random: use memmove instead of memcpy for remaining 32 bytes
In order to immediately overwrite the old key on the stack, before servicing a userspace request for bytes, we use the remaining 32 bytes of block 0 as the key. This means moving indices 8,9,a,b,c,d,e,f -> 4,5,6,7,8,9,a,b. Since 4 < 8, for the kernel implementations of memcpy(), this doesn't actually appear to be a problem in practice. But relying on that characteristic seems a bit brittle. So let's change that to a proper memmove(), which is the by-the-books way of handling overlapping memory copies. Reviewed-by: Dominik Brodowski <linux@dominikbrodowski.net> Signed-off-by: Jason A. Donenfeld <Jason@zx2c4.com>
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35a33ff380
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@ -333,7 +333,7 @@ static void crng_fast_key_erasure(u8 key[CHACHA_KEY_SIZE],
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chacha20_block(chacha_state, first_block);
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memcpy(key, first_block, CHACHA_KEY_SIZE);
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memcpy(random_data, first_block + CHACHA_KEY_SIZE, random_data_len);
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memmove(random_data, first_block + CHACHA_KEY_SIZE, random_data_len);
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memzero_explicit(first_block, sizeof(first_block));
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}
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