1 / 57

Huffman Trees and ID3

CS157B Lecture 19. Huffman Trees and ID3. Prof. Sin-Min Lee Department of Computer Science.

lynne
Download Presentation

Huffman Trees and ID3

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. CS157B Lecture 19 Huffman Trees and ID3 Prof. Sin-Min Lee Department of Computer Science

  2. Huffman coding is an algorithm used for lossless data compression developed by David A. Huffman as a PhD student at MIT in 1952, and published in A Method for the Construction of Minimum-Redundancy Codes. "Huffman Codes" are widely used applications that involve the compression and transmission of digital data, such as: fax machines, modems, computer networks, and high-definition television (HDTV), etc. Professor David A. Huffman (August 9, 1925 - October 7, 1999)

  3. Motivation The motivations for data compression are obvious: • reducing the space required to store files on disk or tape • reducing the time to transmit large files. Image Source : plus.maths.org/issue23/ features/data/data.jpg Huffman savings are between 20% - 90%

  4. Basic Idea : It uses a variable-length code table for encoding a source symbol (such as a character in a file) where the variable-length code table has been derived in a particular way based on the frequency of occurrence for each possible value of the source symbol.

  5. Example: Suppose you have a file with 100K characters. For simplicity assume that there are only 6 distinct characters in the file from a through f, with frequencies as indicated below. We represent the file using a unique binary string for each character. Space = (45*3 + 13*3 + 12*3 + 16*3 + 9*3 + 5*3) * 1000 = 300K bits

  6. Can we do better ?? YES !! By using variable-length codes instead of fixed-length codes. Idea : Giving frequent characters short codewords, and infrequent characters long codewords. i.e. The length of the encoded character is inversely proportional to that character's frequency. Space = (45*1 + 13*3 + 12*3 + 16*3 + 9*4 + 5*4) * 1000 = 224K bits ( Savings = 25%)

  7. PREFIX CODES : Codes in which no codeword is also a prefix of some other codeword. ("prefix-free codes" would have been a more appropriate name) It is very easy to encode and decode using prefix codes. No Ambiguity !! It is possible to show (although we won't do so here) that the optimal data compression achievable by a character code can always be achieved with a prefix code, so there is no loss of generality in restricting attention to prefix codes.

  8. Benefits of using Prefix Codes: Example: F A C E Encoded as 1100 0 100 1101 = 110001001101 To decode, we have to decide where each code begins and ends, since they are no longer all the same length. But this is easy, since, no codes share a prefix. This means we need only scan the input string from left to right, and as soon as we recognize a code, we can print the corresponding character and start looking for the next code. In the above case, the only code that begins with “1100.." or a prefix is “f", so we can print “f" and start decoding “0100...", get “a", etc.

  9. Benefits of using Prefix Codes: Example: To see why the no-common prefix property is essential, suppose that we encoded “e" with the shorter code “110“ FACE = 11000100110 When we try to decode “1100"; we could not tell whether 1100 = 110 0 = “f" or 1100 = 110 + 0 = “ea"

  10. Representation: • The Huffman algorithm is represented as: • binary tree • each edge represents either 0 or 1 • 0 means "go to the left child" • 1 means "go to the right child." • each leaf corresponds to the sequence of 0s and 1s traversed from the root to reach it, i.e. a particular code. • Since no prefix is shared, all legal codes are at the leaves, and decoding a string means following edges, according to the sequence of 0s and 1s in the string, until a leaf is reached.

  11. 100 86 14 14 58 28 100 c:12 d:16 e:9 f:5 b:13 a:45 a:45 55 25 30 c:12 b:13 14 d:16 f:5 e:9 0 1 0 1 0 0 1 1 0 0 1 1 0 1 0 1 0 1 0 0 1 Labeling : leaf -> character it represents : frequency with which it appears in the text. internal node -> frequency with which all leaf nodes under it appear in the text (i.e. the sum of their frequencies). 1

  12. 100 86 14 14 58 28 100 c:12 d:16 e:9 f:5 b:13 a:45 a:45 55 25 30 c:12 b:13 14 d:16 f:5 e:9 0ptimal Code 0 1 0 1 0 0 1 1 0 0 1 1 0 1 0 1 0 1 0 0 1 An optimal code for a file is always represented by a full binary tree, in which every non-leaf node has two children. The fixed-length code in our example is not optimal since its tree, is not a full binary tree: there are codewords beginning 10 . . . , but none beginning 11 .. Since we can now restrict our attention to full binary trees, we can say that if C is the alphabet from which the characters are drawn, then the tree for an optimal prefix code has exactly |C| leaves, one for each letter of the alphabet, and exactly |C| - 1 internal nodes.

  13. Given a tree T corresponding to a prefix code, it is a simple matter to compute the number of bits required to encode a file. • For each character c in the alphabet C, • f(c) denote the frequency of c in the file • dT(c) denote the depth of c's leaf in the tree. • (dT(c) is also the length of the codeword for character c) • The number of bits required to encode a file is thus • B(T) = S f(c)dT(c) c C Which we define as the cost of the tree.

  14. Constructing a Huffman code Huffman invented a greedy algorithm that constructs an optimal prefix code called a Huffman code. The algorithm builds the tree T corresponding to the optimal code in a bottom-up manner. It begins with a set of |C| leaves and performs a sequence of |C| - 1 "merging" operations to create the final tree. Greedy Choice? The two smallest nodes are chosen at each step, and this local decision results in a globally optimal encoding tree. In general, greedy algorithms use small-grained, or local minimal/maximal choices to result in a global minimum/maximum

  15. HUFFMAN(C) 1 n |C| 2 QC 3 for i 1 ton - 1 4 do ALLOCATE-NODE(z) 5 left[z] x EXTRACT-MIN(Q) 6 right[z] y EXTRACT-MIN(Q) 7 f[z] f[x] + f[y] 8 INSERT(Q, z) 9 returnEXTRACT-MIN(Q) C is a set of n characters and that each character cC is an object with a defined frequency f[c]. A min-priority queueQ, keyed on f, is used to identify the two least-frequent objects to merge together. The result of the merger of two objects is a new object whose frequency is the sum of the frequencies of the two objects that were merged.

  16. For our example, Huffman's algorithm proceeds as shown. 1 n |C| 2 QC Line 1 sets the initial queue size, n = 6 (letters in the alphabet) Line 2 initializes the priority queue Q with the characters in C. (a through f) 3 for i 1 ton - 1 4 do ALLOCATE-NODE(z) 5 left[z] x EXTRACT-MIN(Q) 6 right[z] y EXTRACT-MIN(Q) 7 f[z] f[x] + f[y] 8 INSERT(Q, z) The for loop uses n - 1 (6 - 1 = 5) merge steps to build the tree. It repeatedly extracts the two nodes x and y of lowest frequency from the queue, and replaces them in the queue with a new node z representing their merger. The frequency of z is computed as the sum of the frequencies of x and y in line 7. The node z has x as its left child and y as its right child. 9 returnEXTRACT-MIN(Q) After mergers, the one node left in the queue -- the root -- is returned in line 9. The final tree represents the optimal prefix code. The codeword for a letter is the sequence of edge labels on the path from the root to the letter.

  17. 14 f:5 e:9 c:12 b:13 d:16 a:45 c:12 b:13 d:16 a:45 1 0 f:5 e:9 14 d:16 25 30 a:45 25 a:45 0 1 1 0 0 1 0 1 d:16 c:12 b:13 14 f:5 e:9 c:12 b:13 1 0 f:5 e:9 55 a:45 100 1 0 0 1 55 a:45 30 25 0 1 0 1 0 1 30 25 d:16 14 c:12 b:13 0 1 0 1 0 1 d:16 14 c:12 b:13 f:5 e:9 0 1 f:5 e:9 The steps of Huffman's algorithm

  18. Running Time Analysis The analysis of the running time of Huffman's algorithm assumes that Q is implemented as a binary min-heap. • For a set C of n characters, the initialization of Q in line 2 can be performed in O(n) time using the BUILD-MIN-HEAP procedure. • The for loop in lines 3-8 is executed exactly |n| - 1 times. Each heap operation requires time O(log n). The loop contributes = (|n| - 1) * O(log n) = O(nlog n) Thus, the total running time of HUFFMAN on a set of n characters = O(n) + O(nlog n) = O(n log n)

  19. Correctness of Huffman's algorithm To prove that the greedy algorithm HUFFMAN is correct, we show that the problem of determining an optimal prefix code exhibits the greedy-choice and optimal-substructure properties.

  20. Lemma that shows that the greedy-choice property holds. Lemma : Let C be an alphabet in which each character cC has frequency f[c]. Let x and y be two characters in C having the lowest frequencies. Then there exists an optimal prefix code for C in which the codewords for x and y have the same length and differ only in the last bit. Why ? Must be on the bottom (least frequent) Full tree, so they must be siblings, and so differ in one bit. Proof: The idea of the proof is to take the tree T representing an arbitrary optimal prefix code and modify it to make a tree representing another optimal prefix code such that the characters x and y appear as sibling leaves of maximum depth in the new tree. If we can do this, then their codewords will have the same length and differ only in the last bit.

  21. x a y y a x b b Proof T’ T Let a and b be two characters that are are sibling leaves of maximum depth in T. Without loss in generality, assume that f[a] < f[b] and f[x] < f[y] Since f[x] and f[y] are the two lowest frequencies in that order, and f[a] and f[b] are two arbitrary frequencies in that order, we have f[x] < f[a] and f[y] < f[b]. Exchange the positions of a and x in T, to produce T’. The difference in cost between T and T’ is B(T) – B(T’) = S f(c) dT(c) - S f(c) dT’(c) = f[x] dT(x) + f[a] dT(a) - f[x] dT’(x) - f[a] dT’(a) = f[x] dT(x) + f[a] dT(a) - f[x] dT(a) - f[a] dT(x) = (f[a] - f[x]) (dT(a) - dT(x)) 0 (cost is not increased)

  22. x a a y y b x x a b b y Proof T’ T T’’ Similarly exchanging the positions of b and y in T’, to produce T’’ does not increase the cost, B(T’) – B(T’’) is non-negative. Therefore B(T’’) B(T), and since T is optimal, B(T) B(T’’), => B(T’’) = B(T) Thus, T’’ is an optimal tree in which x & y appear as sibling leaves of maximum depth from which the lemma follows.

  23. Lemma that shows that the optimal substructure property holds. Lemma : Let C be a given alphabet with frequency f[c] defined for each character cC . Let x and y be two characters in C with minimum frequency. Let C’ be the alphabet C with characters x,y removed and (new) character z added, so that C’ = C – {x,y} U {z}; define f for C’ as for C, except that f[z] = f[x] + f[y]. Let T’ be any tree representing an optimal prefix code for the alphabet C’. Then the tree T, obtained from T’ by replacing the leaf node for z with an internal node having x and y as children, represents an optimal prefix code for the alphabet C. Î • Proof: • We first express B (T) in terms of B (T') • cC – {x,y} we have dT(c) = dT’(c), and hence f[c]dT(c) = f[c]dT’ (c)’ Î

  24. Since dT(x) = dT(y) = dT’(z) + 1, we have f[x]dT(x) + f[y]dT(y) = (f[x] + f[y]) (dT'(z) + 1 ) = f(z)dT'(z) + (f[x] + f[y]) From which we conclude that B(T) = B(T’) + (f[x] + f[y]) B(T’) = B(T) - (f[x] - f[y]) Proof by contradiction Suppose that T does not represent an optimal prefix code for C. Then there exists a tree T’’ such that B(T’’) < B(T). Without loss in generality (by the previous lemma) T’’ has x & y as siblings. Let T’’’ be the tree T’’ with the common parent of x & y replaced by a leaf z with frequency f[z] = f[x] + f[y]. Then, B(T’’’) = B(T’’) - (f[x] – f[y]) < B(T) - (f[x] - f[y]) = B(T’) Yielding a contradiction to the assumption that T’ represents an optimal prefix code for C’. Thus, T must represent an optimal prefix code for the alphabet C.

  25. Drawbacks • The main disadvantage of Huffman’s method is that it makes two passes over the data: • one pass to collect frequency counts of the letters in the message, followed by the construction of a Huffman tree and transmission of the tree to the receiver; and • a second pass to encode and transmit the letters themselves, based on the static tree structure. • This causes delay when used for network communication, and in file compression applications the extra disk accesses can slow down the algorithm. We need one-pass methods, in which letters are encoded “on the fly”.

  26. ID3 algorithm • To get the fastest decision-making procedure, one has to arrange attributes in a decision tree in a proper order - the most discriminating attributes first. This is done by the algorithm called ID3. • The most discriminating attribute can be defined in precise terms as the attribute for which the fixing its value changes the enthropy of possible decisions at most. Let wj be the frequency of the j-th decision in a set of examples x. Then the enthropy of the set is • E(x)= - Swj* log(wj) • Let fix(x,a,v) denote the set of these elements of x whose value of attribute a is v. The average enthropy that remains in x , after the value a has been fixed, is: • H(x,a) = S kv E(fix(x,a,v)), • where kv is the ratio of examples in x with attribute a having value v.

  27. Ok now we want a quantitative way of seeing the effect of splitting the dataset by using a particular attribute (which is part of the tree building process). We can use a measure called Information Gain, which calculates the reduction in entropy (Gain in information) that would result on splitting the data on an attribute, A. where v is a value of A, |Sv| is the subset of instances of S where A takes the value v, and |S| is the number of instances

  28. Continuing with our example dataset, let's name it S just for convenience, let's work out the Information Gain that splitting on the attribute District would result in over the entire dataset: • So by calculating this value for each attribute that remains, we can see which attribute splits the data more purely. Let's imagine we want to select an attribute for the root node, then performing the above calcualtion for all attributes gives: • Gain(S,House Type) = 0.049 bits • Gain(S,Income) =0.151 bits • Gain(S,Previous Customer) = 0.048 bits

  29. We can clearly see that District results in the highest reduction in entropy or the highest information gain. We would therefore choose this at the root node splitting the data up into subsets corresponding to all the different values for the District attribute. With this node evaluation technique we can procede recursively through the subsets we create until leaf nodes have been reached throughout and all subsets are pure with zero entropy. This is exactly how ID3 and other variants work.

  30. Example 1 If S is a collection of 14 examples with 9 YES and 5 NO examples then Entropy(S) = - (9/14) Log2 (9/14) - (5/14) Log2 (5/14) = 0.940 Notice entropy is 0 if all members of S belong to the same class (the data is perfectly classified). The range of entropy is 0 ("perfectly classified") to 1 ("totally random"). Gain(S, A) is information gain of example set S on attribute A is defined as Gain(S, A) = Entropy(S) - S ((|Sv| / |S|) * Entropy(Sv)) Where: S is each value v of all possible values of attribute A Sv = subset of S for which attribute A has value v |Sv| = number of elements in Sv |S| = number of elements in S

  31. Example 2. Suppose S is a set of 14 examples in which one of the attributes is wind speed. The values of Wind can be Weak or Strong. The classification of these 14 examples are 9 YES and 5 NO. For attribute Wind, suppose there are 8 occurrences of Wind = Weak and 6 occurrences of Wind = Strong. For Wind = Weak, 6 of the examples are YES and 2 are NO. For Wind = Strong, 3 are YES and 3 are NO. Therefore Gain(S,Wind)=Entropy(S)-(8/14)*Entropy(Sweak)-(6/14)*Entropy(Sstrong) = 0.940 - (8/14)*0.811 - (6/14)*1.00 = 0.048 Entropy(Sweak) = - (6/8)*log2(6/8) - (2/8)*log2(2/8) = 0.811 Entropy(Sstrong) = - (3/6)*log2(3/6) - (3/6)*log2(3/6) = 1.00 For each attribute, the gain is calculated and the highest gain is used in the decision node.

  32. Decision Tree Construction Algorithm (pseudo-code): • Input: A data set, S Output: A decision tree • If all the instances have the same value for the target attribute then return a decision tree that is simply this value (not really a tree - more of a stump). • Else • Compute Gain values (see above) for all attributes and select an attribute with the lowest value and create a node for that attribute. • Make a branch from this node for every value of the attribute • Assign all possible values of the attribute to branches. • Follow each branch by partitioning the dataset to be only instances whereby the value of the branch is present and then go back to 1.

  33. Decision Tree Example

  34. Outlook sunny rain overcast Yes Humidity Windy high normal false true No Yes No Yes

  35. Which Attributes to Select?

  36. A Criterion for Attribute Selection Which is the best attribute? • The one which will result in the smallest tree • Heuristic: choose the attribute that produces the “purest” nodes Outlook overcast Yes

  37. Information gain: (information before split) – (information after split) • Information gain for attributes from weather data:

  38. Continuing to Split

  39. The Final Decision Tree Splitting stops when data can’t be split any further

  40. Entropy(4F,5M) = -(4/9)log2(4/9) - (5/9)log2(5/9) = 0.9911 no yes Hair Length <= 5? Let us try splitting on Hair length Entropy(3F,2M) = -(3/5)log2(3/5) - (2/5)log2(2/5) = 0.9710 Entropy(1F,3M) = -(1/4)log2(1/4) - (3/4)log2(3/4) = 0.8113 Gain(Hair Length <= 5) = 0.9911 – (4/9 * 0.8113 + 5/9 * 0.9710 ) = 0.0911

More Related