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Not sure how else to put that, but I'll start off with a code snippet and output:

uint32_t expires;

cout << "Expiration bytes: " << setfill('0') << hex
     << setw(2) << (unsigned short)rec[keyLen+4]
     << setw(2) << (unsigned short)rec[keyLen+5]
     << setw(2) << (unsigned short)rec[keyLen+6]
     << setw(2) << (unsigned short)rec[keyLen+7] << endl;

expires = ntohl(*(uint32_t*)&rec[keyLen+4]);

cout << "Expiration: " << (long)expires << endl;

cout << "Hex: " << hex << expires << endl;

Outputs:

Expiration bytes: 00000258
Expiration: 258
Hex: 258

I can confirm from other parts of the program that examining and outputting the hex representation of bytes works as expected, and that those are indeed the bytes in the byte stream (sent from another application).

Now, I would be able to understand a bit better if expiration just held some nonsense, because that would mean there's some egregious error (probably involving pointers). But this... this is clearly just spitting out the hex value as if it were a decimal, and that's plain wrong.

To make matters more confusing, this works at another point in the program:

fullSize = ntohs(*(uint16_t*)&buff[0]);

With a byte value of 0x0114, fullSize will contain the value 276.

So the question is, what the heck is going on here? How is it possible for an int to be wrong?

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8  
Your program exhibits undefined behaviour at almost every step. –  Kerrek SB Jan 13 '12 at 17:20
    
While I'm not condoning any of your code, let me add that you could simply say cout << "Old Expiration: 0x" << hex << setw(8) << *(uint32_t*)&rec[keyLen+4] << endl; at the top of your program to try and print the value before the conversion. –  Kerrek SB Jan 13 '12 at 17:26
1  
Please, specify the type of varible rec? –  Alexandr Priymak Jan 13 '12 at 17:28
    
@AlexandrPriymak: From the printing code you can infer that its a type any value of which can be expressed with two hex digits... –  Kerrek SB Jan 13 '12 at 17:29
    
@Kerrek SB: Can you explain why it is undefined? –  DigitalMan Jan 13 '12 at 18:00
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3 Answers 3

up vote 10 down vote accepted

cout << "Expiration: " << dec << (long)expires << endl; will output decimal, otherwise the last setting (hex or dec) will still be in effect.

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+1 the only answer which mentions dec –  Tom Whittock Jan 13 '12 at 17:39
    
This explains the problem and how to fix it. Problem solved. –  DigitalMan Jan 13 '12 at 18:09
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hex is sticky, so unless you reset it, cout will continue to output things in hex.

You can reset it by issuing sending std::dec to the stream. Alternatively you could build a more advanced mechanism that would store the original state and restore it afterwords.

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Doesn't deserve a score of 11 (wth?!) unless you explain how to reset it. –  Lightness Races in Orbit Jan 13 '12 at 18:01
    
This was exactly the problem, thank you. –  DigitalMan Jan 13 '12 at 18:08
    
Is there any way to tell what line last left the cout stream in the hex state? Let's say that you have a large project that has hundreds of files and it so happens that one of the cout statements leaves the cout in the std::hex state. However many other ostreams are used so you can't simply break on the appropriate function. Any ideas? –  Paul Feb 14 '13 at 22:49
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Since you never switch cout back to decimal output, all of your outputs are in hex, even the output of cout << "Expiration: " << (long)expires << endl;.

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