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I have the following C++ code:

cout<<"Your message"<<endl;

If x is equal to y or m is equal to n, the program prints "Your message". But if both conditions are true,the program tests only one of them and eventually prints one "Your Message".

Is there a way to print each "Your message" independently based on each condition using a single if statement?

The output would be identical to the below using multiple if statements.

cout<<"Your message"<<endl;

if (m==n){
cout<<"Your message"<<endl;
share|improve this question
Not that I know of, no. –  Rapptz Jan 15 '13 at 20:17
Thanks for your fast reply. So wil I need to use loops maybe? –  user1981497 Jan 15 '13 at 20:18
Sounds like an && is what you want.. –  Lews Therin Jan 15 '13 at 20:19
Yeah, I've thought of that. But I need the program to print the message even if only one of the conditions is true. –  user1981497 Jan 15 '13 at 20:20

7 Answers 7

up vote 11 down vote accepted

Not that I'd ever do it this way, but ...

for(int i = 0; i < (x==y)+(m==n); ++i) {
  std::cout << "Your message\n";

Let me expand on this. I'd never do it this way because it violates two principles:

1) Code for maintainability. This loop is going to cause the maintainer to stop, think, and try to recover your original intent. A pair of if statements won't.

2) Distinct input should produce distinct output. This principle benefits the user and the programmer. Few things are more frustrating than running a test, getting valid output, and still not knowing which path the program took.

Given these two principles, here is how I would actually code it:

if(x==y) {
  std::cout << "Your x-y message\n";
if(m==n) {
  std::cout << "Your m-n message\n";

Aside: Never use endl when you mean \n. They produce semantically identical code, but endl can accidentally make your program go slower.

share|improve this answer
I started to think on organizing a loop for it using arrays, but this is more elegant and effective. –  queen3 Jan 15 '13 at 20:22
Yeah, clever idea for sure! But I needed something simpler because my code is already really complex! –  user1981497 Jan 15 '13 at 20:24
Complex? You would call an else complex? What the... ? –  vanneto Jan 15 '13 at 20:25
I doubt it can be simpler. It's just few chars more than plain if. Other solutions like separating into function/lamda will surely be larger. If you care about optimization then I think compiler will unroll the loop anyway. –  queen3 Jan 15 '13 at 20:25
Well I'm trying to test 2d cell neighborhood with only one if. –  user1981497 Jan 15 '13 at 20:37

I don't think that's possible. What you have inside your bracket is a statement which is either true or false, there's no such thing like a true/true or true/false statement. What you could do is a do/while loop with a break statement. But I don't think that's the way to go. Why do you want to avoid two if statements?

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I'm checking for 2d array value neighbors specifically and my code would be very big if I had lots of if's. –  user1981497 Jan 15 '13 at 20:26
@user1981497: whoa, then every answer on this page won't help your situation. I'd make a new question and tell about the grid and how it works. You'll get much better answers. –  Mooing Duck Jan 15 '13 at 20:27
Yes, I second that. –  pfnuesel Jan 15 '13 at 20:28

You could do something like this, to build up the "message":

string msg = "Your Message\n";
string buildSt = x == y ? m == n ? msg + msg : msg : m == n ? msg : ""; 
share|improve this answer

single "|" or "&" gaurantees both side evaluation even if the result can be determined by left side operator alone.

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Compiler checks only one condition when both are true because you've connected your conditions with OR. If even one condition in ORs chain is true there is no need to check others as a result already true and will be false if one of them is false. So if you think that your logic is right then there is no need to do multiple checks. Your code is asking that you will print a message if one of the conditions is true and program doing it. If you want something special for a case when both conditions are true then add it separately. Shortly you should never expect from the compiler to do all checks in the expressions connected by OR.



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OK, I should then use two if's. Thanks –  user1981497 Jan 15 '13 at 20:51

Tested code:

#include <iostream>
#include <string>
using namespace std;

void main() {
    int x=1;
    int y=1;
    int m=1;
    int n=1;
    string mess1="Your message 1\n";
    string mess2="Your message 2\n";
share|improve this answer
How does this satisfy the request to print two copies of the message? –  Robᵩ Jan 15 '13 at 20:24
Why the not operator the same thing can be accomplished with ((x==y) && (m==n)) –  Chase Walden Jan 15 '13 at 20:25
Well, I've just tested that and it still shows one "Your Message" even if x=y and m=n. Thanks anyway! –  user1981497 Jan 15 '13 at 20:28
@Chase Walden I was mistaken about the question, but the not's where to emulate an OR statement with nands –  Ricardo Ortega Magaña Jan 15 '13 at 20:31
This doesn't compile... –  user1981497 Jan 15 '13 at 20:34

If you are trying to see if both statements are true an && is what you will want to use.

Take a look at Boolean Operators to see all of the possible options when comparing boolean (true/false) values.

To answer your question:

    if ((x==y) && (m==n))
        cout<<"Your Message"<<endl<<"Your Message"<<endl;
    else if((x==y) || (m==n))  
        cout<<"Your Message"<<endl;
share|improve this answer
Can't remove downvote until you edit, but you did fix it in the 5 minute window >.< –  Mooing Duck Jan 15 '13 at 20:51
@MooingDuck I'm not sure. What 5 minute window? –  Chase Walden Jan 15 '13 at 21:05
Any edits within 5 minutes of each other by the same person all count as one edit. So it says you have no edits, so I can't change my vote. –  Mooing Duck Jan 15 '13 at 21:21
@MooingDuck I did an inconsequential edit to the answer. –  Andrew Barber Jan 15 '13 at 21:50

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