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Well, I have to revive a question that was answered here before. I've made some changes for other reasons and now I have a problem again. Here is the relevant details:

volatile char RxBuffer1[NEMA_BUFFER_LENGTH];
uint32_t NEMA_TypeStart;
char NEMA_Type[10];
uint32_t len;
...

memcpy(NEMA_Type,(const char*)RxBuffer1[NEMA_TypeStart], len);

With the cast I get the error shown in the subject line. Without the cast I get:

passing argument 2 of 'memcpy' makes pointer from integer without a cast

Note the same thing happens if I use strncpy instead. So I'm stumped. I thought I understood that memcpy uses void*. What am I doing wrong?

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2 Answers 2

up vote 1 down vote accepted

You need to pass addresses to memcpy. I would assume you want:

memcpy(NEMA_Type,(const char*) &RxBuffer1[NEMA_TypeStart], len);
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Your answer is correct. Thank you. I think I'm a victim of trying to learn to fast. I (thought) I understood that the string variable really IS a pointer in C. in other words I thought RxBuffer1[n] == &RxBuffer1 + n –  user1160866 Feb 5 '12 at 6:00
    
RxBuffer's not a string, it's an array. You can do, for example, Rxbuffer[2]=RxBuffer[0], so these must be the values of the array's elements. –  David Schwartz Feb 5 '12 at 6:01
    
and don't put the cast in there, it just distracts from the problem –  Jens Gustedt Feb 5 '12 at 9:58
    
Actually the cast is necessary since the buffer is volatile. –  user1160866 Feb 5 '12 at 17:04

Its been awhile, but I think you need to say this instead...

memcpy(NEMA_Type, &RxBuffer1[NEMA_TypeStart], len);

You could also say...

memcpy(NEMA_Type, RxBuffer1 + NEMA_TypeStart, len);
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