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Is the following function safer than using memcpy? Memcpy gives the following "Improper_Null_Termination" Error in Checkmarx static code analysis: The string in at line is stripped of its terminating null-byte by at . However, if I use the following function, Checkmarx has no issue:

void myMemCpy(void *dest, void *src, size_t n) 
{ 
   // Typecast src and dest addresses to (char *) 
   char *csrc = (char *)src; 
   char *cdest = (char *)dest; 

   // Copy contents of src[] to dest[] 
   for (int i=0; i<n; i++) 
       cdest[i] = csrc[i]; 
} 

Are there any problems with using this function instead of memcpy()?

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    The problem is most likely in the code that uses memcpy, so please post it. (Cloning well-known library functions to silence the static code analyzer is a bit like casting away warnings.) – M Oehm Mar 19 '19 at 10:56
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    I don't see how that's any more safe than memcpy. If anything, you're obfuscating the memcpy so your code analyzer doesn't recognize it anymore and won't complain about its (mis)usage. – Blaze Mar 19 '19 at 10:56
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    "Improper_Null_Termination" sounds to me like you are trying to copy a string. Do you maybe want strdup? – hellow Mar 19 '19 at 11:03
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    No. int i not necessarily fit to size_t n. So this code even has a potential bug. – Alex Lop. Mar 19 '19 at 11:11
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    memcpy does not care about such termination. The problem is in the code using memcpy. Maybe you have code like: memcpy(dst, src, strlen(src)); In any case the answer is no. – 4386427 Mar 19 '19 at 11:15
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Is the following function safer than using memcpy?

No. It's the same. At best.

If anything, since code analyzers and compilers know what memcpy() does, this code is less safe.

Especially given the way you pass size_t and then improperly use an int loop counter:

void myMemCpy(void *dest, void *src, size_t n) 
{ 
   // Typecast src and dest addresses to (char *) 
   char *csrc = (char *)src; 
   char *cdest = (char *)dest; 

   // Copy contents of src[] to dest[] 
   for (int i=0; i<n; i++) 
       cdest[i] = csrc[i]; 
} 

On a 64-bit architecture with 32-bit int and 64-bit size_t, that's going to fail spectacularly if n is a value over 2 gig.

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    Did you make any changes to the code? If no, why repeat it in an answer? – klutt Mar 19 '19 at 11:21
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    I wouldn't write "It's the same. At best." as the rest of the answer explains that it isn't the same. – 4386427 Mar 19 '19 at 11:24
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    @4386427 I'm assuming those other issues might be addressable, in which case it's the same as memcpy(). – Andrew Henle Mar 19 '19 at 12:14

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