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BIP-0440: clarify wordspan costs
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@@ -10,7 +10,7 @@
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License: BSD-3-Clause
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Discussion: https://groups.google.com/g/bitcoindev/c/GisTcPb8Jco/m/8znWcWwKAQAJ
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https://delvingbitcoin.org/t/benchmarking-bitcoin-script-evaluation-for-the-varops-budget-great-script-restoration/2094
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Version: 0.2.0
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Version: 0.2.1
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</pre>
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==Introduction==
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@@ -139,6 +139,23 @@ We use the following annotations to indicate the derivation for each opcode:
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;OTHER
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: all other operations which take a variable-length parameter: cost = 4 per byte written.
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====Byte Lengths and Word Spans====
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Cost formulas distinguish script-visible byte lengths from 64-bit word spans.
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<code>length(X)</code> is the script-visible byte length of stack element
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<code>X</code>. <code>wordspan(n) = ((n + 7) / 8) * 8</code> is a byte count
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rounded up to the next 8-byte boundary; when the argument is a stack element,
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<code>wordspan(X)</code> means <code>wordspan(length(X))</code>.
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Unless a formula explicitly uses <code>wordspan(...)</code>,
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<code>length(X)</code> refers to the script-visible byte length of <code>X</code>.
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Formulas use <code>wordspan(...)</code> only when the modeled operation
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examines or writes the padded 64-bit word span, for example integer
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conversion, zero testing, numeric comparison, arithmetic with carry, or bit
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operations over words. Costs remain based on script-visible byte lengths when the
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operation copies, hashes, limits, truncates, prepends, or otherwise produces
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exactly the script-visible bytes.
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Note that COMPARINGZERO is a subset of COMPARING: an implementation must examine every byte of a stack element to determine if the value is 0. This can be done efficiently using existing comparison techniques, e.g. check the first byte, then `memcmp(first, first+1, len-1)`.
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Note that LENGTHCONV is used where script interprets a value as a length. Without explicit limits on number size, such (little-endian) values might have to be examined in their entirety to ensure any trailing bytes are zero, implying a COMPARINGZERO operation after the first few bytes.
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@@ -157,15 +174,15 @@ The following opcodes demonstrate the approach, with an analysis of how the cost
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! Reason
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|-
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|OP_VERIFY
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|length(A) * 2
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|wordspan(A) * 2
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|COMPARINGZERO
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|-
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|OP_NOT
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|length(A) * 2
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|wordspan(A) * 2
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|COMPARINGZERO
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|-
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|OP_0NOTEQUAL
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|length(A) * 2
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|wordspan(A) * 2
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|COMPARINGZERO
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|-
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|OP_EQUAL
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@@ -203,7 +220,7 @@ OP_EQUAL and OP_EQUALVERIFY don't have to examine any data (and the Bitcoin Core
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|COPYING
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|-
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|OP_IFDUP
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|length(A) * 5
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|wordspan(A) * 2 + length(A) * 3
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|COMPARINGZERO + COPYING
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|-
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|OP_DUP
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@@ -215,7 +232,7 @@ OP_EQUAL and OP_EQUALVERIFY don't have to examine any data (and the Bitcoin Core
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|COPYING
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|-
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|OP_PICK
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|length(A) * 2 + length(A-th-from-top) * 3
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|wordspan(A) * 2 + length(A-th-from-top) * 3
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|LENGTHCONV + COPYING
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|-
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|OP_TUCK
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@@ -223,7 +240,7 @@ OP_EQUAL and OP_EQUALVERIFY don't have to examine any data (and the Bitcoin Core
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|COPYING
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|-
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|OP_ROLL
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|length(A) * 2 + 48 * Value of A
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|wordspan(A) * 2 + 48 * Value of A
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|LENGTHCONV + ROLL
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|-
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|}
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@@ -243,57 +260,57 @@ A reasonable implementation (and the current bitcoind C++ implementation) is to
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! Varops Budget Cost
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|-
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|OP_BOOLAND
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|(length(A) + length(B)) * 2
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|(wordspan(A) + wordspan(B)) * 2
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|COMPARINGZERO
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|-
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|OP_BOOLOR
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|(length(A) + length(B)) * 2
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|(wordspan(A) + wordspan(B)) * 2
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|COMPARINGZERO
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|-
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|OP_NUMEQUAL
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|MAX(length(A), length(B)) * 2
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|MAX(wordspan(A), wordspan(B)) * 2
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|COMPARING + COMPARINGZERO
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|-
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|OP_NUMEQUALVERIFY
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|MAX(length(A), length(B)) * 2
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|MAX(wordspan(A), wordspan(B)) * 2
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|COMPARING + COMPARINGZERO
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|-
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|OP_NUMNOTEQUAL
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|MAX(length(A), length(B)) * 2
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|MAX(wordspan(A), wordspan(B)) * 2
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|COMPARING + COMPARINGZERO
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|-
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|OP_LESSTHAN
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|MAX(length(A), length(B)) * 2
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|MAX(wordspan(A), wordspan(B)) * 2
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|COMPARING + COMPARINGZERO
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|-
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|OP_GREATERTHAN
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|MAX(length(A), length(B)) * 2
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|MAX(wordspan(A), wordspan(B)) * 2
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|COMPARING + COMPARINGZERO
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|-
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|OP_LESSTHANOREQUAL
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|MAX(length(A), length(B)) * 2
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|MAX(wordspan(A), wordspan(B)) * 2
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|COMPARING + COMPARINGZERO
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|-
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|OP_GREATERTHANOREQUAL
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|MAX(length(A), length(B)) * 2
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|MAX(wordspan(A), wordspan(B)) * 2
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|COMPARING + COMPARINGZERO
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|-
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|OP_MIN
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|MAX(length(A), length(B)) * 4
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|MAX(wordspan(A), wordspan(B)) * 4
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|OTHER
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|-
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|OP_MAX
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|MAX(length(A), length(B)) * 4
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|MAX(wordspan(A), wordspan(B)) * 4
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|OTHER
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|-
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|OP_WITHIN
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|(MAX(length(C), length(B)) + MAX(length(C), length(A))) * 2
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|(MAX(wordspan(C), wordspan(B)) + MAX(wordspan(C), wordspan(A))) * 2
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|COMPARING + COMPARINGZERO
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|}
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====Rationale====
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Numerical comparison in little-endian numbers involves a byte-by-byte comparison, then if one is longer, checking that the remainder is all zero bytes.
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Numerical comparison in little-endian numbers involves comparing the padded word spans, then if one is longer, checking that the remainder is all zero.
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However, OP_MAX and OP_MIN also normalize their result, which means they can't use the optimized comparison routine but must instead track the final non-zero byte to perform truncation.
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@@ -331,6 +348,7 @@ Work in progress:
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==Changelog==
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* 0.2.1: 2026-06-15: define wordspan notation and clarify byte-length versus word-span costs.
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* 0.2.0: 2026-02-21: increase in cost for hashing and copying based on benchmark results.
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* 0.1.0: 2025-09-27: first public posting
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