AC 20161027 期中考 4

0 like 0 dislike
2k views
請設計一個程式,由使用者輸入一個二進位的數,程式會將他轉成十進位後輸出。

sample input:

10101010

sample output

170
[Exercise] Coding (C) - asked in 2016-1 程式設計(一)AC by (18k points)
ID: 15399 - Available when: 2016-10-27 18:30:00 - Due to: 2016-10-27 21:00:00
reshown by | 2k views
0 0
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
int main()

{
    char a[100];
    int n,c,i;
    scanf("%s",a);
    i=1;
    c=0;
    for(n=strlen(a)-1;n>=0;n--)
    {
        c=c+i*(a[n]-'0');
        i=i*2;
    }
    printf("%d",c);
    return 0;
}
commented by (-85 points)

7 Answers

0 like 0 dislike
Hidden content!
#include <stdio.h>

main()\

{
* *** * ****** ** ** a[99], b[99], i, j=0, k;
*** * * * **** h;
*** *** ** ** * ***** * *** &i);
* *** * ****** ** ** * * *

   (
* * ** *** ** * * *** * * a[i];
** * *** ****** * * * * * * * **** ** ** ******** * * *

   )
*** ******* * * * **

   (
** * * ** * ** ** * * ** * * b[i];
* * * * ** *** * * ** *** **
** * * ** **** ** ** ** * ** * * * * ** * *****
***** * ******* ** ** ****** * **
** * ** * * * **** ****** * **** ****** ** * * ** * * **
***** ** * *** * * * * ***** * * ** ** ** **
* *** * * ****** **** ***** *** * * **** = b[j];
** ** ** *** * * ** **** * * ** * * * * ** * ** * * * * * = a[k];
**** * **** * *** * **** * ** * *** ***** * = temp;
***** *** * ** * * ** * * ******* *** * ** *** * ***
* **** *** **** * * ** * *

   )



   if (i/2!=0)
* * *** * * ***** ** * ** (b[i/2] + b[(i/25)+1)/2
* * * **
** *** * ** * * * * * * ** = b[i/2];
* ** ** *** * * ** b[j])
* * * * ** *** * 0;

}
answered by (-52 points)
0 like 0 dislike
Hidden content!
** * * * ******
** ** *** **** *



int *** *

{
* ** * ** ** * * * *


** ** * ** ** * * **** * * ***** ** **** **** ** *** * * * * ** * *** ** ** *


** ****** * ***** = 128 * a + 64 * b + 32 * c + 16 * d + 8 * e + 4 * f + 2 * g + h;


* *** * * * * * ** **** * * * *


* * ** ** *** * * ** * 0;

}
answered by (180 points)
0 like 0 dislike
Hidden content!
**** **** * ****
** * * ** ** **



int *

{
**** ** * * * * * * ** * ** * * **


**** ** ***** * * * * ** * ** * * ** * * * * * * * ***** * ***** * ** * * * **** *** **


*** * * **** * * ** ** = 128 * a + 64 * b + 32 * c + 16 * d + 8 * e + 4 * f + 2 * g + h;


** ** * *********** * * *** * *


** * **** ******* * 0;

}
answered by (180 points)
0 like 0 dislike
Hidden content!
#include * ** * ***

#include **** ** ** ** **



int main( int argc, char )

{
** *** * * * * * iNum;
* * * *** ** * * ********* * *** ** ** * ******
* *** * **** * ** * *** ** * * ** *
*** ****** * * * * * * * * * * %d\n", iNum, iNum);


* ** ** *** *** ** * * * * * ** ****** * *
* * *** ** * ** * *** 0;

}
answered by (-74 points)
0 like 0 dislike
Hidden content!
#include ********* ****

#include * ** * *** * * *

#include *** * *** *
** * *** ** *** ******

int()

{
* **** ** ***** * * x;
* *** * ** **** ****** temp = 0;
* * * ** * * **** * * * *** x;
* * * * * **** * * (x > 0)
* * * * ** * *
* * * ***** **** = 2 * temp +%10;
* ****** * **** * **
**** *** * * *
* * ** * * ** * ** * ** * temp * * ** endl;


* * * ** *** ** * 0;



}
answered by (-74 points)
0 like 0 dislike
Hidden content!
* ** * *
*** ** ** * * ****

int main()

{
* ** * ** * ***


**** * ** ** * * **



if(n%10!=0)
* **** *** ** * * ** * * *

a=(n%10)*1;

}



else if(n%100!=0)

{
* * * * * * *

}

else if(n%1000!=0)

{
* ******* * * **

}

else *** *

{
* *** *** * *** ** *

}

else ** * * * *

{
* * * * ** **** * * * * *

}

else ****** * *

{
* ** **** ***** ** ** * * * *

}

else * ** ** **

{
* *** * ** *** ***** * ** ** * * *** ***** **** *

}

else * * ** ***

{
*** * * * * * *** *** ** * *** * ** *** *** * * * * **

}
** * ** ** * *
*** ** ** * *

return 0;

}
answered by (-248 points)
0 like 0 dislike
Hidden content!
#include<stdio.h>





int main(){
* * ****** *** **** *** x,y=0,i,j=0,n=1;
* * *** * * ***** ****** * ** * ** ** ** * *

    do{
** * * ** * * * **** * *** ** ** *** *** *
* * ** * ** ** ****** * ** * * * * **** * *
* * *** *** **** * *** ****** ****** ** ** ** **
****** * **** * **** *** * *** ** * * **


** *** * * * * ** * ** * * * ****
* **** ** ************ * * * * **** ****
* ** * *** * * ** * 0;

}
answered by (-126 points)
Welcome to Peer-Interaction Programming Learning System (PIPLS) LTLab, National DongHwa University
English 中文 Tiếng Việt
IP:104.23.243.68
©2016-2026

Related questions

0 like 0 dislike
0 answers
AC 20161027 期中考公告
[Resource] asked Oct 27, 2016 in 2016-1 程式設計(一)AC by Shun-Po (18k points)
ID: 15475 - Available when: Unlimited - Due to: Unlimited | 13 views
0 like 0 dislike
5 answers
AC 20161027 期中考 10
[Exercise] Coding (C) - asked Oct 27, 2016 in 2016-1 程式設計(一)AC by Shun-Po (18k points)
ID: 15447 - Available when: 2016-10-27 18:30:00 - Due to: 2016-10-27 21:00:00 | 1.8k views
1 like 0 dislike
37 answers
AC 20161027 期中考 9
[Exercise] Coding (C) - asked Oct 27, 2016 in 2016-1 程式設計(一)AC by Shun-Po (18k points)
ID: 15446 - Available when: 2016-10-27 18:30:00 - Due to: 2016-10-27 21:00:00 | 6.3k views
1 like 0 dislike
17 answers
AC 20161027 期中考 8
[Exercise] Coding (C) - asked Oct 27, 2016 in 2016-1 程式設計(一)AC by Shun-Po (18k points)
ID: 15442 - Available when: 2016-10-27 18:30:00 - Due to: 2016-10-27 21:00:00 | 3.1k views
1 like 0 dislike
18 answers
AC 20161027 期中考 7
[Exercise] Coding (C) - asked Oct 27, 2016 in 2016-1 程式設計(一)AC by Shun-Po (18k points)
ID: 15440 - Available when: 2016-10-27 18:30:00 - Due to: 2016-10-27 21:00:00 | 3.1k views
12,783 questions
183,442 answers
172,219 comments
4,824 users