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12

The problem is with this line: b, t, nl = 0, 0, 0; It uses comma operator on both sides of assignment, hence only nl is intialized with zero. There are no side-effects for evaluation of b, t on left side* and two trailing zeros on the right side of = operator (notice that assignment has higher precedence, than comma operator). Change it to: b = t = nl = ...


7

I know three commonly used approaches. Bitwise operations u32 := (u16hi shl 16) or u16lo; MAKELONG u32 := MAKELONG(u16lo, u16hi); LongRec cast LongRec(u32).Hi := u16Hi; LongRec(u32).Lo := u16Lo;


6

You can use MakeLong for two Words, and MakeWord for two bytes.


6

With Java 8 you can use the code below(*): List<Entry<Character, Integer>> top3 = map.entrySet().stream() .sorted(comparing(Entry::getValue, reverseOrder())) .limit(3) .collect(toList()); (*) with the following imports: import static ...


5

var a, b int32 = 33, 33 a = a*100 + b fmt.Println(a) Playground. Edit: Here is a version which computes the padding depending on the number: func main() { var a, b int32 = 1234, 456 a = a*padding(b) + b fmt.Println(a) } func padding(n int32) int32 { var p int32 = 1 for p < n { p *= 10 } return p } Playground. ...


5

int* pa=&a; pa is pointer to an integer and accessing *pa is defined. Once you increment your pointer, then the pointer is pointing to some memory(after p) which is not allocated by you or not known to you so dereferencing it leads to undefined beahvior. pa++; *pa is UB Edit: Use proper format specifier to print the pointer value %p as pointed ...


5

Remove the second cout from this line: cout << "isEvenPrev: " << isEvenPrev << cout << " isEvenCurr: " << isEvenCurr << " sum: "<< sum << endl;


4

When you or a byte with an int the byte will be promoted to an int. By default this is done with sign extension. In other words: // sign bit // v byte b = -1; // 11111111 = -1 int i = (int) b; // ...


4

java.lang.NumberFormatException: For input string: " 34" Trim the String of whitespace before using the parse methods. try { int sub1_ = Integer.parseInt(sub1.getText().trim()); int sub2_ = Integer.parseInt(sub2.getText().trim()); int sub3_ = Integer.parseInt(sub3.getText().trim()); int sub4_ = Integer.parseInt(sub4.getText().trim()); ...


3

You have to use TableOutputArea.append(i+"\n"); instead of the setText() method.


3

Why do you try to sort the list by your own algorithm? Let the framework handle that for you. Just convert the date information into a sane datatype (DateTime) and order it using OrderByDescending. Example: Dim Lines1 = {"01.02.2015 - 18:30:25", "01.06.2011 - 18:30:25", "11.02.2012 - 11:34:25", "01.07.2010 - ...


3

0xFF as a byte represents the number -1. When it's converted to an int, it is still -1, but that has the bit representation 0xFFFFFFFF, because of sign extension. & 0xFF avoids this, treating the byte as unsigned when converting to an int.


3

This is an interesting problem, here is another approach to solving it. Lets take an example, seq = [4, 4, 2, 1, 1, 3, 2]. Notice that we can begin by returning the the result associated with the longest possible sequence that follows the rules laid out in your question. That result will have the form [min(seq), len(seq), len(seq) - 1] or [1, 7, 6]. Now you ...


3

Sure. C(A) = D(B) = E(A,B) = 0 meets all your requirements. It's immediately obvious that all three functions must return the same constant. Since C must equal D, and D does not vary with A, C cannot vary with A either. Since C is only a function of A and cannot vary with A, it must be a constant. Since the other functions must equal C and C is constant, ...


3

You can't do that static char *argv2[] = {"./datagen", "10", "outputfile", "SIGUSR1"}; is a declaration of an array of char pointers, which are pointing to string literals, and further more to four string literals only, you can't extend it nor modifiy the strings. What you need is char argv2[10][100] = {"./datagen", "10", "outputfile", "SIGUSR1"}; ...


3

Try using the bitAt: method. This method extracts a bit from an integer and tells you whether it's a 1 or a 0. It will extract any bit you want and treat bits higher than the size of the integer as 0's. 5 bitAt: 1 ==> 1 5 bitAt: 2 ==> 0 5 bitAt: 3 ==> 1 5 bitAt: 4 ==> 0 5 bitAt: 5 ==> 0 Does that help?


3

You are trying to assign to the result of an int() function call: int(sum1) = input('number') Everything on the left-hand side of the = sign should be a target to store the result produced by the right-hand side, and you are asking Python to store something in int(sum1). If you wanted to convert the result of the input() call to an integer, you'll need ...


3

Can you use integer as arguments to pow function?` Yes, you can. The integer value is implicitly converted to a floating point value of the right type. In your case: SquaredIV = pow(&InputVar, 2); the problem is &InputVar is not of an integer type but of a pointer type as & unary operator yields a pointer to the operand object.


3

You cannot write a for or while loop where the loop counter is an int and the upper limit is <= Integer.MAX_VALUE. What happens with a simple increment (counter++) is that the loop counter is set to that value, the body executes and then the counter is incremented which results in a negative number, Integer.MIN_VALUE. And then everything happens all over ...


3

r=(v<0)?-(unsigned)v : v There are some ways to compute abs without branching but this one is not one of them as < and ?: operators are usually translated to branching instructions. Assuming r is of type unsigned int, the cast to unsigned is here to get a specified behavior when v value is INT_MIN. Without the cast, -v would be undefined behavior ...


3

You need to actually call the function. If you do so, you will notice your function works fine. >>> rand_divis_3() 26 False >>> rand_divis_3() 15 True All you did was define the function for future use.


3

Exactly how the comparator function will be called — that is, the sequence of values passed in — is not defined by the specification of the language. It completely depends on the particular JavaScript implementation and (probably) on the values in the array being sorted. Suffice to say that the sorting algorithm calls your function when it wants ...


3

b is uinintiaized this expression is wrong b, t, nl = 0, 0, 0; it only initializes nl, it should be b = t = nl = 0;


3

Seems like a precedence problem - basically if iLocks[1, 1] is null then it takes 0 otherwise it uses the other branch which has all the additions. Try adding parentheses: Int32 sum = (iLocks[1, 1] == (Int32?)null ? 0 : (Int32)iLocks[1, 1]) + (iLocks[2, 1] == (Int32?)null ? 0 : (Int32)iLocks[2, 1]) + (iLocks[3, 1] == (Int32?)null ? 0 : ...


3

You're displaying the next array element which hasnt been populated yet i++; System.out.print(tab1[i]); should be System.out.print(tab1[i++]);


3

To awk, it is just a matter to indicate the format you want to use to print the results. Use printf to indicate that you want 1 decimal digit: $ awk '{printf ("%.1f\n", $1)}' file 1.0 1.6 0.0 0.7 2.0 3.0 3.7 You can say %e for scientific format, %.5f to get 5 digits, etc. See the provided link for more details.


3

If a synthesis tool implements an integer with range 0 to N with minimum resources, it will have a size of: integer range 0 to N : std_logic_vector(ceil(log2(N + 1)) - 1 downto 0) So your integer range 0 to 6 will have the size of a std_logic_vector(2 downto 0). But the VHDL language itself does not have a cost function for different data structures, ...


3

You can use the PTEST instuction via the _mm_testz_si128 intrinsic (SSE4.1), like this: #include "smmintrin.h" // SSE4.1 header if (!_mm_testz_si128(xor, xor)) { // rectangle has changed } Note that _mm_testz_si128 returns 1 if the bitwise AND of the two arguments is zero.


2

This one works with any base: int input = yourInput; final int base = 10; //could be anything final ArrayList<Integer> result = new ArrayList<>(); while(input != 0) { result.add(input % (base)); input = input / base; } If you need the digits ordered so that the most significant one is the first, you could use a Stack instead of a List ...


2

The condition: if(num1 > num2 && num3) means: if (num1 > num2 && num3 != 0) or, equivalently, but with a full set of parentheses: if ((num1 > num2) && (num3 != 0)) You need to write: if (num1 > num2 && num1 > num3) Rinse and repeat. There are better, more compact ways of determining the largest of ...



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