xref: /freebsd/contrib/xz/src/liblzma/simple/simple_coder.c (revision e24134bc0ed53f9d85377c4a645f2e86c9dc677c)
181ad8388SMartin Matuska ///////////////////////////////////////////////////////////////////////////////
281ad8388SMartin Matuska //
381ad8388SMartin Matuska /// \file       simple_coder.c
481ad8388SMartin Matuska /// \brief      Wrapper for simple filters
581ad8388SMartin Matuska ///
681ad8388SMartin Matuska /// Simple filters don't change the size of the data i.e. number of bytes
781ad8388SMartin Matuska /// in equals the number of bytes out.
881ad8388SMartin Matuska //
981ad8388SMartin Matuska //  Author:     Lasse Collin
1081ad8388SMartin Matuska //
1181ad8388SMartin Matuska //  This file has been put into the public domain.
1281ad8388SMartin Matuska //  You can do whatever you want with this file.
1381ad8388SMartin Matuska //
1481ad8388SMartin Matuska ///////////////////////////////////////////////////////////////////////////////
1581ad8388SMartin Matuska 
1681ad8388SMartin Matuska #include "simple_private.h"
1781ad8388SMartin Matuska 
1881ad8388SMartin Matuska 
1981ad8388SMartin Matuska /// Copied or encodes/decodes more data to out[].
2081ad8388SMartin Matuska static lzma_ret
2181ad8388SMartin Matuska copy_or_code(lzma_coder *coder, lzma_allocator *allocator,
2281ad8388SMartin Matuska 		const uint8_t *restrict in, size_t *restrict in_pos,
2381ad8388SMartin Matuska 		size_t in_size, uint8_t *restrict out,
2481ad8388SMartin Matuska 		size_t *restrict out_pos, size_t out_size, lzma_action action)
2581ad8388SMartin Matuska {
2681ad8388SMartin Matuska 	assert(!coder->end_was_reached);
2781ad8388SMartin Matuska 
2881ad8388SMartin Matuska 	if (coder->next.code == NULL) {
2981ad8388SMartin Matuska 		lzma_bufcpy(in, in_pos, in_size, out, out_pos, out_size);
3081ad8388SMartin Matuska 
3181ad8388SMartin Matuska 		// Check if end of stream was reached.
3281ad8388SMartin Matuska 		if (coder->is_encoder && action == LZMA_FINISH
3381ad8388SMartin Matuska 				&& *in_pos == in_size)
3481ad8388SMartin Matuska 			coder->end_was_reached = true;
3581ad8388SMartin Matuska 
3681ad8388SMartin Matuska 	} else {
3781ad8388SMartin Matuska 		// Call the next coder in the chain to provide us some data.
3881ad8388SMartin Matuska 		// We don't care about uncompressed_size here, because
3981ad8388SMartin Matuska 		// the next filter in the chain will do it for us (since
4081ad8388SMartin Matuska 		// we don't change the size of the data).
4181ad8388SMartin Matuska 		const lzma_ret ret = coder->next.code(
4281ad8388SMartin Matuska 				coder->next.coder, allocator,
4381ad8388SMartin Matuska 				in, in_pos, in_size,
4481ad8388SMartin Matuska 				out, out_pos, out_size, action);
4581ad8388SMartin Matuska 
4681ad8388SMartin Matuska 		if (ret == LZMA_STREAM_END) {
4781ad8388SMartin Matuska 			assert(!coder->is_encoder
4881ad8388SMartin Matuska 					|| action == LZMA_FINISH);
4981ad8388SMartin Matuska 			coder->end_was_reached = true;
5081ad8388SMartin Matuska 
5181ad8388SMartin Matuska 		} else if (ret != LZMA_OK) {
5281ad8388SMartin Matuska 			return ret;
5381ad8388SMartin Matuska 		}
5481ad8388SMartin Matuska 	}
5581ad8388SMartin Matuska 
5681ad8388SMartin Matuska 	return LZMA_OK;
5781ad8388SMartin Matuska }
5881ad8388SMartin Matuska 
5981ad8388SMartin Matuska 
6081ad8388SMartin Matuska static size_t
6181ad8388SMartin Matuska call_filter(lzma_coder *coder, uint8_t *buffer, size_t size)
6281ad8388SMartin Matuska {
6381ad8388SMartin Matuska 	const size_t filtered = coder->filter(coder->simple,
6481ad8388SMartin Matuska 			coder->now_pos, coder->is_encoder,
6581ad8388SMartin Matuska 			buffer, size);
6681ad8388SMartin Matuska 	coder->now_pos += filtered;
6781ad8388SMartin Matuska 	return filtered;
6881ad8388SMartin Matuska }
6981ad8388SMartin Matuska 
7081ad8388SMartin Matuska 
7181ad8388SMartin Matuska static lzma_ret
7281ad8388SMartin Matuska simple_code(lzma_coder *coder, lzma_allocator *allocator,
7381ad8388SMartin Matuska 		const uint8_t *restrict in, size_t *restrict in_pos,
7481ad8388SMartin Matuska 		size_t in_size, uint8_t *restrict out,
7581ad8388SMartin Matuska 		size_t *restrict out_pos, size_t out_size, lzma_action action)
7681ad8388SMartin Matuska {
7781ad8388SMartin Matuska 	// TODO: Add partial support for LZMA_SYNC_FLUSH. We can support it
7881ad8388SMartin Matuska 	// in cases when the filter is able to filter everything. With most
7981ad8388SMartin Matuska 	// simple filters it can be done at offset that is a multiple of 2,
8081ad8388SMartin Matuska 	// 4, or 16. With x86 filter, it needs good luck, and thus cannot
8181ad8388SMartin Matuska 	// be made to work predictably.
8281ad8388SMartin Matuska 	if (action == LZMA_SYNC_FLUSH)
8381ad8388SMartin Matuska 		return LZMA_OPTIONS_ERROR;
8481ad8388SMartin Matuska 
8581ad8388SMartin Matuska 	// Flush already filtered data from coder->buffer[] to out[].
8681ad8388SMartin Matuska 	if (coder->pos < coder->filtered) {
8781ad8388SMartin Matuska 		lzma_bufcpy(coder->buffer, &coder->pos, coder->filtered,
8881ad8388SMartin Matuska 				out, out_pos, out_size);
8981ad8388SMartin Matuska 
9081ad8388SMartin Matuska 		// If we couldn't flush all the filtered data, return to
9181ad8388SMartin Matuska 		// application immediately.
9281ad8388SMartin Matuska 		if (coder->pos < coder->filtered)
9381ad8388SMartin Matuska 			return LZMA_OK;
9481ad8388SMartin Matuska 
9581ad8388SMartin Matuska 		if (coder->end_was_reached) {
9681ad8388SMartin Matuska 			assert(coder->filtered == coder->size);
9781ad8388SMartin Matuska 			return LZMA_STREAM_END;
9881ad8388SMartin Matuska 		}
9981ad8388SMartin Matuska 	}
10081ad8388SMartin Matuska 
10181ad8388SMartin Matuska 	// If we get here, there is no filtered data left in the buffer.
10281ad8388SMartin Matuska 	coder->filtered = 0;
10381ad8388SMartin Matuska 
10481ad8388SMartin Matuska 	assert(!coder->end_was_reached);
10581ad8388SMartin Matuska 
10681ad8388SMartin Matuska 	// If there is more output space left than there is unfiltered data
10781ad8388SMartin Matuska 	// in coder->buffer[], flush coder->buffer[] to out[], and copy/code
10881ad8388SMartin Matuska 	// more data to out[] hopefully filling it completely. Then filter
10981ad8388SMartin Matuska 	// the data in out[]. This step is where most of the data gets
11081ad8388SMartin Matuska 	// filtered if the buffer sizes used by the application are reasonable.
11181ad8388SMartin Matuska 	const size_t out_avail = out_size - *out_pos;
11281ad8388SMartin Matuska 	const size_t buf_avail = coder->size - coder->pos;
11381ad8388SMartin Matuska 	if (out_avail > buf_avail) {
11481ad8388SMartin Matuska 		// Store the old position so that we know from which byte
11581ad8388SMartin Matuska 		// to start filtering.
11681ad8388SMartin Matuska 		const size_t out_start = *out_pos;
11781ad8388SMartin Matuska 
11881ad8388SMartin Matuska 		// Flush data from coder->buffer[] to out[], but don't reset
11981ad8388SMartin Matuska 		// coder->pos and coder->size yet. This way the coder can be
12081ad8388SMartin Matuska 		// restarted if the next filter in the chain returns e.g.
12181ad8388SMartin Matuska 		// LZMA_MEM_ERROR.
12281ad8388SMartin Matuska 		memcpy(out + *out_pos, coder->buffer + coder->pos, buf_avail);
12381ad8388SMartin Matuska 		*out_pos += buf_avail;
12481ad8388SMartin Matuska 
12581ad8388SMartin Matuska 		// Copy/Encode/Decode more data to out[].
12681ad8388SMartin Matuska 		{
12781ad8388SMartin Matuska 			const lzma_ret ret = copy_or_code(coder, allocator,
12881ad8388SMartin Matuska 					in, in_pos, in_size,
12981ad8388SMartin Matuska 					out, out_pos, out_size, action);
13081ad8388SMartin Matuska 			assert(ret != LZMA_STREAM_END);
13181ad8388SMartin Matuska 			if (ret != LZMA_OK)
13281ad8388SMartin Matuska 				return ret;
13381ad8388SMartin Matuska 		}
13481ad8388SMartin Matuska 
13581ad8388SMartin Matuska 		// Filter out[].
13681ad8388SMartin Matuska 		const size_t size = *out_pos - out_start;
13781ad8388SMartin Matuska 		const size_t filtered = call_filter(
13881ad8388SMartin Matuska 				coder, out + out_start, size);
13981ad8388SMartin Matuska 
14081ad8388SMartin Matuska 		const size_t unfiltered = size - filtered;
14181ad8388SMartin Matuska 		assert(unfiltered <= coder->allocated / 2);
14281ad8388SMartin Matuska 
14381ad8388SMartin Matuska 		// Now we can update coder->pos and coder->size, because
14481ad8388SMartin Matuska 		// the next coder in the chain (if any) was successful.
14581ad8388SMartin Matuska 		coder->pos = 0;
14681ad8388SMartin Matuska 		coder->size = unfiltered;
14781ad8388SMartin Matuska 
14881ad8388SMartin Matuska 		if (coder->end_was_reached) {
14981ad8388SMartin Matuska 			// The last byte has been copied to out[] already.
15081ad8388SMartin Matuska 			// They are left as is.
15181ad8388SMartin Matuska 			coder->size = 0;
15281ad8388SMartin Matuska 
15381ad8388SMartin Matuska 		} else if (unfiltered > 0) {
15481ad8388SMartin Matuska 			// There is unfiltered data left in out[]. Copy it to
15581ad8388SMartin Matuska 			// coder->buffer[] and rewind *out_pos appropriately.
15681ad8388SMartin Matuska 			*out_pos -= unfiltered;
15781ad8388SMartin Matuska 			memcpy(coder->buffer, out + *out_pos, unfiltered);
15881ad8388SMartin Matuska 		}
15981ad8388SMartin Matuska 	} else if (coder->pos > 0) {
16081ad8388SMartin Matuska 		memmove(coder->buffer, coder->buffer + coder->pos, buf_avail);
16181ad8388SMartin Matuska 		coder->size -= coder->pos;
16281ad8388SMartin Matuska 		coder->pos = 0;
16381ad8388SMartin Matuska 	}
16481ad8388SMartin Matuska 
16581ad8388SMartin Matuska 	assert(coder->pos == 0);
16681ad8388SMartin Matuska 
16781ad8388SMartin Matuska 	// If coder->buffer[] isn't empty, try to fill it by copying/decoding
16881ad8388SMartin Matuska 	// more data. Then filter coder->buffer[] and copy the successfully
16981ad8388SMartin Matuska 	// filtered data to out[]. It is probable, that some filtered and
17081ad8388SMartin Matuska 	// unfiltered data will be left to coder->buffer[].
17181ad8388SMartin Matuska 	if (coder->size > 0) {
17281ad8388SMartin Matuska 		{
17381ad8388SMartin Matuska 			const lzma_ret ret = copy_or_code(coder, allocator,
17481ad8388SMartin Matuska 					in, in_pos, in_size,
17581ad8388SMartin Matuska 					coder->buffer, &coder->size,
17681ad8388SMartin Matuska 					coder->allocated, action);
17781ad8388SMartin Matuska 			assert(ret != LZMA_STREAM_END);
17881ad8388SMartin Matuska 			if (ret != LZMA_OK)
17981ad8388SMartin Matuska 				return ret;
18081ad8388SMartin Matuska 		}
18181ad8388SMartin Matuska 
18281ad8388SMartin Matuska 		coder->filtered = call_filter(
18381ad8388SMartin Matuska 				coder, coder->buffer, coder->size);
18481ad8388SMartin Matuska 
18581ad8388SMartin Matuska 		// Everything is considered to be filtered if coder->buffer[]
18681ad8388SMartin Matuska 		// contains the last bytes of the data.
18781ad8388SMartin Matuska 		if (coder->end_was_reached)
18881ad8388SMartin Matuska 			coder->filtered = coder->size;
18981ad8388SMartin Matuska 
19081ad8388SMartin Matuska 		// Flush as much as possible.
19181ad8388SMartin Matuska 		lzma_bufcpy(coder->buffer, &coder->pos, coder->filtered,
19281ad8388SMartin Matuska 				out, out_pos, out_size);
19381ad8388SMartin Matuska 	}
19481ad8388SMartin Matuska 
19581ad8388SMartin Matuska 	// Check if we got everything done.
19681ad8388SMartin Matuska 	if (coder->end_was_reached && coder->pos == coder->size)
19781ad8388SMartin Matuska 		return LZMA_STREAM_END;
19881ad8388SMartin Matuska 
19981ad8388SMartin Matuska 	return LZMA_OK;
20081ad8388SMartin Matuska }
20181ad8388SMartin Matuska 
20281ad8388SMartin Matuska 
20381ad8388SMartin Matuska static void
20481ad8388SMartin Matuska simple_coder_end(lzma_coder *coder, lzma_allocator *allocator)
20581ad8388SMartin Matuska {
20681ad8388SMartin Matuska 	lzma_next_end(&coder->next, allocator);
20781ad8388SMartin Matuska 	lzma_free(coder->simple, allocator);
20881ad8388SMartin Matuska 	lzma_free(coder, allocator);
20981ad8388SMartin Matuska 	return;
21081ad8388SMartin Matuska }
21181ad8388SMartin Matuska 
21281ad8388SMartin Matuska 
21381ad8388SMartin Matuska static lzma_ret
21481ad8388SMartin Matuska simple_coder_update(lzma_coder *coder, lzma_allocator *allocator,
215*e24134bcSMartin Matuska 		const lzma_filter *filters_null lzma_attribute((__unused__)),
21681ad8388SMartin Matuska 		const lzma_filter *reversed_filters)
21781ad8388SMartin Matuska {
21881ad8388SMartin Matuska 	// No update support, just call the next filter in the chain.
21981ad8388SMartin Matuska 	return lzma_next_filter_update(
22081ad8388SMartin Matuska 			&coder->next, allocator, reversed_filters + 1);
22181ad8388SMartin Matuska }
22281ad8388SMartin Matuska 
22381ad8388SMartin Matuska 
22481ad8388SMartin Matuska extern lzma_ret
22581ad8388SMartin Matuska lzma_simple_coder_init(lzma_next_coder *next, lzma_allocator *allocator,
22681ad8388SMartin Matuska 		const lzma_filter_info *filters,
22781ad8388SMartin Matuska 		size_t (*filter)(lzma_simple *simple, uint32_t now_pos,
22881ad8388SMartin Matuska 			bool is_encoder, uint8_t *buffer, size_t size),
22981ad8388SMartin Matuska 		size_t simple_size, size_t unfiltered_max,
23081ad8388SMartin Matuska 		uint32_t alignment, bool is_encoder)
23181ad8388SMartin Matuska {
23281ad8388SMartin Matuska 	// Allocate memory for the lzma_coder structure if needed.
23381ad8388SMartin Matuska 	if (next->coder == NULL) {
23481ad8388SMartin Matuska 		// Here we allocate space also for the temporary buffer. We
23581ad8388SMartin Matuska 		// need twice the size of unfiltered_max, because then it
23681ad8388SMartin Matuska 		// is always possible to filter at least unfiltered_max bytes
23781ad8388SMartin Matuska 		// more data in coder->buffer[] if it can be filled completely.
23881ad8388SMartin Matuska 		next->coder = lzma_alloc(sizeof(lzma_coder)
23981ad8388SMartin Matuska 				+ 2 * unfiltered_max, allocator);
24081ad8388SMartin Matuska 		if (next->coder == NULL)
24181ad8388SMartin Matuska 			return LZMA_MEM_ERROR;
24281ad8388SMartin Matuska 
24381ad8388SMartin Matuska 		next->code = &simple_code;
24481ad8388SMartin Matuska 		next->end = &simple_coder_end;
24581ad8388SMartin Matuska 		next->update = &simple_coder_update;
24681ad8388SMartin Matuska 
24781ad8388SMartin Matuska 		next->coder->next = LZMA_NEXT_CODER_INIT;
24881ad8388SMartin Matuska 		next->coder->filter = filter;
24981ad8388SMartin Matuska 		next->coder->allocated = 2 * unfiltered_max;
25081ad8388SMartin Matuska 
25181ad8388SMartin Matuska 		// Allocate memory for filter-specific data structure.
25281ad8388SMartin Matuska 		if (simple_size > 0) {
25381ad8388SMartin Matuska 			next->coder->simple = lzma_alloc(
25481ad8388SMartin Matuska 					simple_size, allocator);
25581ad8388SMartin Matuska 			if (next->coder->simple == NULL)
25681ad8388SMartin Matuska 				return LZMA_MEM_ERROR;
25781ad8388SMartin Matuska 		} else {
25881ad8388SMartin Matuska 			next->coder->simple = NULL;
25981ad8388SMartin Matuska 		}
26081ad8388SMartin Matuska 	}
26181ad8388SMartin Matuska 
26281ad8388SMartin Matuska 	if (filters[0].options != NULL) {
26381ad8388SMartin Matuska 		const lzma_options_bcj *simple = filters[0].options;
26481ad8388SMartin Matuska 		next->coder->now_pos = simple->start_offset;
26581ad8388SMartin Matuska 		if (next->coder->now_pos & (alignment - 1))
26681ad8388SMartin Matuska 			return LZMA_OPTIONS_ERROR;
26781ad8388SMartin Matuska 	} else {
26881ad8388SMartin Matuska 		next->coder->now_pos = 0;
26981ad8388SMartin Matuska 	}
27081ad8388SMartin Matuska 
27181ad8388SMartin Matuska 	// Reset variables.
27281ad8388SMartin Matuska 	next->coder->is_encoder = is_encoder;
27381ad8388SMartin Matuska 	next->coder->end_was_reached = false;
27481ad8388SMartin Matuska 	next->coder->pos = 0;
27581ad8388SMartin Matuska 	next->coder->filtered = 0;
27681ad8388SMartin Matuska 	next->coder->size = 0;
27781ad8388SMartin Matuska 
27881ad8388SMartin Matuska 	return lzma_next_filter_init(
27981ad8388SMartin Matuska 			&next->coder->next, allocator, filters + 1);
28081ad8388SMartin Matuska }
281