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This question already has an answer here:

Can you automatically convert long to int if long value is small enough to fit into int?

long i=1;
int j=i; //Error Type mismatch: cannot convert from long to int
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marked as duplicate by h22, dunni, ataylor, cHao, greedybuddha Jun 4 '13 at 23:07

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
No; the compiler doesn't know that. – SLaks Jun 4 '13 at 17:27
    
As SLaks says, the compiler has no idea what value will be in i at execution (OK, maybe in this case, but not generally), so there's no way to somehow "convert if small enough to fit" without also coercing a "fit" if it's not small enough. For this you use an explicit cast, and pre-check the value if you need to detect an overflow. – Hot Licks Jun 4 '13 at 17:30
    
An integer literal is of type long if it ends with the letter L or l; otherwise it is of type int. It is recommended that you use the upper case letter L because the lower case letter l is hard to distinguish from the digit 1. From Java reference – Sam Jun 4 '13 at 17:35
up vote 1 down vote accepted

Nope, you must do an explicit cast.

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ok thanks but I know that but why this required? can you elaborate. because if value is in range of it then why it is not allow without cast. if we cast then it might lost some info. – NFE Jun 4 '13 at 17:29
1  
Because i is a variable that could have any value. If you want to assign 1 to j, then you should just assign 1, but if you're copying it from a variable, it has to allow any long value. – Louis Wasserman Jun 4 '13 at 17:30
long i;
if (i =< Integer.MAX_VALUE && i >= Integer.MIN_VALUE) {
  int j = (int) i; // No loss of precision
} else {
    throw new Exception("Cannot convert "+i+" to int");
}
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This is a narrowing conversion that requires an explicit cast.

int j= (int) i;

It requires an explicit cast because it might not be small enough to fit, and you can lose information. It's your responsibility to ensure that the long is small enough to fit.

From the Java language specification:

A narrowing conversion of a signed integer to an integral type T simply discards all but the n lowest order bits, where n is the number of bits used to represent type T. In addition to a possible loss of information about the magnitude of the numeric value, this may cause the sign of the resulting value to differ from the sign of the input value.

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It is not allowed in java. Yes you surely can do it the other way.

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You should cast it to int:

long i = 1;
int j = (int) i;
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