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I have this following code:

int M = 3; 
int C = 5; 
int match = 3;
for ( int k =0; k < C; k ++ )
    match --; 
    if ( match == 0 && k = M )
         std::cout << " equals" << std::endl;

But it gives out an error saying:

Error: expression must be a modifiable value

on that "if" line. I am not trying to modify "match" or "k" value here, but why this error? if I only write it like:

if ( match == 0 )

it is ok. Could someone explain it to me?

share|improve this question
Did you mean k == M? – Kerrek SB Oct 5 '12 at 11:47
K == M not K = M – Shashwat Oct 5 '12 at 11:48
You're lucky that it resulted in a compiler error due to the operator precedences of && and =, instead of silently producing an incorrect program! – Rufflewind Aug 24 '14 at 1:47

5 Answers 5

up vote 14 down vote accepted

The assignment operator has lower precedence than &&, so your condition is equivalent to:

if ((match == 0 && k) = m)

But the left-hand side of this is an rvalue, namely the boolean resulting from the evaluation of the sub­expression match == 0 && k, so you cannot assign to it.

By contrast, comparison has higher precedence, so match == 0 && k == m is equivalent to:

if ((match == 0) && (k == m))
share|improve this answer

Remember that a single = is always an assignment in C or C++.

Your test should be if ( match == 0 && k == M )you made a typo on the k == M test.

If you really mean k=M (i.e. a side-effecting assignment inside a test) you should for readability reasons code if (match == 0 && (k=m) != 0) but most coding rules advise not writing that.

BTW, your mistake suggests to ask for all warnings (e.g. -Wall option to g++), and to upgrade to recent compilers. The next GCC 4.8 will give you:

 % g++-trunk -Wall -c In function ‘void foo()’: error: lvalue required as left operand of assignment
          if ( match == 0 && k = M )

and Clang 3.1 also tells you error: expression is not assignable

So use recent versions of free compilers and enable all the warnings when using them.

share|improve this answer

You are trying to modify k. To compare, you need

 k == M 

As to why k=M does not convert to a boolean in this context, have a look at the operator precedence rules.

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You test k = M instead of k == M.
Maybe it is what you want to do, in this case, write if (match == 0 && (k = M))

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yeah, I am really a numb, I forgot that one. Thank you all. – E_learner Oct 5 '12 at 11:50

In C, you will also experience the same error if you declare a:

char array[size];

and than try to assign a value without specifying an index position:

array = '\0'; 

By doing:

array[index] = '0\';

You're specifying the accessible/modifiable address previously declared.

share|improve this answer
just what i was looking for ! – CyprUS Oct 26 at 23:41

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