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I recently had an interview with Google for a Software Engineering position and the question asked regarded building a pattern matcher.

So you have to build the

boolean isPattern(String givenPattern, String stringToMatch)

Function that does the following:

givenPattern is a string that contains:

a) 'a'-'z' chars
b) '*' chars which can be matched by 0 or more letters
c) '?' which just matches to a character - any letter basically

So the call could be something like

isPattern("abc", "abcd") - returns false as it does not match the pattern ('d' is extra)

isPattern("a*bc", "aksakwjahwhajahbcdbc"), which is true as we have an 'a' at the start, many characters after and then it ends with "bc"

isPattern("a?bc", "adbc") returns true as each character of the pattern matches in the given string.

During the interview, time being short, I figured one could walk through the pattern, see if a character is a letter, a * or a ? and then match the characters in the given string respectively. But that ended up being a complicated set of for-loops and we didn't manage to come to a conclusion within the given 45 minutes.

Could someone please tell me how they would solve this problem quickly and efficiently?

Many thanks!

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2  
The easiest way would be to write a method for translating this pattern syntax to Java regular expressions: docs.oracle.com/javase/tutorial/essential/regex –  hsan Jan 25 '13 at 13:47
1  
Classic Dynamic Programming question. –  Srinivas Jan 25 '13 at 13:49
    
Okay. That WAS my question as well. Are you allowed to use regex? If yes, then this should be relatively easy as depicted in the code by @assylias. –  aa8y Jan 25 '13 at 13:55

2 Answers 2

up vote 3 down vote accepted
boolean isPattern(String givenPattern, String stringToMatch) {
    if (givenPattern.empty)
        return stringToMatch.isEmpty();
    char patternCh = givenPatter.charAt(0);
    boolean atEnd = stringToMatch.isEmpty();
    if (patternCh == '*') {
        return isPattenn(givenPattern.substring(1), stringToMatch)
            || (!atEnd && isPattern(givenPattern, stringToMatch.substring(1)));
    } else if (patternCh == '?') {
        return !atEnd && isPattern(givenPattern.substring(1), 
            stringToMatch.substring(1));
    }
    return !atEnd && patternCh == stringToMatch.charAt(0)
          && isPattern(givenPattern.substring(1), stringToNatch.subtring(1);
}

(Recursion being easiest to understand.)

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I think your first return there is malformed, you are only passing one parameter to isPattern and it is a boolean. Also you are missing a semicolon. –  James McMahon Jan 25 '13 at 14:09
    
I think you want return !atEnd && isPattern(givenPattern, stringToMatch.substring(1)); –  James McMahon Jan 25 '13 at 14:13
    
@JamesMcMahon perfect. Corrected it. –  Joop Eggen Jan 25 '13 at 14:38

Assuming you are allowed to use regexes, you could have written something like:

static boolean isPattern(String givenPattern, String stringToMatch) {
    String regex = "^" + givenPattern.replace("*", ".*").replace("?", ".") + "$";

    return Pattern.compile(regex).matcher(stringToMatch).matches();
}

"^" is the start of the string
"$" is the end of the string
. is for "any character", exactly once
.* is for "any character", 0 or more times

Note: If you want to restrict * and ? to letters only, you can use [a-zA-Z] instead of ..

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Mind putting some additional information around the structure of the regex itself? I think it would improve the answer. –  James McMahon Jan 25 '13 at 13:59
    
@JamesMcMahon I have done that. –  assylias Jan 25 '13 at 14:03
2  
what if the given string has regex wildcards but are not to be interpreted as such? You would have to escape all known regex wildcards before using it. –  Caesar Ralf Jan 25 '13 at 14:07
1  
@RalfHoppen Yes you are right, it assumes the stringToMatch only contains letters. –  assylias Jan 25 '13 at 14:10
    
Based on the input rules given by Sorin, I think that is a reasonable assumption. –  James McMahon Jan 25 '13 at 14:15

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