issues
Algorithm arrayMax(A, n)Input array A of n integersOutput maximum element of A
currentMax A[0]for i 1 to n 1 do
if A[i] currentMax thencurrentMax A[i]
return currentMax
Example: find max element of an array
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Pseudocode DetailsControl flow
if … then … [else …] while … do … repeat … until … for … do … Indentation replaces
braces Method declarationAlgorithm method (arg [, arg…])
Input …Output …
Method callvar.method (arg [, arg…])
Return valuereturn expression
Expressions Assignment
(like in Java) Equality testing
(like in Java)n2 Superscripts and
other mathematical formatting allowed
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Important Functions Seven functions that often appear in algorithm analysis:
Constant 1 Logarithmic log n Linear n N-Log-N n log n Quadratic n2
Cubic n3
Exponential 2n
In a log-log chart, the slope of the line corresponds to the growth rate of the function
1E+01E+21E+41E+61E+8
1E+101E+121E+141E+161E+181E+201E+221E+241E+261E+281E+30
1E+0 1E+2 1E+4 1E+6 1E+8 1E+10n
T(n
)
CubicQuadraticLinear
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Primitive OperationsBasic computations performed by an algorithmIdentifiable in pseudocodeLargely independent from the programming languageExact definition not important (we will see why later)Assumed to take a constant amount of time in the RAM model
Examples: Evaluating an
expression Assigning a
value to a variable
Indexing into an array
Calling a method Returning from a
method
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Analysis of Algorithms 22
Dr. AlagozDetailed Model 4 counting operations-1
fetch to fetch an integer operant from memorystore to store an integer result in memory+ to add two integers- to subtract two integersx to multiply two integers/ to divide two integers< to comparison of two integers
The time require for the following operations are all constants.
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return to return from a methodcall to call a methodstore to pass an integer argument to a method[.] for the address calculation (not including
the computation of the subscription)new to allocate a fixed amount of storage
from the heap using new
Detailed Model 4 counting operations-2The time require for the following operations are all constants.
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Statement Time requiredy = x; fetch + storey = 1; fetch + storey = y + 1; 2 fetch + + + storey += 1; 2 fetch + + + store++y; 2 fetch + + + storey++; 2 fetch + + + store
Detailed Model 4 counting operations-3
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Analysis of Algorithms 25
Dr. AlagozDetailed Model... Example1:Sum
...public static int sum(int n) {int result = 0;for (int i = 1; i <= n; ++i){result += i;}return result;}...
Statement Time requiredint result = 0; fetch + storeint i = 1 fetch + storei <= n (2fetch + < ) (n+1)++i (2fetch + + + store)
nresult += i (2fetch + + + store)
nreturn result fetch + return
n
i
i1
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Detailed Model... Example2 (*)y = a [i]3fetch + [.] + store
operations fetch a (the base address of the array) fetch i (the index into the array) address calculation fetch array element a[i] store the result
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Analysis of Algorithms 27
Dr. AlagozDetailed Model...Example3: Horner (*)
public class Horner {
public static void main(String[] args) {Horner h = new Horner();int[] a = { 1, 3, 5 };System.out.println("a(1)=" + h.horner(a, a.length - 1,
1));System.out.println("a(2)=" + h.horner(a, a.length - 1,
2));}
int horner(int[] a, int n, int x) {int result = a[n];for (int i = n - 1; i >= 0; --i) {
result = result * x + a[i];/**/System.out.println("i=" + i + " result" +
result);}return result;
}}
i=1 result8i=0 result9a(1)=9i=1 result13i=0 result27a(2)=27
outputoutput
in
ii xa
0
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Detailed Model...Example-4 (*)public class FindMaximum {
public static void main(String[] args) {FindMaximum h = new FindMaximum();int[] a = { 1, 3, 5 };System.out.println("max=" + h.findMaximum(a));
}
int findMaximum(int[] a) {int result = a[0];for (int i = 0; i < a.length; ++i) {
if (result < a[i]) {result = a[i];
}System.out.println("i=" + i + " result=" + result);
}return result;
}} i=0 result=1
i=1 result=3i=2 result=5max=5
outputoutput
3fetch + [.] + store
fetch + store(2fetch + <) n(2fetch + + + store) (n-1)
(4fetch + [.] + <) (n-1)
(3fetch + [.] + store) ?
fetch + store
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Simplified Model … More Simplification
All timing parameters are expressed in units of clock cycles. In effect, T=1. The proportionality constant, k, for all timing parameters is assumed to be the same: k=1.
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Simplified Model …Example_FindMax public class FindMaximum {
public static void main(String[] args) {FindMaximum h = new FindMaximum();int[] a = { 1, 3, 5 };System.out.println("max=" + h.findMaximum(a));
}
int findMaximum(int[] a) {int result = a[0];for (int i = 0; i < a.length; ++i) {
if (result < a[i]) {result = a[i];
}System.out.println("i=" + i + " result=" + result);
}return result;
}} i=0 result=1
i=1 result=3i=2 result=5max=5
outout
detailed2 3fetch + [.] + store
3a fetch + store3b (2fetch + <) n3c (2fetch + + + store) (n-1)
4 (4fetch + [.] + <) (n-1)
6 (3fetch + [.] + store) ?
9 fetch + store
simple2 5
3a 23b (3)n3c (4)(n-1)
4 (6)(n-1)
6 (5)?
9 2
12345678910
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Analysis of Algorithms 31
Dr. AlagozSimplified Model > Algorithm1…Geometric Series Sum
public class GeometrikSeriesSum {
public static void main(String[] args) {System.out.println("1, 4: " + geometricSeriesSum(1, 4));System.out.println("2, 4: " + geometricSeriesSum(2, 4));
}
public static int geometricSeriesSum(int x, int n) {int sum = 0;for (int i = 0; i <= n; ++i) {
int prod = 1;for (int j = 0; j < i; ++j) {
prod *= x;}sum += prod;
}return sum;
}} 1, 4: 5
2, 4: 31
outputoutput
simple12 23a 23b 3(n+2)3c 4(n+1)4 2(n+1)5a 2(n+1)5b 3 (i+1)5c 4 i6 4 i78 4(n+1)910 21112
Total 11/2 n2 + 47/2 n +27
123456789101112
n
i 0
n
i 0
n
i 0
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Analysis of Algorithms 32
Dr. AlagozSimplified Model > Algorithm_SumHornerGeometric Series Sum …
public class GeometrikSeriesSumHorner {
public static void main(String[] args) {System.out.println("1, 4: " + geometricSeriesSum(1, 4));System.out.println("2, 4: " + geometricSeriesSum(2, 4));
}
public static int geometricSeriesSum(int x, int n) {int sum = 0;for (int i = 0; i <= n; ++i) {
sum = sum * x + 1;}return sum;
}}
1, 4: 52, 4: 31
outputoutput
2 23a 23b 3(n+2)3c 4(n+1)4 6(n+1)6 2
Total 13 n + 22
1234567
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Analysis of Algorithms 33
Dr. AlagozSimplified Model > Algorithm_SumPower Geometric Series Sum …
public class GeometrikSeriesSumPower {
public static void main(String[] args) { System.out.println("1, 4: " + powerA(1, 4)); System.out.println("1, 4: " + powerB(1, 4)); System.out.println("2, 4: " + powerA(2, 4)); System.out.println("2, 4: " + powerB(2, 4));
}
...public static int powerA(int x, int n) {int result = 1;for (int i = 1; i <= n; ++i) {result *= x;}return result;}
public static int powerB(int x, int n) {if (n == 0) {return 1;} else if (n % 2 == 0) { // n is evenreturn powerB(x * x, n / 2);} else { // n is oddreturn x * powerB(x * x, n / 2);}}
}
1, 4: 11, 4: 12, 4: 162, 4: 16
outputoutput
powerB 0<n 0<n n=0 n even n odd
10 3 3 311 2 - -12 - 5 513 - 10+T(n/2) -15 - - 12+T(n/2)
Total 5 18+T(n/2) 20+T(n/2)
1234567891011121314151617
powerB 1 n=0
xn = (x2)n/2 0<n, n is even x(x2)n/2 0<n, n is odd
powerB 5 n=0
xn = 18+T(n/2) 0<n, n is even 20+T(n/2) 0<n, n is odd
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Analysis of Algorithms 34
Dr. AlagozSimplified Model > Calculation of PowerB …Geometric Series Sum … (*)
Let n = 2k for some k>0.Since n is even, n/2 = n/2 = 2k-1.
For n = 2k, T(2k) = 18 + T(2k-1).
Using repeated substitutionT(2k) = 18 + T(2k-1)
= 18 + 18 + T(2k-2) = 18 + 18 + 18 + T(2k-3) …= 18j + T(2k-j)
Substitution stops when k = jT(2k) = 18k + T(1)
= 18k + 20 + T(0)= 18k + 20 + 5= 18k + 25.
n = 2k then k = log2 n
T(2k) = 18 log2 n + 25
powerBxn = 18+T(n/2) 0<n
n is even
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Suppose n = 2k–1 for some k>0.Since n is odd, n/2 = (2k–1)/2 = (2k–2)/2= 2k-1
For n = 2k-1, T(2k-1) = 20 + T(2k-1-1), k>1.
Using repeated substitutionT(2k-1) = 20 + T(2k-1-1)
= 20 + 20 + T(2k-2-1) = 20 + 20 + 20 + T(2k-3-1) …= 20j + T(2k-j-1)
Substitution stops when k = jT(2k-1) = 20k + T(20-1)
= 20k + T(0)= 20k + 5.
n = 2k-1 then k = log2 (n+1)
T(n) = 20 log2 (n+1) + 5
Therefore, powerB 5 n=0
xn = 18+T(n/2) 0<n, n is even 20+T(n/2) 0<n, n is odd
Average: 19(log2(n+1) + 1) + 18
Simplified Model > Calculation of PowerB Geometric Series Sum … (*)
n is odd
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public class GeometrikSeriesSumPower {
public static void main(String[] args) {System.out.println(“s 2, 4: " + geometrikSeriesSumPower
(2, 4));}
...public static int geometrikSeriesSumPower (int x, int n) {
return powerB(x, n + 1) – 1 / (x - 1);}
public static int powerB(int x, int n) {if (n == 0) {
return 1;} else if (n % 2 == 0) { // n is even
return powerB(x * x, n / 2);} else { // n is odd
return x * powerB(x * x, n / 2);}
}}
s 2, 4: 31
outputoutput
Simplified Model > Algorithm_SumPower Geometric Series Sum …
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Analysis of Algorithms 37
Dr. AlagozComparison of 3 Algorithms
algorithm T(n) Sum 11/2 n2 + 47/2 n + 27Horner 13n + 22Power 19(log2(n+1) + 1) + 18
sum
Horner
Power
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Analysis of Algorithms 38
Dr. AlagozCounting Primitive Operations for
Pseudocodes By inspecting the pseudocode, we can determine the maximum number of primitive operations executed by an algorithm, as a function of the input size
Algorithm arrayMax(A, n)
# operations
currentMax A[0] 2for i 1 to n 1 do 2n
if A[i] currentMax then 2(n 1)currentMax A[i] 2(n 1)
{ increment counter i } 2(n 1)return currentMax 1
Total 8n 2
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Estimating Running TimeAlgorithm arrayMax executes 8n 2 primitive operations in the worst case. Define:a = Time taken by the fastest primitive operationb = Time taken by the slowest primitive
operationLet T(n) be worst-case time of arrayMax. Then
a (8n 2) T(n) b(8n 2)Hence, the running time T(n) is bounded by two linear functions
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Analysis of Algorithms 40
Dr. AlagozAsymptotic Algorithm Analysis
The asymptotic analysis of an algorithm determines the running time in big-Oh notationTo perform the asymptotic analysis
We find the worst-case number of primitive operations executed as a function of the input size
We express this function with big-Oh notationExample:
We determine that algorithm arrayMax executes at most 8n 2 primitive operations
We say that algorithm arrayMax “runs in O(n) time”Since constant factors and lower-order terms are eventually dropped anyhow, we can disregard them when counting primitive operations
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Dr. AlagozGrowth Rate of Running Time
Changing the hardware/ software environment Affects T(n) by a constant factor, but Does not alter the growth rate of T(n)
The linear growth rate of the running time T(n) is an intrinsic property of algorithm arrayMax
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Constant Factors
The growth rate is not affected by
constant factors or
lower-order termsExamples
102n 105 is a linear function
105n2 108n is a quadratic function 1E+0
1E+21E+41E+61E+8
1E+101E+121E+141E+161E+181E+201E+221E+241E+26
1E+0 1E+2 1E+4 1E+6 1E+8 1E+10n
T(n
)
QuadraticQuadraticLinearLinear
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Big-Oh Notation Given functions f(n) and g(n), we say that f(n) is O(g(n)) if there are positive constantsc and n0 such thatf(n) cg(n) for n n0
Example: 2n 10 is O(n) 2n 10 cn (c 2) n 10 n 10(c 2) Pick c 3 and n0 10
1
10
100
1.000
10.000
1 10 100 1.000n
3n
2n+10
n
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Big-Oh ExampleExample: the function n2 is not O(n)
n2 cn n c The above
inequality cannot be satisfied since c must be a constant
1
10
100
1.000
10.000
100.000
1.000.000
1 10 100 1.000n
n 2̂100n10nn
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Dr. AlagozMore Big-Oh Examples
7n-27n-2 is O(n)need c > 0 and n0 1 such that 7n-2 c•n for n n0
this is true for c = 7 and n0 = 1 3n3 + 20n2 + 5
3n3 + 20n2 + 5 is O(n3)need c > 0 and n0 1 such that 3n3 + 20n2 + 5 c•n3 for n
n0
this is true for c = 4 and n0 = 21 3 log n + 53 log n + 5 is O(log n)need c > 0 and n0 1 such that 3 log n + 5 c•log n for n
n0
this is true for c = 8 and n0 = 2
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Big-Oh and Growth RateThe big-Oh notation gives an upper bound on the growth rate of a functionThe statement “f(n) is O(g(n))” means that the growth rate of f(n) is no more than the growth rate of g(n)We can use the big-Oh notation to rank functions according to their growth rate
f(n) is O(g(n)) g(n) is O(f(n))g(n) grows more
Yes No
f(n) grows more No YesSame growth Yes Yes
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More Example
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Example
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Big-Oh Rules
Use the smallest possible class of functions Say “2n is O(n)” instead of “2n is O(n2)”
Use the simplest expression of the class Say “3n 5 is O(n)” instead of “3n 5 is
O(3n)”
TheoremConsider polynomial where am>0.
Then f(n) = O(nm). i.e.,1. Drop lower-order terms2. Drop constant factors
m
i
iinanf
0
)(
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Big-Oh Rules-2 logk n = O(n) for any constant kZ+f(n) = O (f(n))c O(f(n)) = O (f(n))O(f(n)) + O(f(n)) = O(f(n))O(O(f(n))) = O(f(n))O(f(n)) O(g(n)) = O(f(n) g(n))
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Relatives of Big-Ohbig-Omega f(n) is (g(n)) if there is a constant c > 0
and an integer constant n0 1 such that f(n) c•g(n) for n n0
big-Theta f(n) is (g(n)) if there are constants c’ > 0
and c’’ > 0 and an integer constant n0 1 such that c’•g(n) f(n) c’’•g(n) for n n0
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Analysis of Algorithms 52
Dr. AlagozIntuition for Asymptotic Notation
Big-Oh f(n) is O(g(n)) if f(n) is
asymptotically less than or equal to g(n)
big-Omega f(n) is (g(n)) if f(n) is
asymptotically greater than or equal to g(n)
big-Theta f(n) is (g(n)) if f(n) is
asymptotically equal to g(n)
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Analysis of Algorithms 53
Dr. AlagozExample Uses of the Relatives of Big-Oh
f(n) is (g(n)) if it is (n2) and O(n2). We have already seen the former, for the latter recall that f(n) is O(g(n)) if there is a constant c > 0 and an integer constant n0 1 such that f(n) < c•g(n) for n n0
Let c = 5 and n0 = 1
5n2 is (n2)
f(n) is (g(n)) if there is a constant c > 0 and an integer constant n0 1 such that f(n) c•g(n) for n n0
let c = 1 and n0 = 1
5n2 is (n)
f(n) is (g(n)) if there is a constant c > 0 and an integer constant n0 1 such that f(n) c•g(n) for n n0
let c = 5 and n0 = 1
5n2 is (n2)
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Comparison of OrdersO(1) < O(log n) < O(n) < O(n log n) < O(n2) < O(n3) <
O(2n)
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O(log n)
Comparison of OrdersO(1) < O(log n) < O(n) < O(n log n) < O(n2) < O(n3) <
O(2n)
O(1)
O(2n)O(n3)
O(n2)O(n log n)
O(n)
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Analysis of Algorithms 56
Dr. AlagozO(n) Analysis of Running Time Example
Worst-case running time if statement 5 executes all the time…
Best-case running time if statement 5 never executes…
On-the-average running time if statement 5 executes half of the time????
int findMaximum(int[] a) {int result = a[0];for (int i = 1; i < a.length; ++i) {
if (result < a[i]) {result = a[i];
}}return result;
}
123456789
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Analysis of Algorithms 57
Dr. AlagozAlgorithm Complexity as a function of size n
Problem Input of size n Basic operationSearching a listSorting a list Multiplying two matrices Prime factorizationEvaluating a polynomialTraversing a treeTowers of Hanoi
lists with n elementslists with n elementstwo n-by-n matricesn-digit numberpolynomial of degrees ntree with n nodesn disks
comparison comparisonmultiplicationdivisionmultiplicationaccessing a nodemoving a disk
A comparison-based algorithm for searching or sorting a list isbased on •making comparisons involving list elements •then making decisions based on these comparisons.
• SOON U ll know all about these!!!
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HWLA Solve Exercises in Chapter2 : 1, 7, 9 ,12, 25,
29, 31
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Analysis of Algorithms 59
Dr. AlagozComputing Prefix Averages(*)
We further illustrate asymptotic analysis with two algorithms for prefix averagesThe i-th prefix average of an array X is average of the first (i 1) elements of X:
A[i] X[0] X[1] … X[i])/(i+1)
Computing the array A of prefix averages of another array X has applications to financial analysis such as ARMA, ARIMA, FARIMA, models.
0
5
10
15
20
25
30
35
1 2 3 4 5 6 7
XA
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Analysis of Algorithms 60
Dr. AlagozPrefix Averages (Quadratic) (*)
The following algorithm computes prefix averages in quadratic time by applying the definition
Algorithm prefixAverages1(X, n)Input array X of n integersOutput array A of prefix averages of X #operations A new array of n integers nfor i 0 to n 1 do ns X[0] nfor j 1 to i do 1 2 … (n 1)s s X[j] 1 2 … (n 1)A[i] s (i 1) nreturn A 1
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Arithmetic Progression (*)
The running time of prefixAverages1 isO(1 2 …n)The sum of the first n integers is n(n 1) 2
There is a simple visual proof of this fact
Thus, algorithm prefixAverages1 runs in O(n2) time 0
1
2
3
4
5
6
7
1 2 3 4 5 6
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Analysis of Algorithms 62
Dr. AlagozPrefix Averages (Linear) (*)
The following algorithm computes prefix averages in linear time by keeping a running sumAlgorithm prefixAverages2(X, n)
Input array X of n integersOutput array A of prefix averages of X #operationsA new array of n integers ns 0 1for i 0 to n 1 do ns s X[i] nA[i] s (i 1) nreturn A 1
Algorithm prefixAverages2 runs in O(n) time
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Analysis of Algorithms 63
Dr. AlagozThe Random Access Machine (RAM) Model (*)
A CPU
A potentially unbounded bank of memory cells, each of which can hold an arbitrary number or character
01
2
Memory cells are numbered and accessing any cell in memory takes unit time.
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Quiz-1
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Quiz-1 Solution
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Quiz-2
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Quiz-2 Solution