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You could use a PoliteCaptcha, which only displays the captcha if JavaScript is disabled (as in most automated scripts) or when the first submit attempt fails. This makes the captcha invisible to most of your normal users, but a PITA for spammers.


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list1 = ["text1","text2","text3","text4"] list2 = [11,22,33,44] def iterativeConcatenation(list1, list2): result = [] for i in range(len(list2)): for j in range(len(list1)): result = result + [str(list1[i])+str(list2[j])] return result


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You can run two nested for loops to iterate over both lists, and append the concatenated string to a new list. Here is a little example: ## create lists using square brackets wordlist1=['code1', ## wrap something in quotes to make it a string 'code2','code3'] wordlist2=['11','22','23'] ## create a new empty list concatenated_words=[] ## first ...


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There are several packages on NPM that are dedicated to this, if you are using the Express framework: express-rate-limiter express-limiter express-brute These can be used for limiting by ip, but also by other information (e.g. by username for failed login attempts).


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Dear community members thanks you for your comments. It seems that now my safe-thread list is working. For the people who interesting in solution I will submit the resolved code below. Also, probably I should mention that I rename task to futures, please pay attention. Once again everybody thanks ! package bfpasswrd_multi; import java.util.ArrayList; ...


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The issue that you're seeing is with this line: tasks = (ArrayList<Future<?>>) Collections.synchronizedList(new ArrayList<Future<?>>(cores)); Collections.synchronizedList doesn't return an ArrayList; it returns some subclass of List - java.util.Collections$SynchronizedRandomAccessList to be exact - and I don't know anything about ...


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first of all many thanks! u'r code gave me some good ideas fixed it for you:) i have corrected ur code and its works perfect and here it is: public static String findPassword(Password p,int length) { // string and char to be input into the overloading method String pswd= ""; char char2Check = 'a'; // Checking if the length of ...


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Don't display the user id used to log in publicly. Have a separate display id. For example, they might log in with their email address and choose a different name to display. If an attacker doesn't have the user id then he can't make repeated login attempts and lock another user out.


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private static boolean findPassword(Password p, String pswd, int length) { if (length == pswd.length()) { if (p.isPassword(pswd)) System.out.println(pswd); return p.isPassword(pswd); } String alpha = "abcdefghijklmnopqrstuvwxyz"; for (int i = 0; i < alpha.length(); i++) { if (findPassword(p, pswd + ...


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I won't give you the solution. But assuming the alphabet is "abc" and you want to find passwords of length 3, you would have to program this: a -> aa -> aaa | | | | | aab | | | | | aac | | | ab -> aba | | | | | abb | | | | | abc | | | ac -> ...


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You went to great length for something supposed to be simple: generating all strings of length n containing only a-z characters. A note about the performances: use StringBuilder instead of String when you want to do lots of append and deletion of chars. String are immutable, so they are copied again and again in your code. Now, about recursion, you have ...



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