mmr: support arbitrary from/to delta updates
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5f2d170435
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2 changed files with 68 additions and 26 deletions
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@ -164,32 +164,32 @@ impl Mmr {
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///
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/// The result is a packed sequence of the authentication elements required to update the trees
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/// that have been merged together, followed by the new peaks of the [Mmr].
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pub fn get_delta(&self, original_forest: usize) -> Result<MmrDelta, MmrError> {
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if original_forest > self.forest {
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pub fn get_delta(&self, from_forest: usize, to_forest: usize) -> Result<MmrDelta, MmrError> {
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if to_forest > self.forest || from_forest > to_forest {
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return Err(MmrError::InvalidPeaks);
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}
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if original_forest == self.forest {
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return Ok(MmrDelta { forest: self.forest, data: Vec::new() });
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if from_forest == to_forest {
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return Ok(MmrDelta { forest: to_forest, data: Vec::new() });
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}
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let mut result = Vec::new();
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// Find the largest tree in this [Mmr] which is new to `original_forest`.
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let candidate_trees = self.forest ^ original_forest;
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// Find the largest tree in this [Mmr] which is new to `from_forest`.
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let candidate_trees = to_forest ^ from_forest;
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let mut new_high = 1 << candidate_trees.ilog2();
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// Collect authentication nodes used for tree merges
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// ----------------------------------------------------------------------------------------
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// Find the trees from `original_forest` that have been merged into `new_high`.
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let mut merges = original_forest & (new_high - 1);
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// Find the trees from `from_forest` that have been merged into `new_high`.
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let mut merges = from_forest & (new_high - 1);
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// Find the peaks that are common to `original_forest` and this [Mmr]
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let common_trees = original_forest ^ merges;
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// Find the peaks that are common to `from_forest` and this [Mmr]
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let common_trees = from_forest ^ merges;
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if merges != 0 {
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// Skip the smallest trees unknown to `original_forest`.
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// Skip the smallest trees unknown to `from_forest`.
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let mut target = 1 << merges.trailing_zeros();
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// Collect siblings required to computed the merged tree's peak
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@ -214,15 +214,15 @@ impl Mmr {
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}
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} else {
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// The new high tree may not be the result of any merges, if it is smaller than all the
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// trees of `original_forest`.
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// trees of `from_forest`.
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new_high = 0;
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}
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// Collect the new [Mmr] peaks
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// ----------------------------------------------------------------------------------------
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let mut new_peaks = self.forest ^ common_trees ^ new_high;
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let old_peaks = self.forest ^ new_peaks;
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let mut new_peaks = to_forest ^ common_trees ^ new_high;
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let old_peaks = to_forest ^ new_peaks;
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let mut offset = nodes_in_forest(old_peaks);
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while new_peaks != 0 {
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let target = 1 << new_peaks.ilog2();
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@ -231,7 +231,7 @@ impl Mmr {
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new_peaks ^= target;
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}
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Ok(MmrDelta { forest: self.forest, data: result })
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Ok(MmrDelta { forest: to_forest, data: result })
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}
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/// An iterator over inner nodes in the MMR. The order of iteration is unspecified.
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@ -573,42 +573,42 @@ fn test_mmr_peaks_hash_odd() {
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}
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#[test]
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fn test_mmr_updates() {
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fn test_mmr_delta() {
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let mmr: Mmr = LEAVES.into();
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let acc = mmr.accumulator();
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// original_forest can't have more elements
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assert!(
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mmr.get_delta(LEAVES.len() + 1).is_err(),
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mmr.get_delta(LEAVES.len() + 1, mmr.forest()).is_err(),
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"Can not provide updates for a newer Mmr"
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);
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// if the number of elements is the same there is no change
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assert!(
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mmr.get_delta(LEAVES.len()).unwrap().data.is_empty(),
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mmr.get_delta(LEAVES.len(), mmr.forest()).unwrap().data.is_empty(),
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"There are no updates for the same Mmr version"
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);
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// missing the last element added, which is itself a tree peak
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assert_eq!(mmr.get_delta(6).unwrap().data, vec![acc.peaks()[2]], "one peak");
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assert_eq!(mmr.get_delta(6, mmr.forest()).unwrap().data, vec![acc.peaks()[2]], "one peak");
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// missing the sibling to complete the tree of depth 2, and the last element
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assert_eq!(
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mmr.get_delta(5).unwrap().data,
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mmr.get_delta(5, mmr.forest()).unwrap().data,
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vec![LEAVES[5], acc.peaks()[2]],
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"one sibling, one peak"
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);
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// missing the whole last two trees, only send the peaks
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assert_eq!(
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mmr.get_delta(4).unwrap().data,
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mmr.get_delta(4, mmr.forest()).unwrap().data,
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vec![acc.peaks()[1], acc.peaks()[2]],
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"two peaks"
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);
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// missing the sibling to complete the first tree, and the two last trees
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assert_eq!(
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mmr.get_delta(3).unwrap().data,
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mmr.get_delta(3, mmr.forest()).unwrap().data,
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vec![LEAVES[3], acc.peaks()[1], acc.peaks()[2]],
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"one sibling, two peaks"
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);
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@ -616,18 +616,60 @@ fn test_mmr_updates() {
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// missing half of the first tree, only send the computed element (not the leaves), and the new
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// peaks
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assert_eq!(
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mmr.get_delta(2).unwrap().data,
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mmr.get_delta(2, mmr.forest()).unwrap().data,
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vec![mmr.nodes[5], acc.peaks()[1], acc.peaks()[2]],
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"one sibling, two peaks"
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);
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assert_eq!(
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mmr.get_delta(1).unwrap().data,
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mmr.get_delta(1, mmr.forest()).unwrap().data,
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vec![LEAVES[1], mmr.nodes[5], acc.peaks()[1], acc.peaks()[2]],
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"one sibling, two peaks"
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);
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assert_eq!(&mmr.get_delta(0).unwrap().data, acc.peaks(), "all peaks");
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assert_eq!(&mmr.get_delta(0, mmr.forest()).unwrap().data, acc.peaks(), "all peaks");
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}
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#[test]
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fn test_mmr_delta_old_forest() {
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let mmr: Mmr = LEAVES.into();
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// from_forest must be smaller-or-equal to to_forest
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for version in 1..=mmr.forest() {
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assert!(mmr.get_delta(version + 1, version).is_err());
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}
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// when from_forest and to_forest are equal, there are no updates
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for version in 1..=mmr.forest() {
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let delta = mmr.get_delta(version, version).unwrap();
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assert!(delta.data.is_empty());
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assert_eq!(delta.forest, version);
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}
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// test update which merges the odd peak to the right
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for count in 0..(mmr.forest() / 2) {
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// *2 because every iteration tests a pair
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// +1 because the Mmr is 1-indexed
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let from_forest = (count * 2) + 1;
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let to_forest = (count * 2) + 2;
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let delta = mmr.get_delta(from_forest, to_forest).unwrap();
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// *2 because every iteration tests a pair
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// +1 because sibling is the odd element
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let sibling = (count * 2) + 1;
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assert_eq!(delta.data, [LEAVES[sibling]]);
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assert_eq!(delta.forest, to_forest);
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}
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let version = 4;
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let delta = mmr.get_delta(1, version).unwrap();
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assert_eq!(delta.data, [mmr.nodes[1], mmr.nodes[5]]);
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assert_eq!(delta.forest, version);
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let version = 5;
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let delta = mmr.get_delta(1, version).unwrap();
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assert_eq!(delta.data, [mmr.nodes[1], mmr.nodes[5], mmr.nodes[7]]);
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assert_eq!(delta.forest, version);
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}
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#[test]
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@ -682,7 +724,7 @@ fn test_partial_mmr_update_single() {
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for i in 1..100 {
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let node = int_to_node(i);
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full.add(node);
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let delta = full.get_delta(partial.forest()).unwrap();
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let delta = full.get_delta(partial.forest(), full.forest()).unwrap();
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partial.apply(delta).unwrap();
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assert_eq!(partial.forest(), full.forest());
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