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6

x % y gives the remainder of x / y. The result can never be y, because if it was, then that would mean y could go into x one more time, and the remainder would actually be zero, because y divides x evenly. So to answer your question: Am I just unlucky, or am I not understanding something ? You're misunderstanding something. rand() % value gives a ...


4

The code in that post is basically crap. Teaching people to write code while simultaneously using hacks is garbage. Yes, hacks have their place (optimization), but educators should demonstrate solutions that don't depend on them. Hack 1 // the 0 isn't even relevant here. it should be null Array.apply(0, Array(1 + ...)) Hack 2 // This is just ...


3

Use String#split, Array#map it to get Number and then Array#reduce var value = "66+88"; var result = value.split('+').map(Number).reduce(function(a, b) { return a + b; }, 0); console.log(result);


3

Convert your string to array, And use your code as shown below. $string = "256,68,4,257,904,245,678"; $arr = explode(",", $string); if (in_array(257, $arr)){ echo "Found"; }else{ echo "Not"; }


3

rand() % 100 returns number between 0 and 99. This is 100 NUMBERs but includes 0 and does not include 100. A good way to think about this is a random number (1000) % 100 = 0. If I mod a random number with the number N then there is no way to get the number N back. Along those lines pos = rand() % baseWord.size(); will never return pos = baseWord.size() ...


2

When you invoke String.split you will get a String[]. In Java 8+, you could stream it (and map to int) and then convert to an array like String str = "1 2 3"; int[] arr = Stream.of(str.split("\\s+")).mapToInt(Integer::parseInt).toArray(); Also, sum+=Math.pow(3,i); is 3i, I believe you wanted sum+=(i * i * i); or sum+=Math.pow(i, 3); Putting that ...


2

You can use match instead of split like ((?:\d+(?:\.\d+)?)\/(?:\d+(?:\.\d+)?))|((?:[+-]?\d+(?:\.\d+)?)?[+-]?(?:\d+(?:\.\d+)?)?i)|([+-]?\d+(?:\.\d+)?) Regex Breakdown ((?:\d+(?:\.\d+)?)\/(?:\d+(?:\.\d+)?)) #For fractional part | ((?:[+-]?\d+(?:\.\d+)?)?[+-]?(?:\d+(?:\.\d+)?)?i) #For complex number | ([+-]?\d+(?:\.\d+)?) #For any numbers Further ...


2

Assuming that your inputs are always integer values, you can use the divide and mod operators to do this. The following should work: a = num // dem b = num % dem print 'The mixed number is {} and {}/{}'.format(a, b, dem)


1

I guess you just misunderstood the modulo operator. a % b, with a and b any integer, will return values between 0 and b-1 (inclusive). As for your HELLO example, it will only return values between 0 and 4, therefore will never encounter out of bound error.


1

You can use eval for this: var value = eval("66+88"); But you need to be careful, especially if this string come's from user. This function will evaluate input string as JavaScript and can damage your other scripts or can be used for hacker attacks. Use it at your own risk!


1

From docs: Throws: NumberFormatException - if the string does not contain a parsable integer. The empty String "" is not a parsable integer, so your code will always produce a NumberFormatException if no value is entered. You can create a custom IntegerField, which only allows integers as input, but adding Document to a JTextField. Create a Document ...


1

Your biggest problem is that you're parsing the text field contents immediately after creating the field, and this makes no sense. Wouldn't it make much more sense to parse the data after allowing the user the opportunity to enter data, preferably within a listener of some sort, often an ActionListener? And so my recommendations are two-fold Don't try to ...


1

To do it as non-array formula I suggest something like this in D1: =IF((C1="text")*(COUNTIF(C$1:C1,"text")=5),SUMIF(C$1:C1,"text",B$1:B1),"") And copy down.


1

With data in B1 through C20 In D1 enter: =IF(C1="text",1,"") and in D2 enter: =IF(AND(C2="text",COUNT($D$1:D1)<5),1,"") and copy down. Then in another cell enter: =SUMPRODUCT(D:D,B:B)


1

All answers assumed you have an integer number. But generally, you can first get the integer form using the function floor from <cmath>, i.e. #include <cmath> int getlastdigit(double number) { long long n = (long long)floor(number); while(n > 9) n /= 10; return n; }


1

Assuming a is the input number. #include <iostream> #include <cmath> using namespace std; int main() { long a = 42556; long num; num=floor(log10(a))+1; //cout<<num<<" "<<"\n"; //prints the number of digits in the number cout<<a/(int)pow(10,num-1)<<"\n"; //prints the first digit ...


1

You could keep on dividing it by 10 until you've reached the last digit: int lastDigit(int n) { n = abs(n); // Handle negative numbers int ret = n; while (n > 0) { ret = n % 10; n /= 10; } return ret; }


1

Iteratively divide by 10 until the result is less than 10. num = 42556 while num > 9 num = num / 10


1

Pure Ruby way, try String#insert > "0123456789".insert(4, '-').insert(-5, '-') #=> "0123-45-6789" > "01234567899".insert(4, '-').insert(-5, '-') #=> "0123-456-7899" Note: The negative numbers mean that you are counting from the end of the string and positive number means that you are counting from the beginning of the string


1

If you are working in a Rails project then there is a built-in view helper which can do most of the leg-work for you: http://api.rubyonrails.org/classes/ActionView/Helpers/NumberHelper.html#method-i-number_to_phone number_to_phone(5551234) # => 555-1234 number_to_phone("5551234") # ...


1

'0123456789'.gsub(/^(\d{4})(\d+)(\d{4})$/, '\1-\2-\3') # => "0123-45-6789" '01234567899'.gsub(/^(\d{4})(\d+)(\d{4})$/, '\1-\2-\3') # => "0123-456-7899"


1

You have two options available either set the step size, this will up to n decimal places to be valid. <input type="number" ng-model="ctl.number" step="0.01"> or do as Tushar suggested and validate it yourself with ng-pattern


1

You can get the value of the BYTES constant using reflection: Number number = map.get("key"); int numberOfBytes = number.getClass().getDeclaredField("BYTES").getInt(number);


1

As a workaround, you can introduce a reusable function that would perform a slow type by adding delays between send every key. First of all, add a custom sleep() browser action, put this to onPrepare(): protractor.ActionSequence.prototype.sleep = function (delay) { var driver = this.driver_; this.schedule_("sleep", function () { ...


1

UPDATE: updated answer according to C14L's comment, original answer below. import time class PLCApplication(object): def generate_data(self): a = 0 countup = True while a >= 0: time.sleep(0.5) if countup: # no need to do test if it equals True a += 2 else: a ...


1

This example from the Python Coroutine page seems to do that in a non-blocking way, using new asyncio. import asyncio import datetime @asyncio.coroutine def display_date(loop): end_time = loop.time() + 5.0 while True: print(datetime.datetime.now()) if (loop.time() + 1.0) >= end_time: break yield from ...


1

Good question. Here's one solution using Fraction function. Fraction is nice because it reduces fractions. You use floor divide (//) to strip out the whole number and then feed the remaining fraction to Fraction: From fractions import Fraction num = int(input('Type numerator')) dem = int(input('Type denominator')) Print str(num // dem) + ' and ' + ...



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