0 -> 'a', 1->'b', ..., 11 -> 'l', ..., 25->'z'. 计算一个数有多少种不同的翻译方法。
分析:记f[i]表示从第i位起的不同翻译数目。
f[i] = f[i + 1] + g(i, i + 1) * f[i + 2]. g(i, i + 1)拼起来的数字如果在10-25之间,则为1,否则为0.
1 int GetTranslationCount(int number) { 2 if (number < 0) { 3 return 0; 4 } 5 string numberInstring = to_string(number); 6 return GetTranslationCount(numberInstring); 7 } 8 9 int GetTranslationCount(const string& number) { 10 int len = number.length(); 11 int *count = new int[length]; 12 int count = 0; 13 for (int i = len - 1; i >= 0; i--) { 14 count = 0; 15 if (i < len - 1) { 16 count = counts[i + 1]; 17 } else { 18 count = 1; 19 } 20 if (i < len - 1) { 21 int digit1 = numbers[i] - '0'; 22 int digit2 = numbers[i + 1] - '0'; 23 int converted = digit1 * 10 + digit2; 24 if (converted >= 10 && converted <= 25) { 25 if (i < len - 2) { 26 count += counts[i + 2]; 27 } else { 28 count += 1; 29 } 30 } 31 } 32 counts[i] = count; 33 } 34 count = counts[0]; 35 delete[] counts; 36 return count; 37 }