#practiceLinkDiv { görüntü: yok !önemli; }'n' ve 'm' gibi iki tam sayı verildiğinde, [n m] aralığındaki tüm adım sayılarını bulun. Bir numara çağrılıyor adım numarası tüm bitişik rakamların mutlak farkı 1 ise. 321 bir Adım Numarası iken 421 değildir.
Örnekler:
Input : n = 0 m = 21 Output : 0 1 2 3 4 5 6 7 8 9 10 12 21 Input : n = 10 m = 15 Output : 10 12Recommended Practice Mutlak farkı olan sayılar Deneyin!
Yöntem 1: Kaba Kuvvet Yaklaşımı
Bu yöntemde, n'den m'ye kadar tüm tamsayıları yinelemek ve bunun bir adım sayısı olup olmadığını kontrol etmek için kaba kuvvet yaklaşımı kullanılır.
// A C++ program to find all the Stepping Number in [n m] #include
// A Java program to find all the Stepping Number in [n m] class Main { // This Method checks if an integer n // is a Stepping Number public static boolean isStepNum(int n) { // Initialize prevDigit with -1 int prevDigit = -1; // Iterate through all digits of n and compare // difference between value of previous and // current digits while (n > 0) { // Get Current digit int curDigit = n % 10; // Single digit is consider as a // Stepping Number if (prevDigit != -1) { // Check if absolute difference between // prev digit and current digit is 1 if (Math.abs(curDigit-prevDigit) != 1) return false; } n /= 10; prevDigit = curDigit; } return true; } // A brute force approach based function to find all // stepping numbers. public static void displaySteppingNumbers(int nint m) { // Iterate through all the numbers from [NM] // and check if it is a stepping number. for (int i = n; i <= m; i++) if (isStepNum(i)) System.out.print(i+ ' '); } // Driver code public static void main(String args[]) { int n = 0 m = 21; // Display Stepping Numbers in the range [nm] displaySteppingNumbers(nm); } }
# A Python3 program to find all the Stepping Number in [n m] # This function checks if an integer n is a Stepping Number def isStepNum(n): # Initialize prevDigit with -1 prevDigit = -1 # Iterate through all digits of n and compare difference # between value of previous and current digits while (n): # Get Current digit curDigit = n % 10 # Single digit is consider as a # Stepping Number if (prevDigit == -1): prevDigit = curDigit else: # Check if absolute difference between # prev digit and current digit is 1 if (abs(prevDigit - curDigit) != 1): return False prevDigit = curDigit n //= 10 return True # A brute force approach based function to find all # stepping numbers. def displaySteppingNumbers(n m): # Iterate through all the numbers from [NM] # and check if it’s a stepping number. for i in range(n m + 1): if (isStepNum(i)): print(i end = ' ') # Driver code if __name__ == '__main__': n m = 0 21 # Display Stepping Numbers in # the range [n m] displaySteppingNumbers(n m) # This code is contributed by mohit kumar 29
// A C# program to find all // the Stepping Number in [n m] using System; class GFG { // This Method checks if an // integer n is a Stepping Number public static bool isStepNum(int n) { // Initialize prevDigit with -1 int prevDigit = -1; // Iterate through all digits // of n and compare difference // between value of previous // and current digits while (n > 0) { // Get Current digit int curDigit = n % 10; // Single digit is considered // as a Stepping Number if (prevDigit != -1) { // Check if absolute difference // between prev digit and current // digit is 1 if (Math.Abs(curDigit - prevDigit) != 1) return false; } n /= 10; prevDigit = curDigit; } return true; } // A brute force approach based // function to find all stepping numbers. public static void displaySteppingNumbers(int n int m) { // Iterate through all the numbers // from [NM] and check if it is // a stepping number. for (int i = n; i <= m; i++) if (isStepNum(i)) Console.Write(i+ ' '); } // Driver code public static void Main() { int n = 0 m = 21; // Display Stepping Numbers // in the range [nm] displaySteppingNumbers(n m); } } // This code is contributed by nitin mittal.
<script> // A Javascript program to find all the Stepping Number in [n m] // This function checks if an integer n is a Stepping Number function isStepNum(n) { // Initialize prevDigit with -1 let prevDigit = -1; // Iterate through all digits of n and compare difference // between value of previous and current digits while (n > 0) { // Get Current digit let curDigit = n % 10; // Single digit is consider as a // Stepping Number if (prevDigit == -1) prevDigit = curDigit; else { // Check if absolute difference between // prev digit and current digit is 1 if (Math.abs(prevDigit - curDigit) != 1) return false; } prevDigit = curDigit; n = parseInt(n / 10 10); } return true; } // A brute force approach based function to find all // stepping numbers. function displaySteppingNumbers(n m) { // Iterate through all the numbers from [NM] // and check if it’s a stepping number. for (let i = n; i <= m; i++) if (isStepNum(i)) document.write(i + ' '); } let n = 0 m = 21; // Display Stepping Numbers in // the range [n m] displaySteppingNumbers(n m); // This code is contributed by mukesh07. </script>
Çıkış
0 1 2 3 4 5 6 7 8 9 10 12 21
Yöntem 2: BFS/DFS'yi kullanma
Fikir bir kullanmaktır Genişlik Öncelikli Arama / Derinlik İlk Arama geçiş.
Grafik nasıl oluşturulur?
Grafikteki her düğüm bir adım sayısını temsil eder; V, U'dan dönüştürülebilirse, U düğümünden V'ye yönlendirilmiş bir kenar olacaktır. (U ve V Adım Sayılarıdır) Bir V Adım Numarası, U'dan aşağıdaki şekilde dönüştürülebilir.
son Hane U'nun son rakamını ifade eder (yani U % 10)
Bitişik bir sayı V şunlar olabilir:
- U*10 + son Hane + 1 (Komşu A)
- U*10 + son Hane – 1 (Komşu B)
Yukarıdaki işlemler uygulanarak U'ya yeni bir rakam eklenir, bu ya son Hane-1 ya da son Hane + 1 olur, böylece U'dan oluşturulan yeni V sayısı aynı zamanda bir Adım Sayısıdır.
Bu nedenle her Düğümün en fazla 2 komşu Düğümü olacaktır.
Kenar Durumları: U'nun son rakamı ne zaman veya 9
dize ve alt dize
- Her tek haneli sayı bir adım Sayısı olarak kabul edilir, böylece her basamak için bfs geçişi o basamaktan başlayan tüm adım sayılarını verecektir.
- [09]'daki tüm sayılar için bfs/dfs geçişi yapın.
Kaynak/başlangıç düğümü ne olacak?
Not: Düğüm 0 için, BFS geçişi sırasında komşuları keşfetmeye gerek yoktur çünkü bu, 01 012 010'a yol açacaktır ve bunlar, düğüm 1'den başlayarak BFS geçişi tarafından kapsanacaktır.
0'dan 21'e kadar tüm adım sayılarını bulma örneği
-> 0 is a stepping Number and it is in the range so display it. -> 1 is a Stepping Number find neighbors of 1 i.e. 10 and 12 and push them into the queue How to get 10 and 12? Here U is 1 and last Digit is also 1 V = 10 + 0 = 10 ( Adding lastDigit - 1 ) V = 10 + 2 = 12 ( Adding lastDigit + 1 ) Then do the same for 10 and 12 this will result into 101 123 121 but these Numbers are out of range. Now any number transformed from 10 and 12 will result into a number greater than 21 so no need to explore their neighbors. -> 2 is a Stepping Number find neighbors of 2 i.e. 21 23. -> 23 is out of range so it is not considered as a Stepping Number (Or a neighbor of 2) The other stepping numbers will be 3 4 5 6 7 8 9.
BFS tabanlı Çözüm:
C++// A C++ program to find all the Stepping Number from N=n // to m using BFS Approach #include
// A Java program to find all the Stepping Number in // range [n m] import java.util.*; class Main { // Prints all stepping numbers reachable from num // and in range [n m] public static void bfs(int nint mint num) { // Queue will contain all the stepping Numbers Queue<Integer> q = new LinkedList<Integer> (); q.add(num); while (!q.isEmpty()) { // Get the front element and pop from // the queue int stepNum = q.poll(); // If the Stepping Number is in // the range [nm] then display if (stepNum <= m && stepNum >= n) { System.out.print(stepNum + ' '); } // If Stepping Number is 0 or greater // then m no need to explore the neighbors if (stepNum == 0 || stepNum > m) continue; // Get the last digit of the currently // visited Stepping Number int lastDigit = stepNum % 10; // There can be 2 cases either digit // to be appended is lastDigit + 1 or // lastDigit - 1 int stepNumA = stepNum * 10 + (lastDigit- 1); int stepNumB = stepNum * 10 + (lastDigit + 1); // If lastDigit is 0 then only possible // digit after 0 can be 1 for a Stepping // Number if (lastDigit == 0) q.add(stepNumB); // If lastDigit is 9 then only possible // digit after 9 can be 8 for a Stepping // Number else if (lastDigit == 9) q.add(stepNumA); else { q.add(stepNumA); q.add(stepNumB); } } } // Prints all stepping numbers in range [n m] // using BFS. public static void displaySteppingNumbers(int nint m) { // For every single digit Number 'i' // find all the Stepping Numbers // starting with i for (int i = 0 ; i <= 9 ; i++) bfs(n m i); } //Driver code public static void main(String args[]) { int n = 0 m = 21; // Display Stepping Numbers in // the range [nm] displaySteppingNumbers(nm); } }
# A Python3 program to find all the Stepping Number from N=n # to m using BFS Approach # Prints all stepping numbers reachable from num # and in range [n m] def bfs(n m num) : # Queue will contain all the stepping Numbers q = [] q.append(num) while len(q) > 0 : # Get the front element and pop from the queue stepNum = q[0] q.pop(0); # If the Stepping Number is in the range # [n m] then display if (stepNum <= m and stepNum >= n) : print(stepNum end = ' ') # If Stepping Number is 0 or greater than m # no need to explore the neighbors if (num == 0 or stepNum > m) : continue # Get the last digit of the currently visited # Stepping Number lastDigit = stepNum % 10 # There can be 2 cases either digit to be # appended is lastDigit + 1 or lastDigit - 1 stepNumA = stepNum * 10 + (lastDigit- 1) stepNumB = stepNum * 10 + (lastDigit + 1) # If lastDigit is 0 then only possible digit # after 0 can be 1 for a Stepping Number if (lastDigit == 0) : q.append(stepNumB) #If lastDigit is 9 then only possible #digit after 9 can be 8 for a Stepping #Number elif (lastDigit == 9) : q.append(stepNumA) else : q.append(stepNumA) q.append(stepNumB) # Prints all stepping numbers in range [n m] # using BFS. def displaySteppingNumbers(n m) : # For every single digit Number 'i' # find all the Stepping Numbers # starting with i for i in range(10) : bfs(n m i) # Driver code n m = 0 21 # Display Stepping Numbers in the # range [nm] displaySteppingNumbers(n m) # This code is contributed by divyeshrabadiya07.
// A C# program to find all the Stepping Number in // range [n m] using System; using System.Collections.Generic; public class GFG { // Prints all stepping numbers reachable from num // and in range [n m] static void bfs(int n int m int num) { // Queue will contain all the stepping Numbers Queue<int> q = new Queue<int>(); q.Enqueue(num); while(q.Count != 0) { // Get the front element and pop from // the queue int stepNum = q.Dequeue(); // If the Stepping Number is in // the range [nm] then display if (stepNum <= m && stepNum >= n) { Console.Write(stepNum + ' '); } // If Stepping Number is 0 or greater // then m no need to explore the neighbors if (stepNum == 0 || stepNum > m) continue; // Get the last digit of the currently // visited Stepping Number int lastDigit = stepNum % 10; // There can be 2 cases either digit // to be appended is lastDigit + 1 or // lastDigit - 1 int stepNumA = stepNum * 10 + (lastDigit- 1); int stepNumB = stepNum * 10 + (lastDigit + 1); // If lastDigit is 0 then only possible // digit after 0 can be 1 for a Stepping // Number if (lastDigit == 0) q.Enqueue(stepNumB); // If lastDigit is 9 then only possible // digit after 9 can be 8 for a Stepping // Number else if (lastDigit == 9) q.Enqueue(stepNumA); else { q.Enqueue(stepNumA); q.Enqueue(stepNumB); } } } // Prints all stepping numbers in range [n m] // using BFS. static void displaySteppingNumbers(int nint m) { // For every single digit Number 'i' // find all the Stepping Numbers // starting with i for (int i = 0 ; i <= 9 ; i++) bfs(n m i); } // Driver code static public void Main () { int n = 0 m = 21; // Display Stepping Numbers in // the range [nm] displaySteppingNumbers(nm); } } // This code is contributed by avanitrachhadiya2155
<script> // A Javascript program to find all // the Stepping Number in // range [n m] // Prints all stepping numbers // reachable from num // and in range [n m] function bfs(nmnum) { // Queue will contain all the // stepping Numbers let q = []; q.push(num); while (q.length!=0) { // Get the front element and pop from // the queue let stepNum = q.shift(); // If the Stepping Number is in // the range [nm] then display if (stepNum <= m && stepNum >= n) { document.write(stepNum + ' '); } // If Stepping Number is 0 or greater // then m no need to explore the neighbors if (stepNum == 0 || stepNum > m) continue; // Get the last digit of the currently // visited Stepping Number let lastDigit = stepNum % 10; // There can be 2 cases either digit // to be appended is lastDigit + 1 or // lastDigit - 1 let stepNumA = stepNum * 10 + (lastDigit- 1); let stepNumB = stepNum * 10 + (lastDigit + 1); // If lastDigit is 0 then only possible // digit after 0 can be 1 for a Stepping // Number if (lastDigit == 0) q.push(stepNumB); // If lastDigit is 9 then only possible // digit after 9 can be 8 for a Stepping // Number else if (lastDigit == 9) q.push(stepNumA); else { q.push(stepNumA); q.push(stepNumB); } } } // Prints all stepping numbers in range [n m] // using BFS. function displaySteppingNumbers(nm) { // For every single digit Number 'i' // find all the Stepping Numbers // starting with i for (let i = 0 ; i <= 9 ; i++) bfs(n m i); } // Driver code let n = 0 m = 21; // Display Stepping Numbers in // the range [nm] displaySteppingNumbers(nm); // This code is contributed by unknown2108 </script>
Çıkış
0 1 10 12 2 21 3 4 5 6 7 8 9
DFS tabanlı Çözüm:
C++// A C++ program to find all the Stepping Numbers // in range [n m] using DFS Approach #include
// A Java program to find all the Stepping Numbers // in range [n m] using DFS Approach import java.util.*; class Main { // Method display's all the stepping numbers // in range [n m] public static void dfs(int nint mint stepNum) { // If Stepping Number is in the // range [nm] then display if (stepNum <= m && stepNum >= n) System.out.print(stepNum + ' '); // If Stepping Number is 0 or greater // than m then return if (stepNum == 0 || stepNum > m) return ; // Get the last digit of the currently // visited Stepping Number int lastDigit = stepNum % 10; // There can be 2 cases either digit // to be appended is lastDigit + 1 or // lastDigit - 1 int stepNumA = stepNum*10 + (lastDigit-1); int stepNumB = stepNum*10 + (lastDigit+1); // If lastDigit is 0 then only possible // digit after 0 can be 1 for a Stepping // Number if (lastDigit == 0) dfs(n m stepNumB); // If lastDigit is 9 then only possible // digit after 9 can be 8 for a Stepping // Number else if(lastDigit == 9) dfs(n m stepNumA); else { dfs(n m stepNumA); dfs(n m stepNumB); } } // Prints all stepping numbers in range [n m] // using DFS. public static void displaySteppingNumbers(int n int m) { // For every single digit Number 'i' // find all the Stepping Numbers // starting with i for (int i = 0 ; i <= 9 ; i++) dfs(n m i); } // Driver code public static void main(String args[]) { int n = 0 m = 21; // Display Stepping Numbers in // the range [nm] displaySteppingNumbers(nm); } }
# A Python3 program to find all the Stepping Numbers # in range [n m] using DFS Approach # Prints all stepping numbers reachable from num # and in range [n m] def dfs(n m stepNum) : # If Stepping Number is in the # range [nm] then display if (stepNum <= m and stepNum >= n) : print(stepNum end = ' ') # If Stepping Number is 0 or greater # than m then return if (stepNum == 0 or stepNum > m) : return # Get the last digit of the currently # visited Stepping Number lastDigit = stepNum % 10 # There can be 2 cases either digit # to be appended is lastDigit + 1 or # lastDigit - 1 stepNumA = stepNum * 10 + (lastDigit - 1) stepNumB = stepNum * 10 + (lastDigit + 1) # If lastDigit is 0 then only possible # digit after 0 can be 1 for a Stepping # Number if (lastDigit == 0) : dfs(n m stepNumB) # If lastDigit is 9 then only possible # digit after 9 can be 8 for a Stepping # Number elif(lastDigit == 9) : dfs(n m stepNumA) else : dfs(n m stepNumA) dfs(n m stepNumB) # Method displays all the stepping # numbers in range [n m] def displaySteppingNumbers(n m) : # For every single digit Number 'i' # find all the Stepping Numbers # starting with i for i in range(10) : dfs(n m i) n m = 0 21 # Display Stepping Numbers in # the range [nm] displaySteppingNumbers(n m) # This code is contributed by divyesh072019.
// A C# program to find all the Stepping Numbers // in range [n m] using DFS Approach using System; public class GFG { // Method display's all the stepping numbers // in range [n m] static void dfs(int n int m int stepNum) { // If Stepping Number is in the // range [nm] then display if (stepNum <= m && stepNum >= n) Console.Write(stepNum + ' '); // If Stepping Number is 0 or greater // than m then return if (stepNum == 0 || stepNum > m) return ; // Get the last digit of the currently // visited Stepping Number int lastDigit = stepNum % 10; // There can be 2 cases either digit // to be appended is lastDigit + 1 or // lastDigit - 1 int stepNumA = stepNum*10 + (lastDigit - 1); int stepNumB = stepNum*10 + (lastDigit + 1); // If lastDigit is 0 then only possible // digit after 0 can be 1 for a Stepping // Number if (lastDigit == 0) dfs(n m stepNumB); // If lastDigit is 9 then only possible // digit after 9 can be 8 for a Stepping // Number else if(lastDigit == 9) dfs(n m stepNumA); else { dfs(n m stepNumA); dfs(n m stepNumB); } } // Prints all stepping numbers in range [n m] // using DFS. public static void displaySteppingNumbers(int n int m) { // For every single digit Number 'i' // find all the Stepping Numbers // starting with i for (int i = 0 ; i <= 9 ; i++) dfs(n m i); } // Driver code static public void Main () { int n = 0 m = 21; // Display Stepping Numbers in // the range [nm] displaySteppingNumbers(nm); } } // This code is contributed by rag2127.
<script> // A Javascript program to find all the Stepping Numbers // in range [n m] using DFS Approach // Method display's all the stepping numbers // in range [n m] function dfs(n m stepNum) { // If Stepping Number is in the // range [nm] then display if (stepNum <= m && stepNum >= n) document.write(stepNum + ' '); // If Stepping Number is 0 or greater // than m then return if (stepNum == 0 || stepNum > m) return ; // Get the last digit of the currently // visited Stepping Number let lastDigit = stepNum % 10; // There can be 2 cases either digit // to be appended is lastDigit + 1 or // lastDigit - 1 let stepNumA = stepNum*10 + (lastDigit-1); let stepNumB = stepNum*10 + (lastDigit+1); // If lastDigit is 0 then only possible // digit after 0 can be 1 for a Stepping // Number if (lastDigit == 0) dfs(n m stepNumB); // If lastDigit is 9 then only possible // digit after 9 can be 8 for a Stepping // Number else if(lastDigit == 9) dfs(n m stepNumA); else { dfs(n m stepNumA); dfs(n m stepNumB); } } // Prints all stepping numbers in range [n m] // using DFS. function displaySteppingNumbers(n m) { // For every single digit Number 'i' // find all the Stepping Numbers // starting with i for (let i = 0 ; i <= 9 ; i++) dfs(n m i); } // Driver code let n = 0 m = 21; // Display Stepping Numbers in // the range [nm] displaySteppingNumbers(nm); // This code is contributed by ab2127 </script>
Çıkış
0 1 10 12 2 21 3 4 5 6 7 8 9
Zaman Karmaşıklığı:O(N log N)
Uzay Karmaşıklığı:O(N) burada N, aralık içindeki adım sayılarının sayısıdır.