Midterm Question 4

1 like 1 dislike
10.5k views

Write a program that get the input of two integers n and m(n < m). Find out all prime numbers between n and m (not include n and m), then display them on the screen.

寫一個程式 輸入兩個整數n和m (n < m),找出所有n到m之間的質數(不包含n和m)。

Example input 1

1 10

Example output 1

2 3 5 7

 

Example input 2

10 20

Example output 2

11 13 17 19

 

[Exam] asked in Midterm by (12.1k points)
ID: 32708 - Available when: 2017-11-15 14:10 - Due to: Unlimited 2 flags | 10.5k views

45 Answers

0 like 0 dislike 
Hidden content!
#include <stdio.h>
int main()
{
    int n,m,i,j,c=0;
    scanf("%d %d",&n,&m);
    for(i=n+1;i<m;i++){
 ** * *  **** *  * *   ***   *  * ***  * *    **  ** ** * **   * * ******  
    ****  *  ***    * *  *  ** * * ** *  ** * *   ******  *    *  * **    *    *  **** *   
** *** * *       **  ** * * * ** * **  *  ***** **      **   **   * ***** * **  *    ** *** ** * * *  * *  * ** 
** *  *  *   * *******     *    * ***  ***        ** * * * ** *   ******  *  * * * * * *****  * *****  * ***      * *** ** **  * * ***  * **  ** *  ***  * * *   * 
 **** ** *  *** *   *   * * * * **    * ***  *    * *****  ** ** *** *  ** * *      ***  ****   *   * *  *  ** * *  ** * * ** *** * *
  * * *   ** *   ***  * **    *** *  *   * *** * *  *** * ***   *   **  *      ****   * * ***    *
* ****  **   * *****  *** **   ****  ** **  * * * ***  * *  *     ***    *  ** **  ***   *    *  *        ** *  * 
* ****  *  *   * *  * * **   * * * ****** **** ** *   **** **    ******   **  * ***   *  ** ***     ******* *   *  **** ** *  ** *   * *     * ***** * %d",i);
 ** ***   * * * **   * * * **    ** * * *** *****  * **    *** * * *******  *  **  **  *****   *  *****  *
  ****  ***  *  ** * **** ***  * *     *   *****  ** ******* **** *  * 
***  *     * * **** * *   ** ** ** * **      **    * * *    **** * *  * * *  **  if(i%j==0){
*  *  **  ******  * *****    **  **   ** * **    *  **     *   *** *** * *  **   *  ** *** ****  **** **   **    ** 
 ****   ****** * *  * ******* ** ** *  **   *      **  *  * * **** *   * * **  * * ** ** * 
        }
    }
    return 0;
}
answered by (54 points)
0 0
Case 0: Correct output
Case 1: Correct output
Case 2: Correct output
Case 3: Correct output
commented by (4.3k points)
0 like 0 dislike 
Hidden content!
#include<stdio.h>
int main()
{
    int n1,n2,i,c=0;
    scanf("%d %d",&n1,&n2);

    for(i=n1+1;i<n2;i++)
    {
        int a;
  *  *    ***  ***  ** **      **   ** * **  * **   * *   *****  

   *   *     **** *  ***   *** ** ** *** * ***  ***** *       * 
    * *  ***  *    ** *  *  *    * *** **** * * **   * *     *  *  ** *   *     
      ******** *  *** **   ** **  ** *******    * *     ** *  ***** *   *  *** *  *** *    *  *   *
*   **  *          ******  ** ** **  ***  *   *** * ** * *  ***  ***** **   * *   ** 
    **** ******* **     ** * * *    **    *    *      **  *  * *  *  
**    ***  *  ** ** **   ******    *  ** * *  **   **   ******  *     ***    *  
**  **       *** ***** ***  ** ** **  **  *** ** *** ** **   *     *  *** **     *** **  *  *   *  * *** *  
  *****  **  ***   * ******  * * **    **** *   ** *  * ** * *    * ** **  ** *** ** *  * *   * *  **   *   
 * ***  * ****  **   **  * * ******** *   ** * * * * ***  ** ******   * ***   **     * * ** * * *****    *      **  *** *   *
    *   *  * *   ******** * **     *  * *** *  **    *  *  **** * ***** **    **** **  *** ***   * *** 
*** ** *** *****  * *   ***  *** *   *    **       * *    *  **     *** **  **  * *   ** * * **  * * **   **
** **  ******     **** * ** *  *** *  ******  **   ** ** * *        ** * ***  *    * * **  ** ** ******  ****** * *
 **   **** * ** ** *   *   **   * *   * ** **   **** *     *    * **  ** *      ***   *    *   **** * *****   *** * ***
   ****    * * *     ** ** *  ***   * * * **  ** *  *** ***         **  ** ****  ** * * * *   * *  * * *  *  *******   *   * *   * *  *     * *  %d",i);
**    *   *  *  *  **   * *    **** ***  * **    * ***    *  **  * * ** **  * ***   * ** ** *** ** **  ** ** 
****  *     *  ***  ** * *  * ***   * * ** * *  *  *** ***  ***  **** ** **  * * ***  *   
    }
    return 0;
}
answered by (-323 points)
0 0
Case 0: Correct output
Case 1: Correct output
Case 2: Correct output
Case 3: Correct output
commented by (4.3k points)
0 like 0 dislike 
Hidden content!
#include<stdio.h>
int main()
{
    int n,m,d;
  *** *    * *** * ******* * ****   * *   %d",&n,&m);
    n++;

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

    while(n<m)
  ** * **  * ** ** ***** *   * *   * * **  * ** ****  * ** ** *
   *  * *   **    * * **  *           * *    *      * *  **** ** *   **         *  ** 
   **   ** *** * ** **** *  *** **  *  ************   ** **  ** ***  * ***  *
***   ** ** *   * **   *  *      *  *** ********       *       
**  *** **  * * *  **** *   * *  ** *  **    *  *   *  ***  *  * * * * **  * * *** * **   *  * * %d",d);
* ***** * **   ***    * ****  *     ** **  ** * ****** *  
***  **** *  ***   *  *  *  *******  * *    *  **** *** 0;
}
answered by (-196 points)
0 0
Case 0: Correct output
Case 1: Correct output
Case 2: Correct output
Case 3: Correct output
commented by (4.3k points)
0 like 0 dislike 
Hidden content!
#include <stdio.h>
#include <stdlib.h>

int main()
{
    int a,b,i,j,prime = 1,cnt = 0;
 *  ** *   ****  * * **   *     **    %d",&a,&b);
      ** **     ***  **** * *** = a+1 ; i < b ; i++)
    {
* *  **     * *  * *   *    ***** **    *  ******    *  ** = 1;
 ** *    * ** **   ***    ** * *    *  * ** * ** * *    = 2 ; j < i ; j++)
 * **  ***   * **  *  ** ***  * * ** ***  *   ** * * 
 * *  ***********    *  *** **** * ***      * ** *  *  ** *  *   ** * * **   ** *  ** % j == 0)
**** ****  *  **** ** *******   * *   ** ***  *   *  *  **** **  * ********   *  **    **  ***  **   * ** ****  = 0;
*  ** * *  *     **** * **   *** *     ** * **     
 * * ***  ** *** *******    **** *******  *        * *  **** == 1)
   * ******   ***   ***  ***    ****    *    *  *         *
 *  *  ***** * **** **** *  ****  **  *** * *   **   **** ***  ** ****  *****
 ***** **       * * **  *   *************  * *  *  * ** **           * *** ** **  == 1)
 **   * *  ** ***** *  *  ** * ** ** **  ** **  * ***  *** *  *   **  * *    * **        *** *******  **  ***   * *       * **** *  *
 * * ***** * *     ***** ** * * **   * ******* *          **     ** * ****  *  ***   
*** * **    * * ** * *  **    *****     *   * ** *   *  ** * ** ** * **    **  **    ***    * ****   ****    ***** ** %d",i);
  ** **** ** ** * * **  ****  ** ** *  *  * *   **       *
    }

    *  *  *    * ** ***** **   *    0;
}
answered by (-255 points)
0 0
Case 0: Correct output
Case 1: Correct output
Case 2: Correct output
Case 3: Correct output
commented by (4.3k points)
0 like 0 dislike 
Hidden content!
#include<stdio.h>

int main(){

    int a,b,c=0,i,j;

 * **   **  ****  **    * * * ***  *    ******     **     ** ******
    for(i=a+1;i<b;i++){
* **** ***  * ** ****   * **     ** **** *    *   *         * 
 **** *********   * ** ******     ***  *** **** ** * *      * ***   ** * **  *  **   
* ** *    * *  * *** *   *** ***** * *  * ** * **  *    **** ****  ****  **  *  *  * *    * * ****     * * *** * *  
****     *  * ** **** ****  *** *** ** **  * *   ***     *** *     ******* ** *** *  *  ***  * * * **  *  *   *** ***  **      ** *    ** *   ** ** *  *** *   * *  ***  ***** *****   * * 
*   ***  ** ***  * ** ** *** ** ****    * **       *** ** **  * **** ****  * * * *   **  **** *  *  * ** *     * ********   **  ***   ** *  *  *   * * * *****
** *   ******* *     ** * *     * **  * ****   ******         *  ** ** ****  *    * * *   *  ****   **   *** ** *   ***  ****  *   *****  * *    **      *   *** ****  * ** * 
* ****** *  **  *  *  * *     *** *   *****  **** *     * * *        *** *     *     * * *** ***** ****   ** ** ****  * printf(" %d",i);
 **** *   *   ** *    *   *     ** * *  * *    * *  *  *** * ** ***  *  * ** * 
  *  *     ***  **  *** **  *   *** *    *  *  * * * ** ***  ********* * ***** * if(i%j==0)
 *  *   **** ***** * *  **  *** ***  * **   * *  *** * *      * **  * * ***  *    * * * ** *   **
        }
    }



return 0;
}
answered by (-301 points)
0 0
Case 0: Correct output
Case 1: Correct output
Case 2: Correct output
Case 3: Correct output
commented by (4.3k points)
Page:
Welcome to Peer-Interaction Programming Learning System (PIPLS) LTLab, National DongHwa University
English 中文 Tiếng Việt
IP:172.70.80.5
©2016-2026

Related questions

0 like 0 dislike
22 answers
Midterm Question 4 - Makeup
[Exam] asked Dec 9, 2017 in Midterm by thopd (12.1k points)
ID: 36753 - Available when: 2017-11-15 14:10 - Due to: Unlimited | 6k views
0 like 0 dislike
99 answers
11-01 Exercise 1: Find out all prime numbers between n and m
[Exercise] Coding (C) - asked Nov 2, 2017 in Chapter 6: Loops by semicolon (5.2k points)
ID: 29829 - Available when: 2017-11-02 18:00 - Due to: Unlimited | 22k views
0 like 0 dislike
21 answers
Midterm Question 5 - Makeup
[Exam] asked Dec 9, 2017 in Midterm by thopd (12.1k points)
ID: 36754 - Available when: 2017-11-15 14:10 - Due to: Unlimited | 5.9k views
0 like 0 dislike
10 answers
Midterm Question 3 - Makeup
[Exam] asked Dec 9, 2017 in Midterm by thopd (12.1k points)
ID: 36752 - Available when: 2017-11-15 14:10 - Due to: Unlimited | 3.6k views
12,783 questions
183,442 answers
172,219 comments
4,824 users