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Recently I experienced very strange situation by my C program. Usually my program works fine, but if I add just a few lines to check elapsed time, the result changes.

The code of which result changed is:

while (!feof(pfInputFile) && (c = fgetc(pfInputFile)) != EOF){
    for(i = 1 ; i < SEED_SIZE ; i++){
    pcSeq[i-1] = pcSeq[i];  // Shift left all sequence
    }
    pcSeq[SEED_SIZE - 1] = c;
}

And the code I added and cause a problem is below:

#include <time.h>

time_t start, end;
time(&start); time(&end);

And then, the characters that are read by the above source code are changed to unrecognized character.

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1  
You should learn to use a debugger (like gdb on Linux); you should compile with warnings and debug info enabled (i.e. gcc -Wall -g on Linux); and you should post all your code (the bug is probably elsewhere) if you want us to help. –  Basile Starynkevitch Dec 14 '11 at 6:07
2  
if nothing else the feof call is pointless; only check the ((c=getchar())==EOF) –  Dave Dec 14 '11 at 6:33
3  
Since you don't show the complete minimal code which reproduces the problem, there is nothing we can do except guess. In particular, you don't show how pcSeq is defined, or how it is initialized. You might well find that calling printf("Hello World\n"); instead of time() also changes the output. –  Jonathan Leffler Dec 14 '11 at 7:39

1 Answer 1

up vote 2 down vote accepted

Not enough details but I'll take a wild guess.

You returned a pointer to a local variable pcSeq. Then in another function you call time(&start) with the result that the start variable now shares the same stack address that pcSeq had, so it got overwritten.

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