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@ -203,8 +203,8 @@ ssize_t open_read_close(const char *filename, void *buf, size_t size)
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return read_close(fd, buf, size);
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return read_close(fd, buf, size);
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}
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}
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// Read (potentially big) files in one go. File size is estimated by
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// Read (potentially big) files in one go. File size is estimated
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// lseek to end.
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// by stat.
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void *xmalloc_open_read_close(const char *filename, size_t *sizep)
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void *xmalloc_open_read_close(const char *filename, size_t *sizep)
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{
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{
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char *buf;
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char *buf;
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@ -4235,12 +4235,15 @@ static int insmod_ng_main(int argc ATTRIBUTE_UNUSED, char **argv)
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}
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}
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#if 0
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#if 0
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/* Any special reason why mmap? It isn't performace critical... */
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/* Any special reason why mmap? It isn't performance critical. -vda */
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/* Yes, xmalloc'ing can use *alot* of RAM. Don't forget that there are
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/* yes, xmalloc'ing can use *alot* of RAM. Don't forget that there are
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* modules out there that are half a megabyte! mmap()ing is way nicer
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* modules out there that are half a megabyte! mmap()ing is way nicer
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* for small mem boxes, i guess.
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* for small mem boxes, i guess. */
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*/
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/* But after load, these modules will take up that 0.5mb in kernel
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* anyway. Using malloc here causes only a transient spike to 1mb,
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* after module is loaded, we go back to normal 0.5mb usage
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* (in kernel). Also, mmap isn't magic - when we touch mapped data,
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* we use memory. -vda */
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int fd;
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int fd;
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struct stat st;
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struct stat st;
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unsigned long len;
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unsigned long len;
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