Arithmetic coding increases sequence length
古いコメントを表示
Hi all, I'm using the function "arithenco(seq,counts)" to compress a sequence of 1's,2's,3's and 4's of size 65536. The correspondent counts (number of occurrences for each symbol) is [1991,7759,52117,3669] so the symbol 3 shows an high probability to occur and I would expect a compression gain from the arithmetic code. But this doesn't happen, and the function outputs a code of size 66424 (longer than the original), how is possible? Thank you for the attention.
1 件のコメント
Michael Montouchet
2025 年 10 月 2 日
編集済み: Michael Montouchet
2025 年 10 月 2 日
To write your sequence of 1, 2, 3, 4 as a binary sequence, you need at least 2 bits per symbol. The space required to write it as a binary sequence is 2 * 65536 bits.
The arithmetic code is made of 0 and 1, so you need 1 bit per symbol. The space required to write it as a binary sequence is 1 * 66424 bits.
So you managed to compress an initial input into a code that is nearly half of the initial size.
回答 (1 件)
Michael Montouchet
2025 年 10 月 2 日
編集済み: Michael Montouchet
2025 年 10 月 2 日
0 投票
To write your sequence of 1, 2, 3, 4 as a binary sequence, you need at least 2 bits per symbol. The space required to write it as a binary sequence is 2 * 65536 bits.
The arithmetic code is made of 0 and 1, so you need 1 bit per symbol. The space required to write it as a binary sequence is 1 * 66424 bits.
So you managed to compress an initial input into a code that is nearly half of the initial size.
カテゴリ
ヘルプ センター および File Exchange で Electrical Block Libraries についてさらに検索
2018 年 6 月 25 日
2025 年 10 月 2 日
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
