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remove() removes all instances of value within the range specified by [first,last) remove() (as well as remove_if()) does not actually erase the matched elements from the container (that is, the container's size is preserved) Rather, each nonmatching element is assigned in turn to the next free slot beginning with first The returned ForwardIterator marks one past the new range of elements For example, consider the sequence {0,1,0,2,0,3,0,4} Let's say that we wish to remove all 0 values The resulting sequence is {1,2,3,4,0,3,0,4} The 1 is copied into the first slot, the 2 into the second slot, the 3 into the third slot, and the 4 into the fourth slot The 0 at the fifth slot represents the leftover of the algorithm The returned ForwardIterator addresses the 0 of slot 5 Typically, this iterator is then passed to erase() to delete the invalid elements (The built-in array is not suited to the remove() and remove_if() algorithm because it cannot be resized easily For this reason, the remove_copy() and remove_copy_if() are the preferred algorithms for use with an array)

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TABLE 9.4. Comparison of the Main Characteristics of Various TCP Enhancements TCP Variants Problems Split-TCP TCP-BuS ATP

remove_copy() template< class InputIterator, class OutputIterator, class Type > OutputIterator remove_copy( InputIterator first, InputIterator last, OutputIterator result, const Type &value );

remove_copy() copies all the nonmatching elements to the container specified by result The returned OutputIterator marks one past the last element copied The original container is unchanged

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Then Algorithm 6.7 (with q(i) substituted by q(p 2 i) in order that the least signi cant bit of q be q(0)) can be applied. At each step the following operation is performed: r(i 1) 2:r(i) q(p i 1):Y, where r(i 1) and r(i) are n-bit 2 s complement numbers, and Y an n-bit natural and q( p 2 i 2 1) a signed bit (21, 0 or 1) whose value is de ned (Table 6.1) as a function of w(n) and w(n 2 1), that is, r(i)(n 2 1) and r(i)(n 2 2). The basic cell is shown in Figure 13.12. If en 0, then r a_by_2; if en 1 then r a_by_2 + b where the operation is selected by op (0: add; 1: subtract). The divider structure is shown in Figure 13.13. The combinational circuit implements Table 13.1. Observe that op(p-i-1) can be chosen equal to q _ pos(p-i-1), so that it is a 2-input 3-input combinational circuit. An additional (not represented) (p 1)-bit subtractor generates Q q _ pos-q _ neg. Furthermore, a correction circuit, similar to that of Figure 13.8, is necessary if the condition sign(R) sign(X) must hold. The cost and computation time of the non restoring divider basic cell of Figure 13.12 are given by Cdivision

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#include <algorithm> #include <vector> #include <iostreamh> /* generates: original vector sequence: 0 1 0 2 0 3 0 4 0 5 vector after remove, without applying erase(): 1 2 3 4 5 3 0 4 0 5 vector after erase(): 1 2 3 4 5 array after remove_copy(): 1 2 3 4 5 */ int main() { int value = 0; int ia[] = { 0, 1, 0, 2, 0, 3, 0, 4, 0, 5 }; vector< int, allocator > vec( ia, ia+10 );

file:///F|/WinDDK/resources/CPPPrimer/c++primerhtm (1045 / 1065) [2001-3-29 11:32:16]

Misinterprets Partially: Only the TCP segment where route the route breaks is failures as affected. Other TCP congestion segments can still transmit their packets. Furthermore, the missing packets at the destination can be retransmitted by proxies.

In this section, we saw examples only of the linkage specification for the C language; extern "C" extern "C" is the only linkage specification guaranteed to be supported by all C++ implementations An implementation can provide other linkage specifications for languages commonly used in its environment For example extern "Ada" can be used to declare functions written in the Ada language, extern "FORTRAN" for functions written in the FORTRAN language, and so on Because the additional linkage specifications are implementation-specific, we recommend that you consult your implementation's user's guide for further information on the other linkage specifications it may provide This section introduces a first use of the keyword extern in C++ In Section 82, we will see other uses of extern with declarations of objects and functions Exercise 714 exit(), printf(), malloc(), strcpy(), and strlen() are C language library routines Modify the following C program so that it compiles and links under C++

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