Post on 26-Dec-2015
Dynamic Programming
Part One
Dynamic Programming
Part One
HKOI Training Team 2004
2
Recurrences
• Function defined in terms of itself– M(X) = X * M(X-1)
– Fn+2 = Fn+1 + Fn
– Kn+1 = max{Kn-1+100, Kn}
• One or more base cases are needed– M(0) = 1
– F0 = 1, F1 = 1
– K10 = 100, K11 = 177
3
Evaluating recurrences
• Combination– C(n, r) = C(n-1, r) + C(n-1, r-1)– C(n, 0) = C(n, n) = 1
• Algorithm:function C(n, r)
if (r=0) or (r=n)return 1
elsereturn C(n-1, r) + C(n-1, r-1)
4
Slow...
C(4, 2)
C(3, 2) C(3, 1)
C(2, 2) C(2, 1) C(2, 0)
C(1, 1) C(1, 0)
C(2, 1)
C(1, 1) C(1, 0)
C(5, 2)
C(4, 1)
C(3, 1) C(3, 0)
C(2, 0)C(2, 1)
C(1, 1) C(1, 0)
5
A table...
C(5, 2)
C(4, 2) C(4, 1)
C(3, 2) C(3, 1) C(3, 0)
C(2, 2) C(2, 1) C(2, 0)
C(1, 1) C(1, 0)
6
Redundant calculations
C(4, 2)
C(3, 2) C(3, 1)
C(2, 2) C(2, 1) C(2, 0)
C(1, 1) C(1, 0)
C(2, 1)
C(1, 1) C(1, 0)
C(5, 2)
C(4, 1)
C(3, 1) C(3, 0)
C(2, 0)C(2, 1)
C(1, 1) C(1, 0)
C(2, 1)
C(1, 1) C(1, 0)
C(3, 1)
C(2, 0)C(2, 1)
C(1, 1) C(1, 0)
7
C(3, 1)
C(2, 0)C(2, 1)
C(1, 1) C(1, 0)
C(2, 1)
C(1, 1) C(1, 0)
Fast...
C(4, 2)
C(3, 2) C(3, 1)
C(2, 2) C(2, 1) C(2, 0)
C(1, 1) C(1, 0)
C(5, 2)
C(4, 1)
C(3, 0)
8
Dynamic programming
• Abbreviation: DP / DyP• Not particularly related to programming
– As in “Linear Programming”!
• An approach (paradigm) for solving certain kinds of problems– Not a particular algorithm
• Usually applied on recurrences
9
Principles of DP
• Evaluating recurrences may sometimes be slow (exponential time)
• Accelerate by avoiding redundant calculations!– Memorize previously calculated values
• Usually applied to problems with:– a recurrence relation– overlapping subproblems– solutions exhibiting optimal substructure
10
Why DP?
• Reduce runtime– In the previous computation of C(n, k),
how many times is the function invoked?• Slow algorithm: 2C(n,k) – 1 [exponential in n]• Fast algorithm: O(nk) [polynomial in n]
• Tradeoff – memory– In the C(n, k) problem, the memory
requirement is O(n) using pure recursion; O(nk) is required for memorization
• In fact, the O(nk) bound can be improved
11
Classification of problems
• Induction– Evaluation of a certain function is the main
concern– Examples:
• The N-th Fibonacci number• Number of different binary trees with N nodes
• Optimization– Maximization or minimization of certain
function is the objective– Examples:
• Shortest paths• Activity scheduling (maximize no. of activities)
12
Triangle (IOI ’94)
• Given a triangle with N levels like the one on the left, find a path with maximum sum from the top to the bottom
• Only the sum is required
7
6 9
8 1 4
2 4 5 3
13
Triangle (analysis)
• Exhaustion? – How many paths are there in total?
• Greedy?– It doesn’t work. Why?
• Graph problem?– Possible, but not simple enough
14
Triangle (formulation)
• Let A[i][j] denote the number in the i-th row and j-th column, (i, j)
• Let F[i][j] denote the sum of the numbers on a path with max sum from (1, 1) to (i, j)
• Answer = maximum of F[N][1], F[N][2], …, F[N][N]
15
Triangle (formulation)
• Base case: F[1][1] = A[1][1]• Progress: (i > 1, 1 < j < i)
– F[i][1] = F[i-1][1]+A[i][1]– F[i][i] = F[i-1][i-1]+A[i][i]– F[i][j] = max{F[i-1][j-1],F[i-1][j]}+A[i][j]
i-1, j-1 i-1, j
i, j
16
Triangle (order of calc.)
• F[i][*] depends on F[i-1][*]• Compute F row by row, from top to
bottom
17
Triangle (algorithm)
• Algorithm:– F[1][1] A[1][1];
for i 2 to N doF[i][1] = F[i-1][1]+A[i][1];F[i][i] = F[i-1][i-1]+A[i][i];for j 2 to i-1 do
F[i][j] max{F[i][j],F[i][j-1]} + A[i][j]
answer max{F[N][1], …, F[N][N]}
18
Triangle (complexity)
• Number of array entries to be computed: about N(N-1)/2
• Time for computing one entry: O(1)• Thus the total time complexity is O(N2)• Memory complexity: O(N2)
– This can be reduced to O(N) since F[i][*] only depends on F[i-1][*]
– We can discard some previous entries after starting on a new row
19
Longest Common Subsequence
• Given two strings A and B of length n and m respectively, find their longest common subsequence (NOT substring)
• Example– A: aabcaabcaadyyyefg– B: cdfehgjaefazadxex– LCS: caaade– Explanation
• A: a a b c a a b c a a d y y y e f g• B: c d f e h g j a e f a z a d x e x
20
LCS (analysis)
• Exhaustion– Number of subsequences of A = 2n
– Number of subsequences of B = 2m
– Exponential time!
• Observation– If a LCS of A and B is nonempty then it
must have a last character (trivial)
A: a a b c a a b c a a d y y y e f g
B: c d f e h g j a e f a z a d x e x
21
LCS (analysis)
• Observation– Suppose the last LCS character
corresponds to A[i] and B[j]– Removing the last LCS character results in
a LCS of A[1..i-1] and B[1..j-1]
A: a a b c a a b c a a d y y y e f g
B: c d f e h g j a e f a z a d x e x
A: a a b c a a b c a a d y y y e f g
B: c d f e h g j a e f a z a d x e x
22
LCS (formulation)
• Thus it is reasonable to define F[i][j] as the length of any LCS of A[1..i] and B[1..j]
• Base cases:– F[i][0] = 0 for all i– F[0][j] = 0 for all j
• Progress: (0 < i <= n, 0 < j <= m)– F[i][j] = F[i-1][j-1] + 1 if A[i]=B[j]– F[i][j] = max{F[i-1][j], F[i][j-1]} else
23
LCS (order of calc.)
• F[i][j] depends on F[a][b], a ≤ i and b ≤ j• Order: from top to bottom, from left to right
– There are some other possible orders!
0 1 2 3 4
0
1
2
3
24
LCS (complexity)
• Time complexity: O(NM)• Memory complexity: O(NM)
– Again, this can be reduced to O(N+M), but why and how?
25
Coins
• Given an unlimited supply of $2, $3 and $5 coins, find the number of different ways to form a denomination of $N
• Example:– N = 10– {2, 2, 2, 2, 2}, {2, 2, 3, 3}, {2, 3, 5},
{5, 5}
• Solve this induction problem by yourself
26
Matrix Chain Multiplication
• A matrix is a rectangle of numbers
• The number of “usual” multiplications needed to multiply a n×m matrix and a m×r matrix is nmr
• Matrix multiplication is associative– (AB)C = A(BC)
2 7 920 4 -1
A matrix of size 2×3
27
Matrix Chain Multiplication
• Given a sequence of matrices A1, A2, …, An, find an order of multiplications such that the total number of “usual” multiplications is minimized
• Example:– A: 3×7, B: 7×5, C: 5×2– (AB)C takes 3×7×5+3×5×2 = 135 muls– A(BC) takes 7×5×2+3×7×2 = 112 muls
28
MCM (analysis)
• How many different orders of multiplications are there?– This can be solved by DP!
• Does greedy work?• Let’s have a look at the brackets
– (A((BC)((DE)F)))(G((HI)J))– There must be one last multiplication– (A((BC)((DE)F)))(G((HI)J))– Every subexpression with more than one
matrix has one last multiplication
29
MCM (analysis)
• Optimal substructure– If the last multiplication is (A1A2…Ai)(Ai+1…
AN) and the multiplication scheme is optimal, then the multiplication schemes for A1A2…Ai and Ai+1…AN must also be optimal
30
MCM (formulation)
• Let r[i] and c[i] be the number of rows and the number of columns of Ai respectively
• Let F[i][j] be the minimum number of “usual” multiplications required to compute AiAi+1…Aj
• Base case: F[i][i] = 0 for all i• Progress: for all i < j
F[i][j] = min{F[i][k]+F[k+1][j]+ r[i]*c[k]*c[j]}
i ≤ k < j
31
MCM (order of calc.)
• F with fewer matrices first
j, i 1 2 3 4 5 6
1
2
3
4
5
6
first
last
32
MCM (alternative)
• Let G[i][j] be the minimum number of “usual” multiplications required to compute AiAi+1…Ai+j-1
• Base case: G[i][1] = 0 for all i• Progress: for all 1 < j < N-i
G[i][j] = min{G[i][k]+G[i+k][j-k]+ r[i]*r[i+k]*c[i+j-1]}• Explain!!
1 ≤ k < j
33
MCM (alternative)
• Still, G with fewer matrices first
i, j 1 2 3 4 5 6
1
2
3
4
5
6 first
last
34
MCM (algorithm)
• Bottom-up algorithm (algorithm 2):for i 1 to N do
G[i][1] 0for j 2 to N do
for i 1 to N-j+1 G[i][j] min{G[i][k]
+G[i+k][j-k]+ r[i]*r[i+k]*c[i+j-1]}
answer G[1][N]
1 ≤ k < j
35
MCM algorithm)
• Top-down algorithm (algorithm 1):function MCM_DP(i, j)
if F[i][j] is not ∞, return F[i][j]m ∞for k i to j-1 do
m min{m, MCM_DP(i, k)+ MCM_DP(k+1, j)+ r[i]*c[k]*c[j]}
F[i][j] mreturn F[i][j]
36
MCM (algorithm)
• Top-down algorithm (main):initialize everything in F to ∞for i 1 to N do
F[i][i] 0answer MCM_DP(1, N)
37
MCM (complexity)
• Number of array entries to be computed: about N(N-1)/2
• Number of references to other entries when computing one single entry:– It varies– On the average, about N/2
• Thus the total time complexity is O(N3)
38
Fishing
• There are N fish ponds and you are going to spend M minutes on fishing
• Given the time-reward relationship of each pond, determine the time you should spend at each pond in order to get the biggest reward
time/pond 1 2 3
1 minute 0 fish 2 fish 1 fish
2 minutes 3 fish 2 fish 2 fish
3 minutes 3 fish 4 fish 4 fish
39
Fishing (example)
• For example, if N=3, M=3 and the relationships are given in the previous slide, then the optimal schedule is– Pond 1: 2 minutes– Pond 2: 1 minute– Pond 3: 0 minute– Reward: 5 fish
40
Fishing (analysis)
• You can think of yourself visiting ponds 1, 2, 3, …, N in order– Why?
• Suppose in an optimal schedule you spend K minutes on fishing at pond 1
• So you have M-K minutes to spend at the remaining N-1 ponds– The problem is reduced
• But how can I know what is K?– You don’t know, so try all possible values!
41
Fishing (formulation)
• Let F[i][j] be the maximum reward you can get by spending j minutes at the first i ponds
• Base cases: 0 ≤ i, j ≤ NF[i][0] = 0F[0][j] = 0
• Progress: 1 ≤ i ≤ N, 1 ≤ j ≤ MF[i][j] = max{F[i-1][k]+R[i][j-k]}
0 ≤ k ≤ j
42
Brackets
• A balanced-bracket expression (BBE) is defined as follows– The empty string is a BBE– If X and Y are BBEs then (X) and XY BBEs– Nothing else is a BBE
• For example, (), (()), ()(()())(()) are BBEs while ((), )(, (()()))()() are not BBEs
• Find the number of different BBEs with exactly N pairs of brackets
43
Brackets (analysis)
• Obviously this is an induction problem• Listing out all BBEs with N pairs of
brackets is not a good idea• What makes a bracket expression not
a BBE?– the numbers of opening and closing
brackets do not match– the number of closing brackets exceeds
the number of opening brackets at some point during a scan from left to right
44
Brackets (analysis)
• Clearly only the second rule matters in this problem
• Intuitively it is easy to construct a BBE from left to right
• We call a bracket expression a BBE-prefix (BP) if the number of closing brackets never exceeds the number of opening brackets during a scan from left to right
45
Brackets (formulation)
• Let F[i][j] be the number of BPs with i opening brackets and j closing brackets (thus of length i+j)
• Base cases:F[0][0] = 1F[i][j] = 0 for all 0 ≤ i < j ≤ N
• Progress: (0 < j ≤ i ≤ N)F[i][j] = F[i-1][j]+F[i][j-1]
46
Polygon Triangulation
• Given an N-sided convex polygon A, find a triangulation scheme with minimum total cut length
1
2
34
5
6
47
Polygon (analysis)
• Every edge of A belongs to exactly one triangle resulting from the triangulation 1
2
4
5
6
4
1
34
2• We get two (or one) smaller polygons after deleting a triangle
48
Polygon (analysis)
• The order of cutting does not matter• Optimal substructure
– If the cutting scheme for A is optimal, then the cutting schemes for B and C must also be optimal
A
B
C
49
Polygon (formulation)
• Take this problem as an exercise• A small hint: similar to Matrix Chain
Multiplication• Nothing more
50
Summary
• Remember, DP is just a technique, not a particular algorithm
• The problems we have discussed are quite straightforward that you should be able to know they can be solved by DP with little inspection
• The DP problems in NOI and IOI are much harder– They are well disguised
• Looking at a wide variety of DP problems seems to be the only way to master DP
51
Looking forward…
• Hopefully the trainer responsible for Advanced DP II will talk about DP on non-rectangular structures, such as trees and graphs
• The problems discussed will be more complicated than those you have just seen, so please be prepared
52
The end
LET’S HAVE LUNCH!!!
The last thing…