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Why in Turbo C++ IDE the output of an integer variable of a hard coded value of 65536 is 0 and lesser than that value (65536) is a negative integer and greater than that value (65536) is a positive integer?

If we initialize an integer with a hard coded value of 65536 and print it, it will print 0 and if we change the value of that integer variable from 65536 to 65535 or lesser like 65534 and so on it prints -1,-2,... and if we change the value of that integer variable from 65536 to 65537 or greater it will print 1,2,3... and so on, why is this happening? I verified it on Turbo C++ IDE.

Kindly explain the logic and working behind this clearly as I'm a beginner.

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closed as too localized by Jens Gustedt, Useless, WhozCraig, Mr. Alien, InfantPro'Aravind' Dec 10 '12 at 4:58

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You should read this: en.wikipedia.org/wiki/Integer_%28computer_science%29 It would appear the int variable type is 16-bits in your chosen compiler which gives it a range of -32768 to 32767, or 0 to 65535 if unsigned. – Retired Ninja Dec 9 '12 at 19:34
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((x + 2^15) mod 2^16) - 2^15 – Mysticial Dec 9 '12 at 19:36
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your question like joke. please study your book – MajidTaheri Dec 9 '12 at 20:10
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He's a beginner, it isn't trivial for him. – Ramy Al Zuhouri Dec 9 '12 at 20:48
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Whoah, people still use TurboC++? I think the last time I wrote something with that IDE was 15 years ago, and even then it was practically obsolete. Hopefully you have the version that allowed more than one item in the "undo" history!! =) – paddy Dec 9 '12 at 21:01

The ancient Turbo C++ used 16-bit int.

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It seems you are talking about 16-bit signed value (-32768 to 32767), it means that it treats left-most bit as sign.

If you put into it 65535 (1111 1111 1111 1111) - it will treat it as negative since left-most bit is 1. Other bits (all one's) give the greatest negative value which is equal '-1'. It will remain negative until left most bit become 0. It will be 32767.

If you put 65536 (0001 0000 0000 0000 0000) - it will just cut last 16 bit, which all is zero's, and this value will be equal '0'.

65538 (0001 0000 0000 0000 0010) - again will cut last 16 bits, and you will get '2'

Note: Generally speaking you must not save values out of the type range. If you have 16-bit integer which can store only (-32768 to 32767) than you must not put there 65535.

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I guess rotation of numbers takes place once we cross over the integer limit. So once 65536 is reached, again the positive numbers start for greater values.

The original limit is -32768 to 32767. if we go to 32768, we have in fact reached -32768.So when we reach 65536, we get 0 and positive numbers start all over again

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