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I want to export pattern of bit stream in a String varilable. Assume our bit stream is something like bitStream="111000001010000100001111". I am looking for a Java code to save this bit stream in a specific array (assume bitArray) in a way that all continous "0"s or "1"s be saved in one array element. In this example output would be somethins like this:

bitArray[0]="111"
bitArray[1]="00000"
bitArray[2]="1"
bitArray[3]="0"
bitArray[4]="1"
bitArray[5]="0000"
bitArray[6]="1"
bitArray[7]="0000"
bitArray[8]="1111"

I want to using bitArray to calculate the number of bit which is stored in each continous stream. For example in this case the final output would be, "3,5,1,1,1,4,1,4,4". I figure it out that probably "split" method would solve this for me. But I dont know what splitting pattern would do that for me, if i Using bitStream.split("1+") it would split on contious "1" pattern, if i using bitStream.split("0+") it will do that base on continous"0" but how it could be based on both?

Mathew suggested this solution and it works:

var wholeString = "111000001010000100001111";
wholeString = wholeString.replace('10', '1,0');
wholeString = wholeString.replace('01', '0,1');
stringSplit = wholeString.split(',');

My question is "Is this solution the most efficient one?"

share|improve this question
    
Does your result have to be in order? For example, could bitArray[1] contain 111 and bitArray[0] contain 00000? – vane Dec 30 '13 at 8:22
    
Yes, in same order as appearance. – Ali n Dec 30 '13 at 8:30
    
regarding the question about efficiency, I think that it's impossibile to do it with a complexity less than O(n), because you have to evaluate at least all the string in some way – Alessio Dec 30 '13 at 13:26
1  
See my answer for the results of a small performance test I did on 4 of the listed answers. – vane Dec 30 '13 at 17:23
up vote 2 down vote accepted

You can do this with a simple regular expression. It matches 1s and 0s and will return each in the order they occur in the stream. How you store or manipulate the results is up to you. Here is some example code.

String testString = "111000001010000100001111";

Pattern pattern = Pattern.compile("1+|0+");
Matcher matcher = pattern.matcher(testString);

while (matcher.find())
{
    System.out.print(matcher.group().length());
    System.out.print(" ");
}

This will result in the following output:

3 5 1 1 1 4 1 4 4

One option for storing the results is to put them in an ArrayList<Integer>

Since the OP wanted most efficient, I did some tests to see how long each answer takes to iterate over a large stream 10000 times and came up with the following results. In each test the times were different but the order of fastest to slowest remained the same. I know tick performance testing has it's issues like not accounting for system load but I just wanted a quick test.

My answer completed in 1145 ms
Alessio's answer completed in 1202 ms
Matthew Lee Keith's answer completed in 2002 ms
Evgeniy Dorofeev's answer completed in 2556 ms

Hope this helps

share|improve this answer

Try replacing any occurrence of "01" and "10" with "0,1" and "1,0" respectively. Then once you've injected the commas, split the string using the comma as the delimiting character.

String wholeString = "111000001010000100001111"

wholeString = wholeString.replace("10", "1,0");
wholeString = wholeString.replace("01", "0,1");

String stringSplit[] = wholeString.split(",");
share|improve this answer
    
+1 simple & working solution – Baby Dec 30 '13 at 8:29
    
+1, But is it the most efficient one? – Ali n Dec 30 '13 at 8:31
    
Thank you Martijn for translating my JS into Java. I knew logically how to get it done, just not familiar with the exact nuances of Java vs JS. Tried to use a language I knew that was at least similar. – GrafikMatthew Dec 30 '13 at 23:49

I won't give you a code, but I'll guide you to a possible solution:

Construct an ArrayList<Integer>, iterate on the array of bits, as long as you have 1's, increment a counter and as soon as you have 0, add the counter to the ArrayList. After this procedure, you'll have an ArrayList that contain numbers, etc: [1,2,2,3,4] - Representing a serieses of 1's and 0's.
This will represent the sequences of 1's and 0's. Then you construct an array of the size of the ArrayList, and fill it accordingly.

The time complexity is O(n) because you need to iterate on the array only once.

share|improve this answer
    
And probably I should also do that in a situation that the bitStream start with "0". But is it the most efficient answer? Because in my case "n" and also the number of calling this method is really large. – Ali n Dec 30 '13 at 8:24
    
No. You do this in any way. You just need to have a flag indicating what's the first number in the array of bits. – Maroun Maroun Dec 30 '13 at 8:25

This code works for any String and patterns, not only 1s and 0s. Iterate char by char, and if the current char is equal to the previous one, append the last char to the last element of the List, otherwise create a new element in the list.

public List<String> getArray(String input){

    List<String> output = new ArrayList<String>();
    if(input==null || input.length==0) return output;
    int count = 0;
    char [] inputA = input.toCharArray();
    output.add(inputA[0]+"");
    for(int i = 1; i <inputA.length;i++){
        if(inputA[i]==inputA[i-1]){
            String current = output.get(count)+inputA[i];
            output.remove(count);
            output.add(current);
        }
        else{
            output.add(inputA[i]+"");
            count++;
        }
    }
    return output;
}
share|improve this answer

try this

    String[] a = s.replaceAll("(.)(?!\\1)", "$1,").split(",");
share|improve this answer

I tried to implement @Maroun Maroun solution.

public static void main(String args[]){
    long start = System.currentTimeMillis();
    String bitStream ="0111000001010000100001111";
    int length = bitStream.length();
    char base = bitStream.charAt(0);
    ArrayList<Integer> counts = new ArrayList<Integer>();
    int count = -1;
    char currChar = ' ';
    for (int i=0;i<length;i++){
        currChar = bitStream.charAt(i);
        if (currChar == base){
            count++;
        }else {
            base = currChar;
            counts.add(count+1);
            count = 0;
        }
    }
    counts.add(count+1);
    System.out.println("Time taken :" + (System.currentTimeMillis()-start ) +"ms");
    System.out.println(counts.toString());
}

I believe it is more effecient way, as he said it is O(n) , you are iterating only once. Since the goal to get the count only not to store it as array. i woul recommen this. Even if we use Regular Expression ( internal it would have to iterate any way )

Result out put is

Time taken :0ms
[1, 3, 5, 1, 1, 1, 4, 1, 4, 4]
share|improve this answer
1  
Try wrapping that solution in a loop with >= 10000 iterations and a much longer stream string. This will give a better scaled timing result than just 0. Be sure to only include the needed items inside the outer performance loop, timing and setup can be done outside that loop. – vane Dec 31 '13 at 0:08

Try this one:

String[] parts = input.split("(?<=1)(?=0)|(?<=0)(?=1)");

See in action here: http://rubular.com/r/qyyfHNAo0T

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