Tag Info

Hot answers tagged

6

A loop for this is not required. You can find the unique characters in a string using set len(set('Banana')) This will output 3. If you want to see what characters are unique, remove the len wrapper: set('Banana') Outputs: set(['a', 'B', 'n']) Note: B and b are unique. If you have a word like Baby you'll get this: set(['a', 'y', 'B', 'b']) To ...


5

When the user enters "-1" its should stop the program and then print out the average of those marks. Well if the user enters -1, you'll never get out of the nested loop that validates the input. If you want to allow -1, you should changed the condition in the nested loop to allow it: while (mark < -1 || mark > 100) Also note that you're using ...


4

"0" != 0. You are comparing against a string, but randint gives you an integer.


4

Well you check against a string to break the loop. So use: if var_p1 != 0: instead of: if var_p1 != "0": A memory efficient way to generate from a to b but not including a value c is: r = random.randint(a, b - 1) if r >= c: r += 1 This way, in the first step we'll generate a random int between a and c - 1 or between c and b - 1. In the ...


4

Do you want to have each meal? Create a list and store your meal objects while iterating in it! List<Meal> mList = new List<Meal>(); while (oReader.Read()) { Meal m = new Meal(); m.mealID = Convert.ToInt32(oReader["mealId"]); m.mealName = oReader["mealName"].ToString(); m.quantity = Convert.ToInt32(oReader["quantity"]); ...


4

This is not how or works: while prompt != 'y' or 'n': You probably meant: while prompt != 'y' or prompt != 'n': Your version ors prompt != 'y' and 'n', which always yields at least the last truth-y value ('n'). The full code: def test(): number = input('Input a number then press enter:') print(number) prompt = input('Continue (y/n)? ...


3

You are missing a closing paren: nol = input.find(input[-1], input.find(input[-1] + 1)) #<- add here If you want to count the number of actual letters you can use str.isalpha: return sum(ch.isalpha() for ch in inp) If you don't care what characters are there just use len(inp). Avoid input as a variable name as it shadows the python function.


3

You can put it in a while loop like this: String text = ""; while(!text.equalsIgnoreCase("exit")) { System.out.println("Enter command: "); text = command.nextLine(); switch(text){ case "start": System.out.println("Machine started!"); break; case "stop": System.out.println("Machine ...


3

You were quite near while True: try: x = int(input("Write a number: ")) break except ValueError: print("You must write a number: ") To know more about exception handling, refer the documentation


3

As per the C11 standard document, chapter 6.5.17, comma operator, The left operand of a comma operator is evaluated as a void expression; there is a sequence point between its evaluation and that of the right operand. Then the right operand is evaluated; the result has its type and value. So, essentially, while(1, N) is same as while(N)


3

Placen/=d outside the if (but inside the while) in def largestPrime(n): Because in your code, you do n/=d only when d is greater than largest_prime which is wrong. n/=d must be done till n % d == 0 while n % d == 0: if d > largest_prime: largest_prime = d n /= d d += 1


3

Because there is not a { } block after the while condition the while block is only the one line after it. So it is simply repeating the SysOut endlessly. This is more what you are attempting to do. ****EDIT*** as other answer describes there is a second issue with the switch statments. Try this manner to exit. while (ans == false) { // start ...


2

while(1, N) is equivalent to while(N) as the comma operator yields the value of the right operand. So using the first form is useless. If you want to write a loop that is run from 1 to N (including), you can use a for loop: for (int i = 1; i <= N; i++)


2

Your code fails because you're comparing an integer to a string. There are other problems with your code: You have an import statement inside a loop. There's no telling how many times your loop will run. Here is a loop-free way to randomly generate a non-zero integer from -5 to +5, inclusive. import random x = random.randint(1, 5) if random.randrange(2) ...


2

Answering the question in the title, not the real problem (which was answered by Daniel Roseman): How do you create a random range, but exclude a specific number? Using random.choice: import random allowed_values = list(range(-5, 5+1)) allowed_values.remove(0) # can be anything in {-5, ..., 5} \ {0}: random_value = random.choice(allowed_values)


2

while((!current.equals("Io")) || (logOut != 0)); should be changed to while((!current.equals("Io")) && (logOut != 0));


2

First of all, ^Z or ^D are control characters that mean something to the terminal you are using, and sometimes that means for the terminal to signal end-of-file condition. Anyway, your three keypresses are processed by the terminal to take the following actions, after entering text: Flush the input (i.e. send the characters that have been input so far ...


2

Change your switch with: switch(ans0){ case "yes": ans = true; break; case "no": playing = false; break;


2

The break in your switch only breaks you out of your switch. To exit the loop do this: switch(ans0){ case "yes": ans = true; break; case "no": playing = false; break; This way your playing flag is set to false and you will exit the loop


2

I need the while loop to break when the user types y OR n Then your condition should be: while (!coffeeYorN.equals("y") && !coffeeYorN.equals("n")) Or the equivalent, but a bit clearer version, which I think is what you wanted to do: while (!(coffeeYorN.equals("y") || coffeeYorN.equals("n"))) Let's check the truth table: Y - ...


2

You wanted a for loop here: for i in range(1, years + 1): and for i in range(1, semesters + 1): for loops take an iterable (here the output of the range(1, years + 1) expression) and assigns each value produced by that iterable to the target variable (i). A while loop takes a condition instead; an expression that controls wether or not the loop ...


2

The proper way for implementing dynamic start URL's is to use start_request(). Using start_urls is the preferred practice when you have a static list of starting URL's. start_requests() This method must return an iterable with the first Requests to crawl for this spider. Example: class MySpider(BaseSpider): name = "dozen" allowed_domains ...


2

You're assigning status to true in the while statement, instead of checking for equality. Either change it to status == true, or you could just use status.


2

You have an assignment in your loop condition while(status=true). To check the status just do while(status).


1

It's an anti-pattern to compare a boolean for this very reason - just evaluate it, ie change while (status = true) To while (status) Then it's easier to read, less code to write and has no chance of this kind of bug occurring.


1

You can use the while loop as follows: int i=1; while(i<=7) { sal = load(); rate = calcRate(sal); calcRaise(sal, rate, &raise, &totraise); calcNewSal(sal, raise, &newsal, &totnewsal); calcTotSal(&sal, &totsal); print(sal, rate, raise, newsal, totsal, totraise, totnewsal); ...


1

while(status==true){ Should be == = is used to asign == is used for comparison


1

Here is an approach I've used a couple of times with good success: Launch a multiprocessing pool. Use a multiprocessing SyncManager to create multiple queues (one for each type of data that needs to be handled differently). Use apply_async to launch the functions that process data. Just like the queues, there should be one function for each type of data ...


1

You set oldanswer equal to newanswer outside the loop, it should be done inside the loop. You should also not use == when comparing float as they are rarely exactly equal to something (decimals can only be accurate to a certain number of places on a computer)


1

I would use a for loop, like this: class MySpider(BaseSpider): stock = ["SCMP", "APPL", "GOOG"] name = "dozen" allowed_domains = ["yahoo.com"] def stock_list(stock): start_urls = [] for i in stock: start_urls.append("http://finance.yahoo.com/q/is?s={}".format(i)) return start_urls ...



Only top voted, non community-wiki answers of a minimum length are eligible