How do I convert split string (string array) to double in C#? - c#

The question:
8 children's height is being checked, and inserted.
Insert 8 double values into the console, and make an algorithm to find out the lowest height & the maximum height.
So this is what I've done:
class work1 {
public static void Main(String[] args) {
string[] height = Console.ReadLine().Split(' ');
double[] heightInDouble = new Double[height.Length];
for (int i = 0; i <= height.Length; i++) {
heightInDouble[i] = (double) height[i]; // line 20
}
Console.WriteLine("Highest: " + heightInDouble.Max() + " Lowest: " + heightInDouble.Min());
}
}
The results:
Error: Cannot convert type 'string' to 'double' (20)
How can I convert a string to a double value?

You can't directly cast from string to double. Use double.Parse:
realInts[i] = double.Parse( ints[i] );
You may also want to use TryParse, as it's not certain here that the string is actually a number:
double parsedValue;
realInts[i] = double.TryParse(ints[i], out parsedValue) ? parsedValue : 0;
One more note: you could simplify the syntax by using a Linq expression chain:
double parsedVal;
double[] realInts = Console.ReadLine().Split(' ')
.Select(str => double.TryParse(str, out parsedVal) ? parsedVal : 0)
.ToArray();

Try this.
static void Main(string[] args)
{
string[] ints = Console.ReadLine().Split(' ');
double[] realInts = new Double[ints.Length];
for (int i = 0; i <= ints.Length; i++)
{
double val;
if (Double.TryParse(ints[i], out val))
{
realInts[i] = val; // line 20
}
else
{
// Unable to parse
realInts[i] = 0;
}
}
}

use this code
class work1
{
public static void Main(String[] args)
{
string[] height = Console.ReadLine().Split(' ');
double[] heightInDouble = new Double[height.Length];
for (int i = 0; i < height.Length; i++)
{
heightInDouble[i] = Convert.ToDouble(height[i]); // line 20
}
Console.WriteLine("Highest: " + heightInDouble.Max() + " Lowest: " + heightInDouble.Min());
Console.ReadLine();
}
}

Related

Get Last Four word after splitting a string

I have two string like below
var str1 = '20180215.20150215.3.1.0.0';
var str2 = '20180215.3.1.0.0';
I need to get the last four word after splitting these string with .
var str1Arr = str1.split('.')
What i need is a generic method to get last four words 3.1.0.0.
Thanks
var lastFour = str1Arr.Reverse().Take(4).Reverse().ToArray();
public static class SplitExtension
{
public static string LastNItems(this string str, int nItem, char separator = '.')
{
return string.Join(separator.ToString(), str.Split(separator).Reverse().Take(nItem).Reverse());
}
public static string[] LastNItems(this string[] strArray, int nItem)
{
return strArray.Reverse().Take(nItem).Reverse().ToArray();
}
}
This will enable you to do
var str1 = "20180215.20150215.3.1.0.0";
var str1Last4 = str1.LastNItems(4); // "3.1.0.0"
var str1Last4Items = str1.Split('.').LastNItems(4); // ["3","1","0","0"]
or for completion
var str1Last4Items = str1.LastNItems(4).Split('.'); // ["3","1","0","0"]
You can use it by extension methods.
public static class CommonExtension
{
public static List<string> LastNItem(this string str, int nItem, string separator = ".")
{
var splittedWords = str.Split(new [] { separator }, StringSplitOptions.None);
var res = splittedWords.Reverse().Take(nItem).Reverse().ToList();
return res;
}
}
Then you can call it everywhere you want.
var str1 = "1.0.0";
var str2 = "20180215.3.1.0.0";
var str1Last4 = str1.LastNItem(4);
var str2Last4 = str2.LastNItem(4);
Why not just Skip top Length - 4 items?
string str1 = "20180215.20150215.3.1.0.0";
string[] str1Arr = str1.Split('.');
var result = str1Arr
.Skip(str1Arr.Length - 4)
.ToArray(); // if you want an array materialization
This code will do even when str1Arr.Length < 4 (in this case the entire str1Arr copy will be returned). In case you want a string as the result you can just try Substring (without creating any arrays)
string str1 = "20180215.20150215.3.1.0.0";
string result = str1;
int index = result.Length;
for (int i = 0; i < 4; ++i) {
index = str1.LastIndexOf('.', index - 1);
if (index < 0)
break;
}
result = index < 0 ? result : result.Substring(index + 1);
public static string GetLastFour(string str)
{
string[] arr = str.Split('.');
System.Text.StringBuilder lastFour = new System.Text.StringBuilder();
if (arr.Length >= 4)
{
for (int k = arr.Length - 4; k < arr.Length; k++)
{
if (k == arr.Length - 1)
{
lastFour.Append(arr[k]);
}
else
{
lastFour.Append(arr[k] + ".");
}
}
}
return lastFour.ToString();
}
This would be faster than double reverse answer.
var str1 = "20180215.20150215.3.1.0.0";
var str2 = "20180215.3.1.0.0";
var words = str1.Split('.');
var toSkip = words.Length - 4;
var result = string.Join(".", words.Skip(toSkip));
A bit of testing showed that is is just slightly faster than double reverse.
What is 10 times faster than this one?
Well avoiding memory allocations and enumerations will be.
Here are the results of comparing 3 different extension methods for 10M iterations:
double reverse: 6463ms
split + skip: 5269ms
straight: 492ms
void Main()
{
var str1 = "20180215.20150215.3.1.0.0";
var numIterations = 10000000;
var timer = new Stopwatch();
timer.Start();
for (var i = 0; i < numIterations; i++)
{
str1.LastNItemsDoubleReverse(4);
}
timer.Stop();
timer.ElapsedMilliseconds.Dump("double reverse");
timer.Reset();
timer.Start();
for (var i = 0; i < numIterations; i++)
{
str1.LastNItemsSplitNSkip(4);
}
timer.Stop();
timer.ElapsedMilliseconds.Dump("split + skip");
timer.Reset();
timer.Start();
for (var i = 0; i < numIterations; i++)
{
str1.LastNItemsStraight(4);
}
timer.Stop();
timer.ElapsedMilliseconds.Dump("straight");
}
public static class ext
{
public static string LastNItemsDoubleReverse(this string str, int nItem, char separator = '.')
{
return string.Join(separator.ToString(), str.Split(separator).Reverse().Take(nItem).Reverse());
}
public static string LastNItemsSplitNSkip(this string str, int nItem, char separator = '.')
{
var words = str.Split(separator);
var toSkip = words.Length - nItem;
return string.Join($"{separator}", words.Skip(toSkip));
}
public static string LastNItemsStraight(this string str, int nItem, char separator = '.')
{
int j=1,i=str.Length-1;
for (;i>=0 && j<nItem;i--){
if(str[i]==separator) j++;
}
return str.Substring(i);
}
}
Try the following :
List<string> GetLastFourWords()
{
List<string> lastFour = new List<string>();
try
{
string[] arr = str1.split('.');
for(int i = 3; i >= 0; i-- )
{
lastFour.Add(arr[str1.length - 1 - i]);
}
}
catch(Exception ex)
{
}
return lastFour;
}

How to random order a 3 digit number on a list box? [duplicate]

What is an elegant way to find all the permutations of a string. E.g. permutation for ba, would be ba and ab, but what about longer string such as abcdefgh? Is there any Java implementation example?
public static void permutation(String str) {
permutation("", str);
}
private static void permutation(String prefix, String str) {
int n = str.length();
if (n == 0) System.out.println(prefix);
else {
for (int i = 0; i < n; i++)
permutation(prefix + str.charAt(i), str.substring(0, i) + str.substring(i+1, n));
}
}
(via Introduction to Programming in Java)
Use recursion.
Try each of the letters in turn as the first letter and then find all the permutations of the remaining letters using a recursive call.
The base case is when the input is an empty string the only permutation is the empty string.
Here is my solution that is based on the idea of the book "Cracking the Coding Interview" (P54):
/**
* List permutations of a string.
*
* #param s the input string
* #return the list of permutations
*/
public static ArrayList<String> permutation(String s) {
// The result
ArrayList<String> res = new ArrayList<String>();
// If input string's length is 1, return {s}
if (s.length() == 1) {
res.add(s);
} else if (s.length() > 1) {
int lastIndex = s.length() - 1;
// Find out the last character
String last = s.substring(lastIndex);
// Rest of the string
String rest = s.substring(0, lastIndex);
// Perform permutation on the rest string and
// merge with the last character
res = merge(permutation(rest), last);
}
return res;
}
/**
* #param list a result of permutation, e.g. {"ab", "ba"}
* #param c the last character
* #return a merged new list, e.g. {"cab", "acb" ... }
*/
public static ArrayList<String> merge(ArrayList<String> list, String c) {
ArrayList<String> res = new ArrayList<>();
// Loop through all the string in the list
for (String s : list) {
// For each string, insert the last character to all possible positions
// and add them to the new list
for (int i = 0; i <= s.length(); ++i) {
String ps = new StringBuffer(s).insert(i, c).toString();
res.add(ps);
}
}
return res;
}
Running output of string "abcd":
Step 1: Merge [a] and b:
[ba, ab]
Step 2: Merge [ba, ab] and c:
[cba, bca, bac, cab, acb, abc]
Step 3: Merge [cba, bca, bac, cab, acb, abc] and d:
[dcba, cdba, cbda, cbad, dbca, bdca, bcda, bcad, dbac, bdac, badc, bacd, dcab, cdab, cadb, cabd, dacb, adcb, acdb, acbd, dabc, adbc, abdc, abcd]
Of all the solutions given here and in other forums, I liked Mark Byers the most. That description actually made me think and code it myself.
Too bad I cannot voteup his solution as I am newbie.
Anyways here is my implementation of his description
public class PermTest {
public static void main(String[] args) throws Exception {
String str = "abcdef";
StringBuffer strBuf = new StringBuffer(str);
doPerm(strBuf,0);
}
private static void doPerm(StringBuffer str, int index){
if(index == str.length())
System.out.println(str);
else { //recursively solve this by placing all other chars at current first pos
doPerm(str, index+1);
for (int i = index+1; i < str.length(); i++) {//start swapping all other chars with current first char
swap(str,index, i);
doPerm(str, index+1);
swap(str,i, index);//restore back my string buffer
}
}
}
private static void swap(StringBuffer str, int pos1, int pos2){
char t1 = str.charAt(pos1);
str.setCharAt(pos1, str.charAt(pos2));
str.setCharAt(pos2, t1);
}
}
I prefer this solution ahead of the first one in this thread because this solution uses StringBuffer. I wouldn't say my solution doesn't create any temporary string (it actually does in system.out.println where the toString() of StringBuffer is called). But I just feel this is better than the first solution where too many string literals are created. May be some performance guy out there can evalute this in terms of 'memory' (for 'time' it already lags due to that extra 'swap')
A very basic solution in Java is to use recursion + Set ( to avoid repetitions ) if you want to store and return the solution strings :
public static Set<String> generatePerm(String input)
{
Set<String> set = new HashSet<String>();
if (input == "")
return set;
Character a = input.charAt(0);
if (input.length() > 1)
{
input = input.substring(1);
Set<String> permSet = generatePerm(input);
for (String x : permSet)
{
for (int i = 0; i <= x.length(); i++)
{
set.add(x.substring(0, i) + a + x.substring(i));
}
}
}
else
{
set.add(a + "");
}
return set;
}
All the previous contributors have done a great job explaining and providing the code. I thought I should share this approach too because it might help someone too. The solution is based on (heaps' algorithm )
Couple of things:
Notice the last item which is depicted in the excel is just for helping you better visualize the logic. So, the actual values in the last column would be 2,1,0 (if we were to run the code because we are dealing with arrays and arrays start with 0).
The swapping algorithm happens based on even or odd values of current position. It's very self explanatory if you look at where the swap method is getting called.You can see what's going on.
Here is what happens:
public static void main(String[] args) {
String ourword = "abc";
String[] ourArray = ourword.split("");
permute(ourArray, ourArray.length);
}
private static void swap(String[] ourarray, int right, int left) {
String temp = ourarray[right];
ourarray[right] = ourarray[left];
ourarray[left] = temp;
}
public static void permute(String[] ourArray, int currentPosition) {
if (currentPosition == 1) {
System.out.println(Arrays.toString(ourArray));
} else {
for (int i = 0; i < currentPosition; i++) {
// subtract one from the last position (here is where you are
// selecting the the next last item
permute(ourArray, currentPosition - 1);
// if it's odd position
if (currentPosition % 2 == 1) {
swap(ourArray, 0, currentPosition - 1);
} else {
swap(ourArray, i, currentPosition - 1);
}
}
}
}
Let's use input abc as an example.
Start off with just the last element (c) in a set (["c"]), then add the second last element (b) to its front, end and every possible positions in the middle, making it ["bc", "cb"] and then in the same manner it will add the next element from the back (a) to each string in the set making it:
"a" + "bc" = ["abc", "bac", "bca"] and "a" + "cb" = ["acb" ,"cab", "cba"]
Thus entire permutation:
["abc", "bac", "bca","acb" ,"cab", "cba"]
Code:
public class Test
{
static Set<String> permutations;
static Set<String> result = new HashSet<String>();
public static Set<String> permutation(String string) {
permutations = new HashSet<String>();
int n = string.length();
for (int i = n - 1; i >= 0; i--)
{
shuffle(string.charAt(i));
}
return permutations;
}
private static void shuffle(char c) {
if (permutations.size() == 0) {
permutations.add(String.valueOf(c));
} else {
Iterator<String> it = permutations.iterator();
for (int i = 0; i < permutations.size(); i++) {
String temp1;
for (; it.hasNext();) {
temp1 = it.next();
for (int k = 0; k < temp1.length() + 1; k += 1) {
StringBuilder sb = new StringBuilder(temp1);
sb.insert(k, c);
result.add(sb.toString());
}
}
}
permutations = result;
//'result' has to be refreshed so that in next run it doesn't contain stale values.
result = new HashSet<String>();
}
}
public static void main(String[] args) {
Set<String> result = permutation("abc");
System.out.println("\nThere are total of " + result.size() + " permutations:");
Iterator<String> it = result.iterator();
while (it.hasNext()) {
System.out.println(it.next());
}
}
}
This one is without recursion
public static void permute(String s) {
if(null==s || s.isEmpty()) {
return;
}
// List containing words formed in each iteration
List<String> strings = new LinkedList<String>();
strings.add(String.valueOf(s.charAt(0))); // add the first element to the list
// Temp list that holds the set of strings for
// appending the current character to all position in each word in the original list
List<String> tempList = new LinkedList<String>();
for(int i=1; i< s.length(); i++) {
for(int j=0; j<strings.size(); j++) {
tempList.addAll(merge(s.charAt(i), strings.get(j)));
}
strings.removeAll(strings);
strings.addAll(tempList);
tempList.removeAll(tempList);
}
for(int i=0; i<strings.size(); i++) {
System.out.println(strings.get(i));
}
}
/**
* helper method that appends the given character at each position in the given string
* and returns a set of such modified strings
* - set removes duplicates if any(in case a character is repeated)
*/
private static Set<String> merge(Character c, String s) {
if(s==null || s.isEmpty()) {
return null;
}
int len = s.length();
StringBuilder sb = new StringBuilder();
Set<String> list = new HashSet<String>();
for(int i=0; i<= len; i++) {
sb = new StringBuilder();
sb.append(s.substring(0, i) + c + s.substring(i, len));
list.add(sb.toString());
}
return list;
}
Well here is an elegant, non-recursive, O(n!) solution:
public static StringBuilder[] permutations(String s) {
if (s.length() == 0)
return null;
int length = fact(s.length());
StringBuilder[] sb = new StringBuilder[length];
for (int i = 0; i < length; i++) {
sb[i] = new StringBuilder();
}
for (int i = 0; i < s.length(); i++) {
char ch = s.charAt(i);
int times = length / (i + 1);
for (int j = 0; j < times; j++) {
for (int k = 0; k < length / times; k++) {
sb[j * length / times + k].insert(k, ch);
}
}
}
return sb;
}
One of the simple solution could be just keep swapping the characters recursively using two pointers.
public static void main(String[] args)
{
String str="abcdefgh";
perm(str);
}
public static void perm(String str)
{ char[] char_arr=str.toCharArray();
helper(char_arr,0);
}
public static void helper(char[] char_arr, int i)
{
if(i==char_arr.length-1)
{
// print the shuffled string
String str="";
for(int j=0; j<char_arr.length; j++)
{
str=str+char_arr[j];
}
System.out.println(str);
}
else
{
for(int j=i; j<char_arr.length; j++)
{
char tmp = char_arr[i];
char_arr[i] = char_arr[j];
char_arr[j] = tmp;
helper(char_arr,i+1);
char tmp1 = char_arr[i];
char_arr[i] = char_arr[j];
char_arr[j] = tmp1;
}
}
}
python implementation
def getPermutation(s, prefix=''):
if len(s) == 0:
print prefix
for i in range(len(s)):
getPermutation(s[0:i]+s[i+1:len(s)],prefix+s[i] )
getPermutation('abcd','')
This is what I did through basic understanding of Permutations and Recursive function calling. Takes a bit of time but it's done independently.
public class LexicographicPermutations {
public static void main(String[] args) {
// TODO Auto-generated method stub
String s="abc";
List<String>combinations=new ArrayList<String>();
combinations=permutations(s);
Collections.sort(combinations);
System.out.println(combinations);
}
private static List<String> permutations(String s) {
// TODO Auto-generated method stub
List<String>combinations=new ArrayList<String>();
if(s.length()==1){
combinations.add(s);
}
else{
for(int i=0;i<s.length();i++){
List<String>temp=permutations(s.substring(0, i)+s.substring(i+1));
for (String string : temp) {
combinations.add(s.charAt(i)+string);
}
}
}
return combinations;
}}
which generates Output as [abc, acb, bac, bca, cab, cba].
Basic logic behind it is
For each character, consider it as 1st character & find the combinations of remaining characters. e.g. [abc](Combination of abc)->.
a->[bc](a x Combination of (bc))->{abc,acb}
b->[ac](b x Combination of (ac))->{bac,bca}
c->[ab](c x Combination of (ab))->{cab,cba}
And then recursively calling each [bc],[ac] & [ab] independently.
Use recursion.
when the input is an empty string the only permutation is an empty string.Try for each of the letters in the string by making it as the first letter and then find all the permutations of the remaining letters using a recursive call.
import java.util.ArrayList;
import java.util.List;
class Permutation {
private static List<String> permutation(String prefix, String str) {
List<String> permutations = new ArrayList<>();
int n = str.length();
if (n == 0) {
permutations.add(prefix);
} else {
for (int i = 0; i < n; i++) {
permutations.addAll(permutation(prefix + str.charAt(i), str.substring(i + 1, n) + str.substring(0, i)));
}
}
return permutations;
}
public static void main(String[] args) {
List<String> perms = permutation("", "abcd");
String[] array = new String[perms.size()];
for (int i = 0; i < perms.size(); i++) {
array[i] = perms.get(i);
}
int x = array.length;
for (final String anArray : array) {
System.out.println(anArray);
}
}
}
this worked for me..
import java.util.Arrays;
public class StringPermutations{
public static void main(String args[]) {
String inputString = "ABC";
permute(inputString.toCharArray(), 0, inputString.length()-1);
}
public static void permute(char[] ary, int startIndex, int endIndex) {
if(startIndex == endIndex){
System.out.println(String.valueOf(ary));
}else{
for(int i=startIndex;i<=endIndex;i++) {
swap(ary, startIndex, i );
permute(ary, startIndex+1, endIndex);
swap(ary, startIndex, i );
}
}
}
public static void swap(char[] ary, int x, int y) {
char temp = ary[x];
ary[x] = ary[y];
ary[y] = temp;
}
}
Java implementation without recursion
public Set<String> permutate(String s){
Queue<String> permutations = new LinkedList<String>();
Set<String> v = new HashSet<String>();
permutations.add(s);
while(permutations.size()!=0){
String str = permutations.poll();
if(!v.contains(str)){
v.add(str);
for(int i = 0;i<str.length();i++){
String c = String.valueOf(str.charAt(i));
permutations.add(str.substring(i+1) + c + str.substring(0,i));
}
}
}
return v;
}
Let me try to tackle this problem with Kotlin:
fun <T> List<T>.permutations(): List<List<T>> {
//escape case
if (this.isEmpty()) return emptyList()
if (this.size == 1) return listOf(this)
if (this.size == 2) return listOf(listOf(this.first(), this.last()), listOf(this.last(), this.first()))
//recursive case
return this.flatMap { lastItem ->
this.minus(lastItem).permutations().map { it.plus(lastItem) }
}
}
Core concept: Break down long list into smaller list + recursion
Long answer with example list [1, 2, 3, 4]:
Even for a list of 4 it already kinda get's confusing trying to list all the possible permutations in your head, and what we need to do is exactly to avoid that. It is easy for us to understand how to make all permutations of list of size 0, 1, and 2, so all we need to do is break them down to any of those sizes and combine them back up correctly. Imagine a jackpot machine: this algorithm will start spinning from the right to the left, and write down
return empty/list of 1 when list size is 0 or 1
handle when list size is 2 (e.g. [3, 4]), and generate the 2 permutations ([3, 4] & [4, 3])
For each item, mark that as the last in the last, and find all the permutations for the rest of the item in the list. (e.g. put [4] on the table, and throw [1, 2, 3] into permutation again)
Now with all permutation it's children, put itself back to the end of the list (e.g.: [1, 2, 3][,4], [1, 3, 2][,4], [2, 3, 1][, 4], ...)
import java.io.IOException;
import java.util.ArrayList;
import java.util.Scanner;
public class hello {
public static void main(String[] args) throws IOException {
hello h = new hello();
h.printcomp();
}
int fact=1;
public void factrec(int a,int k){
if(a>=k)
{fact=fact*k;
k++;
factrec(a,k);
}
else
{System.out.println("The string will have "+fact+" permutations");
}
}
public void printcomp(){
String str;
int k;
Scanner in = new Scanner(System.in);
System.out.println("enter the string whose permutations has to b found");
str=in.next();
k=str.length();
factrec(k,1);
String[] arr =new String[fact];
char[] array = str.toCharArray();
while(p<fact)
printcomprec(k,array,arr);
// if incase u need array containing all the permutation use this
//for(int d=0;d<fact;d++)
//System.out.println(arr[d]);
}
int y=1;
int p = 0;
int g=1;
int z = 0;
public void printcomprec(int k,char array[],String arr[]){
for (int l = 0; l < k; l++) {
for (int b=0;b<k-1;b++){
for (int i=1; i<k-g; i++) {
char temp;
String stri = "";
temp = array[i];
array[i] = array[i + g];
array[i + g] = temp;
for (int j = 0; j < k; j++)
stri += array[j];
arr[z] = stri;
System.out.println(arr[z] + " " + p++);
z++;
}
}
char temp;
temp=array[0];
array[0]=array[y];
array[y]=temp;
if (y >= k-1)
y=y-(k-1);
else
y++;
}
if (g >= k-1)
g=1;
else
g++;
}
}
/** Returns an array list containing all
* permutations of the characters in s. */
public static ArrayList<String> permute(String s) {
ArrayList<String> perms = new ArrayList<>();
int slen = s.length();
if (slen > 0) {
// Add the first character from s to the perms array list.
perms.add(Character.toString(s.charAt(0)));
// Repeat for all additional characters in s.
for (int i = 1; i < slen; ++i) {
// Get the next character from s.
char c = s.charAt(i);
// For each of the strings currently in perms do the following:
int size = perms.size();
for (int j = 0; j < size; ++j) {
// 1. remove the string
String p = perms.remove(0);
int plen = p.length();
// 2. Add plen + 1 new strings to perms. Each new string
// consists of the removed string with the character c
// inserted into it at a unique location.
for (int k = 0; k <= plen; ++k) {
perms.add(p.substring(0, k) + c + p.substring(k));
}
}
}
}
return perms;
}
Here is a straightforward minimalist recursive solution in Java:
public static ArrayList<String> permutations(String s) {
ArrayList<String> out = new ArrayList<String>();
if (s.length() == 1) {
out.add(s);
return out;
}
char first = s.charAt(0);
String rest = s.substring(1);
for (String permutation : permutations(rest)) {
out.addAll(insertAtAllPositions(first, permutation));
}
return out;
}
public static ArrayList<String> insertAtAllPositions(char ch, String s) {
ArrayList<String> out = new ArrayList<String>();
for (int i = 0; i <= s.length(); ++i) {
String inserted = s.substring(0, i) + ch + s.substring(i);
out.add(inserted);
}
return out;
}
We can use factorial to find how many strings started with particular letter.
Example: take the input abcd. (3!) == 6 strings will start with every letter of abcd.
static public int facts(int x){
int sum = 1;
for (int i = 1; i < x; i++) {
sum *= (i+1);
}
return sum;
}
public static void permutation(String str) {
char[] str2 = str.toCharArray();
int n = str2.length;
int permutation = 0;
if (n == 1) {
System.out.println(str2[0]);
} else if (n == 2) {
System.out.println(str2[0] + "" + str2[1]);
System.out.println(str2[1] + "" + str2[0]);
} else {
for (int i = 0; i < n; i++) {
if (true) {
char[] str3 = str.toCharArray();
char temp = str3[i];
str3[i] = str3[0];
str3[0] = temp;
str2 = str3;
}
for (int j = 1, count = 0; count < facts(n-1); j++, count++) {
if (j != n-1) {
char temp1 = str2[j+1];
str2[j+1] = str2[j];
str2[j] = temp1;
} else {
char temp1 = str2[n-1];
str2[n-1] = str2[1];
str2[1] = temp1;
j = 1;
} // end of else block
permutation++;
System.out.print("permutation " + permutation + " is -> ");
for (int k = 0; k < n; k++) {
System.out.print(str2[k]);
} // end of loop k
System.out.println();
} // end of loop j
} // end of loop i
}
}
//insert each character into an arraylist
static ArrayList al = new ArrayList();
private static void findPermutation (String str){
for (int k = 0; k < str.length(); k++) {
addOneChar(str.charAt(k));
}
}
//insert one char into ArrayList
private static void addOneChar(char ch){
String lastPerStr;
String tempStr;
ArrayList locAl = new ArrayList();
for (int i = 0; i < al.size(); i ++ ){
lastPerStr = al.get(i).toString();
//System.out.println("lastPerStr: " + lastPerStr);
for (int j = 0; j <= lastPerStr.length(); j++) {
tempStr = lastPerStr.substring(0,j) + ch +
lastPerStr.substring(j, lastPerStr.length());
locAl.add(tempStr);
//System.out.println("tempStr: " + tempStr);
}
}
if(al.isEmpty()){
al.add(ch);
} else {
al.clear();
al = locAl;
}
}
private static void printArrayList(ArrayList al){
for (int i = 0; i < al.size(); i++) {
System.out.print(al.get(i) + " ");
}
}
//Rotate and create words beginning with all letter possible and push to stack 1
//Read from stack1 and for each word create words with other letters at the next location by rotation and so on
/* eg : man
1. push1 - man, anm, nma
2. pop1 - nma , push2 - nam,nma
pop1 - anm , push2 - amn,anm
pop1 - man , push2 - mna,man
*/
public class StringPermute {
static String str;
static String word;
static int top1 = -1;
static int top2 = -1;
static String[] stringArray1;
static String[] stringArray2;
static int strlength = 0;
public static void main(String[] args) throws IOException {
System.out.println("Enter String : ");
InputStreamReader isr = new InputStreamReader(System.in);
BufferedReader bfr = new BufferedReader(isr);
str = bfr.readLine();
word = str;
strlength = str.length();
int n = 1;
for (int i = 1; i <= strlength; i++) {
n = n * i;
}
stringArray1 = new String[n];
stringArray2 = new String[n];
push(word, 1);
doPermute();
display();
}
public static void push(String word, int x) {
if (x == 1)
stringArray1[++top1] = word;
else
stringArray2[++top2] = word;
}
public static String pop(int x) {
if (x == 1)
return stringArray1[top1--];
else
return stringArray2[top2--];
}
public static void doPermute() {
for (int j = strlength; j >= 2; j--)
popper(j);
}
public static void popper(int length) {
// pop from stack1 , rotate each word n times and push to stack 2
if (top1 > -1) {
while (top1 > -1) {
word = pop(1);
for (int j = 0; j < length; j++) {
rotate(length);
push(word, 2);
}
}
}
// pop from stack2 , rotate each word n times w.r.t position and push to
// stack 1
else {
while (top2 > -1) {
word = pop(2);
for (int j = 0; j < length; j++) {
rotate(length);
push(word, 1);
}
}
}
}
public static void rotate(int position) {
char[] charstring = new char[100];
for (int j = 0; j < word.length(); j++)
charstring[j] = word.charAt(j);
int startpos = strlength - position;
char temp = charstring[startpos];
for (int i = startpos; i < strlength - 1; i++) {
charstring[i] = charstring[i + 1];
}
charstring[strlength - 1] = temp;
word = new String(charstring).trim();
}
public static void display() {
int top;
if (top1 > -1) {
while (top1 > -1)
System.out.println(stringArray1[top1--]);
} else {
while (top2 > -1)
System.out.println(stringArray2[top2--]);
}
}
}
Another simple way is to loop through the string, pick the character that is not used yet and put it to a buffer, continue the loop till the buffer size equals to the string length. I like this back tracking solution better because:
Easy to understand
Easy to avoid duplication
The output is sorted
Here is the java code:
List<String> permute(String str) {
if (str == null) {
return null;
}
char[] chars = str.toCharArray();
boolean[] used = new boolean[chars.length];
List<String> res = new ArrayList<String>();
StringBuilder sb = new StringBuilder();
Arrays.sort(chars);
helper(chars, used, sb, res);
return res;
}
void helper(char[] chars, boolean[] used, StringBuilder sb, List<String> res) {
if (sb.length() == chars.length) {
res.add(sb.toString());
return;
}
for (int i = 0; i < chars.length; i++) {
// avoid duplicates
if (i > 0 && chars[i] == chars[i - 1] && !used[i - 1]) {
continue;
}
// pick the character that has not used yet
if (!used[i]) {
used[i] = true;
sb.append(chars[i]);
helper(chars, used, sb, res);
// back tracking
sb.deleteCharAt(sb.length() - 1);
used[i] = false;
}
}
}
Input str: 1231
Output list: {1123, 1132, 1213, 1231, 1312, 1321, 2113, 2131, 2311, 3112, 3121, 3211}
Noticed that the output is sorted, and there is no duplicate result.
Recursion is not necessary, even you can calculate any permutation directly, this solution uses generics to permute any array.
Here is a good information about this algorihtm.
For C# developers here is more useful implementation.
public static void main(String[] args) {
String word = "12345";
Character[] array = ArrayUtils.toObject(word.toCharArray());
long[] factorials = Permutation.getFactorials(array.length + 1);
for (long i = 0; i < factorials[array.length]; i++) {
Character[] permutation = Permutation.<Character>getPermutation(i, array, factorials);
printPermutation(permutation);
}
}
private static void printPermutation(Character[] permutation) {
for (int i = 0; i < permutation.length; i++) {
System.out.print(permutation[i]);
}
System.out.println();
}
This algorithm has O(N) time and space complexity to calculate each permutation.
public class Permutation {
public static <T> T[] getPermutation(long permutationNumber, T[] array, long[] factorials) {
int[] sequence = generateSequence(permutationNumber, array.length - 1, factorials);
T[] permutation = generatePermutation(array, sequence);
return permutation;
}
public static <T> T[] generatePermutation(T[] array, int[] sequence) {
T[] clone = array.clone();
for (int i = 0; i < clone.length - 1; i++) {
swap(clone, i, i + sequence[i]);
}
return clone;
}
private static int[] generateSequence(long permutationNumber, int size, long[] factorials) {
int[] sequence = new int[size];
for (int j = 0; j < sequence.length; j++) {
long factorial = factorials[sequence.length - j];
sequence[j] = (int) (permutationNumber / factorial);
permutationNumber = (int) (permutationNumber % factorial);
}
return sequence;
}
private static <T> void swap(T[] array, int i, int j) {
T t = array[i];
array[i] = array[j];
array[j] = t;
}
public static long[] getFactorials(int length) {
long[] factorials = new long[length];
long factor = 1;
for (int i = 0; i < length; i++) {
factor *= i <= 1 ? 1 : i;
factorials[i] = factor;
}
return factorials;
}
}
My implementation based on Mark Byers's description above:
static Set<String> permutations(String str){
if (str.isEmpty()){
return Collections.singleton(str);
}else{
Set <String> set = new HashSet<>();
for (int i=0; i<str.length(); i++)
for (String s : permutations(str.substring(0, i) + str.substring(i+1)))
set.add(str.charAt(i) + s);
return set;
}
}
Permutation of String:
public static void main(String args[]) {
permu(0,"ABCD");
}
static void permu(int fixed,String s) {
char[] chr=s.toCharArray();
if(fixed==s.length())
System.out.println(s);
for(int i=fixed;i<s.length();i++) {
char c=chr[i];
chr[i]=chr[fixed];
chr[fixed]=c;
permu(fixed+1,new String(chr));
}
}
Here is another simpler method of doing Permutation of a string.
public class Solution4 {
public static void main(String[] args) {
String a = "Protijayi";
per(a, 0);
}
static void per(String a , int start ) {
//bse case;
if(a.length() == start) {System.out.println(a);}
char[] ca = a.toCharArray();
//swap
for (int i = start; i < ca.length; i++) {
char t = ca[i];
ca[i] = ca[start];
ca[start] = t;
per(new String(ca),start+1);
}
}//per
}
A java implementation to print all the permutations of a given string considering duplicate characters and prints only unique characters is as follow:
import java.util.Set;
import java.util.HashSet;
public class PrintAllPermutations2
{
public static void main(String[] args)
{
String str = "AAC";
PrintAllPermutations2 permutation = new PrintAllPermutations2();
Set<String> uniqueStrings = new HashSet<>();
permutation.permute("", str, uniqueStrings);
}
void permute(String prefixString, String s, Set<String> set)
{
int n = s.length();
if(n == 0)
{
if(!set.contains(prefixString))
{
System.out.println(prefixString);
set.add(prefixString);
}
}
else
{
for(int i=0; i<n; i++)
{
permute(prefixString + s.charAt(i), s.substring(0,i) + s.substring(i+1,n), set);
}
}
}
}
String permutaions using Es6
Using reduce() method
const permutations = str => {
if (str.length <= 2)
return str.length === 2 ? [str, str[1] + str[0]] : [str];
return str
.split('')
.reduce(
(acc, letter, index) =>
acc.concat(permutations(str.slice(0, index) + str.slice(index + 1)).map(val => letter + val)),
[]
);
};
console.log(permutations('STR'));
In case anyone wants to generate the permutations to do something with them, instead of just printing them via a void method:
static List<int[]> permutations(int n) {
class Perm {
private final List<int[]> permutations = new ArrayList<>();
private void perm(int[] array, int step) {
if (step == 1) permutations.add(array.clone());
else for (int i = 0; i < step; i++) {
perm(array, step - 1);
int j = (step % 2 == 0) ? i : 0;
swap(array, step - 1, j);
}
}
private void swap(int[] array, int i, int j) {
int buffer = array[i];
array[i] = array[j];
array[j] = buffer;
}
}
int[] nVector = new int[n];
for (int i = 0; i < n; i++) nVector [i] = i;
Perm perm = new Perm();
perm.perm(nVector, n);
return perm.permutations;
}

c# number sequence

I have made this code to get from 2a3b to aabbb. This also has to apply when no numbers are given. Like aa2b => aabb.
The program is fully working but my problem is, it takes in alot of space. I think it is my split but my array will be like this if the input is 2a2b:
2
NULL
NULL
a
2
NULL
NULL
b
Does someone know what i'm doing wrong? Is it my split?
static void Main(string[] args)
{
string test = "";
int intNumber = 1;
string value = "2a2b";
string[] array = new string[20];
int count = 1;
array = Regex.Split(value, "(\\d{0,2})");
while (count < array.Length)
{
int num;
if (array[count] != "")
{
bool isNumeric = int.TryParse(array[count], out num);
if (!isNumeric)
{
test = test + string.fill(array[count], intNumber);
test = test + array[count];
Console.WriteLine(test);
intNumber = 1;
}
else
{
intNumber = num;
}
}
count++;
}
Console.WriteLine("woord:" + test);
Console.ReadLine();
How about using a simple Regex.Replace?
string input = "2a3bcccc";
string output = Regex.Replace(
input,
#"(\d+)(\w)",
m => new String(m.Groups[2].Value[0],int.Parse(m.Groups[1].Value)));
result : aabbbcccc
A simpler way to resolve your problem is to get rid of regex, the array creation would be like:
char[] array = value.ToArray();
The code, with the minor corrections due to the array and some improvements being a char array (intead of a string array):
static void Main(string[] args)
{
string test = "";
int intNumber = 1;
string value = "2a2b";
foreach (char c in value.ToArray())
{
int num;
bool isNumeric = int.TryParse(c.ToString(), out num);
if (!isNumeric)
{
test = test + new string(c, intNumber);
Console.WriteLine(test);
intNumber = 1;
}
else
{
intNumber = num;
}
}
Console.WriteLine("woord:" + test);
Console.ReadLine();
}
Quick test program works like a charm without using a regex.
const string value = "aa2b";
var result = "";
for (var i = 0; i < value.Length; i++)
{
int num;
if (Int32.TryParse(value.Substring(i, 1), out num))
{
for (var j = 0; j < num; j++)
{
result += value.Substring(i + 1, 1);
}
i++;
}
else
{
result += value.Substring(i, 1);
}
}
textBox1.AppendText("woord:" + result);
I generally try to avoid Regex, unless there is a complex pattern I need to verify.
Here is my solution to your problem:
string k = Console.ReadLine();
string t = "";
int count = 0, next;
for (int i = 0; i < k.Length; i++)
{
while (int.TryParse(k[i].ToString(), out next)) // Find the count of the next letter
{
count = count * 10 + next; // If count had a 2, and the next character is 3 (means we need to calculate 23), simply multiply the previous count by 10, and add the new digit
i++; // Move to the next character
}
t += new String(k[i], count > 0 ? count : 1); // Add the new sequence of letters to our string
count = 0; // Clear the current count
}
Console.WriteLine(t);
You can optimize the above, by using the StringBuilder class, but I think it's enough to understand the general solution first, rather than trying to find optimizations.

Find repeated count from input data stream...

I have tried several time but couldn’t find the way to solve my problem. Here my txt file shown in below.
695
748
555
695
748
852
639
748
I put the for loop to read the data and put them in to array. So now I want to filter repeat numbers from the input txt data. How can I have a count of repeated data.
static void Main(string[] args)
{
int x = 0;
int count = 0;
String[] line = File.ReadAllLines("C:/num.txt");
int n = line.Length;
String[] res = new String[n];
for (int i = 0; i < n; i++)
{
res[i] = line[i].Substring(x,x+8);
Console.WriteLine(res[i]);
}
Console.ReadLine();
}
You use GroupBy()
var result = res.GroupBy(x => x);
foreach(var g in result)
{
Console.WriteLine(g.Key + " count: " + g.Count());
}
Somehow you have to keep track of things you have seen before.
One way to do that is to place the numbers in a list the first time you see them. If a given number is already in the list, filter it out on the latter occurrences.
Here's an example with the list. Note that your code to fetch a substring of the input crashes.
static void Main(string[] args)
{
int x = 0;
int count = 0;
String[] line = new string[] { "123", "456", "123" }; //File.ReadAllLines("C:/num.txt");
int n = line.Length;
String[] res = new String[n];
List<string> observedValues = new List<string>();
for (int i = 0; i < n; i++)
{
string consider = line[i]; // This code crashes: .Substring(x, x + 8);
if (!observedValues.Contains(consider))
{
observedValues.Add(consider);
res[i] = consider;
Console.WriteLine(res[i]);
}
else
{
Console.WriteLine("Skipped value: " + consider + " on line " + i);
}
Console.ReadLine();
}
}
Another method is to pre-sort the input so that duplicates are adjacent.
Example:
(Note, you may want to remove white space in the input prior to sorting. Leading white space will break this code).
static void Main(string[] args)
{
int x = 0;
int count = 0;
String[] line = new string[] { "123", "456", "123" }; //File.ReadAllLines("C:/num.txt");
int n = line.Length;
String[] res = new String[n];
string previous = null;
Array.Sort(line); // Ensures that equal values are adjacent
for (int i = 0; i < n; i++)
{
string consider = line[i].Trim(); // Note leading whitespace will break this.
if (consider != previous)
{
previous = consider;
res[i] = consider;
Console.WriteLine(res[i]);
}
else
{
Console.WriteLine("Skipped value: " + consider + " on line " + i);
}
Console.ReadLine();
}
}
So now I want to filter repeat numbers from the input txt data.
if all you need is filter out duplicates you can use this:
String[] line = File.ReadAllLines("C:/num.txt");
var filteredLines = line.Distinct();
foreach (var item in filteredLines)
Console.WriteLine(item);

Function that generates strings according to input

I need a C# function that takes 2 strings as an input and return an array of all possible combinations of strings.
private string[] FunctionName(string string1, string string2)
{
//code
}
The strings input will be in the following format:
string1: basement
string2: a*fa
Now what I need is all combinations of possible strings using the characters in String2 (ignoring the * symbols), and keeping them in the same character position like this:
baaement, baaefent, baaefena, basefent, basemena, etc.
EDIT:
This is not homework. I need this function for a piece of a program I am doing.
The following is the code I have so far but it has some bugs.
static List<string> combinations = new List<string>();
static void Main(string[] args)
{
//include trimming of input string
string FoundRes = "incoming";
string AltRes = "*2*45*78";
List<int> loc = new List<int>();
string word = "";
for (int i = 0; i < AltRes.Length; i++)
{
if (AltRes[i] != '*')
{
loc.Add(i);
word += AltRes[i];
}
}
generate(word);
string[] aaa = InsertSymbol(FoundRes, loc.ToArray(), AltRes, combinations);
Console.WriteLine("input string: " + FoundRes);
Console.WriteLine("Substitute string: " + AltRes);
Console.WriteLine("============Output============");
for (int j = 0; j < aaa.Length; j++)
{
Console.WriteLine(aaa[j]);
}
Console.ReadKey();
}//
private static void generate(string word)
{
// Add this word to combination results set
if (!combinations.Contains(word))
combinations.Add(word);
// If the word has only one character, break the recursion
if (word.Length == 1)
{
if (!combinations.Contains(word))
combinations.Add(word);
return;
}
// Go through every position of the word
for (int i = 0; i < word.Length; i++)
{
// Remove the character at the current position
// call this method with the String
generate(word.Substring(0, i) + word.Substring(i + 1));
}
}//
private static string[] InsertSymbol(string orig, int[] loc, string alternative, List<string> Chars)
{
List<string> CombinationsList = new List<string>();
string temp = "";
for (int i = 0; i < Chars.Count; i++)
{
temp = orig;
for (int j = 0; j < Chars[i].Length; j++)
{
string token = Chars[i];
if (alternative.IndexOf(token[j]) == loc[j])
{
temp = temp.Remove(loc[j], 1);
temp = temp.Insert(loc[j], token[j].ToString());
// int pos = sourceSubst.IndexOf(token[j]);
// sourceSubst = sourceSubst.Remove(pos, 1);
// sourceSubst = sourceSubst.Insert(pos, ".");
}
else
{
temp = temp.Remove(alternative.IndexOf(token[j]), 1);
temp = temp.Insert(alternative.IndexOf(token[j]), token[j].ToString());
}
}
CombinationsList.Add(temp);
}
return CombinationsList.ToArray();
}//
It does sound like homework. As a suggestion, I would ignore the first parameter and focus on getting all possible permutations of the second string. What's turned off, what's turned on, etc. From that list, you can easily come up with a method of swapping out characters of the first string.
On that note, I'm in the uncomfortable position of having a function ready to go but not wanting to post it because of the homework implication. I'd sure love for somebody to review it, though! And technically, there's two functions involved because I just happened to already have a generic function to generate subsets lying around.
Edit: OP says it isn't homework, so here is what I came up with. It has been refactored a bit since the claim of two functions, and I'm more than open to criticism.
using System;
using System.Collections.Generic;
using System.Text;
class Program
{
static void Main()
{
string original = "phenomenal";
string pattern = "*xo**q*t**";
string[] replacements = StringUtility.GetReplacementStrings(original, pattern, true);
foreach (string replacement in replacements)
Console.WriteLine(replacement);
Console.Read();
}
public static class StringUtility
{
public static string[] GetReplacementStrings(string original, string pattern, bool includeOriginal)
{
// pattern and original might not be same length
int maxIndex = Math.Max(original.Length, pattern.Length);
List<int> positions = GetPatternPositions(pattern, maxIndex, '*');
List<int[]> subsets = ArrayUtility.CreateSubsets(positions.ToArray());
List<string> replacements = GenerateReplacements(original, pattern, subsets);
if (includeOriginal)
replacements.Insert(0, original);
return replacements.ToArray();
}
private static List<string> GenerateReplacements(string original, string pattern, List<int[]> subsets)
{
List<string> replacements = new List<string>();
char[] temp = new char[original.Length];
foreach (int[] subset in subsets)
{
original.CopyTo(0, temp, 0, original.Length);
foreach (int index in subset)
{
temp[index] = pattern[index];
}
replacements.Add(new string(temp));
}
return replacements;
}
private static List<int> GetPatternPositions(string pattern, int maxIndex, char excludeCharacter)
{
List<int> positions = new List<int>();
for (int i = 0; i < maxIndex; i++)
{
if (pattern[i] != excludeCharacter)
positions.Add(i);
}
return positions;
}
}
public static class ArrayUtility
{
public static List<T[]> CreateSubsets<T>(T[] originalArray)
{
List<T[]> subsets = new List<T[]>();
for (int i = 0; i < originalArray.Length; i++)
{
int subsetCount = subsets.Count;
subsets.Add(new T[] { originalArray[i] });
for (int j = 0; j < subsetCount; j++)
{
T[] newSubset = new T[subsets[j].Length + 1];
subsets[j].CopyTo(newSubset, 0);
newSubset[newSubset.Length - 1] = originalArray[i];
subsets.Add(newSubset);
}
}
return subsets;
}
}
}
since it's hopw work I'd only suggest some way to solve the problem rather than writing the code.
if you loop the second parameter every time you hit a letter you'll have to options either use the letter from the first argument or the letter from the second. collect all these optins together with the index. keep a list of the parts from the first argument that will never change. iterate thorugh those two lists to created all the possible permutations
Decimal to Binary converted code is stolon copied from here.
static void Main()
{
string string1 = "basement";
string string2 = "**a*f**a";
string[] result = GetCombinations(string1, string2);
foreach (var item in result)
{
Console.WriteLine(item);
}
}
private static string[] GetCombinations(string string1, string string2)
{
var list = new List<List<char>> { new List<char>(), new List<char>() };
var cl = new List<char>();
List<string> result = new List<string>();
for (int i = 0; i < string1.Length; i++)
{
if (string2[i] == '*')
{
cl.Add(string1[i]);
}
else
{
list[0].Add(string1[i]);
list[1].Add(string2[i]);
}
}
int l = list[0].Count;
for (int i = 0; i < (Int64)Math.Pow(2.0,l); i++)
{
string s = ToBinary(i, l);
string ss = "";
int x = 0;
int y = 0;
for (int I = 0; I < string1.Length; I++)
{
if (string2[I] == '*')
{
ss += cl[x].ToString();
x++;
}
else
{
ss += (list[int.Parse(s[y].ToString())][y]);
y++;
}
}
result.Add(ss);
}
return result.ToArray<string>();
}
public static string ToBinary(Int64 Decimal, int width)
{
Int64 BinaryHolder;
char[] BinaryArray;
string BinaryResult = "";
while (Decimal > 0)
{
BinaryHolder = Decimal % 2;
BinaryResult += BinaryHolder;
Decimal = Decimal / 2;
}
BinaryArray = BinaryResult.ToCharArray();
Array.Reverse(BinaryArray);
BinaryResult = new string(BinaryArray);
var d = width - BinaryResult.Length;
if (d != 0) for (int i = 0; i < d; i++) BinaryResult = "0" + BinaryResult;
return BinaryResult;
}
which password cracker do you want to program? :)
how about
if string2 contains '*'
foreach(char ch in string1)
replace first * with ch,
execute FunctionName
else
print string2

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