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8

Use any and a generator expression: any(x in nums for x in str1) Below is a demonstration: >>> str1 = 'Wazzup1' >>> nums = '1234567890' >>> any(x in nums for x in str1) True >>> Note that the above is for when you have a custom set of numbers to test for. However, if you are just looking for digits, then a cleaner ...


7

Why not use div until it's no longer greater than 10? digitCount :: Integer -> Int digitCount = go 1 . abs where go ds n = if n >= 10 then go (ds + 1) (n `div` 10) else ds This is O(n) complexity, where n is the number of digits, and you could speed it up easily by checking against 1000, then 100, then 10, but this will probably be ...


6

Here is one way to do it: Convert it to String Take the substring without the first "digit" Convert it to int Code: public static void main(String[] args) { int x = 123456789; String x_str = Integer.toString(x); int new_x = Integer.parseInt(x_str.substring(1)); System.out.println(new_x); } Output: 23456789 Note: This can be ...


6

Start by dividing the number by ten, there you have the first number. int i = 99; int oneNumber = i / 10; You really should try to get the next one by yourself.


5

Try this: values = ['2', '3', '1', '4', '1', '4', '2', '3', '3', '2', '4', '1', '4', '1', '3', '2'] value = ''.join(values) If you want to have an int value, you can cast the resulting string to int: value = int(value)


4

result = int(''.join(['1','2'])) See this question.


4

str objects have an isdigit method which accomplishes one of your tasks. From a broader perspective, it's better to just try it and see: def digit(s): try: int(s) return True except ValueError: return False For example, " 1234 ".isdigit() is False (there are spaces), but python can convert it to an int, so my digit ...


4

try this n = n % (int) Math.pow(10, (int) Math.log10(n));


4

#include <iostream> #include <iomanip> using namespace std; auto main() -> int { cout << setprecision( 4 ); cout << 1.23456 << endl; // -> "1.235" cout << 1.2 << endl; // -> "1.2" } It's that simple: it's what you get by default. C++03 lacked a manipulator for resetting to ...


3

Try this, assuming that array is a char[]: if (array[9] == 'x') { array[9] = 10; } By the way, the code you posted is not valid for Java. This is not an operator: ===, we must use = for assignment and the trailing ; after the last } is unnecessary.


3

First you need to start with the rule that a number is divisble by three if and only if the sum of its digits is divisible by three (proving this takes a little number theory, but it helps to see that 9, 99, 999 etc. are all multiples of three and therefore 1, 10, 100, 1000, etc. all contribute the same amount to the remainder of a number when divided by ...


3

Use the any function, which returns a Boolean which is true iff at least one of the elements in the iterable is true. string = 'Wazzup1' result = any(c.isdigit() for c in string) print(result) # True


3

Regular expression to detect exactly “071-XXXXXXX” where X is a digit Here your are: Regex regEx = new Regex(@"^071-[0-9]{7}$"); But it will not execute // do something for your sample code, because it's missing the hyphen.


3

Use the class BigInteger, it can handle arbitrary long numbers (that is, as big as computer memory allows). Link: http://docs.oracle.com/javase/7/docs/api/java/math/BigInteger.html


3

Here's one option of doing what @Ronald has proposed: specify a formatting vector, and then mapply it to your data frame. Note that all columns are now characters. sprintf_formats <- c(rep("%.2f", 3), rep("%.2e", 2), "%.2f") Ind_B_sprintf <- Ind_B Ind_B_sprintf[] <- mapply(sprintf, sprintf_formats, Ind_B) Ind_B_sprintf # logFC AveExpr t ...


3

First assume that if the given number contains repeated digits, we require that the number and product of the number and a multiplier contain the same number of each digit that appears in either number: def same_digits?(nbr, mult) nbr.to_s.chars.sort == (nbr * mult).to_s.chars.sort end same_digits?(125874,2) #=> true (125874*2 => 251748) ...


3

Do one thing: store the default document some where final JTextField textField = new JTextField(); final Document defaultDocument=textField.getDocument(); On button click first set the document back to default to disable the validation on textfield and then set the default text btn.addActionListener(new ActionListener() { @Override public void ...


3

You can use the modulo operator n % 10. For example: 18 % 10 # => 8 9 % 10 # => 9 0 % 10 # => 0


2

I assume the intention is to do it from n = 5368 so you will need a loop to pull of each individual digit and compare it to the current min/max int n = 5368; int result = 0; if (n > 0) { int min = Integer.MAX_VALUE; int max = Integer.MIN_VALUE; while (n > 0) { int digit = n % 10; max = Math.max(max, digit); min = ...


2

You can use set function on the XTickLabel property of the current axis. An example is this: x=[999 1000 1001 1002 1003]; y=3*x; plot(x,y); set(gca, 'XTick', x, 'XTickLabel', sprintf('%4.0f|', x)); in your case you can do this: x=linspace(min(frequency),max(frequency),5); figure,plot(frequency,temperature); set(gca, 'XTick', x, 'XTickLabel', ...


2

There are many ways to solve this. I like most the solution that builds the mirror number and checks whether it is identical to the original (even though, it is arguably not the most efficient way). The code should be something like: bool isPalindrom(int n) { int original = n; int mirror = 0; while (n) { mirror = mirror * 10 + n % 10; n /= 10; ...


2

Since tokenHolder is an array of char *, when you index tokenHolder[i], you are passing a char * to isdigit(), and isdigit() does not accept pointers. You are probably missing a second loop, or you need: if (isdigit(tokenHolder[i][0])) printf("working\n"); Don't forget the newline. Your test in the loop is odd too; you normally spell 'null pointer' ...


2

You're declaring an array of pointer to char, not a simple array of just char. You also need to initialise the array or assign it some value later. If you read the value of a member of the array that has not been initialised or assigned to, you are invoking undefined behaviour. char tokenHolder[2500] = {0}; for(int i = 0; tokenHolder[i] != '\0'; ++i){ ...


2

Using substr is faster than using a math function for the simple reason that there is lesser processing required in the first call. The second call has a function invocation, power and modulus calculations. The first one just retrieves a number from a sequence position. The difference however would be negligible unless you are a certain someone who goes by ...


2

If you just want to find the first number with at least digitCount digits in a list, you could test each number in O(1) by checking if fibBeingTested >= 10digitCount - 1. This works since 10digitCount - 1 is the lowest number with at least digitCount digits: import Data.List (find) fibs :: [Integer] -- ... findFib :: Int -> Integer findFib digitCount = ...


2

Let's look at a solution in pseudo-code so we don't get bogged down in specifics—especially as I may have misunderstood the spec. As I understand it, the combinations you want to generate will be built around pivot points. Identify each pivot and the longest "wings". To do so, build a regex of that matches (G1)(Pivot)(G2), where captures G1 and G2 are the ...


2

Please check the reference for fprintf. You can find it in the format specifier: http://www.mathworks.nl/help/matlab/ref/fprintf.html Probably the format you desire is not available in MATLAB so you can create your own! First use log 10 to obtain the power (assuming): Assuming a number X. % Number to convert X = 3867; % Number of decimals after comma ...


2

try this string phoneNumber = "071-2954900"; Regex regEx = new Regex(@"071[-][\d]{7}"); if (regEx.IsMatch(phoneNumber)) { //do something } check here


2

void split(int input, int& first, int& second) { first = input / 10; second = input % 10; }


2

Using all with generator expression, you don't need to count, compare length: >>> [i for i in x if all(j.isdigit() or j in string.punctuation for j in i)] ['12,523', '3.46'] BTW, above and OP's code will include strings that contains only punctuations. >>> x = [',,,', '...', '123', 'not number'] >>> [i for i in x if ...



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